Vehicle Check/Preparation
Before using the scan tool to carry out any test, refer to the important Safety Notice located at the beginning of this article and the necessary visual checks listed below.
Visual Checks
- Inspect the air cleaner and inlet duct.
- Check all engine vacuum hoses for damage, leaks, cracks, kinks, and proper routing.
- Check the electronic engine control (EEC) system wiring harness for proper connections, bent or broken pins, corrosion, loose wires, and proper routing.
- Check the powertrain control module (PCM), sensors, and actuators for physical damage.
- Check the engine coolant for proper level and mixture.
- Check the transmission fluid level and quality.
- Make all necessary repairs before continuing with the quick test. Refer to «QUICK TEST»(ref-342228-S19787981412009092100000) .
Vehicle Preparation
- Carry out all safety steps required to start and run vehicle tests. Apply the parking brake, place the gear selector lever firmly into the PARK position on automatic transmission vehicles or NEUTRAL on manual transmission vehicles, and block the drive wheels.
- Turn off all electrical loads such as radios, lamps, A/C, blower, and fans.
- Start the engine (if the engine runs) and bring it up to the normal operating temperature before running the quick test.
One Touch Integrated Start System
Some vehicles are equipped with one touch integrated start system. It may be necessary to disable the one touch integrated start system to carry out diagnostic procedures that require extended cranking. Connect the scan tool, access the PCM and select the one touch integrated start system control PID to disable the system.
Generic OBD PID List
An X in the Freeze Frame column denotes both a mode 1 and mode 2 PID (real time and freeze frame).
| Freeze Frame | Acronym | Description | Measurement Units |
|---|---|---|---|
| X | AAT | Ambient Air Temperature | Degrees |
| X | AIR | Secondary Air Status | On/Off |
| X | APP_D | Accelerator Pedal Position D | % |
| X | APP_E | Accelerator Pedal Position E | % |
| X | APP_F | Accelerator Pedal Position F | % |
| X | CATEMP11 | Catalyst Temperature Bank 1, Sensor 1 | Degrees |
| X | CATEMP12 | Catalyst Temperature Bank 1, Sensor 2 | Degrees |
| X | CATEMP21 | Catalyst Temperature Bank 2, Sensor 1 | Degrees |
| X | CATEMP22 | Catalyst Temperature Bank 2, Sensor 2 | Degrees |
| CLR_DST | Distance since codes cleared | Km | |
| CCNT | Continuous DTC Counter | Unitless | |
| X | ECT | Engine Coolant Temperature | Degrees |
| X | EGR_PCT | Commanded EGR | % |
| X | EGR_ERR | EGR Error | % |
| X | EVAP_PCT | Commanded Evaporative Purge | % |
| X | EVAP_VP | Evaporative System Vapor Pressure | Pa |
| X | EQ_RAT | Commanded Equivalence Ratio | Unit |
| X | FUEL SYS1 | Fuel System Feedback Control Status-Bank 1 | OL/CL/OL DRIVE (1) /OL FAULT/ CL FAULT |
| X | FUEL SYS2 | Fuel System Feedback Control Status-Bank 2 | OL/CL/OL DRIVE a /OL FAULT/ CL FAULT |
| IAT | Intake Air Temperature | Degrees | |
| X | LOAD (2) | Calculated Engine Load | % |
| X | LOAD_ABS | Absolute Load Value | % |
| X | LONGFT1 | Current Bank 1 Fuel Trim Adjustment (kamref1) From Stoichiometric Which Is Considered Long Term | % |
| X | LONGFT2 | Current Bank 2 Fuel Trim Adjustment (kamref2) From Stoichiometric Which Is Considered Long Term | % |
| X | MAF | Mass Air Flow Rate | Gm/s-lb/min |
| MIL_DIST | Distance traveled with MIL on | Kilometer | |
| X | O2S11 | Bank 1 Upstream Oxygen Sensor (11) | Volts |
| X | O2S12 | Bank 1 Downstream Oxygen Sensor (12) | Volts |
| X | O2S13 | Bank 1 Downstream Oxygen Sensor (13) | Volts |
| X | O2S21 | Bank 2 Upstream Oxygen Sensor (21) | Volts |
| X | O2S22 | Bank 2 Downstream Oxygen Sensor (22) | Volts |
| X | O2S23 | Bank 2 Downstream Oxygen Sensor (23) | Volts |
| OBDSUP | On Board Diagnostic System | OBD II OBD I OBD Combination of or None | |
| X | PTO | Power Take-Off Status | On/Off |
| X | RPM | Revolutions per Minute | RPM |
| X | RUNTM | Run time | Seconds |
| X | SHRTFT1 | Current Bank Fuel Trim Adjustment (lambse 1) From Stoichiometric Which Is Considered Short Term | % |
| X | SHRTFT2 | Current Bank 2 Fuel Trim Adjustment (lambse 1) From Stoichiometric Which Is Considered Short Term | % |
| X | SPARKADV | Spark Advance Requested | Degrees |
| X | SPARK_ACT | Spark Advance Actual | Degrees |
| X | TAC_PCT | Commanded Throttle Actuator | % |
| X | TP | Throttle Position | % |
| X | TP_R | Relative Throttle Position | % |
| WARM_UPS VSS | Number of warm ups since codes cleared Vehicle Speed Sensor | Units km/h-mph | |
| (1) OL = Open loop, have not satisfied conditions for closed loop. (2) Percent engine load adjusted for atmospheric pressure. CL = Closed loop using HO2S(s) as feedback for fuel control. OL DRIVE = Open loop due to driving conditions (heavy acceleration). OL FAULT = Open loop due to fault with all upstream HO2S sensors. CL FAULT = Closed loop fuel control, but fault with one upstream HO2S sensor on dual bank vehicles. | |||
| (1) | OL = Open loop, have not satisfied conditions for closed loop. |
| (2) | Percent engine load adjusted for atmospheric pressure. |
FREEZE FRAME DATA REFERENCE
Ford PID List
Note. This is not a complete list of Ford PIDs available. This is a list of Ford PIDs in this article.
| Acronym | Description | Ford Units |
|---|---|---|
| ACCS | Air Conditioning Cycling Switch Input | On/Off |
| ACP | A/C Pressure Transducer Sensor | Volts/Pressure |
| ACP_PRESS | A/C Pressure Transducer Sensor | Volts/Pressure |
| AIR | Secondary AIR Pump Control | On/Off |
| AIRF | Secondary AIR Fault Indicator | Yes/No |
| AIRM | Secondary AIR Pump Monitor | On/Off |
| APP | Accelerator Pedal Position | Percent |
| APP1 | Accelerator Pedal Position 1 | Volts |
| APP2 | Accelerator Pedal Position 2 | Volts |
| APP3 | Accelerator Pedal Position 3 | Volts |
| APP_MAXDIFF | Maximum Difference between APP1 and APP2 | Degrees |
| APP_MODE | Accelerator Pedal Position Mode | Pedal position |
| AXLE | Axle Ratio | Ratio |
| B+ | Battery Voltage | Volts |
| BARO | Barometric Pressure Sensor | Frequency/Pressure |
| BOO | Brake Pedal Position (BPP) Switch | On/Off |
| BOO1 | Brake Pedal Position (BPP) Switch | On/Off |
| BOO2 | Brake Pedal Switch (BPS) | On/Off |
| BPA | Brake Pressure Applied (BPA) | On/Off |
| BPP/BOO | Brake Pedal Position (BPP) Switch | On/Off |
| CAT_EVAL | Catalyst Evaluated | Yes/No |
| CCS | Coast Clutch Solenoid Control | On/Off |
| CHT | Cylinder Head Temperature Input | Volt/Degrees F |
| CLRDIST | Distance Since DTCs Cleared | Miles |
| CLRWRMUP | Number of Warm-ups Since DTCs Cleared | Count |
| CPP_BOT | Clutch Pedal At or Near Bottom of Travel | Yes/No |
| CMP_F | Camshaft Position Sensor Fault Mode | Yes/No |
| CPP | Clutch Pedal Position Switch Input | On/Off |
| CPP/PNP | Clutch Pedal Position/Park Neutral Position Switch Input | Neutral/Drive |
| DECHOKE | Crank Fueling Disabled | Yes/No |
| DPFEGR | Differential Pressure Feedback EGR Input | Volts |
| DRIVECNT | Number of Successful Ignition Cycles and Engine Starts | Count |
| DTCCNT | Total Number of Fault Codes | Count |
| ECT | Engine Coolant Temperature Input | Volts/Degrees F |
| EGRMC1F | EGR Motor Control | Yes/No |
| EGRMC2F | EGR Motor Control | Yes/No |
| EGRMC3F | EGR Motor Control | Yes/No |
| EGRMC4F | EGR Motor Control | Yes/No |
| EGRMDSD | Electric EGR Motor Commanded in Steps | On/Off |
| EGRPCT | Commanded EGR | Percent |
| EGRVR | EGR Valve Vacuum Control | Percent |
| EGR_EVAL | EGR Evaluated | Yes/No |
| EGR_STEP | EGR Valve Motor Position | Position |
| EONV_RDY | EVAP Monitor Test Ready At Next Ignition Off | Ready/Not Ready |
| EOT | Engine Oil Temperature Sensor Input | Volts/Degrees F |
| EOT_F | Engine Oil Temperature Sensor Fault | Fault/No Fault |
| EPC | Electronic Pressure Control | KPa/PSI |
| EPC V | Electronic Pressure Control | Volts |
| ETC_ACT | Electronic Throttle Control Actual | Degrees |
| ETC_DSD | Electronic Throttle Control Desired | Degrees |
| ETC_TRIM | Electronic Throttle Control Trim | Degrees |
| EVAP020C | Evaporative Emissions Monitor | Yes/No |
| EVAP020D | Evaporative Emissions Monitor | Allow/Disallow |
| EVAP020R | Evaporative Emissions Monitor | Ready/Not Ready |
| EVAPCP | Evaporative Emissions Canister Purge Fault | Percent/On/Off |
| EVAPCV | Evaporative Emissions Canister Purge Vent Control | Percent/On/Off |
| EVAPCV_F | Evaporative Emissions Canister Purge Vent Fault | Yes/No |
| EVAPPDC | Evaporative Emissions Canister Purge Solenoid Duty Cycle | Frequency / Percent |
| EVAPSOAK | Evaporative Emissions Monitor Soak Conditions are Met | Yes/No |
| EVAPSTA | Evaporative Emissions Monitor Completed Cycle | Status |
| EVAP_EVAL | Evaporative Emissions Monitor Evaluated | Yes/No |
| EVMV | Electronic Vapor Management Valve Commanded Current | Current |
| FAN | Engine cooling fan operation | On/Off |
| FANDC | Variable Speed Fan Duty Cycle | Percent |
| FANSS | Fan Speed Sensor Signal | RPM |
| FANVAR | Variable Speed Fan Output | Percent |
| FANVAR_F | Variable Speed Fan Output Fault | Fault/No Fault |
| FCIL | Fuel Cap Indicator Light | On/Off |
| FLI | Fuel Level Indicator Input | Percent |
| FP | Fuel Pump Duty Cycle | Percent |
| FPM | Fuel Pump Secondary Monitor | Percent/On/Off |
| FRP | Fuel Rail Pressure Input | Volts/Pressure |
| FRP_DSD | Fuel Rail Pressure Desired | Pressure |
| FRT | Fuel Rail Temperature | Degrees F/Volts |
| FTP | Fuel Tank Pressure Input | Volts/Pressure |
| FTP_H2O | Fuel Tank Pressure Input | Pressure |
| FUELPW1 | Injector Pulse Width Bank 1 | Time |
| FUELPW2 | Injector Pulse Width Bank 2 | Time |
| FUELSYS | Fuel System Status | Open/Closed Loop |
| GEAR | Transmission Gear Status | Gear |
| GENCMD | Generator Command | Percent |
| GENMON | Generator Field Signal Monitor | Percent |
| HFC | High Speed Fan Control | On/Off |
| HTR11 | Bank 1 Sensor 1 HO2S Heater Control | On/Off |
| HTR11F | Bank 1 Sensor 1 HO2S Heater Circuit Fault | Yes/No |
| HTR12 | Bank 1 Sensor 2 HO2S Heater Control | On/Off |
| HTR12F | Bank 1 Sensor 2 HO2S Heater Circuit Fault | Yes/No |
| HTR13 | Bank 1 Sensor 3 HO2S Heater Control | On/Off |
| HTR21 | Bank 2 Sensor 1 HO2S Heater Control | On/Off |
| HTR21F | Bank 2 Sensor 1 HO2S Heater Circuit Fault | Yes/No |
| HTR22 | Bank 2 Sensor 2 HO2S Heater Control | On/Off |
| HTR22F | Bank 2 Sensor 2 HO2S Heater Circuit Fault | Yes/No |
| HTRCM11 | Bank 1 Sensor 1 O2S Heater Circuit Current | Current |
| HTRCM12 | Bank 1 Sensor 2 O2S Heater Circuit Current | Current |
| HTRCM21 | Bank 2 Sensor 1 O2S Heater Circuit Current | Current |
| HTRCM22 | Bank 2 Sensor 2 O2S Heater Circuit Current | Current |
| HTRX1 | HO2S Sensor 1 (Upstream) Heater Control | On/Off |
| HTRX2 | HO2S Sensor 2 (Downstream) Heater Control | On/Off |
| HO2S11 | Bank 1 Sensor 1 HO2S Input | Volts |
| HO2S12 | Bank 1 Sensor 2 HO2S Input | Volts |
| HO2S13 | Bank 1 Sensor 3 HO2S Input | Volts |
| HO2S21 | Bank 2 Sensor 1 HO2S Input | Volts |
| HO2S22 | Bank 2 Sensor 2 HO2S Input | Volts |
| IAC | Idle Air Control | Percent |
| IAT | Intake Air Temperature Input | Degrees F/Volts |
| IAT2 | Intake Air Temperature Sensor 2 Input | Degrees F/Volts |
| IGN_R/S | Ignition Switch Run/Start | On/Off |
| IMRC | Intake Manifold Runner Control | On/Off |
| IMRC_F | Intake Manifold Runner Control Fault | Yes/No |
| IMRC1M | Intake Manifold Runner Control Monitor Input Bank 1 | Volts |
| IMRCM | Intake Manifold Runner Control Monitor Input | Volts |
| IMTV | Intake Manifold Tuning Valve Control | Percent |
| INJ1F-8F | Fuel Injector Primary Fault (Cylinders 1-8) | Yes/No |
| INJ9F-10F | Fuel Injector Primary Fault (Cylinders 9 and 10) | Yes/No |
| INJPWR_M | Injectors Circuit Voltage Monitor | Volts |
| ISS_SRC | Intermediate Shaft Speed | Frequency/RPM |
| KNOCK1 | Knock Sensor 1 Signal | Count |
| KNOCK2 | Knock Sensor 2 Signal | Count |
| LFC | Low Speed Fan Control | On/Off |
| LOAD | Calculated Engine Load | Percent |
| LONGFT1 | Long Term Fuel Trim Bank 1 | Percent |
| LONGFT2 | Long Term Fuel Trim Bank 2 | Percent |
| MAF | Mass Airflow Rate Input | Frequency/Volts/Mass Flow |
| MAP | Intake Manifold Absolute Pressure | Frequency/Volts/Pressure |
| MIL | Malfunction Indicator Lamp Control | On/Off |
| MIL_DIS | Distance Since MIL was Activated | Miles |
| MISFIRE | Misfire Status | Yes/No |
| MP_LRN | Learned Misfire Correction Profile | Yes/No |
| NM | Number of Misfires | Count |
| O2BANK1 | Bank 1 O2S Status | Rich/Lean |
| O2BANK2 | Bank 2 O2S Status | Rich/Lean |
| O2S11 | Bank 1 Sensor 1 O2S Input | Volts |
| O2S11_CUR | Bank 1 Sensor 1 Current | Current |
| O2S11_IMPED | O2S11 Sensor Impedance | Volts |
| O2S12 | Bank 1 Sensor 2 O2S Input | Volts |
| O2S21 | Bank 2 Sensor 1 O2S Input | Volts |
| O2S21_CUR | Bank 2 Sensor 1 Current | Current |
| O2S21_IMPED | O2S21 Sensor Impedance | Volts |
| O2S22 | Bank 2 Sensor 2 O2S Input | Volts |
| O2S_EVAL | Oxygen Sensor Circuits Evaluated | Yes/No |
| O2SHTR_EVAL | Oxygen Sensor Heater Circuits Evaluated | Yes/No |
| OD_CANCL | Overdrive Cancel Function | On/Off |
| OSS | Output Shaft Speed | RPM |
| OSS_SRC | Output Shaft Speed | RPM |
| OTS_STAT | One Touch Integrated Start System Status | Enabled/Disabled |
| PATSENABL | Passive Anti-Theft System Status | Enabled/Disabled |
| PCVHC | Positive Crankcase Ventilation Heater Control | Percent |
| PSP | Power Steering Pressure Switch Input | High/Low |
| PSP | Power Steering Pressure Input | Volts |
| PSP_V | Power Steering Pressure Input | Volts |
| PTO | Power Take Off Status Input | On/Off |
| PTOLOAD | Power Take Off Engage Input | Yes/No |
| PTOIR_V | Power Take Off RPM Select Input | Volts |
| PTOIL | Power Take Off Indicator Lamp Output | On/Off |
| RPM | Engine Speed Based Upon CKP Input | RPM |
| RPMDSD | RPM Desired | RPM |
| REV_SW | Transmission Reverse Switch Input | On/Off |
| SCBC | Supercharger Bypass Control | On/Off |
| SHRTFT | Short Term Fuel Trim | Percent |
| SHRTFT1 | Short Term Fuel Trim Bank 1 | Percent |
| SHRTFT2 | Short Term Fuel Trim Bank 2 | Percent |
| SPARKADV | Spark Advance Desired | Degrees |
| SPKDUR_1-8 | Spark Duration (Cylinders 1-8) | Time |
| SSA/SS1 | Shift Solenoid 1 Control | On/Off |
| SSB/SS2 | Shift Solenoid 2 Control | On/Off |
| SSC/SS3 | Shift Solenoid 3 Control | On/Off |
| SSD/SS4 | Shift Solenoid 4 Control | On/Off |
| STRT_RLY | Starter Relay | Enabled/Disabled |
| SYNC | CMP and CKP Synchronized | Yes/No |
| TCC | Torque Converter Clutch Control | Percent |
| TCIL | Transmission Control Indicator Lamp Clutch Control Status | On/Off |
| TCS | Transmission Control Switch (TCS) | Depressed/Not Depressed |
| TCSS | Transfer Case Speed Sensor | MPH |
| TFT | Transmission Fluid Temperature Input | Volts/Degrees F |
| TFTV | Transmission Fluid Temperature Input | Volts |
| TORQUE | Net Torque Into Torque Converter | Torque |
| TP | Throttle Position Input | Volts |
| TPCT | Lowest Closed Throttle Voltage | Volts |
| TP_MAXDIFF | Maximum Angle Difference between TP1 and TP2 | Degrees |
| TP1 | Throttle Position 1 Voltage | Volts |
| TP2 | Throttle Position 2 Voltage | Volts |
| TQ_CNTRL | Torque Fuel/Spark Limiting Status | Text |
| TR | Transmission Selector Position Input Status | Position |
| TR1 | Transmission Range Sensor 1 | Open/Closed |
| TR2 | Transmission Range Sensor 2 | Open/Closed |
| TR3 | Transmission Range Sensor 3 | Open/Closed |
| TR4 | Transmission Range Sensor 4 | Open/Closed |
| TR V | Transmission Selector Position Input Status | Volts |
| TR D | Transmission Selector Position Input Status (Digital) | Binary |
| TRIP_CNT | OBD II Trips Completed | Count |
| TSS | Turbine Shaft Speed | RPM |
| TSS_SRC | Unfiltered Turbine Shaft Speed | RPM |
| VCTADV | Variable Cam Timing Advance | Degrees |
| VCTADV2 | Variable Cam Timing Advance 2 | Degrees |
| VCTADVERR | Variable Cam Timing Advance Error | Degrees |
| VCTADVERR2 | Variable Cam Timing Advance 2 Error | Degrees |
| VCTDC | Variable Cam Timing Advance Duty Cycle | Percent |
| VCTDC2 | Variable Cam Timing Advance Duty Cycle | Percent |
| VCTSYS | Variable Cam Timing System Status | Open/Closed |
| VPWR | Vehicle Power Voltage | Volts |
| VREF | Vehicle Reference Voltage | Volts |
| VSS | Vehicle Speed | Speed |
| WAC/ACCR | A/C Clutch Command | On/Off |
| WAC_F | WOT A/C Primary Circuit Fault | Yes/No |
FORD PID LIST REFERENCE
Neutral Profile Correction
In order for the misfire detection system to function properly, any mechanical inaccuracies in the crankshaft position (CKP) sensor must be learned by the PCM. This information is stored in non-volatile memory (NVM) in the PCM. It is not cleared when the keep alive memory (KAM) is reset.
Neutral profile learning is accomplished using the scan tool any time a PCM is replaced. It should also be relearned any time the CKP sensor is replaced or major engine repairs have been completed.
To determine if the neutral profile learning has been completed, check the MP_LRN parameter identification (PID) using the scan tool. The PID should read YES if the neutral profile learning has been completed. If the PID reads NO, complete the neutral profile learning prior to diagnosing any misfire DTCs.
Making Changes to the VID Block
A programmed PCM may require changes to be made to certain VID information to accommodate the vehicle hardware. Refer to Module Reprogramming on the scan tool.
Drive Cycle Recommendations
| WARNING | STRICT OBSERVANCE OF POSTED SPEED LIMITS AND ATTENTION TO DRIVING CONDITIONS ARE MANDATORY WHEN PROCEEDING THROUGH THE FOLLOWING DRIVE CYCLES. FAILURE TO FOLLOW THESE INSTRUCTIONS MAY RESULT IN PERSONAL INJURY. |
- Most OBD monitors complete more readily using a steady foot driving style during cruise or acceleration modes. Operating the throttle in a smooth fashion minimizes the time required for monitor completion.
- The fuel tank level should be between 1/2 and 3/4 full with 3/4 full being the most desirable.
- The evaporative monitor can operate only during the first 30 minutes of engine operation. When executing the procedure for this monitor, stay in part throttle mode and drive in a smooth fashion to minimize fuel slosh.
- When bypassing the EVAP engine soak times, the PCM must remain powered (ignition ON) after clearing the continuous DTCs and relearning emission diagnostic information.
For best results, follow each of the following steps as accurately as possible
| OBD Monitor Exercised | Drive Cycle Procedure | Purpose of Drive Cycle Procedure |
|---|---|---|
| Drive Cycle Preparation | NOTE: To bypass the EVAP soak timer (normally 6 hours), the PCM must remain powered after clearing the continuous DTCs and resetting the emission monitors information in the PCM. Install the scan tool. Turn the ignition on with the engine off. Cycle the ignition off, then on. If needed, select the appropriate vehicle and engine qualifier. Clear the continuous DTCs and reset the emission monitors information in the PCM. | Bypasses the engine soak timer. Resets the OBD monitor status. |
| 2. Begin to monitor the following PIDs (if available): ECT, EVAPDC, FLI and TP MODE. Start the vehicle without returning the ignition to the OFF position. 3. Idle the vehicle for 15 seconds. Drive at 64 km/h (40 mph) until the engine coolant temperature (ECT) is at least 76.7°C (170°F). | Executes SEC AIR flow check monitor (if applicable). | |
| Prep for Monitor Entry | 4. Is the intake air temperature (IAT) between 4.4 to 37.8°C (40 to 100°F)? If not, complete the following steps, but note that step 14 is required to bypass the EVAP/secondary AIR monitor and clear DTC P1000. | Engine warm-up and provides IAT input to the PCM. |
| HEGO | 5. Cruise at 64 km/h (40 mph) for at least 5 minutes. | Executes the HO2S monitor. |
| EVAP | 6. Cruise at 64 to 89 km/h (40 to 55 mph) for 10 minutes (avoid sharp turns and hills). NOTE: To initiate the monitor, the throttle should be at part throttle, EVAPDC must be greater than 75%, and FLI must be between 15 and 85%, and for fuel tanks over 25 gallons FLI must be between 30 and 85%. | Executes the EVAP monitor if the IAT is between 4.4 to 37.8°C (40 to 100°F). |
| Catalyst | 7. Drive in stop and go traffic conditions. Include 5 different constant cruise speeds, ranging from 32 to 89 km/h (20 to 55 mph) over a 10 minute period. | Executes the catalyst monitor. |
| EGR | 8. From a stop, accelerate to 72 km/h (45 mph) at 1/2 to 3/4 throttle. Repeat 3 times. | Executes the EGR monitor. |
| SEC AIR/CCM (Engine) | 9. Bring the vehicle to a stop. Idle with the transmission in drive (neutral for M/T) for 2 minutes. | Executes the idle air control (IAC) portion of the comprehensive component monitor (CCM) and the SEC AIR functional check (if applicable). |
| CCM (Transmission) | 10. For M/T, accelerate from 0 to 81 km/h (0 to 50 mph), and continue to step 12. For A/T, from a stop and in overdrive, moderately accelerate to 81 km/h (50 mph) and cruise for at least 15 seconds. Stop the vehicle and repeat without overdrive to 64 km/h (40 mph) cruising for at least 30 seconds. While at 64 km/h (40 mph), activate the overdrive, accelerate to 81 km/h (50 mph) and cruise for at least 15 seconds. Stop for at least 20 seconds and repeat step 10 five times. | Executes the transmission portion of the CCM. |
| Misfire and Fuel Monitors | 11. From a stop, accelerate to 97 km/h (60 mph). Decelerate at closed throttle to 64 km/h (40 mph) (no brakes). Repeat this 3 times. | Allows learning for the misfire monitor. |
| Readiness Check | 12. Access the On-Board System Readiness (OBD monitor status) function on the scan tool. Determine whether all non-continuous monitors have completed. If not, go to step 13. | Determines if any monitor has not completed. |
| Pending Code Check and EVAP Monitor Bypass Check | 13. With the scan tool, check for pending codes. Conduct the normal repair procedures for any pending code concern. Otherwise, repeat any incomplete monitor. If the EVAP monitor or SEC AIR monitor is not complete and the IAT was out of the 4.4 to 37.8°C (40 to 100°F) temperature range in step 4, or the altitude is over 2438 m (8000 ft.), the EVAP bypass procedure must be followed. Go to Step 14. | Determines if a pending code is preventing the clearing of DTC P1000. |
| EVAP Monitor Bypass | 14. Park the vehicle for a minimum of 8 hours. Repeat steps 2 through 11. Do not repeat step 1. | Allows the bypass counter to increment to 2. |
| NOTE |
|---|
| To bypass the EVAP soak timer (normally 6 hours), the PCM must remain powered after clearing the continuous DTCs and resetting the emission monitors information in the PCM. |
DIAGNOSTIC PROCEDURE
Recreating the Fault
Recreating the concern is the first step in isolating the cause of the intermittent symptom. A thorough investigation should start with the customer information worksheet located in the back of this article. If freeze frame data is available, it may help in recreating the conditions at the time of a malfunction indicator lamp diagnostic trouble code (MIL DTC). Listed below are some of the conditions for recreating the concern
CONDITIONS TO RECREATE FAULT
| Engine Type Conditions | Non-Engine Type Conditions |
|---|---|
| Engine Temperature | Ambient Temperature |
| Engine RPM | Moisture Conditions |
| Engine Load Engine idle/accel/deceleration | Road Conditions (smooth-bumpy) |
RECREATE FAULT REFERENCE
Accumulating PCM Data
PCM data can be accumulated in a number of ways. This includes circuit measurements with a digital multimeter (DMM) or scan tool parameter identification (PID) data. Acquisition of PCM PID data using a scan tool is one of the easiest ways to gather information. Gather as much data as possible when the concern is occurring to prevent improper diagnosis. Data should be accumulated during different operating conditions and based on the customer description of the intermittent concern. Compare this data with the known good data values located in Typical Diagnostic Reference Values . This requires recording data in 4 conditions for comparison: 1) KOEO, 2) Hot Idle, 3) 48 km/h (30 mph), and 4) 89 km/h (55 mph).
Comparing PCM Data
After the PCM values are acquired, it is necessary to determine the concern area. This typically requires the comparison of the actual values from the vehicle to the typical values from the Typical Diagnostic Reference Values . The charts apply to different vehicle applications (engine, model, transmission).
Analyzing PCM Data
Look for abnormal events or values that are clearly incorrect. Inspect the signals for abrupt or unexpected changes. For example, during a steady cruise most of the sensor values should be relatively stable. Sensors such as throttle position (TP), mass air flow (MAF), and RPM that change abruptly when the vehicle is traveling at a constant speed are clues to a possible concern area.
Look for an agreement in related signals. For example, if the APP1, APP2, or APP3, is changed during acceleration, a corresponding change should occur in idle air control (IAC), RPM, and SPARK ADV PID.
Make sure the signals act in proper sequence. An increase in RPM after the TP1 and TP2 is increased is expected. However, if the RPM increases without a TP1 and TP2 change, a concern may exist.
Scroll through the PID data while analyzing the information. Look for sudden drops or spikes in the values.
Obtain Freeze Frame Data
Freeze frame data is helpful in duplicating and diagnosing adaptive fuel concerns. The data (a snapshot of certain parameter identification (PID) values recorded at the time the DTC is stored in Continuous Memory) is helpful to determine how the vehicle was being driven when the concern occurred, and is especially useful on intermittent concerns. Freeze frame data, in many cases, helps to isolate possible areas of concern as well as rule out others. Refer to FREEZE FRAME DATA for a more detailed description of this data.
Using the LONGFT1 and LONGFT2 (Dual Bank Engines) PIDs
The LONGFT1/2 PIDs are useful for diagnosing fuel trim concerns. A negative PID value indicates that fuel is being reduced to compensate for a rich condition. A positive PID value indicates that fuel is being increased to compensate for a lean condition. It is important to know that there is a separate LONGFT value that is used for each RPM/load point of engine operation. When viewing the LONGFT1/2 PIDs, the values may change a great deal as the engine is operating at different RPM and load points. This is because the fuel system may have learned corrections for fuel delivery concerns that can change as a function of engine RPM and load. The LONGFT1/2 PIDs display the fuel trim currently being used at that RPM and load point. Observing the changes in LONGFT1/2 can help when diagnosing fuel system concerns. For example
- A contaminated mass air flow (MAF) sensor results in matching LONGFT1/2 correction values that are negative at idle (reducing fuel), but positive (adding fuel) at higher RPM and loads.
- LONGFT1 values that differ greatly from LONGFT2 values rule out concerns that are common for both banks (for example, fuel pressure concerns, MAF sensor, etc. can be ruled out).
- Vacuum leaks result in large rich corrections (positive LONGFT1/2 value) at idle, but little or no correction at higher RPM and loads.
- A plugged fuel filter results in no correction at idle, but large rich corrections (positive LONGFT1/2 value) at high RPM and load.
Air Measurement System
With this condition, the engine runs rich or lean of stoichiometric (14.7:1 air/fuel ratio) if the powertrain control module (PCM) is not able to compensate enough to correct for the condition. One possibility is that the mass of air entering the engine is actually greater than what the MAF sensor is indicating to the PCM. For example, with a contaminated MAF sensor, the engine runs lean at higher RPM because the PCM delivers fuel for less air than is actually entering the engine. Examples
- The MAF sensor measurement is inaccurate due to a corroded connector, contaminated or dirty connector. A contaminated MAF sensor typically results in a rich system at low airflows (PCM reduces fuel) and a lean system at high airflows (PCM increases fuel).
Vacuum Leaks/Unmetered Air
With this condition, the engine runs lean of stoichiometric (14.7:1 air/fuel ratio) if the PCM is not able to compensate enough to correct for the condition. This condition is caused by unmetered air entering the engine, or due to a MAF sensor concern. In this situation, the volume of air entering the engine is actually greater than what the MAF sensor is indicating to the PCM. Vacuum leaks are normally most apparent when high manifold vacuum is present (for example, during idle or light throttle). If freeze frame data indicates that the concern occurred at idle, a check for vacuum leaks/unmetered air is the best starting point. Examples
- loose, leaking, or disconnected vacuum lines
- intake manifold gaskets, or O-rings
- throttle body gaskets
- brake booster
- air inlet tube
- stuck/frozen/aftermarket positive crankcase valve (PCV)
- unseated engine oil dipstick
Insufficient Fueling
With this condition, the engine runs lean of stoichiometric (14.7:1 air/fuel ratio) if the PCM is not able to compensate enough to correct for the condition. This condition is caused by a fuel delivery system concern that restricts or limits the amount of fuel being delivered to the engine. This condition is normally apparent as the engine is under a heavy load and at high RPM, when a higher volume of fuel is required. If the freeze frame data indicates that the concern occurs under a heavy load and at higher RPM, a check of the fuel delivery system (checking fuel pressure with engine under a load) is the best starting point. Examples
- low fuel pressure (fuel pump, fuel filter, fuel leaks, restricted fuel supply lines)
- fuel injector concerns
Exhaust System Leaks
In this type of condition, the engine runs rich of stoichiometric (14.7:1 air/fuel ratio) because the fuel control system is adding fuel to compensate for a perceived (not actual) lean condition. This condition is caused by the heated oxygen sensor (HO2S) sensing the oxygen (air) entering the exhaust system from an external source. The PCM reacts to this exhaust leak by increasing fuel delivery. This condition causes the exhaust gas mixture from the cylinder to be rich. Examples
- exhaust system leaks upstream or near the HO2S
- cracked/leaking HO2S boss
- inoperative secondary air injection system
With this condition, the engine runs rich or lean of stoichiometric (14.7:1 air/fuel ratio) if the PCM is not able to compensate enough to correct for the condition. One possibility is that the mass of air entering the engine is actually less than what the MAF sensor is indicating to the PCM. For example, with a contaminated MAF sensor, the engine runs rich at idle because the PCM delivers fuel for more air than is actually entering the engine. Examples
- MAF sensor measurement inaccurate due to a corroded connector, contamination/dirt. A contaminated MAF sensor typically results in a rich system at low airflows (PCM reduces fuel) and a lean system at high airflows (PCM increases fuel).
Fuel System
With this condition, the engine runs rich of stoichiometric (14.7:1 air/fuel ratio), if the PCM is not able to compensate enough to correct for the condition. This situation causes a fuel delivery system that is delivering excessive fuel to the engine.
Examples
- fuel pressure regulator (mechanical returnless fuel systems) causes excessive fuel pressure (system rich at all airflows), fuel pressure is intermittent, going to pump deadhead pressure, then returning to normal after the engine is turned off and restarted.
- fuel injector leaks (injector delivers extra fuel).
- EVAP canister purge valve leak (if the canister is full of vapors, introduces extra fuel).
- fuel rail pressure (FRP) sensor (electronic returnless fuel systems) concern causes the sensor to indicate a lower pressure than actual. The PCM commands a higher duty cycle to the fuel pump driver module (FPDM), causing high fuel pressure (system rich at all airflows).
Air Inlet System
A restriction within any of the following components may be significant enough to affect the ability of the PCM adaptive fuel control.
- air inlet tube
- air cleaner element
- air cleaner assembly
- resonators
- clean air tube
Base Engine
Engine oil contaminated with fuel can contribute to a rich-running engine.