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8300 FORAGE HARVESTER

Self-Propelled Forage Harvester
self-propelled-forage-harvesters

  • 490 hp FT4 John Deere engine
  • All-new design delivers improved serviceability with an integrated KP hoist, easy header hook-up and ground level fuel fill
  • A best-in-class cab offers easier to use controls, better display access and visibility

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Features



Advanced comfort and serviceability improve performance and uptime

Cooling package serviceability
Cooling package accessibility Cooling package accessibility
#

The entire cooling package for the 8000 Series Self-Propelled Forage Harvester (SPFH) cooling system can be accessed from the service compartment in the middle of the machine. Everything can be reached easily in one spot on the machine, making daily servicing convenient. The constantly rotating radiator screen allows a wide opening angle for easier service. No tools are required for servicing the air filters. The filters can be reached when standing on the left side of machine in the service room.

 

 

Fuel tank
Fuel tank Fuel tank
#

The standard 1100-L (290.6-gal.) fuel tank and 43-L (10.6-gal.) urea tank are located in the low center and on the low center left-hand side of the machine. This guarantees a low center of gravity. Both tanks’ filler necks are accessible from the cab stairs. Refueling is done from one single position.

Cutterhead access
35 degree V-opening 35 degree V-opening
Feedroll door opening Feedroll door opening

The 8000 Series cutterhead unit concept provides two methods to access the shear bar and cutterhead for inspection or maintenance.

 

Leaving the header mounted on the machine and releasing the top locking mechanism together with the top side pivot pin, while the lower clamps remain locked, allows access to the shear bar and the knives through a 35-degree V-opening.

 

Detaching the header and releasing the upper and the lower locking mechanisms, provides convenient access through a feedroll door opening action, similar to the 6000 and 7000 Series Harvesters.

Heavier designed components increase reliability while improving uptime and lowering cost of operation

Efficient machine design Efficient machine design
#

Capacity, harvesting quality, machine efficiency, and total cost of ownership have always been important differentiators for self-propelled forage harvesters (SPFH). Machine size, weight, or soil compaction associated with weight, and tire size is critical to producers' acceptance of certain machines on their fields. A key demand on the 8000 Series was to find a machine layout for optimum weight distribution and maximum capacity potential.

 

The driveline concept has been optimized for maximum flexibility in setting the individual component speeds and also synchronizing certain functions for maximum harvesting quality. Specific component design has been implemented to improve efficiency.

 

Components have been laid out for matching the power demand, not only of today’s producers, but also meeting potential requirements of future users.

 

Most advanced wear-resistance technology is applied on all crop-flow elements to assure full-season harvesting uptime. Longer component wear life significantly lowers the cost of ownership.

Optimal design and positioning of components increases crop delivery performance

ProStream Crop Flow
ProStream Crop Flow ProStream Crop Flow
#

A key concept for the 8000 Series Self-Propelled Forage Harvester (SPFH) line was to position all crop-flow components to avoid any restrictions, as well as to design the crop path for minimum kinetic friction on the particles.

 

The 8000 Series crop-flow channel begins at the harvesting unit pickup tines or crop-row pointer. On the actual harvester, it starts with the feedroll arrangement. John Deere has implemented a concept layout well proven on the 7000 Series.

 

Key characteristics are a set of front feedrolls where, when the header interface is in a vertical position; the upper-front feedroll (UFFR) reaches out about 60 mm (2.4 in) over the crop in front of the lower one, grabbing the mat from the harvesting header and pulling it into the feedroll gap. This is a key function when corn headers without feed augers are mounted; assuring the machine’s crop feeder is the sole length-of-cut (LOC) metering unit of the harvester.

 

On its way to the cutterhead, the radial-arc-feed roll arrangement applies pressure to the crop for superior cut quality. The crop mat is perfectly compressed until the last second before transitioning into the knives.

 

From the moment the knife pockets start unloading, the cutterhead band takes the crop particle stream, collecting it for launching into the crop chute.

 

The crop path follows a constant curve between the cutterhead floor and the accelerator entrance. The crop accelerator, the spout transition, and the spout build the machine’s crop discharge device. All components that have an acceleration impact on the crop perfectly integrate tangentially into this curve for a fully unobstructed crop flow.

 

With 1800 rpm, the accelerator provides sufficient thrust to the crop stream for loading with the largest of heads without consuming excessive power. Rather than being carried by the accelerator rotor, the crop follows the curve of the accelerator band before moving through the transition directly into the spout base, from where on it follows the spout contour.

 

The crop hits the transition front liner just below the spout entrance at a shallow angle, minimizing component wear and inertia losses. This constant flow curve was designed to the spout as gently as possible so that the crop flow components had the least friction effect on the crop particles.

 

Sufficient space on the vehicle for a cab that allows for more operator leg room, though keeping the overall machine compact, was a key demand.

 

Ultimately, the 8000 Series SPFHs provide superior crop-flow efficiency, resulting in industry-leading machine capacity in respective horsepower classes as well as low-specific-fuel consumption (amount of diesel per ton of crop harvested). Combined with Dura Line™ technology, the 8000 Series SPFH triggers the lowest possible machine maintenance with minimal cost of operation.

8000 Series crop discharge
Crop accelerator Crop accelerator

Crop accelerator

 

On its way to the trailer, the crop must be elevated more than 4 m (13 ft) high between the accelerator exit and the spout end. It must overcome a certain friction along the transition and spout liners until it is ejected off the spout end cap. When opening corn fields, producers can expect crop being airborne over a distance of 15 m to 20 m (50 ft to 65 ft) into the following trailer.

 

It is the task of the crop accelerator to provide sufficient thrust with appropriate efficiency to the crop particles to be loaded in all circumstances. An exactly specified air inlet in the accelerator housing assures a perfect spout crop jet when the kernel processor is installed.

Crop transition

 

The crop transition is completely lined with high-grade wear elements, which can easily be inspected and replaced from the machines service compartment through an access hatch. A unique manufacturing process allows even, customized hardening of the wear liners, perfectly addressing the individual wear situation in the cone. The transition is bearing the massive head gear-driven spout turning mechanism.

 

8000 Series SPFH features a spring-loaded cam-torque limiter inside the spout-turning drive mechanism. The spout hitting an obstacle is perfectly secured. However, the spout would never rotate uncontrolled and hit the cab. The spout turning sensor precisely monitors the spout position even when the spout clutch would have been triggered and mechanical end stops additionally secure the system.

 

Spout with multiple length components Spout with multiple length components

Spout

 

The spout on the 8000 Series features modular architecture. On the basic module, the wear liners are a structural part of the component. This module features a box design closed by the wear liner. A worn-through liner discovered too late would not lead to damage of the spout structure, but replacement would rebuild the spout like new.

 

The liner of the base module is segmented addressing the wear situation on individual sections. In the standard configuration, all four liners on the base module are made of Hardox® steel; however, for severe conditions, section one and two can be specified in Dura Line™ version.

 

When specified with HarvestLab™, section two would carry the near-infrared (NIR) sensor. In this case, the wear liner always comes in Dura Line™ version, and it would feature quick-attach clamps for easy maintenance of the HarvestLab sensor.

 

The HarvestLab installation is easy and is completed by directly bolting it to the wear-liner segment. The NIR sensor is once aligned with the carrier sheet, and whenever serviced, the entire assembly is then unlatched from the spout and then re-clamped.

High-arc spout showing available extensions High-arc spout showing available extensions

There is a set of intermediate spout extensions of various lengths addressing the loading distance relative to SPFH header width. For weight reasons, the spout extensions are built from aluminum alloy with a thin steel liner inside. The spout end-cap module bolts to those intermediate sections.

 

The standard configuration shipped from the factory would be dedicated to grass harvesting with a windrow pickup or corn harvesting with a 6-m (20-ft) corn header. A second spout segment to extend the spout for 7.5-m (25-ft) header width can be by-packed with the harvester. For 12-row, 9-m (30-ft) corn harvest, a foldable spout segment is available.

Crop intake
Crop intake rolls Crop intake rolls
Mechanical spring Mechanical spring

Both series of self-propelled forage harvesters (SPFH) use four feed rolls to ingest crop with the top rolls pulled down by four springs. Their tensioning can set manually. All four rolls are driven with an infinitely variable transmission and speed synchronized to ensure smooth and reliable feeding of the cutterhead.

 

Feedrolls

 

The front set of feedrolls in charge of taking the crop off the front-end harvesting unit have been redesigned to be more adaptive to the tremendous variability of harvesting conditions.

 

The upper-front feedroll (UFFR) is now solely a ridge-type design and standard fit with replaceable and reversible wear teeth. The ridges feature a triangle-teeth design and are part of the roll segments. Behind the ridges there are tapered composite teeth bars clamped on the segmented roll. The wear slats feature the same triangle-teeth design on one side and are smooth on the other side, which makes them ideal to adapt the roll to the full range of crop conditions from dry and smooth hay to wet and sticky alfalfa.

 

The lower-front feedroll (LFFR) features a similar design; however, replaceable teeth bars with identical serration are optional wear elements. Inside the lower front feedroll is a rectangular tube carrying the metal detector coils, helping the operator to enjoy full machine and crop protection.

IVLOC™
Infinitely variable length of cut IVLOC Infinitely variable length of cut IVLOC
#

The entire feeder assembly is driven from the main feedroll transmission on the right-hand side of the roller frame. Power is sourced from the hydrostatic motor. The static set of lower-front feedrollers is directly driven from the gearcase. The moving set of upper-front feedrollers have their proper transmission on the left-hand side supplied with power via a transversal U-joint shaft. The main concept driver is to allow wider crop channels inside a narrower machine fit with the biggest tires in the industry.

Machine foreign-object protection
A points to the stone detector and B points to the metal detector sensors A points to the stone detector and B points to the metal detector sensors

The well-known and proven electromagnetic metal-detection system with its multi-sectional sensor coil is standard on all John Deere SPFHs. When tripping, metal object location in the crop mat is indicated in the cab. Also, the metal detector would trigger the selective control valve (SCV) 1 on the SPFH to automatically raise the crop compressor device on the grass pickup. Re-engaging the feedrolls would then lower the device into place again.

 

As an option, the metal detector can be completed with an additional stone detection feature where a sensor is placed inside a rectangular tube within the lower front feedroll. This sensor is correlated with a second sensor located on the right-hand side of upper front feedroll arm. One sensor detects stones striking the lower roll, as the other detects rapid feedroll movement of the upper roll. Both sensors work together, and as a result the verification of a solid foreign object is significantly improved, minimizing stone detector false tripping.

 

When the sensor is tripped, the feedrolls stop both with the metal detector or stone detector and automatically raises the crop compressor device on the hay pickup. Re-engaging the feedrolls would then lower the device into place again.

 

Stone detection offers a competitive advantage in the marketplace as it detects not only large stones or rocks, but small ones as well using knock sensors. This system provides operators with peace of mind while chopping in rocky conditions to prevent damage to the SPFH. Detecting stones and preventing them from entering the crop path of the machine not only reduces damage to the machine but also lowers the cost of operation and increases uptime to the customer which leads to increased productivity and performance.

Header drive and control

The 8000 Series SPFHs supply crops to the chopping components.

 

Improvement is driven by automatic header detection, variable and efficient hydrostatic header and feeder drive concept, revised header ground contour following, sophisticated machine protection technology, and feedroll redesign.

 

Automatic header detection

 

8000 Series machines are equipped with the multicoupler interface for all hydraulic and electric services to the SPFH harvesting headers. Through the electric wiring coding in the multicoupler, distinct header identification is assured, allowing it to automatically refer to customized header settings stored in the respective controllers onboard the SPFH. This allows the operator to instantly call back all settings that resulted from the last harvesting experience. All calibrations required for proper header operation are automatically recalled in full when attaching the header.

 

Header mounting and ground contour following
Header mount Header mount
#

8000 Series front-end interface is a laterally tilting frame. Multiple factors led to John Deere’s common harvesting units interface plate and redesigned header mounting, including:

  • The need for more front feedroll travel as well as a greater roll diameter addressing the increased harvesting capacity of the new line.
  • The intention to integrate the lateral tilt device into the harvester vehicle, because the larger feedrolls of the machine would not allow for enough tilt with the combine interface.
  • The ground adaptation can be passive, with a set of springs bringing back the frame into neutral level position or active (optional) with a hydraulic cylinder, positioning the header in reference to the signals from AHC sensors on the respective header.

This change eliminates multiple lateral-tilt devices on headers. An additional advantage is the header's self-centering feature of the attaching cones on the frame required to implement the automatic header drive-shaft coupler. Central header locking is a standard feature and comes with the hydraulic multi-coupler.

Hydrostatic header drive
Hydrostatic motor Hydrostatic motor

On the 8000 Series, the harvesting headers are driven by a hydrostatic service. The hydrostatic pump on the machine’s main power take-off (PTO) transmission supplies power to the motor behind the vehicle front axle. A U-joint shaft assembly transmits the torque to the header entry transmission.

 

An optional dual-header drive provides a power split to the feeding components such as on a grass windrow pickup. In this case, the hydrostatic service would drive the pickup auger and a second hydraulic service would separately power the pickup tine reel.

 

Variable oil-flow control allows easy synchronization of drive speeds with the velocity of respective components on the harvester. The entire header can be driving with a constant speed setting, or the header main drive can turn at a desired speed ratio synchronized with the harvester’s feedroll speed.

 

The dual drive allows individual synchronization of the header feed auger with the feedrolls and the header tine reel with the vehicle’s forward speed when harvesting.

 

Hardox is a trademark of SSAB Technology AB.

Maximize animal performance through forage quality

Holsteins eating forage grains Holsteins eating forage grains

The unique Dura-Drum™ cutterhead design, together with the portfolio of cutterhead configurations, allows 8000 Series machine owners to perfectly specify their harvesters for meeting all operating demands. Three different cutterhead configurations with 10, 12, or 14 lines of knives, a full or half set of knives, and in conjunction with 1100 or 1200 cutterhead rpm provide an overall range of length of cut (LOC) from 3 mm (0.12 in.) up to 52 mm (2 in.). The 8000 Series Self-Propelled Forage Harvesters (SPFH) meet any customer requirements.

Kernel processor technology
John Deere Premium KP™ John Deere Premium KP™
John Deere XStream KP™ John Deere XStream KP™

Industry-leading crop processing technology, such as from a conventional roller kernel processor, or from the latest XStream KP disk processing technology characterizes the 8000 Series approach to highest harvesting quality, essential for maximum performance.

 

8000 Series SPFH can be equipped with crop reprocessing technology, resulting in corn silage samples complying with highest-quality standards and kernel processor scores. Crop processing principles are implemented on the harvesters reflecting the various crop conditions as well as the harvesting capacity of the machines relative to their engine power.

 

In the 8100 and 8200 models, the John Deere Premium KP is installed in base.

 

On machines in the higher performance classes (8300 – 8600), the choice between the John Deere Premium KP and the John Deere XStream KP allows for tailoring a machine exactly to the needs and requests of dairy or biogas producers. The metabolic speed of crops in meat production or ultra-high performing dairy cows or a biogas digester is essential, where the fermentation speed is the key to the economic success of the plant.

 

To address different crops and crop abrasiveness, different rolls can be selected. Furthermore, the speed differential can be altered, addressing the processing requirement relative to predominant crop maturity or moisture.

 

With the swing-in/swing-out concept, the kernel processor can be easily set to its working or storing position. The swing-in/swing-out is conveniently done in the machine service compartment. The processor swaps with a crop transition chute with just a few turns. In short-term alternating application, the processor can stay in its parking location. When it is not needed for a longer time, an optional articulating lifting beam with an electric hoist allows convenient removal from the machine.

Kernel processor swing out Kernel processor swing out
Kernel processor swing in Kernel processor swing in
Kernel processor Kernel processor
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Chopping technology
Rotor flywheel design Rotor flywheel design
#

8000 Series SPFHs feature the unique John Deere Dura-Drum™ design. The cutterhead's distinct flywheel design or the retracting knife segments protecting the rotor against destruction by foreign objects remain unchanged. Cutterhead speed is set at 1100 rpm at rated engine speed.

 

Although the main crop flow components have been relocated in the machine, key features like a short spiral cutterhead band and the reverse knife sharpening method assure the advantages of exceptionally low power demand for cutting and crop transition remain on the 8000 Series.

 

On the cutterhead, the regular spiral cutterhead band can be replaced with a re-cutter floor featuring a set of mower bar knife sickles sticking out into the crop flow. The chopped crop mat is screened while passing the floor, so that leaves or longer crop particles are re-cut for perfect chopping results under adverse conditions.

 

Such a re-cutter floor can also be provided as a by-pack with the machine from the factory.

Cutterhead
Cutterhead Cutterhead
Cutterhead Cutterhead

All 8000 Series machines are narrow body and come with a standard harvest channel. The feedroll channel measures 660 mm (26 in.). A drum equipped with knives is 12 mm (0.5 in.) wider on either side, assuring a uniform crop flow across the full width of the cutterhead. This prevents uneven wear on knives, which would cause poor shear bar setting and result in poor chop quality.

 

When rebuilding seasonally with new knives on 8000 Series, the cutterhead is a fixed dimension, and the cutterhead housing is then adapted to the drum size with shims under the housing wear liners. By doing so, it is assured that the cutterhead is perfectly seated in the housing, safely preventing crop particles from bypassing the drum alongside the side walls.

 

The cutterhead diameter has been set to 670 mm (26.4 in.), complete with knives to allow for 12-knife rows on the rotor’s circumference as well as addressing the crop unloading angle into the redesigned crop transition. The higher number of knives significantly improves the machine's harvesting capacity when chop length needs to be extremely short.

 

8000 SPFHs use heavy-duty knife equipment. Knives are 9 mm (0.4 in.) thick and feature extra-long 20-mm (0.8-in.) hard facing. The knives are longer, allowing a sufficient knife overhang; this allows using up the entire hard facing on the knives without the necessity of relocating them, and still retain efficient crop throwing to the kernel processor or crop accelerator.

 

The knife carrier profile has been improved so that there is no negative impact on the crop transition from an extended knife pocket unloading cycle. This configuration also avoids premature crop stream funneling in front of the critical kernel processor processing gap.

 

Cutterhead design and configuration options, including a Dura Line™ option where the individual knife carriers are hard faced, specifies a machine for its desired application.

Shear bar
Shear bar configuration Shear bar configuration
#

The traditional knife/shear bar configuration does not change at all. There are significant design and handling changes implemented on these machines, conceived to deliver a much higher performance.

 

The shear bar is fixed with three bolts on a massive cast-steel anvil. This anvil is mounted on bearing spring plates out of high tensile yet flexible steel. This shear-bar anvil design allows asymmetric shear bar traveling to address potential one-sided cutterhead wearing through systematic off-center machine loading.

 

A second design change driver was on the natural shear-bar wearing cycle; the generic bending forces between knives and shear bar would be significantly elevated on machines with higher-capacity potential. The middle fixing prevents the shear-bar gap from increasing in the machine's center assuring perfect crop-cut quality throughout the entire life cycle of the shear bar.

 

On the 8000 Series, remote electronic knife sharpening and shear-bar setting come standard. The machine automatically applies the right shear-bar setting method appropriate to the cutterhead maintenance situation.

 

An extended setting procedure is automatically applied when a new shear bar has been installed and set the first time, or whenever the operator has had the shear bar intentionally travel away from the cutterhead.

 

This is a more complex adjustment logic assuring a shear bar is set absolutely parallel to the knife line, independent from the initial shear bar position.

 

After a normal periodic knife grinding, a shear bar quick-adjustment logic would move both sides of the bar simultaneously to final position.

The operator can choose between two adjusting cycles:

  1. After a grinding activity the procedure is interrupted to allow knife inspection, only the grinding icon on the display is lit.
  2. Knife grinding and shear bar setting are performed successively without interruption, both grinding and shear bar icon on the display are lit.

 

Shear bar options are also offered.

 

SPFH 8100-8600
Feed opening - front and rear

655 mm x 220 mm (25.8 in. x 8.7 in.)

Effective feed opening

655 mm x 237 mm (25.8 in. x 9.3 in.)

Cutterhead housing width 686 mm (27 in.)
Cutterhead width with knives 680 mm (26.8 in.)
Cutterhead diameter with knives 670 mm (26.4 in.)
Cutterhead 64 carrier without knives 352 kg (776 lb)
Cutterhead 56 carrier without knives 334 kg (736 lb)
Cutterhead 48 carrier without knives 318 kg (702 lb)
Cutterhead 40 carrier without knives 301 kg (664 lb)
Grass/corn knife weight 0.9 kg (2 lb)
Shear-bar setting range 19 mm (0.7 in.)

 

Best-in-class power efficiency delivers unmatched performance in the field

Unique machine layout maximizes power efficiency
Maximized harvesting efficiency Maximized harvesting efficiency
#

Power-efficient crop handling and machine propulsion in the field are critical to maximum field performance on given engine power.

On the 8000 Series Self-Propelled Forage Harvester (SPFH), this is addressed through a unique machine layout leading to a fully harmonized crop path, avoiding any abrupt change of flow direction in the channel.

The 8000 Series machines feature automatic header detection, which automatically triggers all relevant calibrations and pre-settings memorized on the machine controllers.

Header lateral ground adaptation as well as a driveline synchronized with the machine crop feeder, or an optional dual header drive where the pickup tine reel would adapt the machine forward speed, and the feed auger speed would be in line with the feedroll speed, are leading to unobstructed crop entry into the harvester. Capacity and harvesting quality is maximized.

Advanced header control and active header guidance on corn heads allows precise header positioning through feelers, while the head is not in contact with the ground, resulting in an absolutely even stubble field.

Header attaching comfort is unmatched. Operations are reduced to manually applying the locking lever, and quick-coupling electric and hydraulic services.

ProDrive™ system coupled with large tires boost performance and uptime in soft conditions

34 percent larger footprint 34 percent larger footprint
Weight distributed evenly Weight distributed evenly

ProDrive is the industry-leading ground-drive propulsion.

 

Due to weather conditions, the harvesting window becomes shorter and in some areas around the globe, the machine has to work under very wet and soft soil conditions. This leads customers to get a forage harvester which can manage harvesting in these varying conditions.

 

The 8000 Series with ProDrive ground-drive propulsion, in conjunction with largest tires in the industry and optimized weight distribution, leads to maximum performance and uptime in soft soil conditions.

 

The largest tires, with a diameter of 1067 mm (42 in.) and a width of 900 mm (35.4 in.), deliver in comparison to a 7000 Series tires, a 34 percent larger footprint helps the 8000 Series with increased traction as well as less ground compaction.

 

The 8000 Series performs without compromises due to the industry-leading ground clearance, especially in soft soil conditions.

Specifications


Key Specs 8300-forage-harvester
Current Model
Maximum power371 kW
505 PS/ 498 hp
EngineType
PowerTech™ PSS 13.5L
Exhaust emission regulation compliancy - Final Tier 4 / Stage V
Displacement
13.5 L
823.8 cu in.
Model
Europe: 6135HZ021
North America: 6135HZ022
Cylinders
Inline 6
Fuel systemUnit injector plus four valves
Fuel tank capacity1,100 L
290.6 U.S. gal.
DEF tank capacity ( for FT4 or EU Stage V emission level)43 L
11.4 U.S. gal.
Engine power
Maximum power371 kW
505 PS/ 498 hp
Fuel tank capacity1100 L
290.6 U.S. gal.
DEF tank capacity ( for FT4 or EU Stage V emission level)43 L
11.4 U.S. gal.
Engine
ManufacturerJohn Deere
TypePowerTech™ PSS 13.5 L
Exhaust emission regulation compliancy - Final Tier 4 / Stage V
ModelEurope: 6135HZ021
North America: 6135HZ022
Displacement13.5 L
823.8 cu in.
CylindersIn line six
Speed on road1400-2100 rpm
Engine/ground speed managementOptional
Fuel systemUnit injector plus four valves
Cooling system
Cooling system capacity113 L
29.85 U.S. gal.
Cooling fan driveDirect
Driveline
Ground driveStandard: Hydrostatic, 3-speed - manual shift with helical gears
Engine rpm on road: 1650 rpm
Optional: ProDrive™, autoshift transmission, differential lock (automatic and manual), automatic wet brake system
Engine rpm on road: 1400-2100 rpm
HydraulicsLoad sensing
Crop harvesting unitHarvest channel standard
Crop flow componentsLow-friction crop-flow concept
Main clutchDry clutch
Number of discsOne disc
Main drivebandReinforced with Kevlar inserts
Belt tensioningActive, hydraulic pressure
Main driveband, polybelt beltsSix ribs
Electrical system/Electrical and hydraulic system
Type/voltage13 V
Batteries/battery quantity/capacity2 x 174 amp-hr
Alternator201 amp
Hydraulic system capacity50 L
13.2 U.S. gal.
Ground drive
TypeStandard: hydrostatic, 3-speed manual shift
Optional: ProDrive, autoshift transmission
Differential lockManual or automatic (optional comes with ProDrive)
Maximum transport speedHydrostatic transmission: 25 / 30 km/h
15.5 / 18.6 mph
ProDrive transmission: 20 / 25 / 30 / 40 km/h
12.4 / 15.5 / 18.6 / 24.9 mph
Rear axle typeHydro-mechanical 4WD
Automatic wet brake systemAvailable with ProDrive transmission
Engine speed managementOptional
Cab
Tilt and extend steering columnStandard
Air conditioning and heaterStandard - ClimaTrak
Cool boxOptional
Trainee seatStandard
Leather seat optional
Hectare counterStandard
Operator information systemCornerpost display
Armrest display (Touchscreen)
Side rail display (Touchscreen) optional
CAN bus electronicsStandard
Operator's seatAir-suspension seat optional
Leather seat optional
Side window wiperRear and side window wiper optional
Parallel-type windscreen wiper
Electric adjust and heatedOptional on rear view mirrors
Rearview mirrorsStandard
Machine management solutions
Yield monitoringHarvest Monitor™ optional
DocumentationHarvest Doc™ optional
Crop analysisHarvestLab™ 3000 optional
Length-of-cut control based on crop parameterInfinitely variable length-of-cut (IVLOC™) standard
AutoLOC™ optional with HarvestLab 3000
Assisted steering systemsAutoTrac or Manual RowSense optional
Harvest channel
Header connection
Length of cut
RangeRange at 1100 rpm
40 knives: 7-26 mm (0.275-1.0 in.) LOC / 1 mm (0.04 in.) steps
48 knives: 6-22 mm (0.24-0.87 in.) LOC / 1 mm (0.04 in.) steps
56 knives: 5-19 mm (0.20-0.75 in.) LOC / 1 mm (0.04 in.) steps
Range at 1200 rpm
56 knives: 4-17 mm (0.16-0.67 in.) LOC / 1 mm (0.04 in.) steps
64 knives: 3-15 mm (0.12-0.59 in.) LOC / 1 mm (0.04 in.) steps
Feeding system/Feedrolls
Feed roll frame openingSwing away, 37-45 degree (angle)
NumberFour
Metal detectorStandard
Stone detector is optional
Width, front660 mm
26 in.
Standard feedroll driveHydro feedroll drive IVLOC standard
Infinitely header drive speed standard
Cutterhead
TypeDura-Drum™ cutterhead
Cutterhead housing width686 mm
27 in.
Knife drum width680 mm
26.8 in.
Knife drum diameter670 mm
26.3 in.
Speed at rated engine speedStandard - 1100 rpm
Optional - 1200 rpm
Knife types available (crop)Straight - grass
Curved - corn
Number of knives40 - 48 - 56 - 64
Shear bar, reversibleGrass, corn, or Dura Line Plus
Shear bar adjustFine shearbar adjust
Quick shearbar adjust
Knife sharpening system
Reverse rotationYes
Automatic from cabYes, remote from cab
Reverse driveStandard
Sharpening modesGrinding and finishing
Kernel processor
TypePremium KP (8100-8600)
XStream KP (8300-8600)
Quick-changeQuick kernel processor - swing in/swing out
Quick KP removalOptional: Crane with remote-controlled electric hoist
John Deere Premium KP
HousingStandard KP housing
LubricationGrease
Roll diameter240 mm
9.45 in.
Speed differential / Roll speed (lower)32 percent
Optional 40 percent
Sorghum, roll teeth number (speed differential)238 (32 percent)
Weight320 kg
145 lb
Available KP rollsStandard sawtooth
Duraline sawtooth
Whole crop
John Deere XStream KP
HousingHeavy duty housing with KP roll quick exchange system
LubricationPressurized oil
Roll diameter250 mm
9.84 in.
Speed differential / Roll speed (lower)50 percent
Bearing temperature monitoring systemOptional
Sorghum, roll teeth number (speed differential)238 (32 percent)
Available KP rollsDuraline sawtooth
Duraline XCut
Whole crop XCut
Serrated roller (kernel processor)
Disk type (kernel processor)
Blower/Crop accelerator
Rotor diameter/housing widthRotor diameter: 560 mm
22.86 in.
Housing width: 540 mm
21.26 in.
Number of blades10
Speed (option)1800 rpm
Spout
Rotation, degrees210 degree (angle)
Hydraulic height positionHydraulic raise and lower standard
Automatic spout positioning optional
Double-cap deflectionStandard
Maintenance
Rotary radiator screen cleanerStandard
Automatic lubrication systemAutoLube optional
Engine oil and filter change durationPlus-50™ II oil: 500 hours
Other oil: 250 hours
Vehicle
With front tires710/70R42
With rear tires620/60R30
Transport length (without header)6.5 m
21.4 ft
Transport width (without header)3-3.5 m
9.84-11.5 ft
Transport height (to cab roof)3.89 m
12.75 ft
Working height (maximum)Height to spout: 6.60 m
21.65 ft
Propelling drive
StandardHydrostatic, 3-speed - manual shift with helical gears
Transmission
TypeStandard: Hydrostatic, 3-speed - manual shift with helical gears
Hydro-mechanical rear axle optional

Accessories and Attachments

Additive Application System

Corn silage The main purposes of silage additives include: Increase the quality of the silage Improve ensiling process Support the conservation process Reduce the reheat of forage after opening   The range of additives available on the market is as wide as the range of crops, crop conditions, and moisture levels in different areas of the world. This makes it difficult for the owners of harvesting machinery to select the appropriate dosing system for their machine.   As a result of intense research and customer feedback rounds, the John Deere self-propelled forage harvester (SPFH) features a unique silage additive dosing system (ADS). John Deere ADS twin line is the most complete dosing system available ex-factory for all SPFH models, which allows for great flexibility in dosing various types of additives.   Integrated The additive dosing system consists of: High-volume dosing system with a large 325-L (86 gal.) tank located in the rear Low-volume concentrate dosing system with a 30-L (8-gal.) tank located on the right-hand side platform Power supply and controller area network (CAN) interface for connectivity with third-party dosing systems NOTE: These elements can be ordered individually or as one completely integrated system. Fill-level display and system-empty warning Controls through integrated touchscreen display on armrest Accurate Low-volume and high-volume dosing: independent, mixing, or simultaneous spraying Automatic on/off with crop flow Different nozzles for high-precision application Intelligent Three application methods: In base: time based (L/hour) i-ready with mass-flow sensor: based on fresh matter (L/ton) i-complete with HarvestLab™ 3000 sensor: based on dry matter (L/ton) Full documentation of additive application with HarvestDoc™ system Clean mode available to automatically clean hoses and nozzles after use Store concentrate mode allows operator to reverse low-volume system to store additives not used during harvest Draining possibilities and easy access to tanks for cleaning Dosing options To allow for maximum flexibility, there are various dosing modes available: High-volume dosing only Low-volume concentrate dosing only High-volume dosing of additives out of large tank and separate parallel dosing of concentrate out of small tank Mix of low-volume dosing with water out of large tank Independent dosing with third-party system   Thanks to various nozzles available, a huge dosing range can be covered with both the high-volume and low-volume systems. All nozzles are color coded and easy to recognize and select.   The following dosing ranges are available: High-volume system Dosing per time: 30 to 382 L/h (8 to 101 gph) Dosing per wet mass: 0,1 to 5,0 L/t (0.03 to 1.3 gph) Dosing per dry mass: 0,1 to 15 L/t (0.03 to 4.0 gph) Low-volume system Dosing per time: 2 to 13 L/h (0.5 to 3.5 gph) Dosing per wet mass: 50 to 500 mL/t (1.7 to 17 fl. oz.) Dosing per dry mass: 150 to 1500 mL/t (5.07 to 50.7 fl. oz.) High-volume system Low-volume system These various dosing modes can be comfortably chosen and set up via the intuitive setup page on the CommandCenter™ touchscreen display. CommandCenter touchscreen display: high and low volume page The adjusted volume will be automatically dosed with the highest precision when crop is engaged in the machine to ensure maximum dosing efficiency. This system offers maximum versatility for dosing all additives available on the market with highest accuracy. Especially during grass harvest, it reacts to varying moisture levels or varying sugar content in the crop. Maintenance and accessibility The tidy setup allows for easy daily maintenance of the dosing system. Daily maintenance points are: Nozzles and nozzle screen cleaning System cleaning Filter bowl cleaning (high-volume dosing system) Tank lid cleaning (high-volume dosing system) Tank cleaning (low-volume dosing system)   The mounting location of the nozzles is in the transition chute behind the crop accelerator to ensure precise application of the additives into the crop stream and maximum coverage of the crop. For exchange and service of the nozzles, comfortable access through the service room behind the crop accelerator is given. There are no tools required to exchange or dismount the nozzles. Nozzle location and service access NOTE: When harvesting in sugary conditions, a water injection bar can be installed on the back end of the spiral band. The water injection bar can be ordered via Parts. Water injection bar Third-party solutions Growers who have used third-party solutions in the past and want to take them over when trading in the used chopper for a John Deere are in a comfortable situation since the 8000 and 9000 SPFH also offer unique third-party system capabilities: External power outlet for third-party dosing systems Manual on/off via configurable button on hydro handle Auto on/off with crop flow Pioneer® Appli-Pro® C2000/SLV applicator: RS232 interface on 7000 Series for GreenStar™ system communication Pioneer offers a CAN to RS232 adapter for use on 8000 and 9000 Series Throughput-based dosing only on John Deere SPFH Local Pioneer service organizations can provide details on demand. Pioneer and Appli-Pro are trademarks of Pioneer Hi-Bred.

Ag Management Solutions Packages

GreenStar display John Deere Ag Management Solutions (AMS) make it easy to track and improve every part of business: Record in-field performance Monitor crops as they are harvested Follow machine status remotely Stay on top of important business data and much more AMS makes managing business easier than ever before.Choose the GreenStar i-ready kit and enjoy a whole new level of precision harvesting in the 8000 Series Self-Propelled Forage Harvester (SPFH).NOTE: Order this attachment to upgrade a non-i 8000 Series SPFH to the level of an i-ready 8000 Series SPFH GreenStar i-ready retrofit kit contains: Mass flow sensor GreenStar display and StarFire™ bracket HarvestLab™ or HarvestLab 3000 sensor is required - order its attachment bracket kit separately

Moisture Sensor cover Kit - for Gen 3000 Sensor - 274CZBXE11278

Blower

This kit is recommended in case of sticky crop conditions (high sugar content) simultaneously with uneven crop flow. Water is injected regularly to clean the grass chute bottom liner surface.

Common accessories

Kernel Processor Mounting Crane - 274CZBXE10989

The KP can be upgraded from manual roll adjustments to electrical adjustments. This makes easy work of adjusting the KP roll clearance as it can be done on the go from the cab. It allows the operator to react quickly to changing crop conditions.When working in fields with a lot of dry crops and dry crop debris, using the wider KP roll clearance settings helps reduce machine fuel consumption.

Cutterhead

With a heavy maize harvesting season approaching, there is no better way to prepare than by installing John Deere quick-change knives, which are easy to install and have a highly resilient tungsten carbide coating. They also help producers to reduce long leaves in dry maize conditions.The spiral band knives are housed in two cassettes. These blades are exposed to large amounts of rough material in the crop flow, which makes them more susceptible to wear. Quick change knives cut downtime as they can be quickly and easily removed or reversed. As all knives are tungsten carbide coated, producers can expect a wear life up to four times longer than non-genuine knives.

Electric

Service lighting at dusk Choose the light-emitting diode (LED) service lighting package to make easy work of maintenance in low-light conditions. Whether the operator is working through the night to meet a deadline or simply working in cloudy weather, the exterior service lights will help brighten things.It is the ideal solution to help speed up daily checks in the field.The service lighting package contains: One light in the back of the engine compartment Two lights in the engine compartment on the left and right side One light in the service compartment One light above the cutterhead

Feedrolls

Feedrolls with anti-accumulation kit installed Avoid wrapping of materials around the lower front feedroll and enhance crop flow distribution in the crop flow channel.
Sensor for stone detection kit Sensor for stone detection kit In addition to the metal detector, producers can equip their self-propelled forage harvester (SPFH) with a stone detection feature where a sensor is placed in the lower front feedroll. This sensor coordinates with a second one on the right-hand upper front feedroll arm. The system detects objects striking the lower feedroll, as well as abnormal upper feedroll movement. Both sensors are redundant and as a result, the verification of a solid foreign object is significantly improved, minimizing stone detector false tripping.   When the sensor is tripped, both the metal detector and the stone detector will trigger selective control valve (SCV) 1 on the SPFH to automatically raise the crop compressor device on the grass pickup. Re-engaging the feedrolls will then lower the device into place again.
Position of hydraulic feedroll dampener As of model year 2016, a hydraulic feedroll dampening kit is available to ensure the smoothest feeding and an optimal compressed crop mat, even at the highest feeding speeds when chopping for extremely long periods of time.
Lower front feedroll This kit increases the wear resistance and improves crop flow transportation. It is recommended in abrasive conditions or uneven crop feeding.  

Guidance

AutoTrac™ assisted steering system Take advantage of automatic global positioning system (GPS) guidance when harvesting maize. By using AutoTrac assisted steering system and RowSense™ software in combination with RTK signal, operators benefit from repeatable accuracy of up to +/- 2.5 cm (0.98 in.) pass after pass. This not only reduces overlaps, but it also saves time and money. It is the most accurate automatic guidance system available for self-propelled forage harvesters (SPFHs).   AutoTrac and RowSense use satellite data from the StarFire™ receiver in combination with sensor data from the rotary header to ensure quick, accurate chopping.   This offers numerous benefits to 8000 Series operators: Precision harvesting of maize that might not have been planted with AutoTrac accuracy Increased efficiency in down maize conditions Reduced operator fatigue Reduced crop loss thanks to accurate and efficient passes NOTE: Kit does not contain AutoTrac and RowSense activations Requires a display, a StarFire receiver, and an AutoTrac activation to work To operate RowSense, the header must be properly equipped
AutoTrac™ assisted steering system Take advantage of automatic global positioning system (GPS) guidance when harvesting maize. By using AutoTrac assisted steering system and RowSense™ software in combination with RTK signal, operators benefit from repeatable accuracy of up to +/- 2.5 cm (0.98 in.) pass after pass. This not only reduces overlaps, but it also saves time and money. It is the most accurate automatic guidance system available for self-propelled forage harvesters (SPFHs).   AutoTrac and RowSense use satellite data from the StarFire™ receiver in combination with sensor data from the rotary header to ensure quick, accurate chopping.   This offers numerous benefits to 8000 Series operators: Precision harvesting of maize that might not have been planted with AutoTrac accuracy Increased efficiency in down maize conditions Reduced operator fatigue Reduced crop loss thanks to accurate and efficient passes NOTE: Kit does not contain AutoTrac and RowSense activations Requires a display, a StarFire receiver, and an AutoTrac activation to work To operate RowSense, the header must be properly equipped

Header Drive Connection

PTO Coupler PTO Coupler PTO coupler This kit is recommended for unfoldable, extra-wide headers (ProfiCut or grass pickups) which need to be removed for road transport.NOTE: The header must be fitted with the corresponding coupler. Automatic PTO coupler for Kemper headers retrofit kit Order the auto coupler for quick and easy Kemper header installation.NOTE: The header must be fitted with the corresponding part on the self-propelled forage harvester (SPFH).

Hydraulic Kits

Kernel Processor drive part for SPFH without KP

KP driveline (at blower) for retrofitting on self-propelled forage harvesters (SPFHs) without KP Drive component retrofit kits: BXE10609 and BXE10610 Hydraulic KP tensioner retrofit kit: BXE10833 Drive pulley kit: HXE88935  NOTE: For more information about the different kernel processor drive component combinations refer to CCMS solution 103612. Speed differential options 32-percent speed differential kits (A): HXE83757 and HXE83756; 40-percent speed differential kits (B): BXE10821 and BXE10822  
KP driveline (at blower) for retrofitting on self-propelled forage harvesters (SPFHs) without KP Drive component retrofit kits: BXE10609 and BXE10610 Hydraulic KP tensioner retrofit kit: BXE10833 Drive pulley kit: HXE88935  NOTE: For more information about the different kernel processor drive component combinations refer to CCMS solution 103612. Speed differential options 32-percent speed differential kits (A): HXE83757 and HXE83756; 40-percent speed differential kits (B): BXE10821 and BXE10822  

Miscellaneous

Air compressor hose Crop debris clogging the machine is prevented by the use of an air compressor, hose, and a 40-L (10.6-gal.) air reservoir.This kit reduces the time spent cleaning the machine inside and out. It can also help to speed up maintenance tasks.

Operator's Station

Control Lever 15° - 274CZBXE11143

Heated Floormat - 274CZBXE11223

Optional speed differentials

KP driveline (at blower) for retrofitting on self-propelled forage harvesters (SPFHs) without KP Drive component retrofit kits: BXE10609 and BXE10610 Hydraulic KP tensioner retrofit kit: BXE10833 Drive pulley kit: HXE88935  NOTE: For more information about the different kernel processor drive component combinations refer to CCMS solution 103612. Speed differential options 32-percent speed differential kits (A): HXE83757 and HXE83756; 40-percent speed differential kits (B): BXE10821 and BXE10822  

Spout

Crop accelerator Crop accelerator On its way to the trailer, the crop must be elevated more than 4 m (13 ft) high between the accelerator exit and the spout end. In addition, it must overcome friction along the transition and spout liners until it is ejected from the spout flap. When opening corn fields, operators can expect crop to be airborne over a distance of 15 m to 20 m (50 ft to 65 ft) into the following trailer.   It is the task of the crop accelerator to provide sufficient thrust with appropriate efficiency to the crop particles in order to be unloaded under all circumstances. An exactly specified air inlet in the accelerator housing assures a perfect spout crop jet when the kernel processor in place obstructs the natural air flow from the cutterhead to the crop accelerator. The 10 paddles and the low 1800-rpm speed of the crop accelerator rotor enables efficient crop acceleration with a perfect throw distance. In addition, it is possible to adjust the paddles according to harvesting conditions to reach a smooth crop flow.   Crop transition The crop transition is completely lined with high-grade wear elements that can easily be inspected and replaced from the machine’s service compartment through an access hatch. A unique manufacturing process allows even and customized hardening of the wear liners, perfectly addressing the individual wear situation in the transition. The transition bears the massive gear-driven spout turning mechanism.   8000 and 9000 Series Self-Propelled Forage Harvesters (SPFH) feature a spring-loaded cam-torque limiter inside the turning drive mechanism, guaranteeing that the spout hitting an obstacle is released. The spout turning sensor precisely monitors the spout position, even when the spout safety device has been triggered, and mechanical end stops also secure the system.   Spout Spout with multiple extensions available On 8000 and 9000 Series SPFHs, the spout features modular architecture. On the base module, the wear liners are a structural part of the component. The module features a box design closed by the wear liner. Therefore, a worn-through liner discovered too late would not lead to damage of the spout structure, but replacement would rebuild the spout like new.   The liner of the base module is segmented to address the wear situation on individual sections. In the standard configuration, all four liners on the base module are made out of Hardox® steel; however, for severe conditions, section one and two can be specified in Dura Line™ version.   When specified with the HarvestLab™ sensor, section two would carry the near infrared (NIR) sensor. The wear liner always comes with the Dura Line version, and it features quick-attach clamps for easy maintenance of the HarvestLab sensor.   HarvestLab installation is facilitated by directly bolting to the wear liner segment. The NIR sensor is aligned once with the carrier sheet, and whenever serviced, the entire assembly is then unlatched from the spout and then re-clamped. Spout options Most of the SPFH typically load associated trailers from the top and feature a curved, high-arch overloading spout. The standard configuration shipped from the factory is compatible with a grass pickup or a six- or eight-row header. Loading crop into trailer There is a set of intermediate spout sections of various lengths that addresses the crop overloading distance relative to SPFH header width. The spout end flap module bolts to the intermediate sections. High-arc spout with available extensions The spout segments that extend the spout for 7.5-m (25-ft)/10-row or 9-m (30-ft)/12-row header widths are bi-packed with the harvester, if ordered. The 12-row spout extension is hydraulically foldable. This requires the folding spout ready function (code 8534), which includes hydraulic valves. 12-row spout folded 12-row spout folding outward 12-row spout fully extended Overloading width for high-arc spout and extensions Letters below correspond to the dimensions in the above image: A - 4.73-m (15.52-ft) overloading width for six- or eight-row sections B - 5.87-m (19.26-ft) overloading width for 10-row section C - 6.71-m (22.01-ft) overloading width for 12-row section When loading into covered trailers from the side or rear, a flatter spout contour makes it easier to aim into the trailer’s loading opening. There is a flat spout and a long flat spout available for those harvesting situations. The long flat spout can also be used for rear loading into towed wagons for upright silos. The short flat spout is available for side loading in open trucks (California). Automatic spout positioning Automatic spout positioning can help the operator when switching harvesting sides continuously or serving various trailers at different heights. Different spout positions can be engaged at the push of a button. This frees the operator and enables header and harvester surveillance. Automatic spout positioning allows the operator to save and assign any spout rotation angle, tilt position, and spout flap position on the control handle.   Automatic spout positioning - display settings Spout camera Mounted spout camera A video camera mounted close to the spout end flap gives the operator a direct view into larger and taller trailers. This allows the operator to utilize the entire capacity of their transport chain at any time. The viewing screen provides a quick glance at the loading process and enables the operator to devote more time to monitoring the machine and front-end equipment. ProTouch The ProTouch function enables the operator to switch between road transport and field operation with a single button press. A configurable sequence is started to maintain spout position, header folding, compressor roll position, beacons, four-wheel drive (4WD) and engine speed management (ESM) when switching from road to field and vice versa. Pro Touch – display settings Active Fill Control (AFC) The AFC system improves the forage harvesting experience through automatic spout positioning. The AFC camera locates the trailer and its fill status. According to the fill strategy that is set in the display, the system automatically fills up the trailer or truck while the operator concentrates on the machine and header. This is also possible for rear unloading when opening fields.NOTE: The 10- and 12-row spout extensions need to be ordered AFC ready. AFC on the SPFH display
Crop accelerator Crop accelerator On its way to the trailer, the crop must be elevated more than 4 m (13 ft) high between the accelerator exit and the spout end. In addition, it must overcome friction along the transition and spout liners until it is ejected from the spout flap. When opening corn fields, operators can expect crop to be airborne over a distance of 15 m to 20 m (50 ft to 65 ft) into the following trailer.   It is the task of the crop accelerator to provide sufficient thrust with appropriate efficiency to the crop particles in order to be unloaded under all circumstances. An exactly specified air inlet in the accelerator housing assures a perfect spout crop jet when the kernel processor in place obstructs the natural air flow from the cutterhead to the crop accelerator. The 10 paddles and the low 1800-rpm speed of the crop accelerator rotor enables efficient crop acceleration with a perfect throw distance. In addition, it is possible to adjust the paddles according to harvesting conditions to reach a smooth crop flow.   Crop transition The crop transition is completely lined with high-grade wear elements that can easily be inspected and replaced from the machine’s service compartment through an access hatch. A unique manufacturing process allows even and customized hardening of the wear liners, perfectly addressing the individual wear situation in the transition. The transition bears the massive gear-driven spout turning mechanism.   8000 and 9000 Series Self-Propelled Forage Harvesters (SPFH) feature a spring-loaded cam-torque limiter inside the turning drive mechanism, guaranteeing that the spout hitting an obstacle is released. The spout turning sensor precisely monitors the spout position, even when the spout safety device has been triggered, and mechanical end stops also secure the system.   Spout Spout with multiple extensions available On 8000 and 9000 Series SPFHs, the spout features modular architecture. On the base module, the wear liners are a structural part of the component. The module features a box design closed by the wear liner. Therefore, a worn-through liner discovered too late would not lead to damage of the spout structure, but replacement would rebuild the spout like new.   The liner of the base module is segmented to address the wear situation on individual sections. In the standard configuration, all four liners on the base module are made out of Hardox® steel; however, for severe conditions, section one and two can be specified in Dura Line™ version.   When specified with the HarvestLab™ sensor, section two would carry the near infrared (NIR) sensor. The wear liner always comes with the Dura Line version, and it features quick-attach clamps for easy maintenance of the HarvestLab sensor.   HarvestLab installation is facilitated by directly bolting to the wear liner segment. The NIR sensor is aligned once with the carrier sheet, and whenever serviced, the entire assembly is then unlatched from the spout and then re-clamped. Spout options Most of the SPFH typically load associated trailers from the top and feature a curved, high-arch overloading spout. The standard configuration shipped from the factory is compatible with a grass pickup or a six- or eight-row header. Loading crop into trailer There is a set of intermediate spout sections of various lengths that addresses the crop overloading distance relative to SPFH header width. The spout end flap module bolts to the intermediate sections. High-arc spout with available extensions The spout segments that extend the spout for 7.5-m (25-ft)/10-row or 9-m (30-ft)/12-row header widths are bi-packed with the harvester, if ordered. The 12-row spout extension is hydraulically foldable. This requires the folding spout ready function (code 8534), which includes hydraulic valves. 12-row spout folded 12-row spout folding outward 12-row spout fully extended Overloading width for high-arc spout and extensions Letters below correspond to the dimensions in the above image: A - 4.73-m (15.52-ft) overloading width for six- or eight-row sections B - 5.87-m (19.26-ft) overloading width for 10-row section C - 6.71-m (22.01-ft) overloading width for 12-row section When loading into covered trailers from the side or rear, a flatter spout contour makes it easier to aim into the trailer’s loading opening. There is a flat spout and a long flat spout available for those harvesting situations. The long flat spout can also be used for rear loading into towed wagons for upright silos. The short flat spout is available for side loading in open trucks (California). Automatic spout positioning Automatic spout positioning can help the operator when switching harvesting sides continuously or serving various trailers at different heights. Different spout positions can be engaged at the push of a button. This frees the operator and enables header and harvester surveillance. Automatic spout positioning allows the operator to save and assign any spout rotation angle, tilt position, and spout flap position on the control handle.   Automatic spout positioning - display settings Spout camera Mounted spout camera A video camera mounted close to the spout end flap gives the operator a direct view into larger and taller trailers. This allows the operator to utilize the entire capacity of their transport chain at any time. The viewing screen provides a quick glance at the loading process and enables the operator to devote more time to monitoring the machine and front-end equipment. ProTouch The ProTouch function enables the operator to switch between road transport and field operation with a single button press. A configurable sequence is started to maintain spout position, header folding, compressor roll position, beacons, four-wheel drive (4WD) and engine speed management (ESM) when switching from road to field and vice versa. Pro Touch – display settings Active Fill Control (AFC) The AFC system improves the forage harvesting experience through automatic spout positioning. The AFC camera locates the trailer and its fill status. According to the fill strategy that is set in the display, the system automatically fills up the trailer or truck while the operator concentrates on the machine and header. This is also possible for rear unloading when opening fields.NOTE: The 10- and 12-row spout extensions need to be ordered AFC ready. AFC on the SPFH display
Crop accelerator Crop accelerator On its way to the trailer, the crop must be elevated more than 4 m (13 ft) high between the accelerator exit and the spout end. In addition, it must overcome friction along the transition and spout liners until it is ejected from the spout flap. When opening corn fields, operators can expect crop to be airborne over a distance of 15 m to 20 m (50 ft to 65 ft) into the following trailer.   It is the task of the crop accelerator to provide sufficient thrust with appropriate efficiency to the crop particles in order to be unloaded under all circumstances. An exactly specified air inlet in the accelerator housing assures a perfect spout crop jet when the kernel processor in place obstructs the natural air flow from the cutterhead to the crop accelerator. The 10 paddles and the low 1800-rpm speed of the crop accelerator rotor enables efficient crop acceleration with a perfect throw distance. In addition, it is possible to adjust the paddles according to harvesting conditions to reach a smooth crop flow.   Crop transition The crop transition is completely lined with high-grade wear elements that can easily be inspected and replaced from the machine’s service compartment through an access hatch. A unique manufacturing process allows even and customized hardening of the wear liners, perfectly addressing the individual wear situation in the transition. The transition bears the massive gear-driven spout turning mechanism.   8000 and 9000 Series Self-Propelled Forage Harvesters (SPFH) feature a spring-loaded cam-torque limiter inside the turning drive mechanism, guaranteeing that the spout hitting an obstacle is released. The spout turning sensor precisely monitors the spout position, even when the spout safety device has been triggered, and mechanical end stops also secure the system.   Spout Spout with multiple extensions available On 8000 and 9000 Series SPFHs, the spout features modular architecture. On the base module, the wear liners are a structural part of the component. The module features a box design closed by the wear liner. Therefore, a worn-through liner discovered too late would not lead to damage of the spout structure, but replacement would rebuild the spout like new.   The liner of the base module is segmented to address the wear situation on individual sections. In the standard configuration, all four liners on the base module are made out of Hardox® steel; however, for severe conditions, section one and two can be specified in Dura Line™ version.   When specified with the HarvestLab™ sensor, section two would carry the near infrared (NIR) sensor. The wear liner always comes with the Dura Line version, and it features quick-attach clamps for easy maintenance of the HarvestLab sensor.   HarvestLab installation is facilitated by directly bolting to the wear liner segment. The NIR sensor is aligned once with the carrier sheet, and whenever serviced, the entire assembly is then unlatched from the spout and then re-clamped. Spout options Most of the SPFH typically load associated trailers from the top and feature a curved, high-arch overloading spout. The standard configuration shipped from the factory is compatible with a grass pickup or a six- or eight-row header. Loading crop into trailer There is a set of intermediate spout sections of various lengths that addresses the crop overloading distance relative to SPFH header width. The spout end flap module bolts to the intermediate sections. High-arc spout with available extensions The spout segments that extend the spout for 7.5-m (25-ft)/10-row or 9-m (30-ft)/12-row header widths are bi-packed with the harvester, if ordered. The 12-row spout extension is hydraulically foldable. This requires the folding spout ready function (code 8534), which includes hydraulic valves. 12-row spout folded 12-row spout folding outward 12-row spout fully extended Overloading width for high-arc spout and extensions Letters below correspond to the dimensions in the above image: A - 4.73-m (15.52-ft) overloading width for six- or eight-row sections B - 5.87-m (19.26-ft) overloading width for 10-row section C - 6.71-m (22.01-ft) overloading width for 12-row section When loading into covered trailers from the side or rear, a flatter spout contour makes it easier to aim into the trailer’s loading opening. There is a flat spout and a long flat spout available for those harvesting situations. The long flat spout can also be used for rear loading into towed wagons for upright silos. The short flat spout is available for side loading in open trucks (California). Automatic spout positioning Automatic spout positioning can help the operator when switching harvesting sides continuously or serving various trailers at different heights. Different spout positions can be engaged at the push of a button. This frees the operator and enables header and harvester surveillance. Automatic spout positioning allows the operator to save and assign any spout rotation angle, tilt position, and spout flap position on the control handle.   Automatic spout positioning - display settings Spout camera Mounted spout camera A video camera mounted close to the spout end flap gives the operator a direct view into larger and taller trailers. This allows the operator to utilize the entire capacity of their transport chain at any time. The viewing screen provides a quick glance at the loading process and enables the operator to devote more time to monitoring the machine and front-end equipment. ProTouch The ProTouch function enables the operator to switch between road transport and field operation with a single button press. A configurable sequence is started to maintain spout position, header folding, compressor roll position, beacons, four-wheel drive (4WD) and engine speed management (ESM) when switching from road to field and vice versa. Pro Touch – display settings Active Fill Control (AFC) The AFC system improves the forage harvesting experience through automatic spout positioning. The AFC camera locates the trailer and its fill status. According to the fill strategy that is set in the display, the system automatically fills up the trailer or truck while the operator concentrates on the machine and header. This is also possible for rear unloading when opening fields.NOTE: The 10- and 12-row spout extensions need to be ordered AFC ready. AFC on the SPFH display
Crop accelerator Crop accelerator On its way to the trailer, the crop must be elevated more than 4 m (13 ft) high between the accelerator exit and the spout end. In addition, it must overcome friction along the transition and spout liners until it is ejected from the spout flap. When opening corn fields, operators can expect crop to be airborne over a distance of 15 m to 20 m (50 ft to 65 ft) into the following trailer.   It is the task of the crop accelerator to provide sufficient thrust with appropriate efficiency to the crop particles in order to be unloaded under all circumstances. An exactly specified air inlet in the accelerator housing assures a perfect spout crop jet when the kernel processor in place obstructs the natural air flow from the cutterhead to the crop accelerator. The 10 paddles and the low 1800-rpm speed of the crop accelerator rotor enables efficient crop acceleration with a perfect throw distance. In addition, it is possible to adjust the paddles according to harvesting conditions to reach a smooth crop flow.   Crop transition The crop transition is completely lined with high-grade wear elements that can easily be inspected and replaced from the machine’s service compartment through an access hatch. A unique manufacturing process allows even and customized hardening of the wear liners, perfectly addressing the individual wear situation in the transition. The transition bears the massive gear-driven spout turning mechanism.   8000 and 9000 Series Self-Propelled Forage Harvesters (SPFH) feature a spring-loaded cam-torque limiter inside the turning drive mechanism, guaranteeing that the spout hitting an obstacle is released. The spout turning sensor precisely monitors the spout position, even when the spout safety device has been triggered, and mechanical end stops also secure the system.   Spout Spout with multiple extensions available On 8000 and 9000 Series SPFHs, the spout features modular architecture. On the base module, the wear liners are a structural part of the component. The module features a box design closed by the wear liner. Therefore, a worn-through liner discovered too late would not lead to damage of the spout structure, but replacement would rebuild the spout like new.   The liner of the base module is segmented to address the wear situation on individual sections. In the standard configuration, all four liners on the base module are made out of Hardox® steel; however, for severe conditions, section one and two can be specified in Dura Line™ version.   When specified with the HarvestLab™ sensor, section two would carry the near infrared (NIR) sensor. The wear liner always comes with the Dura Line version, and it features quick-attach clamps for easy maintenance of the HarvestLab sensor.   HarvestLab installation is facilitated by directly bolting to the wear liner segment. The NIR sensor is aligned once with the carrier sheet, and whenever serviced, the entire assembly is then unlatched from the spout and then re-clamped. Spout options Most of the SPFH typically load associated trailers from the top and feature a curved, high-arch overloading spout. The standard configuration shipped from the factory is compatible with a grass pickup or a six- or eight-row header. Loading crop into trailer There is a set of intermediate spout sections of various lengths that addresses the crop overloading distance relative to SPFH header width. The spout end flap module bolts to the intermediate sections. High-arc spout with available extensions The spout segments that extend the spout for 7.5-m (25-ft)/10-row or 9-m (30-ft)/12-row header widths are bi-packed with the harvester, if ordered. The 12-row spout extension is hydraulically foldable. This requires the folding spout ready function (code 8534), which includes hydraulic valves. 12-row spout folded 12-row spout folding outward 12-row spout fully extended Overloading width for high-arc spout and extensions Letters below correspond to the dimensions in the above image: A - 4.73-m (15.52-ft) overloading width for six- or eight-row sections B - 5.87-m (19.26-ft) overloading width for 10-row section C - 6.71-m (22.01-ft) overloading width for 12-row section When loading into covered trailers from the side or rear, a flatter spout contour makes it easier to aim into the trailer’s loading opening. There is a flat spout and a long flat spout available for those harvesting situations. The long flat spout can also be used for rear loading into towed wagons for upright silos. The short flat spout is available for side loading in open trucks (California). Automatic spout positioning Automatic spout positioning can help the operator when switching harvesting sides continuously or serving various trailers at different heights. Different spout positions can be engaged at the push of a button. This frees the operator and enables header and harvester surveillance. Automatic spout positioning allows the operator to save and assign any spout rotation angle, tilt position, and spout flap position on the control handle.   Automatic spout positioning - display settings Spout camera Mounted spout camera A video camera mounted close to the spout end flap gives the operator a direct view into larger and taller trailers. This allows the operator to utilize the entire capacity of their transport chain at any time. The viewing screen provides a quick glance at the loading process and enables the operator to devote more time to monitoring the machine and front-end equipment. ProTouch The ProTouch function enables the operator to switch between road transport and field operation with a single button press. A configurable sequence is started to maintain spout position, header folding, compressor roll position, beacons, four-wheel drive (4WD) and engine speed management (ESM) when switching from road to field and vice versa. Pro Touch – display settings Active Fill Control (AFC) The AFC system improves the forage harvesting experience through automatic spout positioning. The AFC camera locates the trailer and its fill status. According to the fill strategy that is set in the display, the system automatically fills up the trailer or truck while the operator concentrates on the machine and header. This is also possible for rear unloading when opening fields.NOTE: The 10- and 12-row spout extensions need to be ordered AFC ready. AFC on the SPFH display
Crop accelerator Crop accelerator On its way to the trailer, the crop must be elevated more than 4 m (13 ft) high between the accelerator exit and the spout end. In addition, it must overcome friction along the transition and spout liners until it is ejected from the spout flap. When opening corn fields, operators can expect crop to be airborne over a distance of 15 m to 20 m (50 ft to 65 ft) into the following trailer.   It is the task of the crop accelerator to provide sufficient thrust with appropriate efficiency to the crop particles in order to be unloaded under all circumstances. An exactly specified air inlet in the accelerator housing assures a perfect spout crop jet when the kernel processor in place obstructs the natural air flow from the cutterhead to the crop accelerator. The 10 paddles and the low 1800-rpm speed of the crop accelerator rotor enables efficient crop acceleration with a perfect throw distance. In addition, it is possible to adjust the paddles according to harvesting conditions to reach a smooth crop flow.   Crop transition The crop transition is completely lined with high-grade wear elements that can easily be inspected and replaced from the machine’s service compartment through an access hatch. A unique manufacturing process allows even and customized hardening of the wear liners, perfectly addressing the individual wear situation in the transition. The transition bears the massive gear-driven spout turning mechanism.   8000 and 9000 Series Self-Propelled Forage Harvesters (SPFH) feature a spring-loaded cam-torque limiter inside the turning drive mechanism, guaranteeing that the spout hitting an obstacle is released. The spout turning sensor precisely monitors the spout position, even when the spout safety device has been triggered, and mechanical end stops also secure the system.   Spout Spout with multiple extensions available On 8000 and 9000 Series SPFHs, the spout features modular architecture. On the base module, the wear liners are a structural part of the component. The module features a box design closed by the wear liner. Therefore, a worn-through liner discovered too late would not lead to damage of the spout structure, but replacement would rebuild the spout like new.   The liner of the base module is segmented to address the wear situation on individual sections. In the standard configuration, all four liners on the base module are made out of Hardox® steel; however, for severe conditions, section one and two can be specified in Dura Line™ version.   When specified with the HarvestLab™ sensor, section two would carry the near infrared (NIR) sensor. The wear liner always comes with the Dura Line version, and it features quick-attach clamps for easy maintenance of the HarvestLab sensor.   HarvestLab installation is facilitated by directly bolting to the wear liner segment. The NIR sensor is aligned once with the carrier sheet, and whenever serviced, the entire assembly is then unlatched from the spout and then re-clamped. Spout options Most of the SPFH typically load associated trailers from the top and feature a curved, high-arch overloading spout. The standard configuration shipped from the factory is compatible with a grass pickup or a six- or eight-row header. Loading crop into trailer There is a set of intermediate spout sections of various lengths that addresses the crop overloading distance relative to SPFH header width. The spout end flap module bolts to the intermediate sections. High-arc spout with available extensions The spout segments that extend the spout for 7.5-m (25-ft)/10-row or 9-m (30-ft)/12-row header widths are bi-packed with the harvester, if ordered. The 12-row spout extension is hydraulically foldable. This requires the folding spout ready function (code 8534), which includes hydraulic valves. 12-row spout folded 12-row spout folding outward 12-row spout fully extended Overloading width for high-arc spout and extensions Letters below correspond to the dimensions in the above image: A - 4.73-m (15.52-ft) overloading width for six- or eight-row sections B - 5.87-m (19.26-ft) overloading width for 10-row section C - 6.71-m (22.01-ft) overloading width for 12-row section When loading into covered trailers from the side or rear, a flatter spout contour makes it easier to aim into the trailer’s loading opening. There is a flat spout and a long flat spout available for those harvesting situations. The long flat spout can also be used for rear loading into towed wagons for upright silos. The short flat spout is available for side loading in open trucks (California). Automatic spout positioning Automatic spout positioning can help the operator when switching harvesting sides continuously or serving various trailers at different heights. Different spout positions can be engaged at the push of a button. This frees the operator and enables header and harvester surveillance. Automatic spout positioning allows the operator to save and assign any spout rotation angle, tilt position, and spout flap position on the control handle.   Automatic spout positioning - display settings Spout camera Mounted spout camera A video camera mounted close to the spout end flap gives the operator a direct view into larger and taller trailers. This allows the operator to utilize the entire capacity of their transport chain at any time. The viewing screen provides a quick glance at the loading process and enables the operator to devote more time to monitoring the machine and front-end equipment. ProTouch The ProTouch function enables the operator to switch between road transport and field operation with a single button press. A configurable sequence is started to maintain spout position, header folding, compressor roll position, beacons, four-wheel drive (4WD) and engine speed management (ESM) when switching from road to field and vice versa. Pro Touch – display settings Active Fill Control (AFC) The AFC system improves the forage harvesting experience through automatic spout positioning. The AFC camera locates the trailer and its fill status. According to the fill strategy that is set in the display, the system automatically fills up the trailer or truck while the operator concentrates on the machine and header. This is also possible for rear unloading when opening fields.NOTE: The 10- and 12-row spout extensions need to be ordered AFC ready. AFC on the SPFH display

Spout and Controls

Crop accelerator Crop accelerator On its way to the trailer, the crop must be elevated more than 4 m (13 ft) high between the accelerator exit and the spout end. In addition, it must overcome friction along the transition and spout liners until it is ejected from the spout flap. When opening corn fields, operators can expect crop to be airborne over a distance of 15 m to 20 m (50 ft to 65 ft) into the following trailer.   It is the task of the crop accelerator to provide sufficient thrust with appropriate efficiency to the crop particles in order to be unloaded under all circumstances. An exactly specified air inlet in the accelerator housing assures a perfect spout crop jet when the kernel processor in place obstructs the natural air flow from the cutterhead to the crop accelerator. The 10 paddles and the low 1800-rpm speed of the crop accelerator rotor enables efficient crop acceleration with a perfect throw distance. In addition, it is possible to adjust the paddles according to harvesting conditions to reach a smooth crop flow.   Crop transition The crop transition is completely lined with high-grade wear elements that can easily be inspected and replaced from the machine’s service compartment through an access hatch. A unique manufacturing process allows even and customized hardening of the wear liners, perfectly addressing the individual wear situation in the transition. The transition bears the massive gear-driven spout turning mechanism.   8000 and 9000 Series Self-Propelled Forage Harvesters (SPFH) feature a spring-loaded cam-torque limiter inside the turning drive mechanism, guaranteeing that the spout hitting an obstacle is released. The spout turning sensor precisely monitors the spout position, even when the spout safety device has been triggered, and mechanical end stops also secure the system.   Spout Spout with multiple extensions available On 8000 and 9000 Series SPFHs, the spout features modular architecture. On the base module, the wear liners are a structural part of the component. The module features a box design closed by the wear liner. Therefore, a worn-through liner discovered too late would not lead to damage of the spout structure, but replacement would rebuild the spout like new.   The liner of the base module is segmented to address the wear situation on individual sections. In the standard configuration, all four liners on the base module are made out of Hardox® steel; however, for severe conditions, section one and two can be specified in Dura Line™ version.   When specified with the HarvestLab™ sensor, section two would carry the near infrared (NIR) sensor. The wear liner always comes with the Dura Line version, and it features quick-attach clamps for easy maintenance of the HarvestLab sensor.   HarvestLab installation is facilitated by directly bolting to the wear liner segment. The NIR sensor is aligned once with the carrier sheet, and whenever serviced, the entire assembly is then unlatched from the spout and then re-clamped. Spout options Most of the SPFH typically load associated trailers from the top and feature a curved, high-arch overloading spout. The standard configuration shipped from the factory is compatible with a grass pickup or a six- or eight-row header. Loading crop into trailer There is a set of intermediate spout sections of various lengths that addresses the crop overloading distance relative to SPFH header width. The spout end flap module bolts to the intermediate sections. High-arc spout with available extensions The spout segments that extend the spout for 7.5-m (25-ft)/10-row or 9-m (30-ft)/12-row header widths are bi-packed with the harvester, if ordered. The 12-row spout extension is hydraulically foldable. This requires the folding spout ready function (code 8534), which includes hydraulic valves. 12-row spout folded 12-row spout folding outward 12-row spout fully extended Overloading width for high-arc spout and extensions Letters below correspond to the dimensions in the above image: A - 4.73-m (15.52-ft) overloading width for six- or eight-row sections B - 5.87-m (19.26-ft) overloading width for 10-row section C - 6.71-m (22.01-ft) overloading width for 12-row section When loading into covered trailers from the side or rear, a flatter spout contour makes it easier to aim into the trailer’s loading opening. There is a flat spout and a long flat spout available for those harvesting situations. The long flat spout can also be used for rear loading into towed wagons for upright silos. The short flat spout is available for side loading in open trucks (California). Automatic spout positioning Automatic spout positioning can help the operator when switching harvesting sides continuously or serving various trailers at different heights. Different spout positions can be engaged at the push of a button. This frees the operator and enables header and harvester surveillance. Automatic spout positioning allows the operator to save and assign any spout rotation angle, tilt position, and spout flap position on the control handle.   Automatic spout positioning - display settings Spout camera Mounted spout camera A video camera mounted close to the spout end flap gives the operator a direct view into larger and taller trailers. This allows the operator to utilize the entire capacity of their transport chain at any time. The viewing screen provides a quick glance at the loading process and enables the operator to devote more time to monitoring the machine and front-end equipment. ProTouch The ProTouch function enables the operator to switch between road transport and field operation with a single button press. A configurable sequence is started to maintain spout position, header folding, compressor roll position, beacons, four-wheel drive (4WD) and engine speed management (ESM) when switching from road to field and vice versa. Pro Touch – display settings Active Fill Control (AFC) The AFC system improves the forage harvesting experience through automatic spout positioning. The AFC camera locates the trailer and its fill status. According to the fill strategy that is set in the display, the system automatically fills up the trailer or truck while the operator concentrates on the machine and header. This is also possible for rear unloading when opening fields.NOTE: The 10- and 12-row spout extensions need to be ordered AFC ready. AFC on the SPFH display

Automatic Spout Positioning (ASP) kit (low arch spout - USA only) - 274CZBXE10971

Standalone KP retrofit kits

Lubrication System for XStream KP - 274CZBXE11150

KP concept KernelStar 2 concept The 8000 Series Self-Propelled Forage Harvesters (SPFH) can be equipped with crop processing technology that ensures the highest quality of corn silage. To maximize the performance, implement crop processing principles to reflect different crop conditions and harvesting capacities relative to engine power.Roller KP can be tuned for producers requiring the absolute highest quality of forage: Rollers can be individually specified for various crops Differences in roller speed can be altered in relation to the processing requirement and the crop maturity or moisture The kit is comprised of hard-plated rollers and various teeth configurations that address different crops and crop abrasiveness.The revolutionary KernelStar 2 multi-crop processor has a patented design that offers three key advantages over cylindrical roller KP: More aggressive tearing action that smashes every kernel for higher nutrient value 270 percent more working surface provides a higher throughput +20 percent larger discs compared to a 7080 Series SPFH KP kits: BXE10819, BXE10820, BXE10546, and BXE10547 drive with drive belt KernelStar 2 kits: BXE10547, BXE10954, and BXE10955 without driveline
KP concept KernelStar 2 concept The 8000 Series Self-Propelled Forage Harvesters (SPFH) can be equipped with crop processing technology that ensures the highest quality of corn silage. To maximize the performance, implement crop processing principles to reflect different crop conditions and harvesting capacities relative to engine power.Roller KP can be tuned for producers requiring the absolute highest quality of forage: Rollers can be individually specified for various crops Differences in roller speed can be altered in relation to the processing requirement and the crop maturity or moisture The kit is comprised of hard-plated rollers and various teeth configurations that address different crops and crop abrasiveness.The revolutionary KernelStar 2 multi-crop processor has a patented design that offers three key advantages over cylindrical roller KP: More aggressive tearing action that smashes every kernel for higher nutrient value 270 percent more working surface provides a higher throughput +20 percent larger discs compared to a 7080 Series SPFH KP kits: BXE10819, BXE10820, BXE10546, and BXE10547 drive with drive belt KernelStar 2 kits: BXE10547, BXE10954, and BXE10955 without driveline

Temperature monitoring for XStream KP - 274CZBXE11152