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FUEL SYSTEMS 14 - 139

 

Fig. 4 Camshaft Gear

Fig. 5 Camshaft Sensor Location

The engine controller supplies 5.0 volts to the coolant temperature sensor. The sensor provides an input voltage to the engine controller. As coolant temperature varies, the sensor resistance changes resulting in a different input voltage to the engine controller.

When the engine is cold, the engine controller will demand slightly richer air-fuel mixtures and higher idle speeds until normal operating temperatures are reached.

The coolant sensor is also used for cooling fan control.

CRANKSHAFT SENSORÐENGINE CONTROLLER INPUT

The crankshaft sensor (Fig. 7) senses slots cut into the transmission driveplate extension. There are a 3

Fig. 6 Coolant Temperature Sensor

sets of slots. Each set contains 4 slots, for a total of 12 slots (Fig. 8). Basic timing is determined by the position of the last slot in each group. Once the engine controller senses the last slot, it determines crankshaft position (which piston will next be at TDC) from the camshaft sensor input. It may take the controller one engine revolution to determine crankshaft position during cranking.

Fig. 7 Crankshaft Sensor

Fig. 8 Timing Slots

The engine controller uses the camshaft reference sensor to determine injector sequence. The controller determines ignition timing from the crankshaft tim-

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ing sensor. Once crankshaft position has been determined, the engine controller begins energizing the injectors in sequence.

The crankshaft sensor is located in the transmission housing, above the vehicle distance sensor (Fig. 9). The bottom of the sensor is positioned next to the drive plate. The distance between the bottom of sensor and the drive plate is critical to the operation of the system. When servicing the crankshaft sensor, refer to the Multi-Point Fuel Injection Service ProceduresÐ3.3L Engine section in this Group.

Fig. 9 Crankshaft Sensor Location

MANIFOLD ABSOLUTE PRESSURE (MAP) SENSORÐENGINE CONTROLLER INPUT

The engine controller supplies 5 volts to the MAP sensor. The Map sensor converts intake manifold pressure into voltage. The engine controller monitors the MAP sensor output voltage. As vacuum increases, MAP sensor voltage decreases proportionately. Also, as vacuum decreases, MAP sensor voltage increases proportionately.

During cranking, before the engine starts running, the engine controller determines atmospheric air pressure from the MAP sensor voltage. While the engine operates, the controller determines intake manifold pressure from the MAP sensor voltage.

Based on MAP sensor voltage and inputs from other sensors, the engine controller adjusts spark advance and the air/fuel mixture.

The MAP sensor (Fig. 10) mounts to the side of the intake manifold, below the positive crankcase ventilation (PCV) valve. The sensor connects electrically to the engine controller.

OXYGEN SENSOR (O2 SENSOR)ÐENGINE CONTROLLER INPUT

The O2 sensor is located in the exhaust manifold and provides an input voltage to the engine controller. The input tells the engine controller the oxygen content of the exhaust gas (Fig. 11). The engine control-

Fig. 10 Map Sensor

ler uses this information to fine tune the air-fuel ratio by adjusting injector pulse width.

Fig. 11 Oxygen SensorÐ3.3L Engine

The O2 sensor produces voltages from 0 to 1 volt, depending upon the oxygen content of the exhaust gas in the exhaust manifold. When a large amount of oxygen is present (caused by a lean air-fuel mixture), the sensor produces a low voltage. When there is a lesser amount present (rich air-fuel mixture) it produces a higher voltage. By monitoring the oxygen content and converting it to electrical voltage, the sensor acts as a rich-lean switch.

The oxygen sensor is equipped with a heating element that keeps the sensor at proper operating temperature during all operating modes. Maintaining correct sensor temperature at all times allows the system to enter into closed loop operation sooner. Also, it allows the system to remain in closed loop operation during periods of extended idle.

In Closed Loop operation the engine controller monitors the O2 sensor input (along with other inputs) and adjusts the injector pulse width accordingly. During Open Loop operation the engine

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FUEL SYSTEMS 14 - 141

 

controller ignores the O2 sensor input. The controller adjusts injector pulse width based on preprogrammed (fixed) values and inputs from other sensors.

SPEED CONTROLÐENGINE CONTROLLER INPUT

The speed control system provides four separate voltages (inputs) to the engine controller. The voltages correspond to the On/Off, Set, and Resume.

The speed control ON voltage informs the engine controller that the speed control system has been activated. The speed control SET voltage informs the controller that a fixed vehicle speed has been selected. The speed control RESUME voltage indicates the previous fixed speed is requested. The speed control OFF voltage tells the controller that the speed control system has been deactivated. Refer to Group 8H for further speed control information.

TRANSMISSION PARK/NEUTRAL SWITCHÐENGINE CONTROLLER INPUT

The park/neutral switch is located on the transmission housing (Fig. 12). It provides an input to the engine controller indicating whether the automatic transmission is in Park, Neutral, or a drive gear selection. This input is used to determine idle speed (varying with gear selection) and ignition timing advance. The park neutral switch is sometimes referred to as the neutral safety switch.

Fig. 13 Throttle Position Sensor

nal to the engine controller) represents the throttle blade position. The TPS output voltage to the controller varies from approximately 0.5 volt at minimum throttle opening (idle) to 3.5 volts at wide open throttle. Along with inputs from other sensors, the engine controller uses the TPS input to determine current engine operating conditions. The controller also adjust fuel injector pulse width and ignition timing based on these inputs.

VEHICLE DISTANCE (SPEED) SENSORÐENGINE CONTROLLER INPUT

The distance sensor (Fig. 14) is located in the transmission extension housing. The sensor input is used by the engine controller to determine vehicle speed and distance traveled.

Fig. 12 Park Neutral SwitchÐ4-Speed Electronic Au-

tomatic Transaxle

THROTTLE POSITION SENSOR (TPS)ÐENGINE CONTROLLER INPUT

The Throttle Position Sensor (TPS) is mounted on the throttle body and connected to the throttle blade shaft (Fig. 13). The TPS is a variable resistor that provides the engine controller with an input signal (voltage). The signal represents throttle blade position. As the position of the throttle blade changes, the resistance of the TPS changes.

The engine controller supplies approximately 5

Fig. 14 Vehicle Distance (Speed) Sensor

volts to the TPS. The TPS output voltage (input sig-

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The distance sensor generates 8 pulses per sensor revolution. These signals, along with a closed throttle signal from the TPS, determine if a closed throttle deceleration or normal idle condition (vehicle stopped) exists. Under deceleration conditions, the engine controller adjusts the AIS motor to maintain a desired MAP value. Under idle conditions, the engine controller adjusts the AIS motor to maintain a desired engine speed.

AIR CONDITIONING (A/C) CLUTCH RELAYÐENGINE CONTROLLER OUTPUT

The engine controller operates the air conditioning clutch relay ground circuit (Fig. 15). The ignition switch supplies battery voltage to the solenoid side of the relay. When the A/C clutch relay energizes, battery voltage powers the A/C compressor clutch.

With the engine operating and the blower motor switch in the On position, the engine controller cycles the air conditioning clutch on and off when the A/C switch closes. When the engine controller senses low idle speeds or wide open throttle through the throttle position sensor, it de-energizes the A/C clutch relay. The relay contacts open, preventing air conditioning clutch engagement.

Fig. 15 Relay Identification

ALTERNATOR FIELDÐENGINE CONTROLLER OUTPUT

The engine controller regulates the charging system voltage within a range of 12.9 to 15.0 volts. Refer to Group 8A for charging system information.

AUTO SHUTDOWN (ASD) RELAY AND FUEL PUMP RELAYÐENGINE CONTROLLER OUTPUT

The engine controller operates the auto shutdown (ASD) relay and fuel pump relay through one ground path. The controller operates the relays by switching the ground path on and off. Both relays turn on and off at the same time.

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The ASD relay connects battery voltage to the fuel injector and ignition coil. The fuel pump relay connects battery voltage to the fuel pump and oxygen sensor heating element.

The engine controller turns the ground path off when the ignition switch is in the Off position. Both relays are off. When the ignition switch is in the On or Crank position, the engine controller monitors the crankshaft and camshaft sensor signals to determine engine speed and ignition timing (coil dwell). If the engine controller does not receive the crankshaft and camshaft signals when the ignition switch is in the Run position, it de-energizes both relays. When the relays are de-energized, battery voltage is not supplied to the fuel injector, ignition coil, fuel pump and oxygen sensor heating element.

The ASD relay and fuel pump relay are located in the power distribution center (Fig. 15).

AUTOMATIC IDLE SPEED (AIS) MOTORÐENGINE CONTROLLER OUTPUT

The idle speed stepper (AIS) motor is mounted on the throttle body. The engine controller operates the AIS motor (Fig. 13). The engine controller adjusts engine idle speed through the AIS to compensate for engine load or ambient conditions.

The throttle body has an air bypass passage that provides air for the engine at idle (the throttle blade is closed). The AIS motor pintle protrudes into the air bypass passage and regulates air flow through it.

The engine controller adjusts engine idle speed by moving the AIS motor pintle in and out of the bypass passage. The adjustments are based on inputs the controller receives. The inputs are from the throttle position sensor, crankshaft sensor, coolant temperature sensor, and various switch operations (brake, park/neutral, air conditioning). Deceleration die out is also prevented by increasing airflow when the throttle is closed quickly after a driving (speed) condition.

CANISTER PURGE SOLENOIDÐENGINE CONTROLLER OUTPUT

Vacuum for the Evaporative Canister is controlled by the Canister Purge Solenoid (Fig. 16). The solenoid is controlled by the engine controller.

The engine controller operates the solenoid by switching the ground circuit on and off based on engine operating conditions. When energized, the solenoid prevents vacuum from reaching the evaporative canister. When not energized the solenoid allows vacuum to flow to the canister.

The engine controller grounds the purge solenoid. When grounded, the solenoid is energized and vacuum does not operate the evaporative canister valve.

The engine controller removes the ground to the solenoid when the engine reaches a specified temperature and the time delay interval has occurred.

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Fig. 16 Canister Purge Solenoid

When the solenoid is de-energized, vacuum flows to the canister purge valve. Vapors are purged from the canister and flow to the throttle body.

The purge solenoid will also be energized during certain idle conditions, in order to update the fuel delivery calibration.

CHECK ENGINE LAMPÐENGINE CONTROLLER OUTPUT

The Check Engine Lamp comes on each time the ignition key is turned ON and stays on for 3 seconds as a bulb test. The Check Engine Lamp warns the operator that the engine controller has entered a Limp-in mode. During Limp-in Mode, the controller attempts to keep the system operational. The check engine lamp signals the need for immediate service. In limp-in mode, the Engine controller compensates for the failure of certain components that send incorrect signals. The controller substitutes for the incorrect signals with inputs from other sensors.

Signals that can trigger the Check Engine Lamp.

²Coolant Temperature Sensor

²Manifold Absolute Pressure Sensor

²Throttle Position Sensor

²Battery Voltage Input

²An Emission Related System (California vehicles)

²Charging system

The Check Engine Lamp can also display fault codes. Cycle the ignition switch on, off, on, off, on, within five seconds and any fault codes stored in the Engine controller will be displayed. Refer to On Board Diagnostics in the 3.3L and 3.8L Multi-Point Fuel Injection General Diagnosis section of this Group for Fault Code Descriptions.

DIAGNOSTIC CONNECTORÐENGINE CONTROLLER OUTPUT

The diagnostic connector provides the technician with the means to connect the DRB II tester to diagnosis the vehicle.

FUEL SYSTEMS 14 - 143

ELECTRONIC AUTOMATIC TRANSAXLE CONTROLLERÐENGINE CONTROLLER OUTPUT

The engine controller supplies the following information to the electronic automatic transmission controller through the CCD Bus:

²battery temperature

²brake switch input

²coolant temperature

²manifold absolute pressure (MAP)

²speed control information

ELECTRIC EGR TRANSDUCER (EET) SOLENOIDÐENGINE CONTROLLER OUTPUT

The electronic EGR transducer (EET) contains an electrically operated solenoid and a back-pressure transducer (Fig. 17). The engine controller operates the solenoid. The controller determines when to energize the solenoid. Exhaust system back-pressure controls the transducer.

Fig. 17 Electric EGR Transducer (EET) Assembly

When the controller energizes the solenoid, vacuum does not reach the transducer. Vacuum flows to the transducer when the controller de-energizes the solenoid.

When exhaust system back-pressure becomes high enough, it fully closes a bleed valve in the transducer. When the controller de-energizes the solenoid and back-pressure closes the transducer bleed valve, vacuum flows through the transducer to operate the EGR valve.

De-energizing the solenoid, but not fully closing the transducer bleed hole (because of by low backpressure), varies the strength of vacuum applied to the EGR valve. Varying the strength of the vacuum changes the amount of EGR supplied to the engine. This provides the correct amount of exhaust gas recirculation for different operating conditions.

FUEL INJECTORSÐENGINE CONTROLLER OUTPUT

The fuel injectors are electrical solenoids (Fig. 18). The injector contains a pintle that closes off an ori-

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fice at the nozzle end. When electric current is supplied to the injector, the armature and needle move a short distance against a spring, allowing fuel to flow out the orifice. Because the fuel is under high pressure, a fine spray is developed in the shape of a hollow cone. The spraying action atomizes the fuel, adding it to the air entering the combustion chamber. The injectors are positioned in the intake manifold.

Fig. 18 Fuel InjectorÐ3.3L Engine

The fuel injectors are operated by the engine controller. They are energized in a sequential order during all engine operating conditions except start up. The engine controller initially energizes all injectors at the same time. Once the engine controller determines crankshaft position, it begins energizing the injectors in sequence.

The auto shutdown (ASD) relay supplies battery voltage to the injectors. The engine controller provides the ground path for the injectors. By switching the ground path on and off, the controller adjusts injector pulse width. Pulse width is the amount of time the injector is energized. The controller adjusts injector pulse width based on inputs it receives.

IGNITION COILÐENGINE CONTROLLER OUTPUT

The coil assembly consists of 3 molded coils together (Fig. 19). The coil assembly is mounted on the intake manifold. High tension leads route to each cylinder from the coil. The coil fires two spark plugs every power stroke. One plug is the cylinder under compression, the other cylinder fires on the exhaust stroke. The engine controller determines which of the coils to charge and fire at the correct time.

The auto shutdown (ASD) relay provides battery voltage to the ignition coil. The engine controller provides a ground contact (circuit) for energizing the coil. When the controller breaks the contact, the energy in the coil primary transfers to the secondary, causing the spark. The engine controller will de-energize the ASD relay if it does not receive the crankshaft sensor

Fig. 19 Coil PackÐ3.3L Engine

and camshaft sensor inputs. Refer to Auto Shutdown (ASD) Relay/Fuel Pump RelayÐEngine Controller Output in this section for relay operation.

RADIATOR FAN RELAYÐENGINE CONTROLLER OUTPUT

The radiator fan is energized by the engine controller through the radiator fan relay. The radiator fan relay is located on the drivers side fender well near the engine controller (Fig. 15). The controller grounds the radiator fan relay when engine coolant reaches a predetermined temperature or the A/C system head pressure is high.

SPEED CONTROL SOLENOIDSÐENGINE CONTROLLER OUTPUT

The speed control vacuum and vent solenoids are operated by the engine controller. When the engine controller supplies a ground to the vacuum solenoid, the speed control system opens the throttle plate. When the controller supplies a ground to the vent solenoid, the throttle blade closes. The engine controller balances the two solenoids to maintain the set speed. Refer to Group 8H for speed control information.

TACHOMETERÐENGINE CONTROLLER OUTPUT

The engine controller supplies engine RPM to the instrument panel tachometer through the CCD Bus. The CCD Bus is a communications port. Various modules use the CCD Bus to exchange information. Refer to Group 8E for more information.

MODES OF OPERATION

As input signals to the engine controller change, the engine controller adjusts its response to output devices. For example, the engine controller must calculate a different injector pulse width and ignition timing for idle than it does for wide open throttle (WOT). There are several different modes of opera-

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