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Automatic Transmission/transaxle: Other Jaguar XKR II

Automatic Trans 39 illustrations ~6587 words

Turbine

The turbine is similar in design to the impeller with a continuous row of blades. Fluid from the impeller enters the turbine through the tip of the blades and is directed around the curved body of the turbine to the root of the blades. The curved surface redirects the fluid back in the opposite direction to which it entered the turbine, effectively increasing the turning force applied to the turbine from the impeller. This principle is known as torque multiplication.

When engine speed increases, turbine speed also increases. The fluid leaving the inner row of the turbine blades is rotated in an anti-clockwise direction due to the curve of the turbine and the shape of the blades. The fluid is now flowing in the opposite direction to the engine rotation and therefore the impeller. If the fluid was allowed to hit the impeller in this condition, it would have the effect of applying a brake to the impeller, eliminating the torque multiplication effect. To prevent this, the stator is located between the impeller and the turbine.

Stator

The stator is located on the splined transmission input shaft via a freewheel clutch. The stator comprises a number of blades which are aligned in an opposite direction to those of the impeller and turbine. The main function of the stator is to redirect the returning fluid from the turbine, changing its direction to that of the impeller.

The redirected fluid from the stator is directed at the inner row of blades of the impeller, assisting the engine in turning the impeller. This sequence increases the force of the fluid emitted from the impeller and thereby increases the torque multiplication effect of the torque converter.

Scheme 27

Scheme 27: Stator
Item NumberDescription
1Blades
2Stator held - fluid flow redirected
3Stator rotates freely
4Roller
5Converter at coupling speed
6Fluid flow from turbine
7Converter multiplying
8Fluid flow from impeller
9Drive from engine
10Impeller
11Stator
12Turbine
13Output to transmission

Note. Typical stator shown

Fluid emitted from the impeller acts on the turbine. If the turbine is rotating at a slower speed than the fluid from the impeller, the fluid will be deflected by the turbine blades in the path ' A '. The fluid is directed at and deflected by the stator blades from path ' B ' to path ' C '. This ensures that the fluid is directed back to the pump in the optimum direction. In this condition the sprag clutch is engaged and the force of the fluid on the stator blades assists the engine in rotating the impeller.

As the rotational speed of the engine and therefore the turbine increases, the direction of the fluid leaving the turbine changes to path ' D '. The fluid is now directed from the turbine to the opposite side of the stator blades, rotating the stator in the opposite direction. To prevent the stator from resisting the smooth flow of the fluid from the turbine, the sprag clutch releases, allowing the stator to rotate freely on its shaft.

When the stator becomes inactive, the torque converter no longer multiplies the engine torque. When the torque converter reaches this operational condition it ceases to multiply the engine torque and acts solely as a fluid coupling, with the impeller and the turbine rotating at approximately the same speed.

The stator uses a sprag type, one way, freewheel clutch. When the stator is rotated in a clockwise direction the sprags twist and are wedged between the inner and outer races. In this condition the sprags transfer the rotation of the outer race to the inner race which rotates at the same speed.

Scheme 28

Scheme 28: One Way Free Wheel Clutch - Typical
Item NumberDescription
1Sprags
2Inner race
3Outer race
4Sprag and cage assembly
5Sprag outer race
6Sprag inner race
7Retaining ring

The free wheel clutch can perform three functions; hold the stator stationary, drive the stator and free wheel allowing the stator to rotate without a drive output. The free wheel clutch used in the 6HP26 transmission is of the sprag type and comprises an inner and outer race and a sprag and cage assembly. The inner and outer races are pressed into their related components with which they rotate. The sprag and cage assembly is located between the inner and outer races.

The sprags are located in a cage which is a spring which holds the sprags in the 'wedge' direction and maintains them in contact with the inner and outer races.

Referring to the illustration, the sprags are designed so that the dimension 'B' is larger than the distance between the inner and outer race bearing surfaces. When the outer race rotates in a clockwise direction, the sprags twist and the edges across the dimension 'B' wedge between the races, providing a positive drive through each sprag to the inner race. The dimension 'A' is smaller than the distance between the inner and outer race bearing surfaces. When the outer race rotates in an anti-clockwise direction, the dimension 'A' is too small to allow the sprags to wedge between the races, allowing the outer race to rotate freely.

On the illustration shown, when the outer race is rotated in a clockwise direction, the sprags twist and are 'wedged' between the inner and outer races. The sprags then transfer the rotation of the outer race to the inner race, which rotates at the same speed.

Lock-Up Clutch Mechanism

The Torque Converter Clutch (TCC) is hydraulically controlled by an electronic pressure regulating solenoid (EPRS6) which is controlled by the TCM. This allows the torque converter to have 3 states of operation as follows

  1. Fully engaged
  2. Controlled slip variable engagement
  3. Fully disengaged.

The TCC is controlled by two hydraulic spool valves located in the valve block. These valves are actuated by pilot pressure supplied via a solenoid valve which is also located in the valve block. The solenoid valve is operated by PWM signals from the TCM to give full, partial or no lock up of the torque converter.

Scheme 29

Scheme 29
Item NumberDescription
AUnlocked condition
BLocked condition
1Clutch plate
2Clutch piston
3Torque converter body
4Turbine
5Impeller
6Stator
7Piston chamber
8Turbine chamber

The lock up clutch is a hydro-mechanical device which eliminates torque converter slip, improving fuel consumption. The engagement and disengagement is controlled by the TCM to allow a certain amount of controlled 'slip'. This allows a small difference in the rotational speeds of the impeller and the turbine which results in improved shift quality. The lock up clutch comprises a piston and a clutch friction plate.

In the unlocked condition, the oil pressure supplied to the piston chamber and the turbine chamber is equal. Pressurized fluid flows through a drilling in the turbine shaft and through the piston chamber to the turbine chamber. In this condition the clutch plate is held away from the torque converter body and torque converter slip is permitted.

In the locked condition, the TCC spool valves are actuated by the electronic pressure regulating solenoid (EPRS6). The fluid flow in the unlocked condition is reversed and the piston chamber is vented. Pressurized fluid is directed into the turbine chamber and is applied to the clutch piston. The piston moves with the pressure and pushes the clutch plate against the torque converter body. As the pressure increases, the friction between the clutch plate and the body increases, finally resulting in full lock up of the clutch plate with the body. In this condition there is direct mechanical drive from the engine crankshaft to the transmission planetary gear train.

MECHATRONIC VALVE BLOCK

The Mechatronic valve block is located in the bottom of the transmission and is covered by the fluid pan. The valve block houses the TCM, electrical actuators, speed sensors and control valves which provide all electro-hydraulic control for all transmission functions. The Mechatronic valve block comprises the following components

  1. TCM
  2. 6 pressure regulator solenoids
  3. 1 shift control solenoid
  4. 1 damper
  5. 21 hydraulic spool valves
  6. Manually operated selector valve
  7. Temperature sensor
  8. Turbine speed sensor
  9. Output shaft speed sensor.

Scheme 30

Scheme 30
Item NumberDescription
1Position switch
2Sliding block
3Selector spool valve
4Position switch assembly
5Electronic Pressure Regulator Solenoid (EPRS) 6
6Solenoid valve 1
7EPRS 4
8EPRS 5
9EPRS 3
10EPRS 2
11EPRS 1
12Electrical connector
13Transmission Control Module (TCM)
14Valve housing
15Valve plate
16Torque converter retaining valve
17Clutch return valve
18Element seal
19Pressure regulator dampers
20Intermediate plate

Scheme 31

Scheme 31
Item NumberDescription
1Selector spool valve
2Lubricating valve
3Torque converter pressure valve
4System pressure valve
5Torque converter clutch valve
6Retaining valve - Clutch E
7Clutch valve E
8Clutch valve A
9Valve housing
10Bolts
11Retaining valve - Clutch A
12Retaining valve - Clutch B
13Pressure reducing valve
14Shift valve 1
15Retaining valve - Brake D
16Shift valve 2
17Damper
18Electronic Pressure Regulator Solenoid (EPRS) 6
19Solenoid valve 1
20EPRS 4
21EPRS 5
22EPRS 2
23EPRS 3
24EPRS 1

Scheme 32

Scheme 32
Item NumberDescription
1Retaining valve - Brake D2
2Clutch valve - Brake D2
3Clutch valve B
4Valve plate
5Clutch valve - Brake D1
6Clutch valve - Brake C

Scheme 33

Scheme 33: Electronic Pressure Regulator Solenoids (EPRS)

Six Electronic Pressure Regulator Solenoids (EPRS) are located in the valve block. The solenoids are controlled by Pulse Width Modulation (PWM) signals from the TCM. The solenoids convert the electrical signals into hydraulic control pressure proportional to the signal to actuate the spool valves for precise transmission operation.

The following table shows EPRS and their associated functions

EPRSFunction
1Clutch A
2Clutch B
3Clutch C
4Brake clutches D and E
5System pressure control
6Torque converter lock up control

Solenoids EPRS 1, 3 and 6 supply a lower control pressure as the signal amperage increases and can be identified by a black connector cap. The TCM operates the solenoids using PWM signals. The TCM monitors engine load and clutch slip and varies the solenoid duty cycle accordingly. The solenoids have a 12 V operating voltage and a pressure range of 0 - 4.6 bar (0 - 67 lbf.in 2 ).

Solenoids EPRS 2, 4 and 5 supply a higher control pressure as the signal amperage increases and can be identified by a green connector cap. The solenoids are normally open, regulating flow solenoid valves. The TCM operates the solenoids using a PWM ground proportional to the required increasing or decreasing clutch pressures. The solenoids have a 12 V operating voltage and a pressure range of 4.6 - 0 bar (67 - 0 lbf.in 2 ).

The resistance of the coil winding for the EPRS solenoids is 5.05 ohms at 20°C (68°F).

Scheme 34

Scheme 34: Control Solenoid

A shift control Solenoid Valve (SV) is located in the valve block. The solenoid is controlled by the TCM and converts electrical signals into hydraulic control signals to control clutch application.

The shift control solenoid is an open/closed, on/off solenoid which is controlled by the TCM switching the solenoid to earth. The TCM also supplies power to the solenoid. The TCM energizes the solenoid in a programmed sequence for clutch application for gear ratio changes and shift control.

The resistance of the solenoid coil winding within the solenoid is between 26 to 30.4 ohms at 20°C (68°F).

Sensors

Speed Sensors

The turbine speed sensor and the output shaft speed sensor are Hall effect type sensors located in the Mechatronic valve block and are not serviceable items. The TCM monitors the signals from each sensor to determine the input (turbine) speed and the output shaft speed.

The turbine speed is monitored by the TCM to calculate the slip of the torque converter clutch and internal clutch slip. This signal allows the TCM to accurately control the slip timing during shifts and adjust clutch application or release pressure for overlap shift control.

The output shaft speed is monitored by the TCM and compared to engine speed signals received on the CAN bus from the ECM. Using a comparison of the two signals the TCM calculates the transmission slip ratio for plausibility and maintains adaptive pressure control.

Temperature Sensor

The temperature sensor is also located in the Mechatronic valve block. The TCM uses the temperature sensor signals to determine the temperature of the transmission fluid. These signals are used by the TCM to control the transmission operation to promote faster warm-up in cold conditions or to assist with fluid cooling by controlling the transmission operation when high fluid temperatures are experienced. If the sensor fails, the TCM will use a default value and a fault code will be stored in the TCM.

Damper

There is one damper located in the valve housing. The damper is used to regulate and dampen the regulated pressure supplied via EPRS 5. The damper is load dependent through modulation of the damper against return spring pressure.

The damper comprises a piston, a housing bore and a spring. The piston is subject to the pressure applied by the spring. The bore has a connecting port to the function to which it applies. Fluid pressure applied to the applicable component (i.e. a clutch) is also subjected to the full area of the piston, which moves against the opposing force applied by the spring. The movement of the piston creates an action similar to a shock absorber, momentarily delaying the build up of pressure in the circuit. This results in a more gradual application of clutches improving shift quality.

Spool Valves

The valve block contains twenty one spool valves which control various functions of the transmission. The spool valves are of conventional design and are operated by fluid pressure.

Each spool valve is located in its spool bore and held in a default (unpressurized) position by a spring. The spool bore has a number of ports which allow fluid to flow to other valves and clutches to enable transmission operation. Each spool has a piston which is waisted to allow fluid to be diverted into the applicable ports when the valve is operated.

When fluid pressure moves a spool, one or more ports in the spool bore are covered or uncovered. Fluid is prevented from flowing or is allowed to flow around the applicable waisted area of the spool and into another uncovered port. The fluid is either passed through galleries to actuate another spool, operate a clutch or is returned to the fluid pan.

Scheme 35

Scheme 35: DRIVE CLUTCHES
Item NumberDescription
1Input shaft
2Main pressure supply port
3Piston
4Cylinder - External plate carrier
5Clutch plate assembly
6Baffle plate
7Diaphragm spring
8Output shaft
9Bearing
10Dynamic pressure equalization chamber
11Piston chamber
12Lubrication channel

There are 3 drive clutches and 2 brake clutches used in the 6HP26 transmission. Each clutch comprises one or more friction plates dependent on the output controlled. A typical clutch consists of a number of steel outer plates and inner plates with friction material bonded to each face.

On supercharged models, the uprated transmission includes additional clutch plates to enable the transmission to manage the additional power output of the supercharged engine.

The clutch plates are held apart mechanically by a diaphragm spring and hydraulically by dynamic pressure. The pressure is derived from a lubrication channel which supplies fluid to the bearings etc. The fluid is passed via a drilling in the output shaft into the chamber between the baffle plate and the piston. To prevent inadvertent clutch application due to pressure build up produced by centrifugal force, the fluid in the dynamic pressure equalization chamber overcomes any pressure in the piston chamber and holds the piston off the clutch plate assembly.

When clutch application is required, main pressure from the fluid pump is applied to the piston chamber from the supply port. This main pressure overcomes the low pressure fluid present in the dynamic pressure equalization chamber. The piston moves, against the pressure applied by the diaphragm spring, and compresses the clutch plate assembly. When the main pressure falls, the diaphragm spring pushes the piston away from the clutch plate assembly, disengaging the clutch.

PLANETARY GEAR TRAINS

The planetary gear trains used on the 6HP26 transmission comprise a single web planetary gear train and a double web planetary gear train. These gear trains are known as Lepelletier type gear trains and together produce the 6 forward gears and the 1 reverse gear.

Single Web Planetary Gear Train

The single web planetary gear train comprises

  1. 1 sunwheel
  2. 3 planetary gears
  3. 1 planetary gear carrier (spider)
  4. 1 ring gear or annulus

Scheme 36

Scheme 36
Item NumberDescription
1Cylinder
2Baffle plate
3Ring gear
4Sun gear
5Planetary gear spider
6Torque converter input shaft

Scheme 37

Scheme 37: Double Web Planetary Gear Train
Item NumberDescription
1Planetary gear spider
2Planetary gears (short)
3Ring gear
4Output shaft
5Planetary gear carrier
6Sunwheel
7Double planetary gears (long)
8Sunwheel

The double planetary gear train comprises

  1. 2 sunwheels
  2. 3 short planetary gears
  3. 3 long planetary gears
  4. 1 planetary gear carrier
  5. 1 ring gear or annulus

POWER FLOWS

Operation of the transmission is controlled by the TCM which electrically activates various solenoids to control the transmission gear selection. The sequence of solenoid activation is based on programmed information in the module memory and physical transmission operating conditions such as vehicle speed, throttle position, engine load and selector lever position.

Scheme 38

Scheme 38: POWER FLOWS
Item NumberDescription
1Torque input from engine
2Torque converter lock up clutch
3Single web planetary gear carrier
4Single web planetary gears
5Single web sunwheel 1
6Double web sunwheel 2
7Double web planetary gears - Long
8Double web planetary gear carrier
9Double web planetary gears - Short
10Double web sunwheel 3
11Torque output from transmission
AMulti Plate clutch
BMulti Plate clutch
CMulti Plate brake
DMulti Plate brake
EMulti Plate clutch

Engine torque is transferred, via operation of single or combinations of clutches to the 2 planetary gear trains. Both gear trains are controlled by reactionary inputs from brake clutches to produce the 6 forward gears and 1 reverse gear. The ratios are as follows

Gear1st2nd3rd4th5th6thReverse
Ratio4.1712.3401.5211.1430.8670.6913.403

The following table shows which solenoids are activated to produce the required torque output from the transmission.

Gear Selector Lever PositionShift Control Solenoid ValveElectronic Pressure Regulator Solenoids (EPRS)
123456
PONON
RONONON
NONON
D 1ONONONON
D 2ONONONON
D 3ONONONON
D 4ONONONONON
D 5ONONONONON
D 6ONONONONON
ON = Active (pressure build up)
OFF = Inactive
ON- = Inactive (pressure drain)

The following table shows which clutches are operating for selected gear ratios to produce the required torque output from the transmission.

Gear Selector Lever PositionShift Control Solenoid ValveClutchBrake
ABEWKCD
PX
RXX
NX
D 1XXX
D 2XXX
D 3XXX
D 4ONXXX
D 5ONXXX
D 6ONXXX
X = clutch applied

Scheme 39

Scheme 39
Item NumberDescription
1Turbine shaft
2Stator shaft
3Single web planetary gear train
4Ring gear 1
5Clutch A
6Clutch B
7Clutch E
8Brake clutch C
9Fixed connection to transmission housing
10Shaft key
11Brake clutch D
12Double web planetary gear train
13Planetary gears - Long
14Ring gear 2
15Sunwheel 2
16Sunwheel 3
17Double web planetary gear carrier
18Planetary gears - short
19Single web planetary gear carrier
20Sunwheel 1

The shift elements are 3 rotating multi plate clutches (A, B and E) and 2 fixed multi plate brakes © and D). All shifts from 1st to 6th gears are power-on overlapping shifts. Overlapping shifts can be described as one of the clutches continuing to transmit drive at a lower main pressure until the next required clutch is able to accept the input torque.

The shift elements, clutches and brakes are actuated hydraulically. Fluid pressure is applied to the required clutch and/or brake, pressing the plates together and allowing drive to be transmitted through the plates. The purpose of the shift elements is to perform power-on shifts with no interruption to traction and smooth transition between gear ratios.

Scheme 40

Scheme 40

Power Flow 1st Gear

The gear selector lever and the manual selector valve spool are in the 'D' position. Engine torque is transmitted from the torque converter turbine shaft to the ring gear 1 of the single web planetary gear train and the outer plate carrier of clutch 'E'.

Ring gear 1 drives the planetary gears which rotate around sunwheel 1. This drives the planetary gear carrier 1 and also the outer plate carrier of clutch 'A' and the inner plate carrier of clutch 'B'.

When clutch 'A' is engaged, sunwheel 3 in the double web planetary gear train is driven and meshes with the short planetary gears.

The double web planetary gear train is locked against the transmission housing by brake 'D'. This allows ring gear 2 (output shaft) to be driven in the same direction as the engine via the long planetary gears.

Scheme 41

Scheme 41: Power Flow 1st Gear

Scheme 42

Scheme 42: Power Flow 2nd Gear

The gear selector lever and the manual selector spool valve are in the 'D' position. Engine torque is transmitted from the torque converter turbine shaft to the ring gear 1 of the single web planetary gear train and the outer plate carrier of clutch 'E'.

Ring gear 1 drives the planetary gears which rotate around sunwheel 1. This drives the planetary gear carrier 1 and also the outer plate carrier of clutch 'A' and the inner plate carrier of clutch 'B'.

When clutch 'A' is engaged, sunwheel 3 in the double web planetary gear train is driven and meshes with the short planetary gears.

Sunwheel 2 is locked to the transmission housing by brake clutch 'C'. The long planetary gears, which are also meshed with the short planetary gears, roll around the fixed sunwheel 2 and transmit drive to the double web planetary gear train carrier and ring gear 2 in the direction of engine rotation.

Scheme 43

Scheme 43

Scheme 44

Scheme 44: Power Flow 3rd Gear

The gear selector lever and the manual selector spool valve are in the 'D' position. Engine torque is transmitted from the torque converter turbine shaft to the ring gear 1 of the single web planetary gear train and the outer plate carrier of clutch 'E'.

Ring gear 1 drives the planetary gears which rotate around sunwheel 1. This drives the planetary gear carrier 1 and also the outer plate carrier of clutch 'A' and the inner plate carrier of clutch 'B'.

When clutch 'A' is engaged, sunwheel 3 in the double web planetary gear train is driven and meshes with the short planetary gears.

Sunwheel 2 is driven via clutch 'B' which is engaged. The long planetary gears, which are also meshed with the short planetary gears, cannot roll around the fixed sunwheel 2 and transmit drive to the locked double web planetary gear train carrier in the direction of engine rotation.

Scheme 45

Scheme 45

Scheme 46

Scheme 46: Power Flow 4th Gear

The gear selector lever and the manual selector spool valve are in the 'D' position. Engine torque is transmitted from the torque converter turbine shaft to ring gear 1 of the single web planetary gear train and the outer plate carrier of clutch 'E'.

Ring gear 1 drives the planetary gears which rotate around sunwheel 1. This drives the planetary gear carrier 1 and also the outer plate carrier of clutch 'A' and the inner plate carrier of clutch 'B'.

When clutch 'A' is engaged, sunwheel 3 in the double web planetary gear train is driven and meshes with the short planetary gears.

The double web planetary gear carrier is driven via clutch 'E' which is engaged. The long planetary gears, which are also meshed with the short planetary gears, and the double web planetary gear carrier, drive ring gear 2 in the direction of engine rotation.

Scheme 47

Scheme 47

Scheme 48

Scheme 48: Power Flow 5th Gear

The gear selector lever and the manual selector spool valve are in the 'D' position. Engine torque is transmitted from the torque converter turbine shaft to ring gear 1 of the single web planetary gear train and the outer plate carrier of clutch 'E'.

Ring gear 1 drives the planetary gears which rotate around sunwheel 1. This drives the planetary gear carrier 1 and also the outer plate carrier of clutch 'A' and the inner plate carrier of clutch 'B'.

When clutch 'A' is engaged, sunwheel 3 in the double web planetary gear train is driven and meshes with the short planetary gears.

The long planetary gears, which are also meshed with the short planetary gears and the double web planetary gear carrier, drive ring gear 2 in the direction of engine rotation.

Scheme 49

Scheme 49

Scheme 50

Scheme 50: Power Flow 6th Gear

The gear selector lever and the manual selector spool valve are in the 'D' position. Engine torque is transmitted from the torque converter turbine shaft to ring gear 1 of the single web planetary gear train and the outer plate carrier of clutch 'E'.

Clutches 'A' and 'B' are released, removing the effect of the single web planetary gear train.

Clutch brake 'C' is applied which locks sunwheel 2 to the transmission housing.

Clutch 'E' is engaged and drives the double web planetary gear carrier. This causes the long planetary gears to rotate around the fixed sunwheel 2 and transmit drive to ring gear 2 which is driven in the direction of engine rotation.

Scheme 51

Scheme 51

Scheme 52

Scheme 52: Power Flow Reverse Gear

The gear selector lever and the manual selector spool valve are in the 'R' position. Engine torque is transmitted from the torque converter turbine shaft to ring gear 1 of the single web planetary gear train and the outer plate carrier of clutch 'E'.

Ring gear 1 drives the planetary gears of the single web planetary gear train which rotate around the fixed sunwheel 1. This transmits the drive to the single web planetary gear carrier, the outer plate carrier of clutch 'A' and the inner plate carrier of clutch 'B'.

With clutch 'B' applied, sunwheel 2 in the double web planetary gear train is driven and meshes with the long planetary gears.

The double web planetary gear carrier is locked to the transmission housing by brake clutch 'D'. This allows ring gear 2 to be driven in the opposite direction to engine rotation by the long planetary gears.

Scheme 53

Scheme 53

SELECTOR POSITION SWITCH

The Mechatronic valve block contains a position switch which is mechanically connected to the selector spool valve. The selector spool valve is connected by a selector shaft to the selector lever via a 'Bowden' selector cable.

The signals from the position switch are used by the TCM to determine the P, R, N or D selection made by the driver.

Scheme 54

Scheme 54: INSTRUMENT CLUSTER
Item NumberDescription
1Transmission selected gear status
2Malfunction Indicator Lamp (MIL)
3Message center

The instrument cluster is connected to the TCM via the high speed CAN bus. Transmission status is transmitted by the TCM and displayed to the driver in one of 2 displays in the instrument cluster. Refer to Instrument Cluster article.

Malfunction Indicator Lamp (MIL)

The MIL is located in the tachometer in the instrument cluster. Transmission related faults which may affect the vehicle emissions output will illuminate the MIL.

The MIL is illuminated by the ECM on receipt of a relevant fault message from the TCM on the high speed CAN. The nature of the fault can be diagnosed using the Integrated Diagnostic System (IDS) which reads the fault codes stored in the TCM memory.

Transmission Status Display

The transmission status display is located in a Liquid Crystal Display (LCD) at the top of the instrument cluster, between the speedometer and the tachometer. The LCD shows the selector lever position or the selected gear when in manual 'Jaguar Sequential Shift' mode.

The following table shows the displays and their descriptions.

SymbolDescription
PPark selected
RReverse selected
NNeutral selected
DDrive selected
DSSport mode selected
11st gear selected (Manual 'Jaguar Sequential Shift' mode)
22nd gear selected (Manual 'Jaguar Sequential Shift' mode)
33rd gear selected (Manual 'Jaguar Sequential Shift' mode)
44th gear selected (Manual 'Jaguar Sequential Shift' mode)
55th gear selected (Manual 'Jaguar Sequential Shift' mode)
66th gear selected (Manual 'Jaguar Sequential Shift' mode)

Message Centre Display

The message center is located in the lower center of the instrument cluster. The message center is a LCD to relay vehicle status and operating information to the driver and can display messages relating to a number of the vehicle systems. If a transmission fault occurs, the message center will display the message 'GEARBOX FAULT'.

TRANSMISSION CONTROL MODULE (TCM)

The TCM is an integral part of the Mechatronic valve block which is located at the bottom of the transmission, within the fluid pan. The TCM is the main controlling component of the transmission.

The TCM processes signals from the transmission speed and temperature sensors, ECM and other vehicle systems. From the received signal inputs and pre-programmed data, the module calculates the correct gear, torque converter clutch setting and optimum pressure settings for gear shift and lock up clutch control.

The TCM outputs signals to control the shift control solenoid valve and the Electronic Pressure Regulator Solenoids (EPRS) to control the hydraulic operation of the transmission.

The ECM supplies the engine management data on the high speed CAN bus system. The TCM requires engine data to efficiently control the transmission operation, for example; flywheel torque, engine speed, accelerator pedal angle, engine temperature etc.

The steering angle sensor and the ABS module also supply data to the TCM on the high speed CAN bus system. The TCM uses data from these systems to suspend gear changes when the vehicle is cornering and/or the ABS module is controlling braking or traction control.

The selector lever is connected to the automatic transmission and the position switch in the transmission by a Bowden cable. Movement of the selector lever moves the position switch via the cable and the switch position informs the TCM of the selected position. The sport switch passes the sport selection to the TCM. 'Jaguar Sequential Shift' selections are sensed when the driver operates the steering wheel paddle switches. An additional switch provides a selector lever 'not in park' position signal. Once the selector lever position is confirmed, the TCM outputs appropriate information which is received by the instrument cluster to display the gear selection information in the message center.

The Mechatronic valve block also contains the speed and temperature sensors. These are integral with the Mechatronic valve block and cannot be serviced individually. The speed sensors measure the transmission input and output speeds and pass signals to the TCM. The fluid temperature sensor is also located in the valve block and measures the fluid temperature of the transmission fluid in the fluid pan.

A 'not in park' switch is located in the selector lever mechanism. The switch is connected to the instrument cluster, Central Junction Box (CJB) and the ECM. The instrument cluster uses the park switch status to display the selector position. The ECM uses the status to allow starter motor operation only when the selector lever is in the Park or Neutral positions. The signal is also passed from the CJB to the TCM.

CONTROLLER AREA NETWORK (CAN)

The high speed CAN bus is used to connect the powertrain modules. The CAN bus is connected between the following electronic units

High Speed CAN Bus

  1. TCM
  2. Instrument cluster
  3. Adaptive Damping Control Module (ADCM) - if fitted
  4. Steering angle sensor
  5. Electric park brake module
  6. Restraints control module
  7. Engine Control Module (ECM)
  8. ABS control module
  9. Adaptive front lighting control module - if fitted
  10. Adaptive cruise control module - if fitted
  11. Diagnostic socket.

The CAN bus allows a fast exchange of data between modules. The CAN bus comprises 2 wires which are identified as CAN high (H) and CAN low (L). The 2 wires are colored yellow/black (H) and yellow/brown (L) and are twisted together to minimize electromagnetic interference (noise) produced by the CAN bus messages. Refer to Communications Network article.

In the event of CAN bus failure, the following symptoms may be observed

  1. Transmission operates in default (limp home) mode
  2. Torque converter lock up clutch control is disabled
  3. Gear position indication in instrument cluster message center inoperative (this will also occur with any transmission fault).

DRIVING MODES

There are a number of different driving modes of operation. Some can be selected by the driver and some are automatically initiated by the TCM during driving

  1. Normal mode
  2. Sport mode
  3. Manual ('Jaguar Sequential Shift') mode
  4. Adaptive Shift Strategy (ASIS)
  5. Cruise mode
  6. Hill mode
  7. Default (Limp home) mode
  8. Reverse lock-out mode
  9. Cooling strategy
  10. Curve recognition mode
  11. Fast off recognition.

Normal Mode

Normal mode is automatically selected by the TCM on power up. In this mode all automatic and adaptive modes are active. Normal mode uses gear shift and lock up maps to allow for vehicle operation which offers fuel consumption and emissions or driveability depending on the driving style. If the transmission is operated in sport or manual mode and the selector lever is moved to the 'D' position, normal mode is automatically resumed.

Sport Mode

The sport mode provides enhanced acceleration and responsiveness. In sport mode the TCM uses shift maps which allow the transmission to downshift more readily, hold gears for longer at higher engine speeds, and limits the transmission to the first five gears (6th gear is not used).

Sport mode is selected by moving the selector lever across the 'L' gate into the 'S' position. When the sport mode is first selected, if 6th gear is currently engaged, the TCM downshifts to 5th.

Manual ('Jaguar Sequential Shift') Mode

Manual mode allows the transmission to operate as a semi-automatic 'Jaguar Sequential Shift' unit. The driver can change up and down the 6 forward gears with the freedom of a manual transmission.

Shift maps are provided for manual mode to protect the engine at high engine speeds. The TCM will automatically change up to a higher gear ratio to prevent engine overspeed and change down to a lower gear ratio to avoid engine laboring and stalling.

When kickdown is requested the TCM downshifts at least 2 gears.

When the vehicle is stationary, to drive off the driver can select 1st , 2nd or 3rd gear. Any other gear selection will be rejected by the TCM.

When driving off, upshifts can be pre-selected by making + selections with the appropriate steering wheel upshift or downshift paddle for the number of upshifts required. The TCM then automatically performs a corresponding number of upshifts when the appropriate shift points are reached. So, for example, when starting off in 1st gear, if three upshift (+) selections are made in quick succession, the TCM will automatically change up through the box to 4th gear as the vehicle accelerates, without any further selections being made.

In manual mode a low gear can be selected to provide engine braking for descending a slope or continuous use of the brake pedal. The driver can prepare for the end of the descent by moving the selector lever to D. The TCM will maintain the low gear and only revert to automatic shift control when the throttle is opened and vehicle speed increases.

Adaptive Shift Strategy (ASIS)

The ASIS system is a new feature on automatic transmissions. With the TCM linked via the CAN bus to other vehicle systems, signals are received which can allow the TCM to calculate the way in which the vehicle is being driven. The type of signals include the following

  1. Longitudinal and lateral acceleration
  2. Engine speed
  3. Engine torque
  4. Oil temperature
  5. Accelerator pedal position
  6. Wheel speed.

Using these signals, additional transmission control can be obtained. The TCM can calculate when the vehicle is cornering, all wheels are gripping, the driver is braking or if the driver is accelerating. This is the conventional 'Adaptive' transmission control. ASIS uses this system but adds the continuous adaptation of the gear changes to suit the individual driving style of the driver.

Cruise Mode

When speed control is activated, the TCM receives a cruise active message on the CAN bus. The TCM activates a speed control map which prevents locking and unlocking of the torque converter clutch and minimizes up and down shifts.

Hill Mode

Hill mode is initiated by the TCM when the engine torque, received via ECM signals on the CAN bus, exceeds the theoretical load curve for normal operation. The TCM monitors this signal to determine when the vehicle is travelling up or down a steep gradient.

In hill mode the TCM adopts one of four shift maps, three uphill and one downhill. The shift map chosen depends on the severity of the slope as determined from the engine signals and the appropriate gear is selected to assist with the ascent or descent.

Hill mode can also be initiated when the vehicle is at very high altitudes or ambient temperatures.

Default (Limp Home) Mode

If a transmission fault is detected by the TCM, the TCM adopts a limp home mode strategy. 'GEARBOX FAULT' is displayed in the message center and, if the fault has an effect on engine emissions, the MIL will also be illuminated.

In default mode, P, R and N functions operate normally (if the fault allows these selections) and the TCM locks the transmission in 3rd or 5th gear to allow the driver to take the vehicle to the nearest dealer. The torque converter lock up clutch is disabled and reverse lock-out will not function.

If the vehicle is stopped and subsequently restarted in the default mode condition, the TCM operates normally until the fault which caused the condition is detected again.

If electrical power is lost and the transmission is operating in mechanical limp home mode, the selector lever will be locked in the 'N' or 'P' position by the shift interlock solenoid if moved from the 'D' position.

Reverse Lock-Out Mode

When the vehicle is travelling forwards, selecting reverse could cause transmission damage. To protect against this, reverse gear is prohibited if the vehicle is travelling forwards at a road speed of 5 mph (8 km/h) or higher.

Cooling Strategy

The purpose of the cooling strategy is to reduce engine and transmission temperatures during high load conditions. Under these conditions the engine and transmission may generate excessive heat.

If the transmission fluid temperature increases to 125°C (257°F) or higher, the TCM employs the cooling strategy. No message is displayed in the message center for transmission overheat.

The strategy uses a specific shift and torque converter lock up clutch map. This map allows torque converter clutch lock up and gear shifts to operate outside of their normal operation. This will reduce the engine speed and/or slip in the torque converter, therefore reducing heat generated by the engine and the transmission.

If the transmission fluid temperature increases to 137°C (278°F) or higher, the transmission will use the default (limp home mode). If the temperature exceeds 140°C (284°F), CAN bus transmission is disabled.

The cooling strategy is cancelled when the transmission fluid temperature decreases to less than 120°C (248°F) or below.

Curve Recognition

Curve recognition is activated when high levels of lateral acceleration and/or steering angle are detected via the ABS module and steering angle sensor signals on the CAN bus. When this condition is detected, the TCM prevents the transmission from changing to a higher gear to assist with cornering. When the vehicle completes it's maneuver, the transmission will shift to the correct ratio.

Fast Off Recognition

Fast off recognition is activated when the TCM detects that the driver has backed off the accelerator pedal quickly in a 'change of mind' maneuver. This is detected by monitoring for a high level of negative pedal angle from the engine control module signal on the CAN bus. If this condition is detected, the TCM holds the current gear ratio to allow the driver to complete his original action without the need for a downshift. The mode remains active for a predetermined time period or if the driving style remains passive.

TRANSMISSION FAULT STATUS

If the TCM detects a fault with the transmission system, it will enter a default mode to prevent further damage to the transmission and allow the vehicle to be driven.

When a fault is detected a CAN message is sent from the TCM and is received by the instrument cluster. The instrument cluster illuminates the MIL, if an emissions related fault occurs, and displays 'GEARBOX FAULT' in the message center.

Some transmission faults may not illuminate the MIL or display a fault message, but the driver may notice a reduction in shift quality. See Transmission Description .

TOWING FOR RECOVERY

The following procedure must be used to ensure that the vehicle is towed in a safe condition and damage to the vehicle transmission systems is prevented.

  1. Secure the towing attachment from the recovery vehicle to the towing eye of the vehicle to be recovered.
  2. Make sure that the parking brake is on. Press the start/stop button to switch the ignition on.
  3. Apply the foot brake and move the automatic transmission selector lever to the neutral position. If electrical power is not available, use the manual interlock release tab on the selector lever to move the lever to the neutral (N) position.
  4. Make sure that the Smart Key is placed in the start control module to ensure that the electric steering lock is disengaged and, if the stop lamps and turn signal indicators are required, the start/stop button is pressed and the ignition is on.
  5. Make sure that the parking brake is released before the vehicle is towed.
  6. The vehicle can only be towed for a maximum of 0.5 miles (0.8 km) at a maximum speed of 30 mph (48 km/h).
WARNINGDo not remove the Smart Key from the vehicle when the vehicle is being towed. The electric steering lock will be engaged preventing the steering from being turned. With the engine not running, the brake booster and power steering pump will be inoperative. Care must be taken to ensure the vehicle is maneuvered and driven accordingly.

Scheme 55

Scheme 55: CONTROL DIAGRAM
Item NumberDescription
1Battery
2Mega fuse (175A)
3CJB
4Power distribution box
5TCM
6Diagnostic socket
7Instrument cluster
8Transmission selector lever assembly
9Automatic speed limiter switch
10Stop/Start switch
11ECM

Note. A = Hardwired; D = High speed CAN Bus; N = Medium speed CAN Bus

Extension Housing Seal - In-Vehicle Procedures

Special Tools Tool Illustration Tool Name Tool Number Crankshaft damper remover 303-D121 Output shaft flange holding tool 205-053 Seal remover input and output 308-375 Slide hammer 100-012 Pinion seal replacer 204-264 Slide hammer adaptor 100-012-01 Transmission output flange socket 205-789

Scheme 56

Scheme 56: Extension Housing Seal - In-Vehicle Procedures

Scheme 57

Scheme 57: Removal

Scheme 58

Scheme 58
  1. Raise and support the vehicle.
  2. Remove the cover and disconnect the battery ground cable. Refer to «Specifications»(ref-312541) article.
  3. Remove the driveshaft. Refer to «Driveshaft»(ref-312560-S20876170652009041400000) article.
  4. Release the transmission support insulator.
  5. Using the special tool, to hold the output flange, remove the retaining nut. Discard the nut.
  6. Using the special tool, remove the output flange.
  7. Using the special tools, remove the extension housing seal.

Scheme 59

Scheme 59: Installation
  1. Using the special tool, install a new extension housing seal. Clean the component mating faces.
  2. Using the special tools, install the output flange. Tighten the new nut to 60 Nm (44 lb.ft).
  3. Install the driveshaft. Refer to «Driveshaft»(ref-312560-S20876170652009041400000) article.
  4. Connect the battery ground cable and install the cover. Refer to «Specifications»(ref-312541) article.
  5. Install the transmission support insulator.

Scheme 60

Scheme 60: Removal
  1. Disconnect the battery ground cable. Refer to «Specifications»(ref-312564-S31890761012009041400000) article.
  2. Raise and support the vehicle.
  3. Drain the transmission. See «Transmission Fluid Drain and Refill»(ref-312552-S01146911372009041400000) .
  4. Remove the fluid pan. Position a container to collect the fluid spillage. Remove the 21 Torx screws. Remove and if necessary, discard the seal. Discard the O-ring seal.

Selector Shaft Seal - In-Vehicle Procedures

Special Tools Tool Illustration Tool Name Tool Number Seal extractor 307-509-1(LRT-44-033/1) Seal extractor 307-509-2(LRT-44-033/2) Seal installer 307-509-3(LRT-44-033/3)

Scheme 61

Scheme 61: Removal

Scheme 62

Scheme 62

Scheme 63

Scheme 63

Scheme 64

Scheme 64

Scheme 65

Scheme 65
  1. Remove the cover and disconnect the battery ground cable. Refer to «Specifications»(ref-312564-S31890761012009041400000) article.
  2. Raise and support the vehicle.
  3. Remove the exhaust system. Refer to «Exhaust System»(ref-312563-S34918148862009041400000) article.
  4. Release and disconnect the 2 LH HO2S electrical connectors. Release the clip.
  5. Remove the LH catalytic converter. Remove and discard the 2 nuts.
  6. Remove the LH catalyst heat shield. Remove the 2 bolts. Remove the nut.
  7. Remove the transmission casing LH heat shield. Remove the 2 bolts.
  8. Release the selector cable. Release the clip. Remove the 2 bolts.
  9. Remove the selector lever. Remove the nut.
  10. Remove the selector shaft seal. Install 307-509-1 to the seal. Install 307-509-2 to 307-509-1 and extract the seal.