Showing posts with label * Control Module References (See: Testing and Inspection/Programming and Relearning) for Engine Control Module replacement. Show all posts
Showing posts with label * Control Module References (See: Testing and Inspection/Programming and Relearning) for Engine Control Module replacement. Show all posts

Tuesday, January 28, 2020

2010 Cadillac Truck SRX AWD V6-2.8L Turbo Page 1111

2010 Cadillac Truck SRX AWD V6-2.8L Turbo Page 1111



* Control Module References (See: Testing and Inspection/Programming and Relearning) for engine control module replacement, setup, and



programming



P0140



DTC P0137, P0138, or P0140 (Without LF1)



Diagnostic Instructions



* Perform the Diagnostic System Check - Vehicle (See: Testing and Inspection/Initial Inspection and Diagnostic Overview/Diagnostic System



Check - Vehicle) prior to using this diagnostic procedure.



* Review Strategy Based Diagnosis (See: Testing and Inspection/Initial Inspection and Diagnostic Overview/Strategy Based Diagnosis) for an



overview of the diagnostic approach.



* Diagnostic Procedure Instructions (See: Testing and Inspection/Initial Inspection and Diagnostic Overview/Diagnostic Procedure



Instructions) provides an overview of each diagnostic category.



DTC Descriptors



DTC P0137



- HO2S Circuit Low Voltage Sensor 2



DTC P0138



- HO2S Circuit High Voltage Sensor 2



DTC P0140



- HO2S Circuit Insufficient Activity Sensor 2



Diagnostic Fault Information



Typical Scan Tool Data



Circuit Description



The heated oxygen sensors (HO2S) are used for fuel control and catalyst monitoring. Each HO2S compares the oxygen content of the surrounding



air with the oxygen content of the exhaust stream. When the engine is started, the control module operates in an Open Loop mode, ignoring the



HO2S signal voltage while calculating the air-to-fuel ratio. The control module supplies the HO2S with a reference, or bias voltage of about 450



mV. While the engine runs, the HO2S heats up and begins to generate a voltage within a range of 0-1,000 mV. This voltage will fluctuate above



and below the bias voltage. Once sufficient HO2S voltage fluctuation is observed by the control module, Closed Loop is entered. The control



module uses the HO2S voltage to determine the air-to-fuel ratio. An HO2S voltage that increases above bias voltage toward 1,000 mV indicates a



rich fuel mixture. An HO2S voltage that decreases below bias voltage toward 0 mV indicates a lean fuel mixture.



The heating elements inside each HO2S heat the sensor to bring the sensor up to operating conditions faster. This allows the system to enter Closed



Loop earlier and the control module to calculate the air-to-fuel ratio sooner.



Conditions for Running the DTCs



P0137



* DTC P0117 or P0118 is not set.



* The HO2S 2 is at operating temperature for greater than 90 seconds.



* The engine is operating for greater than 5 seconds.



* The ignition voltage is greater than 10 volts.



* The engine coolant temperature is less than 40掳C (104掳F) at start-up and the engine coolant temperature was greater than 60掳C (140掳F) when

Thursday, January 9, 2020

2010 Cadillac Truck SRX AWD V6-2.8L Turbo Page 1806

2010 Cadillac Truck SRX AWD V6-2.8L Turbo Page 1806



* Control Module References (See: Testing and Inspection/Programming and Relearning) for Engine Control Module replacement, setup, and



programming



P2094



DTC P0010, P0013, P0020, P0023, P2088, P2089, P2090, P2091, P2092, P2093, P2094, or P2095 (Without LF1, LFW)



Diagnostic Instructions



* Perform the Diagnostic System Check - Vehicle (See: Testing and Inspection/Initial Inspection and Diagnostic Overview/Diagnostic System



Check - Vehicle) prior to using this diagnostic procedure.



* Review Strategy Based Diagnosis (See: Testing and Inspection/Initial Inspection and Diagnostic Overview/Strategy Based Diagnosis) for an



overview of the diagnostic approach.



* Diagnostic Procedure Instructions (See: Testing and Inspection/Initial Inspection and Diagnostic Overview/Diagnostic Procedure



Instructions) provides an overview of each diagnostic category.



DTC Descriptors



DTC P0010



- Intake Camshaft Position Actuator Solenoid Valve Control Circuit Bank 1



DTC P0013



- Exhaust Camshaft Position Actuator Solenoid Valve Control Circuit Bank 1



DTC P0020



- Intake Camshaft Position Actuator Solenoid Valve Control Circuit Bank 2



DTC P0023



- Exhaust Camshaft Position Actuator Solenoid Valve Control Circuit Bank 2



DTC P2088



- Intake Camshaft Position Actuator Solenoid Valve Control Circuit Low Voltage Bank 1



DTC P2089



- Intake Camshaft Position Actuator Solenoid Valve Control Circuit High Voltage Bank 1



DTC P2090



- Exhaust Camshaft Position Actuator Solenoid Valve Control Circuit Low Voltage Bank 1



DTC P2091



- Exhaust Camshaft Position Actuator Solenoid Valve Control Circuit High Voltage Bank 1



DTC P2092



- Intake Camshaft Position Actuator Solenoid Valve Control Circuit Low Voltage Bank 2



DTC P2093



- Intake Camshaft Position Actuator Solenoid Valve Control Circuit High Voltage Bank 2



DTC P2094



- Exhaust Camshaft Position Actuator Solenoid Valve Control Circuit Low Voltage Bank 2



DTC P2095



- Exhaust Camshaft Position Actuator Solenoid Valve Control Circuit High Voltage Bank 2



Circuit/System Description



The camshaft position actuator system enables the Engine Control Module (ECM) to change the timing of the camshafts while the engine is



operating. The Camshaft Position Actuator Solenoid Valve signal from the ECM is pulse width modulated (PWM). The ECM controls the



Camshaft Position Actuator Solenoid Valve duty cycle by controlling the amount of solenoid valve ON time. The Camshaft Position Actuator



Solenoid Valve controls the advance or the retard of each camshaft. The Camshaft Position Actuator Solenoid Valve controls the oil flow that



applies the pressure to advance or retard the camshafts.



Ignition voltage is supplied directly to the Camshaft Position Actuator Solenoid Valve. The ECM controls the solenoid valve by grounding the



control circuit with a solid state device called a driver. The driver is equipped with a feedback circuit that is pulled-up to a voltage. The ECM can



determine if the control circuit is open, shorted to ground, or shorted to a voltage by monitoring the feedback voltage.



Conditions for Running the DTC



* The engine speed is greater than 80 RPM.



* The ignition voltage is between 10-18 V.