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Electronic Controlled Automatic Transmission (ECT) - Diagnosis: Overview Lexus LS III рестайлинг

Automatic Trans 94 illustrations ~4281 words

SYSTEM DESCRIPTION

  1. SYSTEM DESCRIPTION The ECT (Electronic controlled automatic transmission) is an automatic transmission that electronically controls shift timing using the ECM. The ECM detects electrical signals that indicate engine and driving conditions, and controls the shift point, based on driver habits and road conditions. As a result, fuel efficiency and power transmission performance are improved. Shift shock has been reduced by controlling the engine and transmission simultaneously. In addition, the ECT has features such as follows: Diagnostic function. Fail-safe function when a malfunction occurs.

DESCRIPTION

When troubleshooting On-Board Diagnostic (OBD II) vehicle the vehicle must be connected to the OBD II scan tool (complying with SAE J1987). Various data output from the vehicle's ECM can then be read.

OBD II regulations require that the vehicle's on-board computer illuminates the Malfunction Indicator Lamp (MIL) on the instrument panel when the computer detects a malfunction in

Scheme 23

Scheme 23: DESCRIPTION
  1. The emission control system/components
  2. The powertrain control components (which affect vehicle emissions)
  3. The computer. In addition, the applicable Diagnostic Trouble Codes (DTCs) prescribed by SAE J2012 are recorded in the ECM memory. If the malfunction does not reoccur in 3 consecutive trips, the MIL turns off automatically but the DTCs remain recorded in the ECM memory.

To check DTCs, connect the scan tool to the Data Link Connector 3 (DLC3) of the vehicle. The scan tool displays DTCs, the freeze frame data and a variety of the engine data.

Scheme 24

Scheme 24

The DTCs and freeze frame data can be erased with the scan tool (see DTC CHECK/CLEAR ).

Check mode has a higher sensitivity to malfunctions and detect malfunctions that normal mode cannot detect. Check mode can also detect all the malfunctions that normal mode can detect. In check mode, DTCs are detected with 1-trip detection logic.

Scheme 25

Scheme 25: CHECK MODE PROCEDURE

Scheme 26

Scheme 26
  1. Make sure that the items below are true: Battery positive voltage 11 V or more Throttle valve fully closed Transmission in the P or N position A/C switched OFF
  2. Turn the ignition switch OFF.
  3. Connect the hand-held tester together with the Controller Area Network Vehicle Interface Module (CAN VIM) to the DLC3.
  4. Turn the ignition switch ON.
  5. Enter the following menus: DIAGNOSIS/ ENHANCED OBD II/ CHECK MODE.
  6. Change the ECM to check mode. Make sure the MIL flashes as shown in the illustration. NOTE: All DTCs and freeze frame data recorded will be erased if: 1) the hand-held tester is used to change the ECM from normal mode to check mode or vice-versa; or 2) during check mode, the ignition switch is turned from ON to ACC or LOCK. Before check mode, make notes of the DTCs and freeze frame data.
  7. Start the engine. The MIL should turn off after the engine starts.
  8. Perform "MONITOR DRIVE PATTERN" for the ECT test (see «MONITOR DRIVE PATTERN»(ref-209352-S30461234482005120900000) ). (Or, simulate the conditions of the malfunction described by the customer).
  9. After simulating the malfunction conditions, use the hand-held tester diagnosis selector to check the DTC and freeze frame data.

Scheme 27

Scheme 27: FAIL-SAFE CHART

Scheme 28

Scheme 28

Scheme 29

Scheme 29

Scheme 30

Scheme 30
  1. FAIL-SAFE This function minimizes the loss of the ECT functions when any malfunction occurs in each sensor or solenoid. The AI (Artificial Intelligence) -SHIFT control In addition to the switching of the shift pattern through the pattern select switch, the AI-SHIFT control enables the ECM to estimate the road conditions and the driver's intention in order to automatically select the optimal shift pattern. As a result, a comfortable ride has been realized. Fail-safe operation for electronically malfunctioning shift solenoid valve (S1, S2, S3, S4 and SR): HINT: Fail-safe operation in the event of an electric system malfunction. Fail safe function: If either of the shift solenoid valve circuits has an open or short failure, the ECM turns the other shift solenoid "ON" and "OFF" in order to shift into the gear positions (Scheme 28)below. In case of a short circuit, the ECM stops sending current to the short circuited solenoid. Even if starting the engine again in the fail-safe mode, the gear position remains in the same position. Fail-safe operation for mechanically malfunction: HINT: Fail-safe operation in the event of a mechanical system malfunction. Fail safe function: The ECM controls the gear position (Scheme 30)below when malfunctions occur.

Scheme 31

Scheme 31: DATA LIST/ACTIVE TEST

Scheme 32

Scheme 32

Scheme 33

Scheme 33
  1. DATA LIST HINT: According to the DATA LIST displayed by the hand-held tester, you can read the value of the switch, sensor, actuator and so on without parts removal. Reading the DATA LIST as the first step of troubleshooting is one method to shorten labor time. NOTE: In (Scheme 31) below, the values listed under "Normal Condition" are reference values. Do not depend solely on these reference values when deciding whether a part is faulty or not. Warm up the engine. Turn the ignition switch off. Connect the hand-held tester together with the CAN VIM (controller area network vehicle interface module) to the DLC3. Turn the ignition switch to the ON position. Push the "ON" button of the hand-held tester. Select the item "DIAGNOSIS/ENHANCED OBD II/DATA LIST". According to the display on tester, read the "DATA LIST".
  2. ACTIVE TEST HINT: Performing the ACTIVE TEST using the hand-held tester allows the relay, VSV, actuator and so on to operation without parts removal. Performing the ACTIVE TEST as the first step of troubleshooting is one method to shorten labor time. It is possible to display the DATA LIST during the ACTIVE TEST. Warm up the engine. Turn the ignition switch off. Connect the hand-held tester together with the CAN VIM (controller area network vehicle interface module) to the DLC3. Turn the ignition switch to the ON position. Push the "ON" button of the hand-held tester. Select the item "DIAGNOSIS/ENHANCED OBD II/ACTIVE TEST". According to the display on tester, perform the "ACTIVE TEST". HINT: The pressure values in ACTIVE TEST and HYDRAULIC TEST are different from each other.

MONITOR DESCRIPTION

These DTCs indicate a problem with the park/neutral position switch and the wire harness in the park/neutral position switch circuit.

The park/neutral position switch detects the shift lever position and sends signals to the ECM.

For security, the park/neutral position switch detects the shift lever position so that engine can be started only when the vehicle is in P or N shift position.

When the park/neutral position switch sends more than one signal at a time from switch positions P, R, N or D, the ECM interprets this as a fault in the switch. The ECM will turn on the MIL and store the DTC.

These DTCs indicate an open or short in the automatic transmission fluid (ATF) temperature sensor circuit. The automatic transmission fluid (ATF) temperature sensor converts ATF temperature to an electrical resistance value. Based on the resistance, the ECM determines the ATF temperature, and the ECM detects an opens or shorts in the ATF temperature circuit. If the resistance value of the ATF temperature is less than 79ohm* 1 or more than 156kohm* 2 , the ECM interprets this as a fault in the ATF sensor or wiring. The ECM will turn on the MIL and store the DTC.

*1: 150°C (302°F) or more is indicated regardless of the actual ATF temperature.

*2: -40°C (-40°F) is indicated regardless of the actual ATF temperature.

HINT

The ATF temperature can be checked on the OBD II scan tool or hand-held tester display.

Scheme 34

Scheme 34: MONITOR STRATEGY

This DTC indicates that there is a problem with output from the automatic transmission fluid (ATF) temperature sensor and that the sensor itself is defective. The ATF temperature sensor converts the ATF temperature to an electrical resistance value. Based on the resistance, the ECM determines the ATF temperature and detects an opens or shorts in the ATF temperature circuit or a fault of the ATF temperature sensor.

After running the vehicle for a certain period, the ATF temperature should increase. If the ATF temperature is below 10°C (50°F) after running the vehicle for a certain period, the ECM interprets this as a fault, and turns on the MIL.

Scheme 35

Scheme 35: MONITOR STRATEGY

This DTC indicates that pulse is not output from the speed sensor NT (Turbine (input) speed sensor) or is output only little. The NT terminal of the ECM detects the revolving signal from speed sensor (NT) (input RPM). The ECM outputs a gearshift signal comparing the input speed sensor (NT) with the output speed sensor (SP2).

While the vehicle is operating in the 4th, 5th or 6th gear position in the shift position of D, if the input shaft revolution is less than 300 RPM* 1 although the output shaft revolution is more than 300 RPM or more* 2 , the ECM detects the trouble, illuminates the MIL and stores the DTC.

*1: Pulse is not output or is irregularly output.

*2: The vehicle speed is approx. 50 km/h (31 mph) or more.

Scheme 36

Scheme 36: MONITOR STRATEGY

Scheme 37

Scheme 37: TYPICAL ENABLING CONDITIONS

Scheme 38

Scheme 38: TYPICAL MALFUNCTION THRESHOLDS

Scheme 39

Scheme 39: COMPONENT OPERATING RANGE

Scheme 40

Scheme 40: WIRING DIAGRAM

This DTC indicates that the stop light switch remains on. When the stop light switch remains ON during "stop and go" driving, the ECM interprets this as a fault in the stop light switch and the MIL comes on and the ECM stores the DTC. The vehicle must stop (less than 3 km/h (2 mph)) and go (30 km/h (19 mph) or more) ten times for two driving cycles in order to detect malfunction.

Scheme 41

Scheme 41: MONITOR STRATEGY

The ECM uses signals from the output speed sensor SP2 and input speed sensor NT to detect the actual gear position (1st, 2nd, 3rd, 4th, 5th or 6th gear). Then the ECM compares the actual gear with the shift schedule in the ECM memory to detect mechanical problems of the shift solenoid valves, valve body or automatic transmission (clutch, brake or gear, etc.).

Scheme 42

Scheme 42: SYSTEM DESCRIPTION

Scheme 43

Scheme 43

HINT

Scheme 44

Scheme 44

Scheme 45

Scheme 45
  1. Gear positions in the event of a solenoid valve mechanical problem
  2. Gear position during fail-safe operation: If any malfunction is detected, the ECM changes into the fail-safe mode to shift into the gear positions (Scheme 45)below.

The ECM commands gear shifts by turning the shift solenoid valves "ON/OFF" and switching oil pressure to the valves in the valve body.

The DTC indicates that the reverse sequence valve is locked in the direction the spring stretches and that shifting to the 6th gear is impossible.

Scheme 46

Scheme 46: MONITOR STRATEGY

This DTC indicates an open or short in the shift solenoid valve SL1 circuit. The ECM commands gearshift by turning the shift solenoid valves "ON/OFF". When there is an open or short circuit in any shift solenoid valve circuit, the ECM detects the problem and illuminates the MIL and stores the DTC. And the ECM performs the fail-safe function and turns the other shift solenoid valves in good condition "ON/OFF". (In case of an open or short circuit, the ECM stops sending current to the circuit.)

While driving and shifting between 4th and 5th gears, if the ECM detects an open or short in the shift solenoid valve SL1 circuit, the ECM determines there is a malfunction (see FAIL-SAFE CHART ).

Scheme 47

Scheme 47: MONITOR STRATEGY

Scheme 48

Scheme 48: TYPICAL ENABLING CONDITIONS

Scheme 49

Scheme 49: TYPICAL MALFUNCTION THRESHOLDS

Scheme 50

Scheme 50: COMPONENT OPERATING RANGE

Scheme 51

Scheme 51: WIRING DIAGRAM

The ECM uses signals from the output shaft speed sensor and input speed sensor to detect the actual gear position (1st, 2nd, 3rd, 4th, 5th or 6th gear).

Then the ECM compares the actual gear with the shift schedule in the ECM memory to detect mechanical problems of the shift solenoid valves and valve body.

Scheme 52

Scheme 52: SYSTEM DESCRIPTION

HINT

Scheme 53

Scheme 53

Scheme 54

Scheme 54
  1. Gear positions in the event of a solenoid valve mechanical problem
  2. Gear position during fail-safe operation: If any malfunction is detected, the ECM changes into the fail-safe mode to shift into the gear positions (Scheme 54)below.

This DTC indicates "stuck ON malfunction" or "stuck OFF malfunction" of the shift solenoid valve S1.

The ECM commands gear shifts by turning the shift solenoid valves "ON/OFF". When the gear position commanded by the ECM and the actual gear position are not same, the ECM illuminates the MIL and stores the DTC.

Scheme 55

Scheme 55: MONITOR STRATEGY

The ECM uses signals from the output shaft speed sensor and input speed sensor to detect the actual gear position (1st, 2nd, 3rd, 4th, 5th or 6th gear).

Then the ECM compares the actual gear with the shift schedule in the ECM memory to detect mechanical problems of the shift solenoid valves and valve body.

Scheme 56

Scheme 56: SYSTEM DESCRIPTION

HINT

Scheme 57

Scheme 57
  1. Gear positions in the event of a solenoid valve mechanical problem

This DTC indicates "stuck ON malfunction" or "stuck OFF malfunction" of the shift solenoid valve S2.

The ECM commands gear shifts by turning the shift solenoid valves "ON/OFF". When the gear position commanded by the ECM and the actual gear position are not same, the ECM illuminates the MIL and stores the DTC.

Scheme 58

Scheme 58: MONITOR STRATEGY

The ECM uses signals from the output shaft speed sensor and input speed sensor to detect the actual gear position (1st, 2nd, 3rd, 4th, 5th or 6th gear).

Then the ECM compares the actual gear with the shift schedule in the ECM memory to detect mechanical problems of the shift solenoid valves and valve body.

Scheme 59

Scheme 59: SYSTEM DESCRIPTION

HINT

Scheme 60

Scheme 60

Scheme 61

Scheme 61
  1. Gear positions in the event of a solenoid valve mechanical problem
  2. Gear position during fail-safe operation: If any malfunction is detected, the ECM changes into the fail-safe mode to shift into the gear positions (Scheme 61)below.

This DTC indicates "stuck ON malfunction" or "stuck OFF malfunction" of the shift solenoid valve S3.

The ECM commands gear shifts by turning the shift solenoid valves "ON/OFF". When the gear position commanded by the ECM and the actual gear position are not same, the ECM illuminates the MIL and stores the DTC.

Scheme 62

Scheme 62: MONITOR STRATEGY

The ECM uses signals from the output shaft speed sensor and input speed sensor to detect the actual gear position (1st, 2nd, 3rd, 4th, 5th or 6th gear).

Then the ECM compares the actual gear with the shift schedule in the ECM memory to detect mechanical problems of the shift solenoid valves and valve body.

Scheme 63

Scheme 63: SYSTEM DESCRIPTION

HINT

Scheme 64

Scheme 64

Scheme 65

Scheme 65
  1. Gear positions in the event of a solenoid valve mechanical problem
  2. Gear position during fail-safe operation: If any malfunction is detected, the ECM changes into the fail-safe mode to shift into the gear positions (Scheme 65)below.

This DTC indicates "stuck OFF malfunction" of the shift solenoid valve S4, "stuck ON malfunction" of the shift solenoid valve SL2, or brake control valve malfunction. The ECM commands gear shifts by turning the shift solenoid valves "ON/OFF". When the gear position commanded by the ECM and the actual gear position are not same, the ECM illuminates the MIL and stores the DTC.

Scheme 66

Scheme 66: MONITOR STRATEGY

This DTC indicates an open or short in the shift solenoid valve SL2 circuit. The ECM commands gear shifts by turning the shift solenoid valves "ON/OFF". When there is an open or short circuit in any shift solenoid valve circuit, the ECM detects the problem and illuminates the MIL and stores the DTC. And the ECM performs the fail-safe function and turns the other shift solenoid valves in good condition "ON/OFF". (In case of an open or short circuit, the ECM stops sending current to the circuit.)

While driving and shifting gears, if the ECM detects an open or short in the shift solenoid valve SL2 circuit, the ECM determines there is a malfunction (see FAIL-SAFE CHART ).

Scheme 67

Scheme 67: MONITOR STRATEGY

Scheme 68

Scheme 68: TYPICAL ENABLING CONDITIONS

Scheme 69

Scheme 69: TYPICAL MALFUNCTION THRESHOLDS

Scheme 70

Scheme 70: COMPONENT OPERATING RANGE

Scheme 71

Scheme 71: WIRING DIAGRAM

The 1-2 shift valve performs shifting to 1st gear and other gears.

Scheme 72

Scheme 72: SYSTEM DESCRIPTION

Scheme 73

Scheme 73

HINT

Gear positions in the event of a solenoid valve mechanical problem

Scheme 74

Scheme 74

Scheme 75

Scheme 75
  1. Gear position during fail-safe operation: If any malfunction is detected, the ECM changes into the fail-safe mode to shift into the gear positions (Scheme 75)below.

This DTC indicates that the 1-2 shift valve in the valve body is locked in the direction the spring compresses. The ECM commands gear shifts by turning the shift solenoid valves "ON/OFF" and switching oil pressure to the valves in the valve body.

The ECM calculates the "actual" transmission gear by comparing the signals from the input speed sensor (NT) and the output speed sensor (SP2). The ECM can detect many mechanical problems in the shift solenoids, valve body, and the transmission clutches, brakes, and gears. If the ECM detects that the actual gear caution and the commanded gear position are different, it will illuminate the MIL and store the DTC.

Scheme 76

Scheme 76: MONITOR STRATEGY

These DTCs indicate an open or short in the shift solenoid valve S1 circuit. When there is an open or short circuit in any shift solenoid valve circuit, the ECM detects the problem and illuminates the MIL and stop the DTC. When the shift solenoid valve S1 is on, if resistance is 8ohm or less, the ECM determines there a short in the shift solenoid valve S1 circuit.

When the shift solenoid valve S1 is off, if resistance is 100ohm or more, the ECM determines there is an open in the shift solenoid valve S1 circuit (see FAIL-SAFE CHART ).

Scheme 77

Scheme 77: MONITOR STRATEGY

These DTCs indicate an open or short in the shift solenoid valve S2 circuit. When there is an open or short circuit in any shift solenoid valve circuit, the ECM detects the problem and illuminates the MIL and stores in DTC. When the shift solenoid valve S2 is on, if resistance is 8ohm or less, the ECM determines there is a short in the shift solenoid valve S2 circuit.

When the shift solenoid valve S2 is off, if resistance is 100 kohm or more, the ECM determines there is an open in the shift solenoid valve S2 circuit (see FAIL-SAFE CHART ).

Scheme 78

Scheme 78: MONITOR STRATEGY

These DTCs indicate an open or short in the shift solenoid valve S3 circuit. When there is an open or short circuit in any shift solenoid valve circuit, the ECM detects the problem and illuminates the MIL and stop the DTC. When the shift solenoid valve S3 is on, if resistance is 8ohm or less, the ECM determines there a short in the shift solenoid valve S3 circuit.

When the shift solenoid valve S3 is off, if resistance is 100 kohm or more, the ECM determines there is an open in the shift solenoid valve S3 circuit (see FAIL-SAFE CHART ).

Scheme 79

Scheme 79: MONITOR STRATEGY

These DTCs indicate an open or short in the shift solenoid valve S4 circuit. When there is an open or short circuit in any shift solenoid valve circuit, the ECM detects the problem and illuminates the MIL and stores the DTC. When the shift solenoid valve S4 is on, if resistance is 8ohm or less, the ECM determines there is a short in the shift solenoid valve S4 circuit.

When the shift solenoid valve S4 is off, if resistance is 100 kohm or more, the ECM determines there is an open in the shift solenoid valve S4 circuit (see FAIL-SAFE CHART ).

Scheme 80

Scheme 80: MONITOR STRATEGY

These DTCs indicate an open or short in the shift solenoid valve SR circuit. When there is an open or short circuit in any shift solenoid valve circuit, the ECM detects the problem and illuminates the MIL and stop the DTC. When the shift solenoid valve SR is on, if resistance is 8ohm or less, the ECM determines there is a short in the shift solenoid valve SR circuit.

When the shift solenoid valve SR is off, if resistance is 100 kohm or more, the ECM determines there is an open in the shift solenoid valve SR circuit (see FAIL-SAFE CHART )

Scheme 81

Scheme 81: MONITOR STRATEGY

The linear solenoid valve (SLT) controls the transmission line pressure for smooth transmission operation based on signals from the throttle position sensor and the vehicle speed sensor. The ECM adjusts the duty cycle of the SLT solenoid valve to control hydraulic line pressure coming from the primary regulator valve. Appropriate line pressure assures smooth shifting with varying engine outputs.

(*): Duty Ratio

The duty ratio is the ratio of the period of continuity in one cycle. For example, if A is the period of continuity in one cycle, and B is the period of non-continuity, then Duty Ratio=A/(A+B) x 100 (%)

Scheme 82

Scheme 82: SYSTEM DESCRIPTION

Scheme 83

Scheme 83

Scheme 84

Scheme 84

Scheme 85

Scheme 85

The ECM calculates the amount of heat absorbed by the friction material based on the difference in revolution (clutch slippage) between the turbine and output shaft. The ECM turns on the MIL and outputs this DTC when the amount of heat absorption exceeds the specified value.

When the shift solenoid valve SLT remains on, oil pressure goes down and clutch engagement force decreases.

Note. If you continue driving under these conditions, the clutch will burn out and the vehicle will no longer be drivable.

Scheme 86

Scheme 86: MONITOR STRATEGY

When an open or short in the linear solenoid valve (SLT) circuit is detected, the ECM interprets this as a fault. The ECM will turn ON the MIL and store the DTC.

Scheme 87

Scheme 87: MONITOR STRATEGY

Scheme 88

Scheme 88: TYPICAL ENABLING CONDITIONS

Scheme 89

Scheme 89: TYPICAL MALFUNCTION THRESHOLDS

Scheme 90

Scheme 90: COMPONENT OPERATING RANGE

Scheme 91

Scheme 91: WIRING DIAGRAM

Scheme 92

Scheme 92: INSPECTION PROCEDURE

Scheme 93

Scheme 93

Scheme 94

Scheme 94

Scheme 95

Scheme 95

Scheme 96

Scheme 96

Scheme 97

Scheme 97

Scheme 98

Scheme 98

Scheme 99

Scheme 99
  1. INSPECT TRANSMISSION WIRE (SLT) Disconnect the transmission wire connector from the transmission. Measure the resistance according to the value(s) in (Scheme 93) below. Standard: Measure the resistance according to the value(s) in (Scheme 94) below. Standard (Check for short): NG: Go to step 3. OK: Go to next step.
  2. CHECK HARNESS AND CONNECTOR (TRANSMISSION WIRE - ECM) Connect the transmission wire connector to the transmission. Disconnect the ECM connector. Measure the resistance according to the value(s) in (Scheme 96) below. Standard: Measure the resistance according to the value(s) in (Scheme 97) below. Standard (Check for short): NG: REPAIR OR REPLACE HARNESS OR CONNECTOR (SEE «ELECTRONIC CIRCUIT INSPECTION PROCEDURE»(ref-218525-S07507750332006020700000) ) OK: GO TO NEXT STEP. REPLACE ECM (SEE «REPLACEMENT»(ref-209387-S34299887592005121000000) )
  3. INSPECT SHIFT SOLENOID VALVE (SLT) Remove the shift solenoid valve (SLT). Measure the resistance according to the value(s) in (Scheme 98) below. Standard: Connect the positive (+) lead with a 21 W bulb to terminal 2 and the negative (-) lead to terminal 1 of the solenoid valve connector, then check the movement of the valve. OK: The solenoid makes an operating noise. NG: REPLACE SHIFT SOLENOID VALVE (SLT) OK: GO TO NEXT STEP. REPAIR OR REPLACE TRANSMISSION WIRE (SEE «TRANSMISSION WIRE»(ref-209429-S08614709222005121000000) )

The ECM uses the signals from the throttle position sensor, Airflow meter, turbine (input) speed sensor, output speed sensor and crankshaft position sensor to monitor the engagement condition of the lock-up clutch.

Then the ECM compares the engagement condition of the lock-up clutch with the lock-up schedule in the ECM memory to detect a mechanical problems of the shift solenoid valve SLU, valve body and torque converter clutch.

Scheme 100

Scheme 100: SYSTEM DESCRIPTION

Scheme 101

Scheme 101

Scheme 102

Scheme 102

Torque converter lock-up is controlled by the ECM based on turbine (input) speed sensor NT, output speed sensor SP2, engine RPM, engine load, engine temperature, vehicle speed, transmission temperature, and gear selection. The ECM determines the lock-up status of the torque converter by comparing the engine RPM (NE) to the input turbine RPM (NT). The ECM calculates the actual transmission gear by comparing input turbine RPM (NT) to output shaft RPM (SP2). When conditions are appropriate, the ECM requests "lock-up" by applying control voltage to shift solenoid SLU. When the SLU is turned on, solenoid SLU applies pressure to the lock-up relay valve and locks the torque converter clutch.

If the ECM detects no lock-up after lock-up has been requested or if it detects lock-up when it is not requested, the ECM interprets this as a fault in the shift solenoid valve SLU or lock-up system performance.

The ECM will turn on the MIL and store the DTC.

Example

When any of the following is met, the system judges it as a malfunction.

  1. There is a difference in rotation between before and after torque converters even when the ECM commands lock-up. (Engine speed is at least 75 RPM greater than input turbine speed.)
  2. There is no difference in rotation between before and after torque converters even when the ECM commands lock-up off. (The difference between engine speed and input turbine speed is less than 35 rpm.)

Scheme 103

Scheme 103: MONITOR STRATEGY

When an open or short in a shift solenoid valve (SLU) circuit is detected, the ECM determines there is a malfunction. The ECM will turn on the MIL and store this DTC.

Scheme 104

Scheme 104: MONITOR STRATEGY

Scheme 105

Scheme 105: TYPICAL ENABLING CONDITIONS

Scheme 106

Scheme 106: TYPICAL MALFUNCTION THRESHOLDS

Scheme 107

Scheme 107: COMPONENT OPERATING RANGE

Scheme 108

Scheme 108: WIRING DIAGRAM

Scheme 109

Scheme 109: INSPECTION PROCEDURE

Scheme 110

Scheme 110

Scheme 111

Scheme 111

Scheme 112

Scheme 112

Scheme 113

Scheme 113

Scheme 114

Scheme 114

Scheme 115

Scheme 115

Scheme 116

Scheme 116
  1. INSPECT TRANSMISSION WIRE (SLU) Disconnect the transmission wire connector from the transmission. Measure the resistance according to the value(s) in (Scheme 110) below. Standard: Measure the resistance according to the value(s) in (Scheme 111) below. Standard (Check for short): NG: Go to step 3. OK: Go to next step.
  2. CHECK HARNESS AND CONNECTOR (TRANSMISSION WIRE - ECM) Connect the transmission wire connector to the transmission. Disconnect the ECM connector. Measure the resistance according to the value(s) in (Scheme 113) below. Standard: Measure the resistance according to the value(s) in (Scheme 114) below. Standard (Check for short): NG: REPAIR OR REPLACE HARNESS OR CONNECTOR (SEE «ELECTRONIC CIRCUIT INSPECTION PROCEDURE»(ref-218525-S07507750332006020700000) ) OK: GO TO NEXT STEP. REPLACE ECM (SEE «REPLACEMENT»(ref-209387-S34299887592005121000000) )
  3. INSPECT SHIFT SOLENOID VALVE (SLU) Remove the shift solenoid valve SLU. Measure the resistance according to the value(s) in (Scheme 115) below. Standard: Connect the positive (+) lead with a 21 W bulb to terminal 2 and the negative (-) lead to terminal 1 of the solenoid valve connector, then check the movement of the valve. OK: The solenoid makes an operating noise. NG: REPLACE SHIFT SOLENOID VALVE (SLU) OK: GO TO NEXT STEP. REPAIR OR REPLACE TRANSMISSION WIRE (SEE «TRANSMISSION WIRE»(ref-209429-S08614709222005121000000) )