Contents Wiring diagrams Section: Emission Applications All sections

Emissions Control System: Other Dodge Charger V

Emission Applications 17 illustrations ~9723 words

MONITORED COMPONENT

There are several components that will affect vehicle emissions if they malfunction. If one of these components malfunctions the Malfunction Indicator Lamp (Check Engine) will illuminate.

Some of the component monitors are checking for proper operation of the part. Electrically operated components now have input (rationality) and output (functionality) checks as well as continuity tests (opens/shorts). Previously, a component like the Throttle Position sensor (TPS) was checked by the PCM for an open or shorted circuit. If one of these conditions occurred, a DTC was set. Now there is a check to ensure that the component is working. This is done by watching for a TPS indication of a greater or lesser throttle opening than MAP and engine RPM indicate. In the case of the TPS, if engine vacuum is high and engine RPM is 1600 or greater and the TPS indicates a large throttle opening, a DTC will be set. The same applies to low vacuum and 1600 RPM.

Any component that has an associated limp in will set a fault after 1 trip with the malfunction present.

Refer to the Diagnostic Trouble Codes in appropriate ENGINE ELECTRICAL DIAGNOSTICS article for diagnostic procedures.

The following is a list of the monitored components

  1. Catalyst Monitor
  2. Comprehensive Components
  3. EGR (if equipped)
  4. Fuel Control (rich/lean)
  5. Oxygen Sensor Monitor
  6. Oxygen Sensor Heater Monitor
  7. Purge
  8. Misfire
  9. Natural Vacuum Leak Detection (NVLD)

COMPREHENSIVE COMPONENTS

Along with the major monitors, OBD II requires that the diagnostic system monitor any component that could affect emissions levels. In many cases, these components were being tested under OBD I. The OBD I requirements focused mainly on testing emissions-related components for electrical opens and shorts.

However, OBD II also requires that inputs from powertrain components to the PCM be tested for rationality , and that outputs to powertrain components from the PCM be tested for functionality . Methods for monitoring the various Comprehensive Component monitoring include

  1. Circuit Continuity Open Shorted high Shorted to ground
  2. Rationality or Proper Functioning Inputs tested for rationality Outputs tested for functionality

Note. Comprehensive component monitors are continuous. Therefore, enabling conditions do not apply. All will set a DTC and illuminate the MIL in 1- trip.

Input Rationality- While input signals to the PCM are constantly being monitored for electrical opens and shorts, they are also tested for rationality. This means that the input signal is compared against other inputs and information to see if it makes sense under the current conditions.

PCM sensor inputs that are checked for rationality include

  1. Manifold Absolute Pressure (MAP) Sensor
  2. Oxygen Sensor (O2S) (slow response)
  3. Engine Coolant Temperature (ECT) Sensor
  4. Camshaft Position (CMP) Sensor
  5. Vehicle Speed Sensor
  6. Crankshaft Position (CKP) Sensor
  7. Intake Air Temperature (IAT) Sensor
  8. Throttle Position (TPS) Sensor
  9. Ambient/Battery Temperature Sensors
  10. Power Steering Switch
  11. Oxygen Sensor Heater
  12. Engine Controller
  13. Brake Switch
  14. Natural Vacuum Leak Detection (NVLD)
  15. P/N Switch
  16. Trans Controls

Output Functionality- PCM outputs are tested for functionality in addition to testing for opens and shorts. When the PCM provides a voltage to an output component, it can verify that the command was carried out by monitoring specific input signals for expected changes. For example, when the PCM commands the Idle Air Control (IAC) Motor to a specific position under certain operating conditions, it expects to see a specific (target) idle speed (RPM). If it does not, it stores a DTC.

PCM outputs monitored for functionality include

  1. Fuel Injectors
  2. Ignition Coils
  3. Torque Converter Clutch Solenoid
  4. Idle Air Control
  5. Purge Solenoid
  6. EGR Solenoid
  7. Radiator Fan Control
  8. Trans Controls

OXYGEN SENSOR (O2S) MONITOR

DESCRIPTION- Effective control of exhaust emissions is achieved by an oxygen feedback system. The most important element of the feedback system is the O2S. The O2S is located in the exhaust path. Once it reaches operating temperature 300° to 350°C (572° to 662°F), the sensor generates a voltage that is inversely proportional to the amount of oxygen in the exhaust. When there is a large amount of oxygen in the exhaust caused by a lean condition, misfire or exhaust leak, the sensor produces a low voltage, below 450 mV. When the oxygen content is lower, caused by a rich condition, the sensor produces a higher voltage, above 450mV.

The information obtained by the sensor is used to calculate the fuel injector pulse width. The PCM is programmed to maintain the optimum air/fuel ratio. At this mixture ratio, the catalyst works best to remove hydrocarbons (HC), carbon monoxide (CO) and nitrous oxide (NOx) from the exhaust.

The O2S is also the main sensing element for the EGR, Catalyst and Fuel Monitors, and purge.

The O2S may fail in any or all of the following manners

  1. Slow response rate (Big Slope)
  2. Reduced output voltage (Half Cycle)
  3. Heater Performance

Slow Response Rate (Big Slope)- Response rate is the time required for the sensor to switch from lean to rich signal output once it is exposed to a richer than optimum A/F mixture or vice versa. As the PCM adjusts the air/fuel ratio, the sensor must be able to rapidly detect the change. As the sensor ages, it could take longer to detect the changes in the oxygen content of the exhaust gas. The rate of change that an oxygen sensor experiences is called 'Big Slope'. The PCM checks the oxygen sensor voltage in increments of a few milliseconds.

Reduced Output Voltage (Half Cycle)- The output voltage of the O2S ranges from 2.5 to 5 volt. A good sensor can easily generate any output voltage in this range as it is exposed to different concentrations of oxygen. To detect a shift in the A/F mixture (lean or rich), the output voltage has to change beyond a threshold value. A malfunctioning sensor could have difficulty changing beyond the threshold value. Many times the condition is only temporary and the sensor will recover. Under normal conditions the voltage signal surpasses the threshold, and a counter is incriminated by one. This is called the Half Cycle Counter.

Heater Performance- The heater is tested by a separate monitor. Refer to the OXYGEN SENSOR HEATER MONITOR .

OPERATION- As the Oxygen Sensor signal switches, the PCM monitors the half cycle and big slope signals from the oxygen sensor. If during the test neither counter reaches a predetermined value, a malfunction is entered and a Freeze Frame is stored. Only one counter reaching its predetermined value is needed for the monitor to pass.

The Oxygen Sensor Signal Monitor is a two trip monitor that is tested only once per trip. When the Oxygen Sensor fails the test in two consecutive trips, the MIL is illuminated and a DTC is set. The MIL is extinguished when the Oxygen Sensor monitor passes in three consecutive trips. The DTC is erased from memory after 40 consecutive warm-up cycles without test failure.

Enabling Conditions- The following conditions must typically be met for the PCM to run the oxygen sensor monitor

  1. Battery voltage
  2. Engine temperature
  3. Engine run time
  4. Engine run time at a predetermined speed
  5. Engine run time at a predetermined speed and throttle opening
  6. Transmission in gear (automatic only)
  7. Fuel system in Closed Loop
  8. Long Term Adaptive (within parameters)
  9. Power Steering Switch in low PSI (no load)
  10. Engine at idle
  11. Fuel level above 15%
  12. Ambient air temperature
  13. Barometric pressure
  14. Engine RPM within acceptable range of desired idle
  15. Closed throttle speed

Pending Conditions- The Task Manager typically does not run the Oxygen Sensor Signal Monitor if overlapping monitors are running or the MIL is illuminated for any of the following

  1. Misfire Monitor
  2. Front Oxygen Sensor and Heater Monitor
  3. MAP Sensor
  4. Vehicle Speed Sensor
  5. Engine Coolant Temperature Sensor
  6. Throttle Position Sensor
  7. Engine Controller Self Test Faults
  8. Cam or Crank Sensor
  9. Injector and Coil
  10. Idle Air Control Motor
  11. EVAP Electrical
  12. EGR Solenoid Electrical
  13. Intake Air Temperature
  14. 5 Volt Feed

Conflict- The Task Manager does not run the Oxygen Sensor Monitor if any of the following conditions are present

  1. A/C ON (A/C clutch cycling temporarily suspends monitor)
  2. Purge flow in progress
  3. Ethanol content learn is taking place and the ethanol used once flag is set

Suspend- The Task Manager suspends maturing a fault for the Oxygen Sensor Monitor if an of the following are present

  1. Oxygen Sensor Heater Monitor, Priority 1
  2. Misfire Monitor, Priority 2

OXYGEN SENSOR HEATER MONITOR (NGC)

DESCRIPTION- If the Oxygen sensor (O2S) DTC as well as a O2S heater DTC is present, the O2S Heater DTC MUST be repaired first. After the O2S Heater is repaired, verify that the sensor circuit is operating correctly.

The voltage reading taken from the O2S are very temperature sensitive. The readings taken from the O2S are not accurate below 300 degrees C. Heating the O2S is done to allow the engine controller to shift to closed loop control as soon as possible. The heating element used to heat the O2S must be tested to ensure that it is heating the sensor properly. Starting with the introduction on the NGC module the strategy for checking the heater circuit has changed. The heater resistance is checked by the NGC almost immediately after the engine is started. The same O2S heater return pin used to read the heater resistance is capable of detecting an open circuit, a shorted high or shorted low condition.

CATALYST MONITOR

To comply with clean air regulations, vehicles are equipped with catalytic converters. These converters reduce the emission of hydrocarbons, oxides of nitrogen and carbon monoxide.

Normal vehicle miles or engine misfire can cause a catalyst to decay. A meltdown of the ceramic core can cause a reduction of the exhaust passage. This can increase vehicle emissions and deteriorate engine performance, driveability and fuel economy.

The catalyst monitor uses dual oxygen sensors (O2S's) to monitor the efficiency of the converter. The dual O2S strategy is based on the fact that as a catalyst deteriorates, its oxygen storage capacity and its efficiency are both reduced. By monitoring the oxygen storage capacity of a catalyst, its efficiency can be indirectly calculated. The upstream O2S is used to detect the amount of oxygen in the exhaust gas before the gas enters the catalytic converter. The PCM calculates the A/F mixture from the output of the O2S. A low voltage indicates high oxygen content (lean mixture). A high voltage indicates a low content of oxygen (rich mixture).

When the upstream O2S detects a high oxygen condition, there is an abundance of oxygen in the exhaust gas. A functioning converter would store this oxygen so it can use it for the oxidation of HC and CO. As the converter absorbs the oxygen, there will be a lack of oxygen downstream of the converter. The output of the downstream O2S will indicate limited activity in this condition.

As the converter loses the ability to store oxygen, the condition can be detected from the behavior of the downstream O2S. When the efficiency drops, no chemical reaction takes place. This means the concentration of oxygen will be the same downstream as upstream. The output voltage of the downstream O2S copies the voltage of the upstream sensor. The only difference is a time lag (seen by the PCM) between the switching of the O2S's.

To monitor the system, the number of lean-to-rich switches of upstream and downstream O2S's is counted. The ratio of downstream switches to upstream switches is used to determine whether the catalyst is operating properly. An effective catalyst will have fewer downstream switches than it has upstream switches i.e., a ratio closer to zero. For a totally ineffective catalyst, this ratio will be one-to-one, indicating that no oxidation occurs in the device.

The system must be monitored so that when catalyst efficiency deteriorates and exhaust emissions increase to over the legal limit, the MIL (check engine lamp) will be illuminated.

Monitor Operation- To monitor catalyst efficiency, the PCM expands the rich and lean switch points of the heated oxygen sensor. With extended switch points, the air/fuel mixture runs richer and leaner to overburden the catalytic converter. Once the test is started, the air/fuel mixture runs rich and lean and the O2 switches are counted. A switch is counted when an oxygen sensor signal goes from below the lean threshold to above the rich threshold. The number of Rear O2 sensor switches is divided by the number of Front O2 sensor switches to determine the switching ratio.

The test runs for 20 seconds. As catalyst efficiency deteriorated over the life of the vehicle, the switch rate at the downstream sensor approaches that of the upstream sensor. If at any point during the test period the switch ratio reaches a predetermined value, a counter is incriminated by one. The monitor is enabled to run another test during that trip. When the test fails three times, the counter increments to three, a malfunction is entered, and a Freeze Frame is stored. When the counter increments to three during the next trip, the code is matured and the MIL is illuminated. If the test passes the first, no further testing is conducted during that trip.

The MIL is extinguished after three consecutive good trips. The good trip criteria for the catalyst monitor is more stringent than the failure criteria. In order to pass the test and increment one good trip, the downstream sensor switch rate must be less than 80% of the upstream rate (60% for manual transmissions). The failure percentages are 90% and 70% respectively.

Enabling Conditions- The following conditions must typically be met before the PCM runs the catalyst monitor. Specific times for each parameter may be different from engine to engine.

  1. Accumulated drive time
  2. Enable time
  3. Ambient air temperature
  4. Barometric pressure
  5. Catalyst warm-up counter
  6. Engine coolant temperature
  7. Accumulated throttle position sensor
  8. Vehicle speed
  9. MAP
  10. RPM
  11. Engine in closed loop
  12. Fuel level

Pending Conditions

  1. Misfire DTC
  2. Front Oxygen Sensor Response
  3. Front Oxygen Sensor Heater Monitor
  4. Front Oxygen Sensor Electrical
  5. Rear Oxygen Sensor Rationality (middle check)
  6. Rear Oxygen Sensor Heater Monitor
  7. Rear Oxygen Sensor Electrical
  8. Fuel System Monitor
  9. All TPS faults
  10. All MAP faults
  11. All ECT sensor faults
  12. Purge flow solenoid functionality
  13. Purge flow solenoid electrical
  14. All PCM self test faults
  15. All CMP and CKP sensor faults
  16. All injector and ignition electrical faults
  17. Idle Air Control (IAC) motor functionality
  18. Vehicle Speed Sensor
  19. Brake switch
  20. Intake air temperature

Conflict- The catalyst monitor does not run if any of the following are conditions are present

  1. EGR Monitor in progress
  2. Fuel system rich intrusive test in progress
  3. EVAP Monitor in progress
  4. Time since start is less than 60 seconds
  5. Low fuel level
  6. Low ambient air temperature
  7. Ethanol content learn is taking place and the ethanol used once flag is set

Suspend- The Task Manager does not mature a catalyst fault if any of the following are present

  1. Oxygen Sensor Monitor, Priority 1
  2. Upstream Oxygen Sensor Heater, Priority 1
  3. EGR Monitor, Priority 1
  4. EVAP Monitor, Priority 1
  5. Fuel System Monitor, Priority 2
  6. Misfire Monitor, Priority 2

VEHICLE EMISSION CONTROL INFORMATION LABEL

All models have a Vehicle Emission Control Information (VECI) Label. Chrysler permanently attaches the label in the engine compartment. It cannot be removed without defacing information and destroying the label.

The label contains the vehicle's emission specifications and vacuum hose routings. All hoses must be connected and routed according to the label.

TRIP DEFINITION

A "Trip" means vehicle operation (following an engine-off period) of duration and driving mode such that all components and systems are monitored at least once by the diagnostic system. The monitors must successfully pass before the PCM can verify that a previously malfunctioning component is meeting the normal operating conditions of that component. For misfire or fuel system malfunction, the MIL may be extinguished if the fault does not recur when monitored during three subsequent sequential driving cycles in which conditions are similar to those under which the malfunction was first determined.

Anytime the MIL is illuminated, a DTC is stored. The DTC can self erase only after the MIL has been extinguished. Once the MIL is extinguished, the PCM must pass the diagnostic test for the most recent DTC for 40 warm-up cycles (80 warm-up cycles for the Fuel System Monitor and the Misfire Monitor). A warm-up cycle can best be described by the following

  1. The engine must be running
  2. A rise of 40°F in engine temperature must occur from the time when the engine was started
  3. Engine coolant temperature must crossover 160°F
  4. A "driving cycle" that consists of engine start up and engine shut off.

Once the above conditions occur, the PCM is considered to have passed a warm-up cycle. Due to the conditions required to extinguish the MIL and erase the DTC, it is most important that after a repair has been made, all DTCS be erased and the repair verified by running 1 good trip.

NON-MONITORED CIRCUITS

The PCM does not monitor all circuits, systems and conditions that could have malfunctions causing driveability problems. However, problems with these systems may cause the PCM to store diagnostic trouble codes for other systems or components. For example, a fuel pressure problem will not register a fault directly, but could cause a rich/lean condition or misfire. This could cause the PCM to store an oxygen sensor or misfire diagnostic trouble code.

The major non-monitored circuits are listed below along with examples of failures modes that do not directly cause the PCM to set a DTC, but for a system that is monitored.

FUEL PRESSURE

The fuel pressure regulator controls fuel system pressure. The PCM cannot detect a clogged fuel pump inlet filter, clogged in-line fuel filter, or a pinched fuel supply or return line. However, these could result in a rich or lean condition causing the PCM to store an oxygen sensor, fuel system, or misfire diagnostic trouble code.

SECONDARY IGNITION CIRCUIT

The PCM cannot detect an inoperative ignition coil, fouled or worn spark plugs, ignition cross firing, or open spark plug cables. The misfire will however, increase the oxygen content in the exhaust, deceiving the PCM in to thinking the fuel system is too lean. Also see misfire detection. There are DTCS that can detect misfire and Ionization shorts in the secondary ignition circuit, refer to the appropriate ENGINE ELECTRICAL DIAGNOSTICS article for more information.

CYLINDER COMPRESSION

The PCM cannot detect uneven, low, or high engine cylinder compression. Low compression lowers O2 content in the exhaust. Leading to fuel system, oxygen sensor, or misfire detection fault.

EXHAUST SYSTEM

The PCM cannot detect a plugged, restricted or leaking exhaust system. It may set a EGR (if equipped) or Fuel system or O2S fault.

FUEL INJECTOR MECHANICAL MALFUNCTIONS

The PCM cannot determine if a fuel injector is clogged, the needle is sticking or if the wrong injector is installed. However, these could result in a rich or lean condition causing the PCM to store a diagnostic trouble code for either misfire, an oxygen sensor, or the fuel system.

EXCESSIVE OIL CONSUMPTION

Although the PCM monitors engine exhaust oxygen content when the system is in closed loop, it cannot determine excessive oil consumption.

THROTTLE BODY AIR FLOW

The PCM cannot detect a clogged or restricted air cleaner inlet or filter element.

VACUUM ASSIST

The PCM cannot detect leaks or restrictions in the vacuum circuits of vacuum assisted engine control system devices. However, these could cause the PCM to store a MAP sensor diagnostic trouble code and cause a high idle condition.

PCM SYSTEM GROUND

The PCM cannot determine a poor system ground. However, one or more diagnostic trouble codes may be generated as a result of this condition. The module should be mounted to the body at all times, including when diagnostics are performed.

PCM CONNECTOR ENGAGEMENT

The PCM may not be able to determine spread or damaged connector pins. However, it might store diagnostic trouble codes as a result of spread connector pins.

MONITORED SYSTEMS

There are new electronic circuit monitors that check fuel, emission, engine and ignition performance. These monitors use information from various sensor circuits to indicate the overall operation of the fuel, engine, ignition and emission systems and thus the emissions performance of the vehicle.

The fuel, engine, ignition and emission systems monitors do not indicate a specific component problem. They do indicate that there is an implied problem within one of the systems and that a specific problem must be diagnosed.

If any of these monitors detect a problem affecting vehicle emissions, the Malfunction Indicator (Check Engine) Lamp will be illuminated. These monitors generate Diagnostic Trouble Codes that can be displayed with the a scan tool.

The following is a list of the system monitors

  1. EGR Monitor (if equipped)
  2. Misfire Monitor
  3. Fuel System Monitor
  4. Oxygen Sensor Monitor
  5. Oxygen Sensor Heater Monitor
  6. Catalyst Monitor
  7. Evaporative System Leak Detection Monitor

Following is a description of each system monitor, and its DTC.

Refer to the appropriate ENGINE ELECTRICAL DIAGNOSTICS article for diagnostic procedures.

Effective control of exhaust emissions is achieved by an oxygen feedback system. The most important element of the feedback system is the O2S. The O2S is located in the exhaust path. Once it reaches operating temperatures of 300° to 350°C (572° to 662°F), the sensor generates a voltage that is inversely proportional to the amount of oxygen in the exhaust. The information obtained by the sensor is used to calculate the fuel injector pulse width. The PCM is programmed to maintain the optimum air/fuel ratio. At this mixture ratio, the catalyst works best to remove hydrocarbons (HC), carbon monoxide (CO) and nitrous oxide (NOx) from the exhaust.

The O2S is also the main sensing element for the EGR (if equipped), Catalyst and Fuel Monitors.

The O2S may fail in any or all of the following manners

  1. Slow response rate
  2. Reduced output voltage
  3. Dynamic shift
  4. Shorted or open circuits

Response rate is the time required for the sensor to switch from lean to rich once it is exposed to a richer than optimum A/F mixture or vice versa. As the sensor starts malfunctioning, it could take longer to detect the changes in the oxygen content of the exhaust gas.

The output voltage of the O2S ranges from 0 to 1 volt (voltages are offset by 2.5 volts on NGC vehicles). A good sensor can easily generate any output voltage in this range as it is exposed to different concentrations of oxygen. To detect a shift in the A/F mixture (lean or rich), the output voltage has to change beyond a threshold value. A malfunctioning sensor could have difficulty changing beyond the threshold value.

OXYGEN SENSOR HEATER MONITOR

If there is an oxygen sensor (O2S) DTC as well as a O2S heater DTC, the O2S heater fault MUST be repaired first. After the O2S fault is repaired, verify that the heater circuit is operating correctly.

Effective control of exhaust emissions is achieved by an oxygen feedback system. The most important element of the feedback system is the O2S. The O2S is located in the exhaust path. Once it reaches operating temperatures of 300° to 350°C (572° to 662°F), the sensor generates a voltage that is inversely proportional to the amount of oxygen in the exhaust. The information obtained by the sensor is used to calculate the fuel injector pulse width. This maintains a 14.7 to 1 Air Fuel (A/F) ratio. At this mixture ratio, the catalyst works best to remove hydrocarbons (HC), carbon monoxide (CO) and nitrogen oxide (NOx) from the exhaust.

The voltage readings taken from the O2S are very temperature sensitive. The readings are not accurate below 300°C. Heating of the O2S is done to allow the engine controller to shift to closed loop control as soon as possible. The heating element used to heat the O2S must be tested to ensure that it is heating the sensor properly.

The O2S circuit is monitored for a drop in voltage. The sensor output is used to test the heater by isolating the effect of the heater element on the O2S output voltage from the other effects.

EGR MONITOR (if equipped)

The Powertrain Control Module (PCM) performs an on-board diagnostic check of the EGR system.

The EGR monitor is used to test whether the EGR system is operating within specifications. The diagnostic check activates only during selected engine/driving conditions. When the conditions are met, the EGR is turned off (solenoid energized) and the O2S compensation control is monitored. Turning off the EGR shifts the air fuel (A/F) ratio in the lean direction. The O2S data should indicate an increase in the O2 concentration in the combustion chamber when the exhaust gases are no longer recirculated. While this test does not directly measure the operation of the EGR system, it can be inferred from the shift in the O2S data whether the EGR system is operating correctly. Because the O2S is being used, the O2S test must pass its test before the EGR test. Also looks at EGR linear potentiometer for feedback.

MISFIRE MONITOR

Excessive engine misfire results in increased catalyst temperature and causes an increase in HC emissions. Severe misfires could cause catalyst damage. To prevent catalytic convertor damage, the PCM monitors engine misfire.

The Powertrain Control Module (PCM) monitors for misfire during most engine operating conditions (positive torque) by looking at changes in the crankshaft speed. If a misfire occurs the speed of the crankshaft will vary more than normal.

The PCM can detect and compensate for variances in the engine and its components. To learn these variations, the PCM uses the input of the actual crankshaft rotation pattern and ideal crankshaft rotation pattern that has been calibrated into the PCM. The PCM then compares the two patterns. The variation between the two values is the Adaptive Numerator. If the Adaptive Numerator is not learned by the PCM, the misfire monitor will not run and the Multi-Cylinder Displacement System (MDS) will not operate. Without MDS operation, the customer will experience decreased fuel economy. If the customer experiences decrease fuel economy, use the scan tool to ensure that the Adaptive Numerator is learned.

FUEL SYSTEM MONITOR

To comply with clean air regulations, vehicles are equipped with catalytic converters. These converters reduce the emission of hydrocarbons, oxides of nitrogen and carbon monoxide. The catalyst works best when the air fuel (A/F) ratio is at or near the optimum of 14.7 to 1.

The PCM is programmed to maintain the optimum air/fuel ratio. This is done by making short term corrections in the fuel injector pulse width based on the O2S output. The programmed memory acts as a self calibration tool that the engine controller uses to compensate for variations in engine specifications, sensor tolerances and engine fatigue over the life span of the engine. By monitoring the actual air-fuel ratio with the O2S (short term) and multiplying that with the program long-term (adaptive) memory and comparing that to the limit, it can be determined whether it will pass an emissions test. If a malfunction occurs such that the PCM cannot maintain the optimum A/F ratio, then the MIL will be illuminated.

To comply with clean air regulations, vehicles are equipped with catalytic converters. These converters reduce the emission of hydrocarbons, oxides of nitrogen and carbon monoxide.

Normal vehicle miles or engine misfire can cause a catalyst to decay. A meltdown of the ceramic core can cause a reduction of the exhaust passage. This can increase vehicle emissions and deteriorate engine performance, driveability and fuel economy.

The catalyst monitor uses dual oxygen sensors (O2S's) to monitor the efficiency of the converter. The dual O2S's strategy is based on the fact that as a catalyst deteriorates, its oxygen storage capacity and its efficiency are both reduced. By monitoring the oxygen storage capacity of a catalyst, its efficiency can be indirectly calculated. The upstream O2S is used to detect the amount of oxygen in the exhaust gas before the gas enters the catalytic converter. The PCM calculates the A/F mixture from the output of the O2S. A low voltage indicates high oxygen content (lean mixture). A high voltage indicates a low content of oxygen (rich mixture).

When the upstream O2S detects a lean condition, there is an abundance of oxygen in the exhaust gas. A functioning converter would store this oxygen so it can use it for the oxidation of HC and CO. As the converter absorbs the oxygen, there will be a lack of oxygen downstream of the converter. The output of the downstream O2S will indicate limited activity in this condition.

As the converter loses the ability to store oxygen, the condition can be detected from the behavior of the downstream O2S. When the efficiency drops, no chemical reaction takes place. This means the concentration of oxygen will be the same downstream as upstream. The output voltage of the downstream O2S copies the voltage of the upstream sensor. The only difference is a time lag (seen by the PCM) between the switching of the O2S's.

To monitor the system, the number of lean-to-rich switches of upstream and downstream O2S's is counted. The ratio of downstream switches to upstream switches is used to determine whether the catalyst is operating properly. An effective catalyst will have fewer downstream switches than it has upstream switches i.e., a ratio closer to zero. For a totally ineffective catalyst, this ratio will be one-to-one, indicating that no oxidation occurs in the device.

The system must be monitored so that when catalyst efficiency deteriorates and exhaust emissions increase to over the legal limit, the MIL (Check Engine lamp) will be illuminated.

NATURAL VACUUM LEAK DETECTION (NVLD)

The Natural Vacuum Leak Detection (NVLD) system is the next generation evaporative leak detection system that will first be used on vehicles equipped with the Next Generation Controller (NGC). This new system replaces the leak detection pump as the method of evaporative system leak detection. This is to detect a leak equivalent to a 0.020" (0.5 mm) hole. This system has the capability to detect holes of this size very dependably.

The basic leak detection theory employed with NVLD is the "Gas Law". This is to say that the pressure in a sealed vessel will change if the temperature of the gas in the vessel changes. The vessel will only see this effect if it is indeed sealed. Even small leaks will allow the pressure in the vessel to come to equilibrium with the ambient pressure. In addition to the detection of very small leaks, this system has the capability of detecting medium as well as large evaporative system leaks.

The NVLD seals the canister vent during engine off conditions. If the EVAP system has a leak of less than the failure threshold, the evaporative system will be pulled into a vacuum, either due to the cool down from operating temperature or diurnal ambient temperature cycling. The diurnal effect is considered one of the primary contributors to the leak determination by this diagnostic. When the vacuum in the system exceeds about 1" H2O (0.25 kPa), a vacuum switch closes. The switch closure sends a signal to the NGC. The NGC, via appropriate logic strategies (described below), utilizes the switch signal, or lack thereof, to make a determination of whether a leak is present.

The NVLD device is designed with a normally open vacuum switch, a normally closed solenoid, and a seal, which is actuated by both the solenoid and a diaphragm. The NVLD is located on the atmospheric vent side of the canister. The NVLD assembly may be mounted on top of the canister outlet, or in-line between the canister and atmospheric vent filter. The normally open vacuum switch will close with about 1" H2O (0.25 kPa) vacuum in the evaporative system. The diaphragm actuates the switch. This is above the opening point of the fuel inlet check valve in the fill tube so cap off leaks can be detected. Submerged fill systems must have recirculation lines that do not have the in-line normally closed check valve that protects the system from failed nozzle liquid ingestion, in order to detect cap off conditions.

The normally closed valve in the NVLD is intended to maintain the seal on the evaporative system during the engine off condition. If vacuum in the evaporative system exceeds 3" to 6" H2O (0.75 to 1.5 kPa), the valve will be pulled off the seat, opening the seal. This will protect the system from excessive vacuum as well as allowing sufficient purge flow in the event that the solenoid was to become inoperative.

The solenoid actuates the valve to unseal the canister vent while the engine is running. It also will be used to close the vent during the medium and large leak tests and during the purge flow check. This solenoid requires initial 1.5 amps of current to pull the valve open but after 100 ms. will be duty cycled down to an average of about 150 mA for the remainder of the drive cycle.

Another feature in the device is a diaphragm that will open the seal in the NVLD with pressure in the evaporative system. The device will "blow off" at about 0.5" H2O (0.12 kPa) pressure to permit the venting of vapors during refueling. An added benefit to this is that it will also allow the tank to "breathe" during increasing temperatures, thus limiting the pressure in the tank to this low level. This is beneficial because the induced vacuum during a subsequent declining temperature will achieve the switch closed (pass threshold) sooner than if the tank had to decay from a built up pressure.

The device itself has 3 wires: Switch sense, solenoid driver and ground. The NGC utilizes a high-side driver to energize and duty-cycle the solenoid.

HIGH AND LOW LIMITS

The PCM compares input signal voltages from each input device with established high and low limits for the device. If the input voltage is not within limits and other criteria are met, the PCM stores a diagnostic trouble code in memory. Other diagnostic trouble code criteria might include engine RPM limits or input voltages from other sensors or switches that must be present before verifying a diagnostic trouble code condition.

The Powertrain Control Module (PCM) monitors many different circuits in the fuel injection, ignition, emission and engine systems. If the PCM senses a problem with a monitored circuit often enough to indicate an actual problem, it stores a Diagnostic Trouble Code (DTC) in the PCM's memory. If the code applies to a non-emissions related component or system, and the problem is repaired or ceases to exist, the PCM cancels the code after 40 warm-up cycles. Diagnostic trouble codes that affect vehicle emissions illuminate the Malfunction Indicator Lamp (MIL). Refer to MIL Illumination .

Certain criteria must be met before the PCM stores a DTC in memory. The criteria may be a specific range of engine RPM, engine temperature, and/or input voltage to the PCM.

The PCM might not store a DTC for a monitored circuit even though a malfunction has occurred. This may happen because one of the DTC criteria for the circuit has not been met. For example , assume the diagnostic trouble code criteria requires the PCM to monitor the circuit only when the engine operates between 750 and 2000 RPM. Suppose the sensor's output circuit shorts to ground when engine operates above 2400 RPM (resulting in 0 volt input to the PCM). Because the condition happens at an engine speed above the maximum threshold (2000 RPM), the PCM will not store a DTC.

There are several operating conditions for which the PCM monitors and sets DTC's. Refer to MONITORED SYSTEMS , MONITORED COMPONENT , and NON-MONITORED CIRCUITS .

Note. Various diagnostic procedures may actually cause a diagnostic monitor to set a DTC. For instance, pulling a spark plug wire to perform a spark test may set the misfire code. When a repair is completed and verified, use the scan tool to erase all DTCS and extinguish the MIL.

Technicians can display stored DTC's. For obtaining the DTC information, use the Data Link Connector with the scan tool. (Scheme 14)

Scheme 14

Scheme 14: SYSTEM

OBD II MONITOR INFORMATION

Comprehensive Components MonitorMajor Monitors Non Fuel Control & Non MisfireMajor Monitors Fuel Control & misfire
(Includes All Engine Hardware Sensor, Switches, Solenoids, etc.)(Monitors Entire Emission System)(Monitors Entire System)
Most are one trip FaultsMost are Two Trips FaultsTwo Trip Faults
Usually Turns on The Mill and Sets DTC After One FailureTurns On The Mil and Sets DTC after Two Consecutive FailureThe Mil and Sets DTC After Two Consecutive Failure
Priority 3Priority 1 or 3Priority 2 or 4
All Checked For ContinuityDone Stop Test = YesFuel Control Monitor
OpenOxygen Sensor HeaterMonitors Fuel Control
Short To GroundOxygen Sensor ResponseSystem For
Short To VoltageCatalytic ConverterFuel System Lean
Inputs Checked For RationalityEfficiency Except EWMAFuel System Rich
Outputs Checked For FunctionalityUp to 6 test per trip and a one trip fault (SBEC) and two trip fault on (JTEC)Requires 3 Consecutive Fuel System Good Trips to Extinguish the MIL
EGR SystemMisfire Monitor
Evaporative Emission System (purge and leak)Monitors for Engine Misfire At
Non-LDP4 X 1000 RPM Counter (4000 Revs) (Type B)
LDP**200 X 3 (600) RPM counter (Type A)
Requires 3 Consecutive Global Good Trips to Extinguish the MIL*Requires 3 Consecutive Global Good Trips to Extinguish the MIL*Requires 3 Consecutive Global Good Trips to Extinguish the MIL
*40 Warm Up Cycles are required to erase DTCs after the MIL has been extinguished ** Type A misfire is a one trip failure on pre-1999, 2 trip failure on 1999 and later. The MIL will illuminate at the first or second failure, based on MY.

OBD II MONITOR RUN PROCESS

The following procedure has been established to assist DaimlerChrysler Dealer Technicians in the field with enabling and running OBD II Monitors. The order listed in the following procedure is intended to allow the technician to effectively complete each monitor and to set the CARB Readiness Status in the least time possible.

Note. Once the monitor run process has begun, do not turn off the ignition. By turning the ignition key off, monitor enabling conditions will be lost. NVLD Monitor runs after key off. By performing a Battery Disconnect, or Selecting Erase DTCs, the CARB Readiness and all additional OBD II information will be cleared.

Monitor Preliminary Checks

  1. Plug a SCAN TOOL into the vehicle's Data Link Connector (DLC).
  2. Turn the ignition, KEY ON - ENGINE OFF. Watch for MIL lamp illumination during the bulb check. MIL lamp must have illuminated, if not, repair MIL lamp.
  3. On the SCAN TOOL Select #1Stand-alone.
  4. Select No.1 1998-2004 Diagnostics.
  5. Select No.1 Engine.
  6. Select No.2 DTCs and Related Functions.
  7. Select No.1 Read DTCs. Verify that No Emissions Related DTCs are Present. * If an Emissions DTC is Present, the OBD II Monitors may not run and the CARB Readiness will not update. The Emissions related DTC, will need to be repaired, then cleared. By clearing DTCs, the OBD Monitors will need to be run and completed to set the CARB Readiness Status.
  8. Return to Engine Select Function Menu and Select No. 9, OBD II Monitors.
  9. Select No. 3 CARB Readiness Status.

Do all the CARB Readiness Status Locations read YES?

  1. *YES, then all monitors have been completed and this vehicle is ready to be I/M or Emission Tested.
  2. *NO, then the following procedure needs to be followed to run/complete all available monitors.

Note. Only the monitors, which are not YES in the CARB Readiness Status, need to be completed. Specific criteria need to be met for each monitor. Each monitor has a Pre-Test screen to assist in running the monitor. For additional information, refer to the DaimlerChrysler Corporation Technical Training Workbook titled On Board Diagnostics: OBD II/EOBD, part number 81-699-01050. The most efficient order to run the monitors has been outlined below, including suggestions to aid the process.

Natural Vacuum Leak Detection with Purge Monitor

This monitor requires a cool down cycle, usually an overnight soak for at least 8 hours without the engine running. The ambient temperature must decrease overnight - parking the vehicle outside is advised. To run this test the fuel level must be between 15-85% full. For the monitor run conditions select the EVAP MON PRE-TEST in the SCAN TOOL, OBD II Monitors Menu. The Purge monitor will run if the small leak test reports a pass. Criteria for NVLD monitor

  1. Engine off time greater than @ one hour.
  2. Fuel Level between 15% and 85 %.
  3. Start Up ECT and IAT within 10° C (18° F).
  4. Vehicle started and run until Purge Monitor reports a result.

Note. If the vehicle does not report a result and the conditions where correct. It may take up to two weeks to fail the small leak monitor. DO NOT use this test to attempt to determine a fault. Use the appropriate service information procedure for finding a small leak. If there are no faults and the conditions are correct this test will run and report a pass. Note the Small leak test can find leaks less than 10 thousands of an inch. If a small leak is present it takes approximately one week of normal driving to report a failure.

Catalyst / O2 Monitor

With NGC, Catalyst and O2 Monitor information are acquired and processed at the same time. Most vehicles will need to be driven at highway speed (< 50 mph) for a few minutes. Some trucks run the monitor at idle in drive. If the vehicle is equipped with a manual transmission, using 4th gear may assist in meeting the monitor running criteria. For the monitor run conditions, select the BANK 1 CAT MON PRE-TEST in the SCAN TOOL, OBD II Monitors Menu.

EGR Monitor

The EGR monitor now runs in a closed throttle decel or at idle on a warm vehicle. However, it is necessary to maintain the TPS, Map and RPM ranges to allow the monitor to complete itself. For the monitor run conditions, select the EGR PRE-TEST in the SCAN TOOL, OBD II Monitors Menu.

O2 Sensor Heater Monitor

This monitor is now continuously running once the heaters are energized. Pass information will be processed at power down. For the monitor run conditions, select the O2S HEATER MON PRE-TEST in the SCAN TOOL, OBD II Monitors Menu.

Scheme 15

Scheme 15: REMOVAL

The solenoid attaches to a bracket near the right rear of the engine. The solenoid will not operate unless it is installed correctly.

Scheme 16

Scheme 16
  1. Location for 5.7L engine.
  2. Location for 2.7 and 3.5L engine.
  3. Disconnect electrical connector from solenoid.
  4. Disconnect vacuum tubes from solenoid.
  5. Remove solenoid from bracket.

5.7L

  1. Clean out intake manifold opening.
  2. Check condition of two O-rings (2) on PCV valve (1).
  3. Apply engine oil to two O-rings.
  4. Place PCV valve (3) into intake manifold and rotate 90 degrees clockwise for installation.

Scheme 17

Scheme 17: 6.1L
  1. Check condition of PCV valve o-ring (2).
  2. Check condition of PCV valve threads (3). Clean if necessary. The PCV valve (1) is threaded into the right-front corner of the intake manifold.
  3. Install valve (1) into intake manifold.
  4. Install rubber hose (2) to valve.

Scheme 18

Scheme 18: REMOVAL

Scheme 19

Scheme 19

Scheme 20

Scheme 20

Scheme 21

Scheme 21

Scheme 22

Scheme 22

Scheme 23

Scheme 23

Scheme 24

Scheme 24
  1. Disconnect negative battery cable.
  2. Raise vehicle and support.
  3. Remove the right rear tire.
  4. Remove the inner splash shield.
  5. Disconnect the EVAP line.
  6. Unlock and disconnect electrical connector from pump.
  7. Remove mounting nut.
  8. Slide assembly forward off of rear mounting brackets.
  9. Make sure that you do not lose the rubber mounts in canister brackets.
  10. Disconnect vapor lines from EVAP canister.
  11. Squeeze connector and pull.
  12. Remove mounting nuts from canister.
  13. Remove vapor canister from bracket.

2.7L - UPPER TUBE

  1. EGR system components and location. Upper tube (2), EGR valve (1), and Lower tube (3).
  2. Disconnect negative battery cable.
  3. Remove purge solenoid from bracket.
  4. Relocate the purge solenoid.
  5. Unlock and disconnect the electrical connector from EGR valve.
  6. Remove upper tube bolts to EGR valve (2).
  7. Remove upper tube from intake manifold.
  8. When removing EGR upper tube assembly being careful not to drop the silicone rubber seals in the intake manifold. Clean gasket surfaces on the EGR valve. Note that any loose dirt can lodge between the pintle and the seat and cause valve leakage that will give a rough idle and depressed manifold vacuum.
  9. Clean mounting surface.

Scheme 25

Scheme 25

Scheme 26

Scheme 26

Scheme 27

Scheme 27
  1. Disconnect negative battery cable.
  2. Remove purge solenoid from bracket.
  3. Relocate the purge solenoid.
  4. Unlock and disconnect the electrical connector from EGR valve.
  5. Remove the wiper module, «(Refer to ELECTRICAL/WIPERS/WASHERS/WIPER MODULE - REMOVAL)»(ref-255937-S13480458892007060500000) .
  6. Remove shock tower brace and relocate.
  7. Remove the upper intake manifold, «(Refer to ENGINE/MANIFOLDS/INTAKE MANIFOLD - REMOVAL)»(ref-255939-S28469798812007060500000) . 1 - TUBE 2 - EGR VALVE
  8. EGR valve (2) and tube (1).
  9. Remove tube bolts (1) to EGR valve (2).
  10. Remove tube (1) from intake manifold.
  11. When removing EGR upper tube assembly being careful not to drop the silicone rubber seals in the intake manifold. Clean gasket surfaces on the EGR valve. Note that any loose dirt can lodge between the pintle and the seat and cause valve leakage that will give a rough idle and depressed manifold vacuum.
  12. Clean mounting surface.

2.7L - LOWER TUBE

  1. Clean mounting surface.
  2. Install the lower tube to vehicle.
  3. Install the lower tube bolts to EGR valve.
  4. Install the lower tube bolts to exhaust manifold.
  5. Tighten the lower tube to EGR valve bolts to 11 N.m (95 in. lbs.) torque.
  6. Tighten the lower tube to exhaust manifold bolts to 31 N.m (275 in. lbs.) torque.
  7. Connect the electrical connector to EGR valve and lock.
  8. Relocate the purge solenoid.
  9. Install purge solenoid to bracket.
  10. Connect negative battery cable.
  1. Clean mounting surface.
  2. Inspect rubber silicone seals on intake manifold end of EGR tube.
  3. Install upper tube into the intake manifold, being careful that the silicone rubber seals are correctly installed and undamaged.
  4. Install new gasket between the EGR valve and tube and install bolts (2).
  5. Tighten the upper tube to EGR valve bolts to 11 N.m (95 in. lbs.) torque.
  6. Connect the electrical connector to EGR valve and lock.
  7. Relocate the purge solenoid.
  8. Install purge solenoid to bracket.
  9. Connect negative battery cable.

3.5L

1 - TUBE
2 - EGR VALVE
  1. Clean mounting surface.
  2. Inspect rubber silicone seals on intake manifold end of EGR tube.
  3. Install tube into the intake manifold being careful that the silicone rubber seals are correctly installed and undamaged.
  4. Install the tube bolts to EGR valve.
  5. Tighten the EGR tube to EGR valve bolts to 11 N.m (95 in. lbs.) torque.
  6. Connect the electrical connector to EGR valve and lock.
  7. Install upper intake manifold, «(Refer to ENGINE/MANIFOLDS/INTAKE MANIFOLD - INSTALLATION)»(ref-255939-S07530029082007060500000) .
  8. Install the shock tower brace.
  9. Install the wiper module, «(Refer to ELECTRICAL/WIPERS/WASHERS/WIPER MODULE - INSTALLATION)»(ref-255937-S07555034802007060500000) .
  10. Relocate the purge solenoid.
  11. Install purge solenoid to bracket.
  12. Connect negative battery cable.

2.7L

  1. EGR system components and location. Upper tube (2), EGR valve (1), and Lower tube (3).
  2. Disconnect negative battery cable.
  3. Remove purge solenoid from bracket.
  4. Relocate the purge solenoid.
  5. Unlock and disconnect the electrical connector from EGR valve.
  6. Remove the bolts from the EGR tube to exhaust manifold.
  7. Remove the lower tube bolts to EGR valve and remove tube(3).
  8. Remove upper tube bolts to EGR valve (2).
  9. Remove the EGR valve mounting bolts (1).
  10. Remove valve from vehicle.
  11. Clean mounting surface.
  1. Disconnect negative battery cable.
  2. Remove purge solenoid from bracket.
  3. Relocate the purge solenoid.
  4. Unlock and disconnect the electrical connector from EGR valve.
  5. Remove the wiper module, «(Refer to ELECTRICAL/WIPERS/WASHERS/WIPER MODULE - REMOVAL)»(ref-255937-S13480458892007060500000) .
  6. Remove shock tower brace and relocate.
  7. Remove the upper intake manifold, «(Refer to ENGINE/MANIFOLDS/INTAKE MANIFOLD - REMOVAL)»(ref-255939-S28469798812007060500000) . 1 - TUBE 2 - EGR VALVE
  8. EGR valve (2) and tube (1).
  9. Remove tube bolts (1) to EGR valve (3).
  10. Remove tube (1) from intake manifold.
  11. When removing EGR upper tube assembly being careful not to drop the silicone rubber seals in the intake manifold. Clean gasket surfaces on the EGR valve. Note that any loose dirt can lodge between the pintle and the seat and cause valve leakage that will give a rough idle and depressed manifold vacuum.
  12. Remove EGR valve mounting bolts (2).
  13. Remove EGR valve from vehicle.
  14. Clean mounting surface.

Scheme 28

Scheme 28: 5.7L

The electronic EGR valve and solenoid assembly (3) is attached to the front of the right cylinder head (1). An exhaust gas routing tube connects the EGR valve to the intake manifold.

Scheme 29

Scheme 29
  1. Disconnect electrical connector (1) from EGR solenoid (2).
  2. Remove two bolts (3) connecting EGR tube (4) to valve assembly.
  3. Remove gasket located between EGR tube flange and EGR valve assembly.
  4. Remove two mounting bolts (2).
  5. Separate valve assembly (3) from cylinder head (1).
  6. Remove and discard metal gasket located between cylinder head and valve assembly.

Scheme 30

Scheme 30: 3.0L - DIESEL
1 - EXHAUST GAS RECIRCULATION (EGR) VALVE
2 - MAIN ENGINE WIRING HARNESS
3 - FUEL INJECTOR WIRING HARNESS
4 - LEFT FUEL RAIL
  1. Disconnect the negative battery cable.
  2. Remove engine cover.
  3. Disconnect the EGR valve wiring harness connector.
  4. Remove EGR valve retaining bolts and valve, discard the gasket.
  1. Clean mounting surface.
  2. Install EGR valve.
  3. Install the EGR valve mounting bolts (1).
  4. Inspect rubber silicone seals on intake manifold end of EGR tube.
  5. Install upper tube into the intake manifold, being careful that the silicone rubber seals are correctly installed and undamaged.
  6. Install new gasket between the EGR valve and upper tube and install bolts (2).
  7. Install the lower tube to exhaust manifold.
  8. Install new gasket between the EGR valve and lower tube and install bolts (3).
  9. Tighten the lower tube to EGR valve bolts (3) to 11 N.m (95 in. lbs.) torque.
  10. Tighten the lower tube to exhaust manifold bolts to 31 N.m (275 in. lbs.) torque.
  11. Tighten the upper tube to EGR valve bolts (2) to 11 N.m (95 in. lbs.) torque.
  12. Tighten EGR valve to cylinder head bolts (1) to 31 N.m (275 in. lbs.) torque.
  13. Connect the electrical connector to EGR valve and lock.
  14. Relocate the purge solenoid.
  15. Install purge solenoid to bracket.
  16. Connect negative battery cable.
1 - TUBE
2 - EGR VALVE
  1. Clean mounting surface.
  2. Inspect rubber silicone seals on intake manifold end of EGR tube.
  3. Install tube into the intake manifold being careful that the silicone rubber seals are correctly installed and undamaged.
  4. Install new gasket between the EGR valve (3) and tube and install bolts (1).
  5. Tighten the EGR tube to EGR valve bolts to 11 N.m (95 in. lbs.) torque.
  6. Connect the electrical connector to EGR valve and lock.
  7. Install upper intake manifold, «(Refer to ENGINE/MANIFOLDS/INTAKE MANIFOLD - INSTALLATION)»(ref-255939-S07530029082007060500000) .
  8. Install the shock tower brace.
  9. Install the wiper module, «(Refer to ELECTRICAL/WIPERS/WASHERS/WIPER MODULE - INSTALLATION)»(ref-255937-S07555034802007060500000) .
  10. Relocate the purge solenoid.
  11. Install purge solenoid to bracket.
  12. Connect negative battery cable.
  1. Position a new metal gasket between cylinder head (1) and valve assembly (3).
  2. Install two mounting bolts (2) and tighten. Refer to «TORQUE»(ref-255936-S34833616262007060500000) .
  3. Clean EGR tube where it joins EGR valve.
  4. Position new gasket between EGR tube flange and EGR valve assembly.
  5. Install two bolts (3) connecting EGR tube (4) to valve assembly (2). Tighten bolts. Refer to «TORQUE»(ref-255936-S34833616262007060500000) .
  6. Connect electrical connector (1) to EGR solenoid (2).

3.0L - DIESEL

1 - EXHAUST GAS RECIRCULATION (EGR) VALVE
2 - MAIN ENGINE WIRING HARNESS
3 - FUEL INJECTOR WIRING HARNESS
4 - LEFT FUEL RAIL
  1. Clean EGR valve sealing surfaces.
  2. Lubricate the seal and install the EGR valve in intake manifold. Tighten EGR valve retaining bolts to 9 N.m (80 lbs.in).
  3. Connect the EGR valve wiring harness connector.
  4. Install engine cover.
  5. Connect the negative battery cable. «(Refer to ELECTRICAL/BATTERY SYSTEM/CABLES - INSTALLATION)»(ref-255942-S29294330802007060500000)

Pending

Under some situations the Task Manager will not run a monitor if the MIL is illuminated and a fault is stored from another monitor. In these situations, the Task Manager postpones monitors pending resolution of the original fault. The Task Manager does not run the test until the problem is remedied.

For example, when the MIL is illuminated for an Oxygen Sensor fault, the Task Manager does not run the Catalyst Monitor until the Oxygen Sensor fault is remedied. Since the Catalyst Monitor is based on signals from the Oxygen Sensor, running the test would produce inaccurate results.

Conflict

There are situations when the Task Manager does not run a test if another monitor is in progress. In these situations, the effects of another monitor running could result in an erroneous failure. If this conflict is present, the monitor is not run until the conflicting condition passes. Most likely the monitor will run later after the conflicting monitor has passed.

For example, if the Fuel System Monitor is in progress, the Task Manager does not run the catalyst Monitor. Since both tests monitor changes in air/fuel ratio and adaptive fuel compensation, the monitors will conflict with each other.

Suspend

Occasionally the Task Manager may not allow a two trip fault to mature. The Task Manager will suspend the maturing of a fault if a condition exists that may induce an erroneous failure. This prevents illuminating the MIL for the wrong fault and allows more precise diagnosis.

For example, if the PCM is storing a one trip fault for the Oxygen Sensor and the catalyst monitor, the Task Manager may still run the catalyst Monitor but will suspend the results until the Oxygen Sensor Monitor either passes or fails. At that point the Task Manager can determine if the catalyst system is actually failing or if an Oxygen Sensor is failing.

MIL Illumination

The PCM Task Manager carries out the illumination of the MIL. The Task Manager triggers MIL illumination upon test failure, depending on monitor failure criteria.

The Task Manager Screen shows both a Requested MIL state and an Actual MIL state. When the MIL is illuminated upon completion of a test for a good trip, the Requested MIL state changes to OFF. However, the MIL remains illuminated until the next key cycle. (On some vehicles, the MIL will actually turn OFF during the third good trip) During the key cycle for the third good trip, the Requested MIL state is OFF, while the Actual MIL state is ON. After the next key cycle, the MIL is not illuminated and both MIL states read OFF.

Trip Indicator

The Trip is essential for running monitors and extinguishing the MIL. In OBD II terms, a trip is a set of vehicle operating conditions that must be met for a specific monitor to run. All trips begin with a key cycle.

Good Trip

The Good Trip counters are as follows

  1. Global Good Trip
  2. Fuel System Good Trip
  3. Misfire Good Trip
  4. Alternate Good Trip (appears as a Global Good Trip on scan tool) Comprehensive Components Major Monitor
  5. Warm-Up Cycles

Global Good Trip

To increment a Global Good Trip, the Oxygen sensor and Catalyst efficiency monitors must have run and passed, and 2 minutes of engine run time.

Fuel System Good Trip

To count a good trip (three required) and turn off the MIL, the following conditions must occur

  1. Engine in closed loop
  2. Operating in Similar Conditions Window
  3. Short Term multiplied by Long Term less than threshold
  4. Less than threshold for a predetermined time

If all of the previous criteria are met, the PCM will count a good trip (three required) and turn off the MIL.

Misfire Good Trip

If the following conditions are met the PCM will count one good trip (three required) in order to turn off the MIL

  1. Operating in Similar Condition Window
  2. 1000 engine revolutions with no misfire

Alternate Good Trip

Alternate Good Trips are used in place of Global Good Trips for Comprehensive Components and Major Monitors. If the Task Manager cannot run a Global Good Trip because a component fault is stopping the monitor from running, it will attempt to count an Alternate Good Trip.

The Task Manager counts an Alternate Good Trip for Comprehensive components when the following conditions are met

  1. Two minutes of engine run time, idle or driving
  2. No other faults occur

The Task Manager counts an Alternate Good Trip for a Major Monitor when the monitor runs and passes. Only the Major Monitor that failed needs to pass to count an Alternate Good Trip.

Warm-Up Cycles

Once the MIL has been extinguished by the Good Trip Counter, the PCM automatically switches to a Warm-Up Cycle Counter that can be viewed on the scan tool. Warm-Up Cycles are used to erase DTCs and Freeze Frames. Forty Warm-Up cycles must occur in order for the PCM to self-erase a DTC and Freeze Frame. A Warm-Up Cycle is defined as follows

  1. Engine coolant temperature must start below and rise above 160° F
  2. Engine coolant temperature must rise by 40° F
  3. No further faults occur

Freeze Frame Data Storage

Once a failure occurs, the Task Manager records several engine operating conditions and stores it in a Freeze Frame. The Freeze Frame is considered one frame of information taken by an on-board data recorder. When a fault occurs, the PCM stores the input data from various sensors so that technicians can determine under what vehicle operating conditions the failure occurred.

The data stored in Freeze Frame is usually recorded when a system fails the first time for two trip faults. Freeze Frame data will only be overwritten by a different fault with a higher priority.

CAUTIONErasing DTCs, either with the scan tool; or by disconnecting the battery, also clears all Freeze Frame data.

Similar Conditions Window

The Similar Conditions Window displays information about engine operation during a monitor. Absolute MAP (engine load) and Engine RPM are stored in this window when a failure occurs. There are two different Similar conditions Windows: Fuel System and Misfire.

FUEL SYSTEM

  1. Fuel System Similar Conditions Window - An indicator that 'Absolute MAP When Fuel Sys Fail' and 'RPM When Fuel Sys Failed' are all in the same range when the failure occurred. Indicated by switching from 'NO' to 'YES'.
  2. Absolute MAP When Fuel Sys Fail - The stored MAP reading at the time of failure. Informs the user at what engine load the failure occurred.
  3. Absolute MAP - A live reading of engine load to aid the user in accessing the Similar Conditions Window.
  4. RPM When Fuel Sys Fail - The stored RPM reading at the time of failure. Informs the user at what engine RPM the failure occurred.
  5. Engine RPM - A live reading of engine RPM to aid the user in accessing the Similar Conditions Window.
  6. Adaptive Memory Factor - The PCM utilizes both Short Term Compensation and Long Term Adaptive to calculate the Adaptive Memory Factor for total fuel correction.
  7. Upstream O2S Volts - A live reading of the Oxygen Sensor to indicate its performance. For example, stuck lean, stuck rich, etc.
  8. SCW Time in Window (Similar Conditions Window Time in Window) - A timer used by the PCM that indicates that, after all Similar Conditions have been met, if there has been enough good engine running time in the SCW without failure detected. This timer is used to increment a Good Trip.
  9. Fuel System Good Trip Counter - A Trip Counter used to turn OFF the MIL for Fuel System DTCs. To increment a Fuel System Good Trip, the engine must be in the Similar Conditions Window, Adaptive Memory Factor must be less than calibrated threshold and the Adaptive Memory Factor must stay below that threshold for a calibrated amount of time.
  10. Test Done This Trip - Indicates that the monitor has already been run and completed during the current trip.

MISFIRE

  1. Same Misfire Warm-Up State - Indicates if the misfire occurred when the engine was warmed up (above 160° F).
  2. In Similar Misfire Window - An indicator that 'Absolute MAP When Misfire Occurred' and 'RPM When Misfire Occurred' are all in the same range when the failure occurred. Indicated by switching from 'NO' to 'YES'.
  3. Absolute MAP When Misfire Occurred - The stored MAP reading at the time of failure. Informs the user at what engine load the failure occurred.
  4. Absolute MAP - A live reading of engine load to aid the user in accessing the Similar Conditions Window.
  5. RPM When Misfire Occurred - The stored RPM reading at the time of failure. Informs the user at what engine RPM the failure occurred.
  6. Engine RPM - A live reading of engine RPM to aid the user in accessing the Similar Conditions Window.
  7. Adaptive Memory Factor - The PCM utilizes both Short Term Compensation and Long Term Adaptive to calculate the Adaptive Memory Factor for total fuel correction.
  8. 200 Rev Counter - Counts 0-100 720 degree cycles.
  9. SCW Cat 200 Rev Counter - Counts when in similar conditions.
  10. SCW FTP 1000 Rev Counter - Counts 0-4 when in similar conditions.
  11. Misfire Good Trip Counter - Counts up to three to turn OFF the MIL.