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Engine Controls - 6.6L (Introduction): Overview GMC Cab & Chassis Sierra 3500

Testing & Diagnostics 30 illustrations ~2210 words

Very Cold Weather Operation

If the vehicle is driven in very cold temperatures and can not get a winterized Number 2-D that has been adapted to cold weather or a Number 1-D, use one gallon of kerosene for every 2 gallons of diesel fuel. Once you add kerosene, run the engine for several minutes to mix the fuels. Only add kerosene when the temperature falls below -18°C (0°F), because the fuel economy and lubricating qualities of kerosene is not as good as that of diesel fuel.

In cold weather, the fuel filter may become clogged (waxed). To unclog the filter, move the vehicle to a warm garage area and warm the filter to a temperature between 0-10°C (32-50°F). Replacing the filter is not necessary.

If the vehicle is driven in very cold temperatures and can not get a winterized Number 2-D that has been adapted to cold weather or a Number 1-D, use one gallon of kerosene for every 2 gallons of diesel fuel. Once you add kerosene, run the engine for several minutes to mix the fuels. Only add kerosene when the temperature falls below -18°C (0°F), because the fuel economy and lubricating qualities of kerosene is not as good as that of diesel fuel.

In cold weather, the fuel filter may become clogged (waxed). To unclog the filter, move the vehicle to a warm garage area and warm the filter to a temperature between 0-10°C (32-50°F). Replacing the filter is not necessary.

Engine Controls Schematic Icons

Engine Controls Schematic Icons Icon Icon Definition NOTE: The OBD II symbol is used on the circuit diagrams in order to alert the technician that the circuit is essential for proper OBD II emission control circuit operation. Any circuit which fails and causes the malfunction indicator lamp (MIL) to turn ON, or causes emissions-related component damage, is identified as an OBD II circuit. IMPORTANT: Twisted-pair wires provide an effective shield that helps protect sensitive electronic components from electrical interference. If the wires were covered with shielding, install new shielding. In order to prevent electrical interference from degrading the performance of the connected components, you must maintain the proper specification when making any repairs to the twisted-pair wires shown : The wires must be twisted a minimum of 9 turns per 31 cm (12 in) as measured anywhere along the length of the wires The outside diameter of the twisted wires must not exceed 6.0 mm (0.25 in)

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Scheme 1: Engine Controls Schematic Icons

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Scheme 2

Scheme 3

Scheme 3: Engine Controls Schematics

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Scheme 12

Scheme 12: Engine Controls Component Views
CalloutComponent Name
1Battery Tray - Left
2Engine Control Module (ECM)
3Transmission Control Module (TCM)
4Fan Shroud

Scheme 13

Scheme 13
CalloutComponent Name
1Fuel Injector 7
2Glow Plug 7
3Fuel Injector 5
4Glow Plug 5
5Fuel Injector 3
6Glow Plug 3
7Fuel Injector 1
8Glow Plug 1
9Camshaft Position (CMP) Sensor
10Crankshaft Position (CKP) Sensor
11Starter
12Starter Solenoid

Scheme 14

Scheme 14
CalloutComponent Name
1Glow Plug 2
2Fuel Injector 2
3Fuel Injector 4
4Glow Plug 4
5Fuel Injector 6
6Glow Plug 6
7Fuel Injector 8
8Glow Plug 8
9Engine Oil Pressure (EOP) Sensor
10Engine Oil Level Switch

Scheme 15

Scheme 15
CalloutComponent Name
1Fuel Heater
2Fuel Filter
3Water In Fuel (WIF) Sensor
4Fuel Pressure Sensor
5Fuel Temperature Sensor
6Glow Plug Controller
7Baro Sensor
8Boost Pressure Sensor
9Fuel Pressure Regulator
10Fuel Injection Control Module (FICM)
11Exhaust Gas Recirculation (EGR) Valve

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Scheme 16
CalloutComponent Name
1Engine Coolant Temperature (ECT) Sensor

Scheme 17

Scheme 17
CalloutComponent Name
1Turbocharger Vane Position Control Solenoid Valve
2Turbocharger Vane Position Sensor

Scheme 18

Scheme 18
CalloutComponent Name
1Fuel Pump and Sender Assembly - Primary Connector (Gas)/Fuel Level Sensor - Primary Connector (Diesel)
2Fuel Pump and Sender Assembly - Primary (Gas)/Fuel Level Sensor - Primary (Diesel)

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Scheme 19
CalloutComponent Name
1Fuel Pump and Sender Assembly - Secondary (Gas)/Fuel Level Sensor - Secondary (Diesel)
2Fuel Pump (Diesel Only)

Scheme 20

Scheme 20
CalloutComponent Name
1Auxiliary Battery Relay w/TP2
2A/C Accumulator
3A/C Low Pressure Switch
4Inner Wheel Well
5Coolant Level Switch Connector 6.6L and 8.1L
6Mass Air Flow (MAF) Sensor
7Air Cleaner Assembly
8Engine Coolant Recovery Reservoir
9Auxiliary Battery Relay Electrical Connector w/TP2

Scheme 21

Scheme 21
CalloutComponent Name
1Accelerator Pedal Position (APP) Sensor Connector
2Accelerator Pedal Position (APP) Sensor

Engine Control Module (ECM) Description

The engine control module (ECM) processes the various input information. The ECM sends the necessary electrical responses to control fuel delivery.

The input information has an interrelation to more than one output. One failed input can affect more than one systems operation.

Malfunction Indicator Lamp (MIL) Operation

The malfunction indicator lamp (MIL) is located in the instrument panel cluster. The MIL will display as either SERVICE ENGINE SOON or one of the following symbols when commanded ON

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Scheme 22: Malfunction Indicator Lamp (MIL) Operation

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Scheme 23

The MIL indicates that an emissions related fault has occurred and vehicle service is required.

The following is a list of the modes of operation for the MIL

  1. The MIL illuminates when the ignition is turned ON, with the engine OFF. This is a bulb test to ensure the MIL is able to illuminate.
  2. The MIL turns OFF after the engine is started if a diagnostic fault is not present.
  3. The MIL remains illuminated after the engine is started if the control module detects a fault. A diagnostic trouble code (DTC) is stored any time the control module illuminates the MIL due to an emissions related fault. The MIL turns OFF after three consecutive ignition cycles in which a Test Passed has been reported for the diagnostic test that originally caused the MIL to illuminate.
  4. The MIL flashes if the control module detects a misfire condition which could damage the catalytic converter.
  5. When the MIL is illuminated and the engine stalls, the MIL will remain illuminated as long as the ignition is ON.
  6. When the MIL is not illuminated and the engine stalls, the MIL will not illuminate until the ignition is cycled OFF and then ON.

Fuel System Description

CalloutComponent Name
1Fuel Rail
2Fuel Pressure Sensor
3Fuel Injectors
4Fuel Return Junction Block
5Fuel Tank
6Fuel Injection Control Module
7Fuel Filter
8First Start Fuel Bleeder Valve
9Fuel Injection Pump

The fuel tank (5) stores the fuel supply. A mechanical fuel injection pump (10), located below the engine intake, draws fuel through the fuel injector control module (6) and the fuel filter (7). The fuel is used as a coolant for the fuel injector control module. The fuel pump output is controlled by the ECM, and provides fuel at the pressure needed by the fuel injectors (3). The fuel injectors supply fuel directly to the combustion chambers of the engine. A separate pipe returns unused fuel through a fuel cooler (4) and to the fuel tank.

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Scheme 24: Fuel Tanks

The fuel tanks store the fuel supply. The primary fuel tank (2) is located on the left side of the vehicle. On vehicles that are equipped with dual fuel tanks, the auxiliary fuel tank is located in the rear of the vehicle. The fuel tanks are each held in place by 2 metal straps that attach to the frame. The fuel tanks are molded from high density polyethylene.

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Scheme 25: Fuel Filler Cap

The fuel filler cap has a torque-limiting device that prevents the cap from being over tightened. To install, turn the cap clockwise until you hear audible clicks. This indicates that the cap is fully seated.

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Scheme 26: Fuel Sender Assembly

The fuel sender consists of the following major components

  1. The fuel level sensor (1)
  2. The fuel strainer (2)

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Scheme 27

The auxiliary fuel sender on vehicles equipped with dual fuel tanks consists of the following major components

  1. The fuel level sensor (1)
  2. The fuel strainer (2)

Glow Plug System Description

In the diesel engine, air alone is compressed in the cylinder. Then, after the air has been compressed, a charge of fuel is sprayed into the cylinder and ignition occurs, due to the heat of compression. Eight glow plugs are used as an aid to starting.

Control of the instant start system (ISS) glow plugs is accomplished by an electronic glow plug control unit and 4.7 volt glow plugs, requiring 2 seconds to heat up to 1,000°C (1,832°F). The temperature and the power consumption is controlled between the engine control module (ECM) and the controller within a wide range to suit the engine's pre-heating requirements. Each glow plug is energized individually. This capability yields more optimum heat times for the glow plugs, thus pre-glow times can be kept to a minimum for short wait to crank times and maximum glow plug durability. A DTC will set if there is a glow plug system fault.

A normal functioning system operates as follows

  1. Turn the ignition ON with the engine OFF, and at room temperature.
  2. The glow plugs turn ON and heat up in 2 seconds and then are pulse-width modulated (PWM) for another 2 seconds.
  3. The glow plug wait lamp is ON for 1 second.
  4. If the engine is cranked during or after the above sequence, the glow plugs may cycle ON and OFF after the ignition switch is returned from the start position, whether the engine starts or not. The engine does not have to be running to terminate the glow plug cycling.

The glow plug initial ON time will vary based on the system voltage and temperature. Lower temperatures cause longer ON times.

The ECM provides glow plug operation after starting a cold engine. This post-start operation is initiated when the ignition switch is returned to Run, from the Start position. This function helps clean up excessive white smoke and/or poor idle quality after starting.

Exhaust Gas Recirculation (EGR) System Description

The Exhaust Gas Recirculation (EGR) System is used to reduce the amount of nitrogen oxide (NOx) emission levels caused by high combustion temperatures. At temperatures above 1 371°C (2,500°F), oxygen and nitrogen combine to form oxides of nitrogen (NOx). Introducing small amounts of exhaust gas back into the combustion chamber displaces the amount of oxygen entering the engine. With less oxygen in the air/fuel mixture, the combustion pressures are reduced, and as a result, combustion temperatures are decreased, restricting the formation of NOx.

The EGR valve motor is a direct current (DC) stepper motor utilizing a worm gear that extends from the motor to push on the EGR valve stem. The worm gear is not attached to the valve stem, and can only force the valve open. A return spring is used to force the valve closed.

The mass air flow (MAF) sensor signal is used by the engine control module (ECM) to detect the proper amount of EGR flow. One EGR flow test is performed per ignition cycle. The ECM will close the EGR valve for 5 seconds, then open the EGR valve to 100 percent for 5 seconds. The ECM will then calculate the MAF difference and determine if the proper EGR flow has been detected.

Scheme 28

Scheme 28: Exhaust Gas Recirculation (EGR) System Operation
CalloutComponent Name
1EGR Valve Position Sensor
2EGR Valve Worm Gear
3EGR Valve Return Spring
4EGR Valve Head
5EGR Valve Stem
6EGR Valve Motor

The exhaust gas recirculation (EGR) valve is controlled by the engine control module (ECM) through the EGR motor high control and EGR motor low control circuits. The ECM supplies voltage that is near ignition voltage to the high and low control circuits at all times. This voltage is used by the ECM as a reference voltage during non EGR operation in order to detect circuit failures. The ECM will pulse width modulate (PWM) the low control circuit to ground and an increase in amperage on the high control circuit can be observed with a DMM when the EGR valve is commanded open. A lower pulse width will increase the open position of the valve. In order to close the EGR valve, the ECM will PWM the high control circuit to ground.

When the ignition is turned ON, the ECM will drive the EGR motor worm gear out with just enough force to touch the EGR valve stem. The ECM will do this 3 times in quick succession. This action determines the minimum closed position of the valve and only happens once per ignition cycle. If the valve is prevented from closing all of the way after the minimum closed position is learned, the scan tool EGR Position parameter will not reflect this position until the next ignition cycle. The EGR motor worm gear is not connected to the EGR valve stem and can only push the valve open. The valve is returned to the closed position by a return spring.

The ECM uses the EGR position sensor to determine the position of the EGR valve. The ECM sends a reference voltage through the 5-volt reference circuit to the EGR position sensor. The ECM provides a voltage return path for the sensor through the low reference circuit. A variable voltage signal, based on the EGR valve position, is sent from the sensor to the ECM through the EGR position sensor signal circuit.

Air Intake System Description

The air intake system is used to direct cool air from the exterior of the engine compartment to the intake manifold. An air cleaner is incorporated into the system to keep dirt from entering the engine. The system also has a turbocharger to increase power, improve driveability and reduce emissions.

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Scheme 29: Air Cleaner Restriction Indicator
CalloutComponent Name
1Reset Button
2Window

The air cleaner restriction indicator is located on the air cleaner housing.

If the area inside of the clear section is green, no air filter service is required. If the area inside the clear section is orange and Change Air Filter appears, replace the air filter.

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Scheme 30: Turbocharger Description and Operation
CalloutComponent Name
1Turbocharger Vane Position Sensor
2Turbocharger Vane Position Control Solenoid Valve
3Turbocharger Vane Position Unison Ring
4Turbine
5Turbocharger Vanes
6Hydraulic Piston
7Cam

The turbocharger increases engine power by pumping compressed air into the combustion chambers, allowing a greater quantity of fuel to combust at the optimal air/fuel ratio. In a conventional turbo, the turbine (4) spins as exhaust gas flows out of the engine and over the turbine blades. This spins the compressor wheel at the other end of the turbine shaft, pumping more air into the intake system.

The turbocharger for this system has vane position control by the engine control module (ECM). The vanes (5) can be opened and closed to vary the amount of boost pressure. Thus, the boost pressure can be controlled independent of engine speed. There are 9 controllable vanes in this turbocharger. The vanes mount to a unison ring (3) that can be rotated to change the vane angle. When the engine is not under load, the vanes are open to minimize boost and exhaust back pressure. To increase boost when the engine load requires it, the vanes are commanded closed. The ECM will vary the boost dependent upon the load requirements of the engine.

The turbocharger vanes are normally open when the engine is not under load. However, the ECM will often close the turbocharger vanes to create back pressure to drive exhaust gas through the exhaust gas recirculation (EGR) valve as required. At extreme cold temperatures, the ECM may close the vanes at low load conditions in order to accelerate engine coolant heating. The ECM may also close the turbocharger vanes under exhaust braking conditions.

The turbocharger control system utilizes the following components