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Engine System - General Information -- E-Series Ford Econoline E250

Mechanical 63 illustrations ~8728 words

SPECIFICATIONS

ItemSpecificationFill Capacity
Dye-Lite® Gasoline Engine Oil Leak Detection Dye 164-R3700 (Rotunda)
High Temperature Retaining Compound Loctite® 620™/Permatex® 62050, or equivalent; obtain locallyWSK-M2G349-A9
Motorcraft® SAE 5W-20 Premium Synthetic Blend Motor Oil (US); Motorcraft® SAE 5W-20 Super Premium Motor Oil (Canada) XO-5W20-QSP (US); CXO-5W20-LSP12 (Canada)WSS-M2C945-A
Threadlock 262 TA-26WSK-M2G351-A6

MATERIAL SPECIFICATIONS

Note. When repairing engines, all parts must be contamination free. If contamination/foreign material is present when repairing an engine, premature engine failure may occur.

Note. Specifications show the expected minimum or maximum condition. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.

Note. If a component fails to meet the specifications, it is necessary to refinish it or install a new component. Wear limits are provided as an aid to determine if the component can be refinished. A new component must be installed when any component fails to meet specifications and cannot be refinished.

Note. This information contains information, steps and procedures that may not be specific to this engine.

This information covers general procedures and diagnosis and testing of the engine system, except for exhaust emission control devices, which are covered in the INTRODUCTION - GASOLINE MODELS .

The engine incorporates the following features: Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.

  1. Crankcase ventilation or breather system
  2. Exhaust emission control system
  3. Evaporative Emission (EVAP) control system

Some engines incorporate a fail-safe cooling system. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.

The engine, fuel system, ignition system, emissions system and exhaust system all affect exhaust emission levels and must be maintained according to the maintenance schedule. Refer to the MAINTENANCE SCHEDULE Guide.

Correct engine identification is required to order parts. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.

For complete vehicle and engine identification codes, refer to IDENTIFICATION CODES .

SPECIAL TOOLS CHART 12 Volt Master UV Diagnostic Inspection Kit 164-R0756 or equivalent (Leak Detector) Dial Indicator Gauge with Holding Fixture 100-002 (TOOL-4201-C) or equivalent EngineEAR 107-R2103 or equivalent EngineEAR/ChassisEAR 107-R2102 or equivalent Oil Pressure Gauge 303-088 (T73L-6600-A) Vacuum/Pressure Tester 164-R0253 or equivalent Vehicle Communication Module (VCM) and Integrated Diagnostic System (IDS) software with appropriate hardware, or equivalent scan tool

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Scheme 1502: Engine

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Scheme 1507
ItemSpecification
Dye-Lite® Gasoline Engine Oil Leak Detection Dye 164-R3700 (Rotunda)
Motorcraft® SAE 5W-20 Premium Synthetic Blend Motor Oil (US); Motorcraft® SAE 5W-20 Super Premium Motor Oil (Canada) XO-5W20-QSP (US); CXO-5W20-LSP12 (Canada)WSS-M2C945-A

MATERIAL SPECIFICATIONS

There are 2 diagnostic paths that can be followed depending on the type of gasoline engine concern. Carry out INSPECTION AND VERIFICATION - ENGINE PERFORMANCE or INSPECTION AND VERIFICATION - NVH .

Inspection and Verification - Engine Performance

  1. Verify the customer concern by operating the engine to duplicate the condition.
  2. Visually inspect for obvious signs of mechanical damage. Refer to the following chart. VISUAL INSPECTION CHART Mechanical Engine coolant leaks Engine oil leaks Fuel leaks Damaged or severely worn parts Loose mounting bolts, studs and nuts
  3. If the inspection reveals obvious concerns that can be readily identified, repair as necessary.
  4. If the cause is not visually evident, connect the scan tool to the Data Link Connector (DLC).
  5. If the scan tool does not communicate with the VCM: check the VCM connection to the vehicle. check the scan tool connection to the VCM. refer to «MODULE COMMUNICATIONS NETWORK»(/ford/econoline-e250/2012-2013/remont/communication-devices/#module-communications-network) , No Power To The Scan Tool, to diagnose no power to the scan tool.
  6. If the scan tool does not communicate with the vehicle: verify the ignition key is in the ON position. verify the scan tool operation with a known good vehicle. refer to «MODULE COMMUNICATIONS NETWORK»(/ford/econoline-e250/2012-2013/remont/communication-devices/#module-communications-network) to diagnose no response from the PCM.
  7. Carry out the network test. If the scan tool responds with no communication for one or more modules, refer to «MODULE COMMUNICATIONS NETWORK»(/ford/econoline-e250/2012-2013/remont/communication-devices/#module-communications-network) . If the network test passes, retrieve and record continuous memory DTCs.
  8. Clear the continuous DTCs and carry out the self-test diagnostics for the PCM.
  9. If the DTCs retrieved are related to the concern, refer to «MULTIFUNCTION ELECTRONIC MODULES»(/ford/econoline-e250/2012-2013/remont/cruise-control-systems/#multifunction-electronic-modules) .
  10. If no DTCs related to the concern are retrieved, GO to «SYMPTOM CHART - ENGINE PERFORMANCE»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-system-general-information-e-series__symptom-chart-engine-performance) .

Inspection and Verification - NVH

  1. NVH symptoms should be identified using the diagnostic tools and techniques that are available. For a list of these techniques, tools, an explanation of their uses and a glossary of common terms, refer to «NOISE, VIBRATION & HARSHNESS»(/ford/econoline-e250/2012-2013/remont/oem-general-information/#noise-vibration-harshness) .
  2. Verify the customer concern by operating the engine to duplicate the condition.
  3. Check the engine oil level and check the oil for contamination. Low engine oil level or contaminated oil are a common cause of engine noise. If the oil is contaminated, the source of contamination must be identified and repair as necessary.
  4. Visually inspect for obvious signs of mechanical damage. Refer to the following chart. VISUAL INSPECTION CHART Mechanical Loose mounting bolts, studs and nuts Damaged or leaking powertrain mounts Damaged or disconnected vacuum hoses Obstruction of cooling fan Obstruction of Front End Accessory Drive (FEAD) Obstruction of Rear End Accessory Drive (READ), if equipped Damaged or disconnected air intake components
  5. If the inspection reveals obvious concerns that can be readily identified, repair as necessary.
  6. If the cause is not visually evident, connect the scan tool to the DLC.
  7. If the scan tool does not communicate with the VCM: check the VCM connection to the vehicle. check the scan tool connection to the VCM. refer to «MODULE COMMUNICATIONS NETWORK»(/ford/econoline-e250/2012-2013/remont/communication-devices/#module-communications-network) , No Power To The Scan Tool, to diagnose no power to the scan tool.
  8. If the scan tool does not communicate with the vehicle: verify the ignition key is in the ON position. verify the scan tool operation with a known good vehicle. refer to «MODULE COMMUNICATIONS NETWORK»(/ford/econoline-e250/2012-2013/remont/communication-devices/#module-communications-network) to diagnose no response from the PCM.
  9. Carry out the network test. If the scan tool responds with no communication for one or more modules, refer to «MODULE COMMUNICATIONS NETWORK»(/ford/econoline-e250/2012-2013/remont/communication-devices/#module-communications-network) . If the network test passes, retrieve and record continuous memory DTCs.
  10. Clear the continuous DTCs and carry out the self-test diagnostics for the PCM.
  11. If the DTCs retrieved are related to the concern, refer to «MULTIFUNCTION ELECTRONIC MODULES»(/ford/econoline-e250/2012-2013/remont/cruise-control-systems/#multifunction-electronic-modules) .
  12. If no DTCs related to the concern are retrieved, continue the inspection and verification if a noise concern is related to the engine. For vibration concerns and noise concerns such as powertrain mounts, air intake system and starter, GO to «SYMPTOM CHART - NVH»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-system-general-information-e-series__symptom-chart-nvh) .

In some cases, a noise may be a normal characteristic of that engine type. In other cases the noise may require further investigation. Comparing the noise to a similar year/model vehicle equipped with the same engine will aid in determining if the noise is normal or abnormal.

Once a customer concern has been identified as an abnormal engine noise, it is critical to determine the location of the specific noise. Use the EngineEAR/ChassisEAR or stethoscope (the noise will always be louder the closer you get to the noise source) to isolate the location of the noise to one of the following areas.

  1. Fuel injector(s)
  2. Upper end of engine
  3. Lower end of engine
  4. Front of engine
  5. Rear of engine

Fuel injector noise

A common source of an engine ticking noise can be related to the fuel injector(s). This is normal engine noise that can be verified by listening to another vehicle. If the injector noise is excessive or irregular, use the EngineEAR/ChassisEAR or stethoscope to isolate the noise to a specific fuel injector.

Upper end engine noise

A common source of upper end engine noise (ticking, knocking or rattle) include the camshaft(s) and valve train. Upper end engine noise can be determined using the EngineEAR/ChassisEAR or stethoscope on the valve cover bolts. If the noise is loudest from the valve cover bolts, then the noise is upper end. The EngineEAR/ChassisEAR or stethoscope can be used to further isolate the noise to the specific cylinder bank and cylinder. Removal of the valve covers will be required to pinpoint the source of the noise.

Lower end engine noise

A common source of lower end engine noise (ticking or knocking) include the crankshaft, connecting rod(s) and bearings. Lower end noises can be determined by using the oil pan or cylinder block lug bosses. If the noise is loudest from these areas then the noise is lower end. If an engine noise is isolated to the lower end, some disassembly of the engine may be required to inspect for damage or wear.

Front of engine noise

A common source of noise from the front of the engine (squeal, chirp, whine or hoot) is the Front End Accessory Drive (FEAD) components. To isolate FEAD noise, carry out the Engine Accessory Test, refer to NOISE, VIBRATION & HARSHNESS .

Some other noises from the front of the engine (ticking, tapping or rattle) may be internal to the engine. Use the EngineEAR/ChassisEAR or stethoscope on the engine front cover to determine if the noise is internal to the engine. Removal of the engine front cover may be necessary to inspect internal engine components.

Rear of engine noise

A common source of noise from the rear of the engine (knocking) is the flywheel/flexplate. Inspection of the flywheel/flexplate will be necessary.

  1. 13. After localizing the noise, note the characteristics of the noise, including type of noise, frequency and conditions when the noise occurs and GO to «SYMPTOM CHART - NVH»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-system-general-information-e-series__symptom-chart-nvh) .

Symptom Chart - Engine Performance

ConditionPossible SourcesAction
Difficult startingInoperative or damaged ignition system Air or vacuum leak Inoperative or damaged fuel system Inoperative or damaged starting systemRefer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. REFER to the INTRODUCTION - GASOLINE MODELS .
Damaged charging system/batteryREFER to CHARGING SYSTEM .
Burnt valveINSTALL a new valve.
Worn pistonINSTALL a new piston.
Worn piston ringsINSTALL new piston rings.
Worn cylinderINSTALL a new cylinder block.
Damaged head gasketINSTALL a new head gasket.
Inoperative or damaged cooling system (if equipped, fail-safe cooling invoked)Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. REFER to the INTRODUCTION - GASOLINE MODELS .
Poor idlingVacuum leaks Inoperative or damaged EGR systemRefer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. REFER to the INTRODUCTION - GASOLINE MODELS .
Inoperative or damaged ignition systemRefer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Inoperative or damaged cooling system (if equipped, fail-safe cooling invoked) Inoperative or damaged fuel systemRefer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. REFER to the INTRODUCTION - GASOLINE MODELS .
Damaged hydraulic lash adjusterINSTALL a new hydraulic lash adjuster.
Incorrect valve-to-valve seat contactINSTALL a new cylinder head.
Damaged head gasketINSTALL a new head gasket.
Abnormal combustionInoperative or damaged fuel system Air or vacuum leaks EGR system fault Inoperative or damaged cooling system (if equipped, fail-safe cooling invoked) Inoperative or damaged ignition systemRefer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. REFER to the INTRODUCTION - GASOLINE MODELS .
Malfunctioning or damaged air intake systemRefer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. REFER to the INTRODUCTION - GASOLINE MODELS .
Damaged hydraulic lash adjusterINSTALL a new hydraulic lash adjuster.
Burnt or sticking valveREPAIR or INSTALL a new valve.
Weak or broken valve springINSTALL a new valve spring.
Carbon accumulation in combustion chamberELIMINATE carbon buildup.
Excessive oil consumptionLeaking oilREPAIR oil leakage.
Malfunctioning PCV systemREPAIR or INSTALL new necessary components.
Worn valve stem sealINSTALL a new valve stem seal.
Worn valve stem or valve guideINSTALL a new valve and valve guide.
Sticking piston ringsREPAIR or INSTALL new piston rings.
Worn piston ring grooveINSTALL a new piston and piston pin.
Worn piston or cylinderINSTALL a new piston or cylinder block.
Engine noiseLeaking exhaust systemREPAIR exhaust leakage.
Incorrect drive belt tensionREFER to ACCESSORY DRIVE .
Malfunctioning generator bearingRefer to the appropriate information for the procedure.
Malfunctioning water pump bearingREFER to ENGINE COOLING .
Malfunctioning or damaged cooling systemREFER to ENGINE COOLING .
Malfunctioning or damaged fuel systemRefer to the FUEL TANK & FUEL LINES or ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. REFER to the INTRODUCTION - GASOLINE MODELS .
Loose timing chain/beltADJUST or INSTALL a new timing chain/belt.
Damaged timing chain tensionerINSTALL a new timing chain tensioner.
Excessive main bearing clearanceNOTE: Remove the cylinder heads before removing the crankshaft. Failure to do so can result in engine damage. INSTALL a new crankshaft main bearing.
Seized or heat damaged crankshaft main bearingINSTALL a new crankshaft main bearing.
Excessive crankshaft end playINSTALL a new thrust bearing or crankshaft.
Excessive connecting rod bearing clearanceINSTALL a new connecting rod bearing or connecting rod.
Heat damaged connecting rod bearingINSTALL a new connecting rod bearing.
Damaged connecting rod bushingINSTALL a new connecting rod bushing.
Worn cylinderREPAIR or INSTALL a new cylinder block.
Worn piston or piston pinINSTALL a new piston or piston pin.
Damaged piston ringsINSTALL new piston rings.
Bent connecting rodINSTALL a new connecting rod.
Malfunctioning hydraulic lash adjusterINSTALL a new hydraulic lash adjuster.
Broken valve springINSTALL a new valve spring.
Excessive valve guide clearanceADJUST clearance or INSTALL a new valve guide or valve.
Insufficient powerInoperative or damaged ignition system Air intake system blockage Lubrication system blockage Inoperative or damaged fuel systemRefer to the FUEL TANK & FUEL LINES or ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. REFER to the INTRODUCTION - GASOLINE MODELS .
Oil level too highDRAIN oil to correct level.
Incorrect engine oilINSTALL correct specification engine oil.
Excessive accessory drive belt loading Inoperative or damaged cooling system (if equipped, fail-safe cooling invoked)Refer to the FUEL TANK & FUEL LINES or ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. REFER to the INTRODUCTION - GASOLINE MODELS .
Damaged or plugged exhaust systemINSPECT exhaust system.
Incorrect tire sizeREFER to SUSPENSION SYSTEM - GENERAL INFORMATION .
Dragging brakesREFER to BRAKE SYSTEM - GENERAL INFORMATION .
Slipping transmissionRefer to the AUTOMATIC TRANSAXLE/TRANSMISSION - 4R70E/4R75E or AUTOMATIC TRANSAXLE/TRANSMISSION - TORQSHIFT(R) for the procedure.
Malfunctioning hydraulic lash adjusterINSTALL a new hydraulic lash adjuster.
Compression leakage at valve seatREPAIR or INSTALL a new valve, valve seat or cylinder head.
Seized valve stemINSTALL a new valve.
Weak or broken valve springINSTALL a new valve spring.
Worn or damaged camshaftINSTALL a new camshaft.
Damaged head gasketINSTALL a new head gasket.
Cracked or distorted cylinder headINSTALL a new cylinder head.
Damaged, worn or sticking piston ring(s)REPAIR or INSTALL a new piston ring(s).
Worn or damaged pistonINSTALL a new piston and piston pin.
Oil in coolantLeaking head gasket Leaking oil cooler and/or gasket Leaking oil filter adapter and/or gasket Damaged cylinder head Damaged cylinder blockINSPECT the engine components for damage. INSTALL new components as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Coolant in oilLeaking head gasket Leaking oil cooler and/or gasket Leaking oil filter adapter and/or gasket Damaged cylinder head Damaged cylinder blockINSPECT the engine components for damage. INSTALL new components as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
NOTE
Remove the cylinder heads before removing the crankshaft. Failure to do so can result in engine damage.

SYMPTOM CHART - ENGINE PERFORMANCE

Note. NVH symptoms should be identified using the diagnostic tools that are available. For a list of these tools, an explanation of their uses and a glossary of common terms, refer to NOISE, VIBRATION & HARSHNESS . Since it is possible that any one of multiple systems may be the cause of the symptom, it may be necessary to use a process of elimination type of diagnostic approach to pinpoint the responsible system. If this is not the causal system for the symptom, refer back to NOISE, VIBRATION & HARSHNESS for the next likely system and continue diagnosis.

Symptom Chart - NVH

ConditionPossible SourcesAction
Drone type noisePowertrain mount(s)CARRY OUT the Powertrain/Drivetrain Mount Neutralizing procedure in this information.
Drumming noise - occurs inside the vehicle during idle or high idle, hot or cold. Very low-frequency drumming is very RPM dependentEngine vibration excites the body resonances inducing interior noiseCARRY OUT the Powertrain/Drivetrain Mount Neutralizing procedure in this information.
Engine drumming noise - accompanied by vibrationPowertrain mount(s)CARRY OUT the Powertrain/Drivetrain Mount Neutralizing procedure in this information.
Rattle - occurs at idle or at light acceleration from a stopPowertrain mount(s)CHECK the powertrain mounts for damage. INSTALL new mounts as necessary. For engine, Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. For automatic transmission, Refer to the AUTOMATIC TRANSAXLE/TRANSMISSION - 4R70E/4R75E or AUTOMATIC TRANSAXLE/TRANSMISSION - TORQSHIFT(R) for the procedure.
Whine/moan type noise - pitch increases or changes with vehicle speedPowertrain mount(s)CHECK the powertrain mounts for damage. INSTALL new mounts as necessary. For engine, Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. For automatic transmission, Refer to the AUTOMATIC TRANSAXLE/TRANSMISSION - 4R70E/4R75E or AUTOMATIC TRANSAXLE/TRANSMISSION - TORQSHIFT(R) for the procedure.
Clunk - occurs when shifting from PARK or between REVERSE and DRIVEPowertrain mountsCHECK the powertrain/drivetrain mounts for damage. INSTALL new mounts as necessary. For engine, Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. For automatic transmission, Refer to the AUTOMATIC TRANSAXLE/TRANSMISSION - 4R70E/4R75E or AUTOMATIC TRANSAXLE/TRANSMISSION - TORQSHIFT(R) for the procedure.
Idle speed is too highCHECK for the correct idle speed. REFER to INTRODUCTION - GASOLINE MODELS .
Accessory drive bearing hoot - occurs at idle or high idle in cold temperatures of approximately +4°C (+40°F) or colder at the first start of the dayAccessory drive idler or tensioner pulley bearing is experiencing stick/slip between ball bearings and the bearing raceCARRY OUT the engine cold soak procedure. REFER to NOISE, VIBRATION & HARSHNESS . PLACE the EngineEAR probe directly on the idler/tensioner center post or bolt to verify which bearing is making the noise. INSTALL new parts as necessary. REFER to ACCESSORY DRIVE .
Accessory drive belt noise, squeal or chirpingDefective/worn or incorrect accessory drive belt Misaligned pulley(s) Pulley runout Damaged or worn accessory drive component or idler Fluid contamination of the accessory drive belt or pulleys Damaged or worn accessory drive belt tensioner Damaged pulley groovesCARRY OUT the Engine Accessory Test. REFER to NOISE, VIBRATION & HARSHNESS . INSPECT components and INSTALL new parts as necessary. REFER to ACCESSORY DRIVE .
Clunking noiseCoolant pump has excessive end play or imbalanceCHECK the coolant pump for excessive end play. INSPECT the coolant pump for imbalance with the drive belt off. INSTALL a new coolant pump as necessary. REFER to ENGINE COOLING .
Whine or moaning noiseAir intake systemCHECK the air cleaner and ducts for correct fit. INSPECT the air intake system for leaks or damage. REPAIR as necessary. REFER to INTAKE AIR DISTRIBUTION & FILTERING .
Whistling noise - normally accompanied with poor idle conditionAir intake systemCHECK the air intake ducts, Air Cleaner (ACL), Throttle Body (TB) and vacuum hoses for leaks and correct fit. REPAIR or ADJUST as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Hissing noise - occurs during idle or high idle that is apparent with the hood openVacuum leak noiseUSE the Ultrasonic Leak Detector/EngineEAR to locate the source. SCAN the air intake system from the inlet to each cylinder intake port. DISCARD the leaking parts, and INSTALL a new component.
Vehicles with a plastic intake manifoldAcceptable condition. Some plastic manifolds exhibit this noise, which is the effect of the plastic manifold.
Grinding noise - occurs during engine crankingIncorrect starter motor mountingINSPECT the starter motor for correct mounting. REPAIR as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Starter motorCHECK the starter motor. INSTALL a new starter motor as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L or STARTING SYSTEM for the procedure.
Incorrect starter motor drive engagementINSPECT the starter motor drive for wear or damage. INSTALL a new starter motor as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L or STARTING SYSTEM for the procedure. INSPECT the flywheel/flexplate for wear or damage. INSTALL a new flywheel/flexplate as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Engine noise, front of engine - knocking noise from lower front of engineDamaged or separated crankshaft pulley/damperCHECK for obvious signs of damage or wobble during operation. INSTALL new as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Engine noise, front of engine - ticking, tapping or rattling noise from the front of the engineTiming drive componentsREMOVE the accessory drive belt. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. USE the EngineEAR to isolate the noise to the engine front cover. REMOVE the engine front cover and INSPECT the timing drive components. INSTALL new parts as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Engine noise, upper end - ticking noise near the fuel rail and intake manifoldFuel rail clipCHECK for loose or damaged fuel rail clip(s). REPAIR as necessary.
Fuel injectorUSE the EngineEAR to isolate the noisy injector(s). INSTALL new injector(s) as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Engine noise, upper end - ticking, knocking or rattle noise that occurs during idle or high idle during the first cold start of the day and may disappear as the engine warmsValve train noise (bled down lifter/lash adjuster)CARRY OUT the VALVE TRAIN ANALYSIS COMPONENT TEST . INSTALL new parts as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Engine noise, upper end - occurs mostly with a warm engine at light/medium accelerationWorn or damaged spark plugsREMOVE the spark plugs. INSPECT and INSTALL new as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Carbon accumulation in combustion chamberBore scope the cylinder. ELIMINATE carbon buildup.
Engine noise, upper end - rattling noise from the valve train. Worse when the engine is coldLow oil levelCHECK the oil level. FILL as necessary.
Thin or diluted oilINSPECT the oil for contamination. If the oil is contaminated, CHECK for the source. REPAIR as necessary. CHANGE the oil and filter.
Low oil pressureCARRY OUT an OIL PRESSURE TEST . If not within specifications, REMOVE the engine oil pan. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. INSPECT for a blocked oil pick up tube.
Worn valve train componentsCARRY OUT the VALVE TRAIN ANALYSIS COMPONENT TEST . INSTALL new parts as necessary. Refer to the for the procedure.
Worn valve guidesCARRY OUT the VALVE GUIDE INNER DIAMETER PROCEDURE .
Excessive runout of the valve seats on the valve faceCARRY OUT the VALVE SEAT INSPECTION PROCEDURE .
Engine noise, upper end - pinging noiseGasoline octane too lowVERIFY with customer the type of gasoline used. CORRECT as necessary.
Knock Sensor (KS) operationCHECK the KS. INSTALL a new KS as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Incorrect spark timingREFER to the INTRODUCTION - GASOLINE MODELS .
High operating temperatureINSPECT the cooling system for leaks. CHECK the coolant level. REFILL as necessary. CHECK the coolant for the correct mix ratio. DRAIN and REFILL as needed. VERIFY the engine operating temperature is within specifications. REPAIR as necessary. REFER to ENGINE COOLING .
Spark plugCHECK the spark plugs. REPAIR or INSTALL new spark plugs as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Catalytic converterAcceptable noise.
Engine noise, lower end - ticking or knocking noise near the oil filter adapterOil pumpUSE the EngineEAR to verify the oil pump as the source of the noise at low RPM. REPAIR as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Engine noise, lower end - light knocking noise, also described as piston slap. Noise is most noticeable when the engine is cold with light to medium acceleration. The noise disappears as the engine warmsExcessive clearance between the piston and the cylinder wallCARRY OUT the PISTON TO CYLINDER BORE CLEARANCE PROCEDURE .
Engine noise, lower end - light double knock or sharp rap sound. Occurs mostly with a warm engine at idle or low speeds in drive. Increases in relation to engine load. Associated with a poor lubrication historyExcessive clearance between the piston and the piston pinCARRY OUT the PISTON PIN BORE DIAMETER and PISTON PIN DIAMETER PROCEDURES .
Engine noise, lower end - light knocking noise. The noise is most noticeable when the engine is warm. The noise tends to decrease when the vehicle is coasting or in NEUTRALExcessive clearance between the connecting rod bearings and the crankshaftCARRY OUT the CONNECTING ROD BEARING JOURNAL-TO-BEARING CLEARANCE PROCEDURE .
Engine noise, lower end - deep knocking noise. The noise is most noticeable when the engine is warm, at lower RPM and under a light load and then at floatWorn or damaged crankshaft main bearingsCARRY OUT the CRANKSHAFT MAIN BEARING JOURNAL-TO-BEARING CLEARANCE PROCEDURE .
Engine noise, rear of engine - knocking noise at rear of engineDamaged flywheel/flexplateCARRY OUT the FLEXPLATE INSPECTION PROCEDURE .
Engine vibration - vibration felt at all timesExcessive crankshaft pulley runoutCARRY OUT the Engine Accessory Test. INSTALL a new crankshaft pulley as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Damaged or worn accessory componentCARRY OUT the Engine Accessory Test. REPAIR or INSTALL a new component as necessary.
Engine vibration - at idle, a low-frequency vibration (5-20 Hz) or mild shake that is felt through the seat/floorpanCylinder misfireUsing the scan tool, CARRY OUT the cylinder power balance and the relative compression test. REPAIR as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Engine or torque converter out of balanceVERIFY the torque converter to crankshaft pilot clearance is correct. REPAIR as necessary. RE-INDEX the torque converter on the flexplate by 120 degrees for a 3-bolt converter or 180 degrees for a 4-bolt converter. Refer to the AUTOMATIC TRANSAXLE/TRANSMISSION - 4R70E/4R75E or AUTOMATIC TRANSAXLE/TRANSMISSION - TORQSHIFT(R) for the procedure.
Engine vibration - is felt with increases and decreases in engine RPMPowertrain mount(s)CHECK the powertrain mounts for damage. INSTALL new mounts as necessary. For engine, Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure. For automatic transmission, Refer to the AUTOMATIC TRANSAXLE/TRANSMISSION - 4R70E/4R75E or AUTOMATIC TRANSAXLE/TRANSMISSION - TORQSHIFT(R) for the procedure.
Engine or transmission grounded to chassisINSPECT the powertrain/drivetrain for correct clearances. REPAIR as necessary.
Engine vibration - increases intensity as the engine RPM is increasedEngine out-of-balanceCARRY OUT the Neutral Engine Run-Up (NERU) Test. REFER to NOISE, VIBRATION & HARSHNESS . ROTATE the torque converter, 120 degrees for 3-bolt or 180 degrees for 4-bolt. INSPECT the torque converter pilot outer diameter to crankshaft pilot inner diameter. REPAIR as necessary. Refer to the AUTOMATIC TRANSAXLE/TRANSMISSION - 4R70E/4R75E or AUTOMATIC TRANSAXLE/TRANSMISSION - TORQSHIFT(R) for the procedure.
Engine vibration - mostly at coast/neutral coast. Condition improves with vehicle accelerationCombustion instabilityCHECK the ignition system. INSTALL new components as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Engine vibration or shudder - occurs with light to medium acceleration above 56 km/h (35 mph)Worn or damaged spark plugsINSPECT the spark plugs for cracks, high resistance or broken insulators. INSTALL a new spark plug(s) as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Plugged fuel injectorREPAIR or INSTALL a new injector as necessary. Refer to the ENGINE MECHANICAL - 4.6L (2V) or ENGINE MECHANICAL - 5.4L (2V) or ENGINE MECHANICAL - 6.8L for the procedure.
Contaminated fuelINSPECT the fuel for contamination. DRAIN the fuel system and refill.

SYMPTOM CHART - NVH

Component Tests

The following component tests are used to diagnose engine concerns.

Engine Oil Leaks

Note. If an overnight drive is done, the fan air or road air blast may cause erroneous readings.

Note. When diagnosing engine oil leaks, the source and location of the leak must be positively identified prior to repair.

Prior to carrying out this procedure, clean the cylinder block, cylinder heads, valve covers, oil pan and flywheel with a suitable solvent to remove all traces of oil.

Engine Oil Leaks - Fluorescent Oil Additive Method

Use the 12 Volt Master UV Diagnostic Inspection Kit to carry out the following procedure for oil leak diagnosis.

  1. Add 29.6 ml (1 oz) of gasoline engine oil dye to a minimum of 0.47L (1/2 qt) and a maximum of 0.95L (1 qt) engine oil and fill through the engine oil fill. If the oil is not premixed, the gasoline engine oil dye will not have enough time to reach the crankcase, oil galleries and seal surfaces during this particular 15 minute test. The gasoline engine oil dye must be mixed with oil and added through the oil fill. Check the level on the oil level indicator to determine what amount of oil to premix. If it is in the middle of the crosshatch area or below the full mark, use 0.95L (1 qt). If it is at the full mark, use 0.47L (1/2 qt).
  2. Run the engine for 15 minutes. Stop the engine and inspect all seal and gasket areas for leaks using the 12 Volt Master UV Diagnostic Inspection Kit. A clear bright yellow or orange area will identify the leak. For extremely small leaks, several hours may be required for the leak to appear.
  3. At the end of the test, make sure the oil level is within the upper and lower oil indicator marks. Remove oil as necessary if it registers above the full mark.

Leakage Points - Underhood

Examine the following areas for oil leakage

  1. Valve cover gaskets
  2. Cylinder head gaskets
  3. Oil cooler, if equipped
  4. Oil filter adapter
  5. Engine front cover
  6. Oil filter adapter and filter body
  7. Oil level indicator tube connection
  8. Engine Oil Pressure (EOP) sensor

Leakage Points - Under Engine, With Vehicle on Hoist

Examine the following areas for oil leakage

  1. Oil pan gaskets
  2. Oil pan sealer
  3. Engine front cover gasket
  4. Crankshaft front seal
  5. Crankshaft rear oil seal
  6. Oil filter adapter and filter body
  7. Oil cooler, if equipped

Leakage Points - With Transmission and Flywheel Removed

Examine the following areas for oil leakage

  1. Crankshaft rear seal
  2. Rear main bearing cap parting line
  3. Flexplate mounting bolt holes (with flexplate installed)
  4. Pipe plugs at the end of oil passages

Oil leaks at crimped seams in sheet metal parts and cracks in cast or stamped parts can be detected when using the Gasoline Engine Oil Dye method.

Compression Test - Compression Gauge Check

  1. Make sure the oil in the crankcase is of the correct viscosity and at the correct level and that the battery is correctly charged. Operate the vehicle until the engine is at normal operating temperature. Turn the ignition switch to the OFF position, then remove all the spark plugs.
  2. Set the throttle plates in the wide-open position.
  3. Install a compression gauge in the No. 1 cylinder.
  4. Install an auxiliary starter switch in the starting circuit. With the ignition switch in the OFF position, and using the auxiliary starter switch, crank the engine a minimum of 5 compression strokes and record the highest reading. Note the approximate number of compression strokes required to obtain the highest reading.
  5. Repeat the test on each cylinder, cranking the engine approximately the same number of compression strokes.

Compression Test - Test Results

The indicated compression pressures are considered within specification if the lowest reading cylinder is at least 75% of the highest reading. Refer to the COMPRESSION PRESSURE LIMIT CHART .

Scheme 1508

Scheme 1508: Compression Pressure Limit Chart

If one or more cylinders reads low, squirt approximately one tablespoon of engine oil on top of the pistons in the low-reading cylinders. Repeat the compression pressure check on these cylinders.

Compression Test - Interpreting Compression Readings

  1. If compression improves considerably, piston rings are faulty.
  2. If compression does not improve, valves are sticking or seating incorrectly.
  3. If 2 adjacent cylinders indicate low compression pressures and squirting oil on each piston does not increase compression, the head gasket may be leaking between cylinders. Engine oil or coolant in cylinders could result from this condition. Use the Compression Pressure Limit Chart when checking cylinder compression so that the lowest reading is within 75% of the highest reading.

Cylinder Leakage Detection

When a cylinder produces a low reading, use of a cylinder leakage tester will be helpful in pinpointing the exact cause.

The leakage tester is inserted in the spark plug hole, the piston is brought up to dead center on the compression stroke and compressed air is admitted.

Once the combustion chamber is pressurized, the leakage tester gauge will read the percentage of leakage. Leakage exceeding 20% is excessive.

While the air pressure is retained in the cylinder, listen for the hiss of escaping air. A leak at the intake valve will be heard in the Throttle Body (TB). A leak at the exhaust valve can be heard at the tail pipe. Leakage past the piston rings will be audible at the PCV connection. If air is passing through a blown head gasket to an adjacent cylinder, the noise will be evident at the spark plug hole of the cylinder into which the air is leaking. Cracks in the cylinder block or gasket leakage into the cooling system may be detected by a stream of bubbles in the radiator.

Excessive Engine Oil Consumption

Nearly all engines consume oil, which is essential for normal lubrication of the cylinder bore walls and pistons and rings. Determining the level of oil consumption may require testing by recording how much oil is being added over a given set of miles.

Customer driving habits greatly influence oil consumption. Mileage accumulated during towing or heavy loading generates extra heat. Frequent short trips, stop-and-go type traffic or extensive idling prevent the engine from reaching normal operating temperature. This prevents component clearances from reaching specified operating ranges.

The following diagnostic procedure may be utilized to determine internal oil consumption. Make sure that the concern is related to internal oil consumption, and not external leakage, which also consumes oil. Verify there are no leaks before carrying out the test. Once verified, the rate of internal oil consumption can be tested.

A new engine may require extra oil in the early stages of operation. Internal piston-to-bore clearances and sealing characteristics improve as the engine breaks in. Engines are designed for close tolerances and do not require break-in oils or additives. Use the oil specified in the Owner's Literature. Ambient temperatures may determine the oil viscosity specification. Verify that the correct oil is being used for the vehicle in the geographic region in which it is driven.

Basic Pre-checks

  1. For persistent complaints of oil consumption, interview the customer to determine the oil consumption characteristics. If possible, determine the brand and grade of oil currently in the oil pan. Look at the oil filter or oil-change station tags to determine if Ford-recommended maintenance schedules have been followed. Make sure that the oil has been changed at the specified mileage intervals. If vehicle mileage is past the first recommended drain interval, the OEM production filter should have been changed.
  2. Ask how the most current mileage was accumulated. That is, determine whether the vehicle was driven under the following conditions: Extended idling or curbside engine operation Stop-and-go traffic or taxi operation Towing a trailer or vehicle loaded heavily Frequent short trips (engine not up to normal operating temperature) Excessive throttling or high engine-RPM driving
  3. Verify that there are no external leaks. If necessary, review the diagnostic procedure under Engine Oil Leaks in the Diagnosis and Testing portion of this information.
  4. Inspect the crankcase ventilation system for: disconnected hoses at the valve cover or TB. loose or missing valve cover fill cap. missing or incorrectly seated engine oil level indicator. incorrect or dirty PCV valve. a PCV valve grommet unseated in the valve cover (if so equipped).
  5. Inspect for signs of sludge. Sludge affects PCV performance and can plug or restrict cylinder head drainback wells. It can also increase oil pressure by restricting passages and reducing the drainback capability of piston oil control rings. Sludge can result from either excessive water ingestion in the crankcase or operation at extremely high crankcase temperatures.
  6. Inspect the air filter for dirt, sludge or damage. A hole in the filter element will allow unfiltered air to bypass into the air induction system. This can cause premature internal wear (engine dusting), allowing oil to escape past rings, pistons, valves and guides.
  7. If the engine is hot or was recently shut down, wait at least 5 minutes to allow the oil to drain back. Ask the customer if this requirement has been followed. Adding oil without this wait period can cause an overfill condition, leading to excessive oil consumption and foaming which may cause engine damage.
  8. Make sure the oil level indicator (dipstick) is correctly and fully seated in the indicator tube. Remove the oil level indicator and record the oil level.

Detailed Pre-checks

  1. Check the thermostat opening temperature to make sure that the cooling system is operating at the specified temperature. If it is low, internal engine parts are not running at specified internal operating clearances.
  2. Verify the spark plugs are not oil saturated. Oil leaking into one or more cylinders will appear as an oil soaked condition on the plug. If a plug is saturated, a compression check may be necessary at the conclusion of the oil consumption test.

Oil Consumption Test

Once all of the previous conditions are met, carry out an OIL CONSUMPTION TEST.

  1. Drain the engine oil and remove the oil filter. Install a new manufacturer-specified oil filter. Make sure the vehicle is positioned on a level surface. Refill the oil pan to a level one liter (quart) less than the specified fill level, using manufacturer-specified oil.
  2. Run the engine for 3 minutes (if hot) or 10 minutes (if cold). Allow for a minimum 5-minute drainback period and then record the oil level shown on the oil level indicator. Place a mark on the backside of the oil level indicator noting the oil level location.
  3. Add the final 0.95L (1 qt) to complete the normal oil fill. Restart the engine and allow it to idle for 2 minutes. Shut the engine down.
  4. After a 5-minute drainback period, record the location of the oil level again. Mark the oil level indicator with the new oil level location. (Note: Both marks should be very close to the MIN-MAX upper and lower limits or the upper and lower holes on the oil level indicator. These marks will exactly measure the engine's use of oil, with a one quart differential between the new marks.) Demonstrate to the customer that the factory-calibrated marks on the oil level indicator are where the oil should fall after an oil change with the specified fill amount. Explain however, that this may vary slightly between MIN-MAX or the upper and lower holes on the oil level indicator.
  5. Record the vehicle mileage.
  6. Advise the customer that oil level indicator readings must be taken every 320 km (200 mi) or weekly, using the revised marks as drawn. Remind the customer that the engine needs a minimum 5-minute drainback for an accurate reading and that the oil level indicator must be firmly seated in the tube prior to taking the reading.
  7. When the subsequent indicator readings demonstrate a full quart (liter) has been used, record the vehicle mileage. The mileage driven between the 2 readings should not be less than 4, 800 km (3, 000 miles). The drive cycle the vehicle has been operated under must be considered when making this calculation. It may be necessary to have the customer bring the vehicle in for a periodic oil level indicator reading to closely monitor oil usage.

Post Checks, Evaluation and Corrective Action

  1. If test results indicate excessive oil consumption, carry out a cylinder compression test. The cylinder compression test should be carried out with a fully charged battery and all spark plugs removed. See the «COMPRESSION TEST CHART»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-system-general-information-e-series__compression-test-compression-gauge-check) for pressure range limits.
  2. Compression should be consistent across all cylinders. Refer to the «COMPRESSION TESTING PORTION»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-system-general-information-e-series__compression-test-compression-gauge-check) . If compression tested within the specifications found in this information, the excessive oil consumption may be due to wear on the valve guides, valves or valve seals.
  3. A cylinder leak detection test can be carried out using an Engine Cylinder Leak Detection/Air Pressurization Kit. This can help identify valves, piston rings, or worn valve guides/valve stems, inoperative valve stem seals or other related areas as the source of oil consumption. NOTE: An oil-soaked appearance on the porcelain tips of the spark plugs also indicates excessive oil use. A typical engine with normal oil consumption will exhibit a light tan to brown appearance. See «SPARK PLUG ANALYSIS»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-system-general-information-e-series) for details. A single or adjoining, multiple cylinder leak can be traced by viewing the tips.
  4. If an internal engine part is isolated as the root cause, determine if the repair will exceed cost limits and proceed with a repair strategy as required.
  5. Once corrective action to engine is complete and verifying that all pre-check items were eliminated in the original diagnosis, repeat the Oil Consumption Test as described above and verify consumption results.

Intake Manifold Vacuum Test

Bring the engine to normal operating temperature. Connect the Vacuum/Pressure Tester to the intake manifold. Run the engine at the specified idle speed.

The vacuum gauge should read between 51-74 kPa (15-22 in-Hg) depending upon the engine condition and the altitude at which the test is performed. Subtract 4.0193 kPa (1 in-Hg) from the specified reading for every 304.8 m (1, 000 ft) of elevation above sea level.

The reading should be steady. If necessary, adjust the gauge damper control (where used) if the needle is fluttering rapidly. Adjust the damper until the needle moves easily without excessive flutter.

Intake Manifold Vacuum Test - Interpreting Vacuum Gauge Readings

A careful study of the vacuum gauge reading while the engine is idling will help pinpoint trouble areas. Always conduct other appropriate tests before arriving at a final diagnostic decision. Vacuum gauge readings, although helpful, must be interpreted carefully.

Most vacuum gauges have a normal band indicated on the gauge face.

The following are potential gauge readings. Some are normal; others should be investigated further.

Scheme 1509

Scheme 1509: Intake Manifold Vacuum Test - Interpreting Vacuum Gauge Readings
  1. NORMAL READING: Needle between 51-74 kPa (15-22 in-Hg) and holding steady.
  2. NORMAL READING DURING RAPID ACCELERATION AND DECELERATION: When the engine is rapidly accelerated (dotted needle), the needle will drop to a low reading (not to zero). When the throttle is suddenly released, the needle will snap back up to a higher than normal figure.
  3. NORMAL FOR HIGH-LIFT CAMSHAFT WITH LARGE OVERLAP: The needle will register as low as 51 kPa (15 in-Hg), but will be relatively steady. Some oscillation is normal.
  4. WORN RINGS OR DILUTED OIL: When the engine is accelerated (dotted needle), the needle drops to 0 kPa (0 in-Hg). Upon deceleration, the needle runs slightly above 74 kPa (22 in-Hg).
  5. STICKING VALVES: When the needle (dotted) remains steady at a normal vacuum, but occasionally flicks (sharp, fast movement) down and back about 13 kPa (4 in-Hg), one or more valves may be sticking.
  6. BURNED OR WARPED VALVES: A regular, evenly-spaced, downscale flicking of the needle indicates one or more burned or warped valves. Insufficient hydraulic lash adjuster or hydraulic lash adjuster clearance will also cause this reaction.
  7. POOR VALVE SEATING: A small but regular downscale flicking can mean one or more valves are not seating.
  8. WORN VALVE GUIDES: When the needle oscillates over about a 13 kPa (4 in-Hg) range at idle speed, the valve guides could be worn. As engine speed increases, the needle will become steady if guides are responsible.
  9. WEAK VALVE SPRINGS: When the needle oscillation becomes more violent as engine RPM is increased, weak valve springs are indicated. The reading at idle could be relatively steady.
  10. LATE VALVE TIMING: A steady but low reading could be caused by late valve timing.
  11. IGNITION TIMING RETARDING: Retarded ignition timing will produce a steady, but somewhat low, reading.
  12. INSUFFICIENT SPARK PLUG GAP: When spark plugs are gapped too close, a regular, small pulsation of the needle can occur.
  13. INTAKE LEAK: A low, steady reading can be caused by an intake manifold or throttle body gasket leak.
  14. BLOWN HEAD GASKET: A regular drop of fair magnitude can be caused by a blown head gasket or warped cylinder head-to-cylinder block surface.
  15. RESTRICTED EXHAUST SYSTEM: When the engine is first started and is idled, the reading may be normal, but as the engine RPM is increased, the back pressure caused by a clogged muffler, kinked tail pipe or other concerns will cause the needle to slowly drop to 0 kPa (0 in-Hg). The needle then may slowly rise. Excessive exhaust clogging will cause the needle to drop to a low point even if the engine is only idling.
  16. When vacuum leaks are indicated, search out and correct the cause. Excess air leaking into the system will upset the fuel mixture and cause concerns such as rough idle, missing on acceleration or burned valves. If the leak exists in an accessory unit such as the power brake booster, the unit will not function correctly. Always fix vacuum leaks.

Oil Pressure Test

  1. Disconnect and remove the oil pressure sensor from the engine.
  2. Connect the Oil Pressure Gauge to the Engine Oil Pressure (EOP) sender oil galley port.
  3. Run the engine until normal operating temperature is reached.
  4. Run the engine at the specified RPM and record the gauge reading.
  5. The oil pressure should be within specifications; refer to the «SPECIFICATION CHART»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-system-general-information-e-series__specifications) in the appropriate engine information.
  6. If the pressure is not within specification, check the following possible sources: Insufficient oil Oil leakage Worn or damaged oil pump Oil pump screen cover and tube Excessive main bearing clearance Excessive connecting rod bearing clearance

Valve Train Analysis

The following component tests are used to diagnose valve train concerns.

Valve Train Analysis - Engine Off - Valve Cover Removed

Check for damaged or severely worn parts and correct assembly. Make sure correct parts are used with the static engine analysis as follows.

Valve Train Analysis - Engine Off, Camshaft Roller Followers and Hydraulic Lash Adjusters, Overhead Camshaft

  1. Check for loose mounting bolts on camshaft carriers.
  2. Check for plugged oil feed in the camshaft roller followers, lash adjusters or cylinder heads.

Valve Train Analysis - Engine Off, Camshaft - Engines

  1. Check for broken or damaged parts.

Valve Train Analysis - Valve Springs

  1. Check for broken or damaged parts.

Valve Train Analysis - Engine Off, Valve Spring Retainer and Valve Spring Retainer Keys

  1. Check for correct seating of the valve spring retainer key on the valve stem and in valve spring retainer.
  2. Check for correct seating on the valve stem.

Valve Train Analysis - Engine Off, Valves and Cylinder Head

  1. Check for plugged oil drain back holes.
  2. Check for worn or damaged valve tips.
  3. Check for missing or damaged guide-mounted valve stem seal.
  4. Check for damaged hydraulic lash adjuster.
  5. Check installed valve spring height.
  6. Check for missing or worn valve spring seats.
  7. Check for plugged oil metering orifice in cylinder head oil reservoir (if equipped).

Static checks (engine off) are to be made on the engine prior to the dynamic procedure.

Valve Train Analysis - Engine Running, Valves and Cylinder Head

  1. Check for plugged oil drain back holes.
  2. Check for missing or damaged valve stem seals or guide mounted valve stem seals.
  3. Check for a plugged oil metering orifice in the cylinder head oil reservoir.

If insufficient oiling is suspected, check oil passages for blockage, then accelerate the engine to 1, 200 RPM with the transmission in NEUTRAL and the engine at normal operating temperature. Oil should spurt from the rocker arm oil holes such that valve tips and camshaft roller followers are well oiled. With the valve covers off, some oil splash may overshoot camshaft roller followers.

Valve Train Analysis - Camshaft Lobe Lift

Check the lift of each camshaft lobe in consecutive order and make a note of the readings.

Scheme 1510

Scheme 1510: Valve Train Analysis - Camshaft Lobe Lift
  1. Remove the spark plugs.
  2. Install the Dial Indicator Gauge with Holding Fixture so the rounded tip of indicator is on top of the camshaft lobe and on the same plane as the hydraulic lash adjuster.
  3. Rotate the crankshaft using a breaker bar and socket attached to the crankshaft pulley retainer bolt. Rotate the crankshaft until the base circle of the camshaft lobe is reached.
  4. Zero the Dial Indicator Gauge. Continue to rotate the crankshaft until the high-lift point of the camshaft lobe is in the fully-raised position (highest indicator reading).
  5. To check the accuracy of the original indicator reading, continue to rotate crankshaft until the base circle is reached. The indicator reading should be zero. If zero reading is not obtained, repeat Steps 1 through 5 .
  6. If the lift on any lobe is below specified service limits, install a new camshaft and camshaft roller followers.
  7. Install the spark plugs.

Scheme 1511

Scheme 1511: Sprockets
  1. Inspect the sprockets for cracks and worn or chipped teeth.

Camshaft Bearing Journal Diameter

Scheme 1512

Scheme 1512: Camshaft Bearing Journal Diameter
  1. Measure each camshaft journal diameter in 2 directions.

Camshaft Journal to Bearing Clearance - OHC Engines

Scheme 1513

Scheme 1513: Camshaft Journal to Bearing Clearance - OHC Engines
  1. Measure each camshaft bearing in 2 directions. Subtract the camshaft journal diameter from the camshaft bearing diameter.

Camshaft End Play - OHC Engines

SPECIAL TOOLS CHART Dial Indicator Gauge with Holding Fixture 100-002 (TOOL-4201-C) or equivalent

Scheme 1514

Scheme 1514
  1. Using the Dial Indicator Gauge with Holding Fixture, measure the camshaft end play.
  2. Position the camshaft to the rear of the cylinder head.
  3. Zero the Dial Indicator Gauge.
  4. Move the camshaft to the front of the cylinder head. Note and record the camshaft end play. If camshaft end play exceeds specifications, install a new camshaft and recheck end play. If camshaft end play exceeds specification after camshaft installation, install a new cylinder head.

Scheme 1515

Scheme 1515: Camshaft Surface Inspection
  1. Inspect camshaft lobes for pitting or damage in the contact area. Minor pitting is acceptable outside the contact area.

Camshaft Lobe Lift

SPECIAL TOOLS CHART Dial Indicator Gauge with Holding Fixture 100-002 (TOOL-4201-C) or equivalent

Scheme 1516

Scheme 1516
  1. Use the Dial Indicator Gauge with Holding Fixture to measure camshaft intake/exhaust lobe lift. Rotate the camshaft and subtract the lowest Dial Indicator Gauge reading from the highest Dial Indicator Gauge reading to figure the camshaft lobe lift.

Camshaft Runout

SPECIAL TOOLS CHART Dial Indicator Gauge with Holding Fixture 100-002 (TOOL-4201-C) or equivalent

Scheme 1517

Scheme 1517
  1. Using the Dial Indicator Gauge with Holding Fixture, measure the camshaft runout. Camshaft must be supported on the first and last camshaft bearing journal. Rotate the camshaft and subtract the lowest Dial Indicator Gauge reading from the highest Dial Indicator Gauge reading.

Crankshaft Main Bearing Journal Diameter

Scheme 1518

Scheme 1518: Crankshaft Main Bearing Journal Diameter
  1. Measure each of the crankshaft main bearing journal diameters in at least 2 directions.

Crankshaft Main Bearing Journal Taper and Out-of-Round

Scheme 1519

Scheme 1519: Crankshaft Main Bearing Journal Taper and Out-of-Round
  1. Measure each of the crankshaft main bearing journal diameters in at least 2 directions at each end of the main bearing journal.

Crankshaft Main Bearing Journal-to-Bearing Clearance

Note. Crankshaft main bearing journals must be within specifications before checking journal clearance.

Scheme 1520

Scheme 1520: Crankshaft Main Bearing Journal-to-Bearing Clearance

Scheme 1521

Scheme 1521
  1. Remove the crankshaft main bearing caps and crankshaft main bearing.
  2. Lay a piece of Plastigage across the face of each crankshaft main bearing surface.
  3. Install and remove the crankshaft main bearing cap.
  4. Verify the crankshaft journal clearance.

Crankshaft End Play

SPECIAL TOOLS CHART Dial Indicator Gauge with Holding Fixture 100-002 (TOOL-4201-C) or equivalent

Scheme 1522

Scheme 1522
  1. Install the Dial Indicator Gauge with Holding Fixture.
  2. Position the crankshaft to the rear of the cylinder block.
  3. Zero the Dial Indicator Gauge.
  4. Move the crankshaft to the front of the cylinder block. Note and record the crankshaft end play.

Cylinder Bore Taper

Scheme 1523

Scheme 1523: Cylinder Bore Taper
  1. Measure the cylinder bore at the top, middle and bottom of piston ring travel in 2 directions as indicated. Verify the cylinder bore is within the wear limit. The difference indicates the cylinder bore taper. If the cylinder bore taper does not meet specification, bore the cylinder to the next oversize limit.

Cylinder Bore Out-of-Round

Scheme 1524

Scheme 1524: Cylinder Bore Out-of-Round
  1. Measure the cylinder bore in 2 directions. The difference is the out-of-round.

Piston Inspection

SPECIAL TOOLS CHART Scraper, Piston Ring Groove 303-D033 (D81L-6002-D) or equivalent

Scheme 1525

Scheme 1525: Piston Inspection

Note. Do not use a caustic cleaning solution or a wire brush to clean the pistons or damage can occur.

Scheme 1526

Scheme 1526

Scheme 1527

Scheme 1527
  1. Clean and inspect the (1) ring lands, (2) skirts, (3) pin bosses and the (4) tops of the pistons. If wear marks, scores or glazing is found on the piston skirt, check for a bent or twisted connecting rod.
  2. Use the Piston Ring Groove Scraper to clean the piston ring grooves. Make sure the oil ring holes are clean.

Piston Pin Bore Diameter

  1. Measure the piston pin bore diameter in 2 directions on each side. Verify the diameter is within specification.

Piston Diameter

Scheme 1528

Scheme 1528: Piston Diameter
  1. Measure the piston diameter 90 degrees from the piston pin and 42 mm (1.65 in) down from the top of the piston at the point indicated.

Piston To Cylinder Bore Clearance

  1. Subtract the piston diameter from the cylinder bore diameter to find the piston-to-cylinder bore clearance.

Piston Selection

Note. The cylinder bore must be within the specifications for taper and out-of-round before fitting a piston.

Scheme 1529

Scheme 1529
  1. Select a piston size based on the cylinder bore.
  2. Choose the piston with the correct paint color or specific size grade. Refer to the «ENGINE MECHANICAL - 4.6L (2V)»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-mechanical-46l-2v) or «ENGINE MECHANICAL - 5.4L (2V)»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-mechanical-54l-2v-e-series) or «ENGINE MECHANICAL - 6.8L»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-mechanical-68l-e-series) for the procedure.

Piston Ring End Gap

SPECIAL TOOLS CHART Feeler Gauge Set 303-D027 (D81L-4201-A) or equivalent

Scheme 1530

Scheme 1530: Piston Ring End Gap

Note. Use care when fitting piston rings to avoid possible damage to the piston ring or the cylinder bore.

Note. Piston rings should not be transferred from one piston to another.

Note. The cylinder bore must be within specification for taper and out-of-round.

Scheme 1531

Scheme 1531

Scheme 1532

Scheme 1532
  1. Use a piston without rings to push a piston ring in a cylinder to the bottom of ring travel.
  2. Use the Feeler Gauge Set to measure the top piston ring end gap and the second piston ring end gap.

Piston Ring-to-Groove Clearance

SPECIAL TOOLS CHART Feeler Gauge Set 303-D027 (D81L-4201-A) or equivalent

Scheme 1533

Scheme 1533

Scheme 1534

Scheme 1534
  1. Inspect the piston for ring land damage or accelerated wear.
  2. Using the Feeler Gauge Set, measure the piston ring-to-groove clearance.

Piston Pin Diameter

Scheme 1535

Scheme 1535: Piston Pin Diameter
  1. Measure the piston pin diameter in 2 directions at the points shown in illustration. Verify the diameter is within specification.

Connecting Rod Cleaning

Note. Do not use a caustic cleaning solution or damage to connecting rods can occur.

  1. Mark and separate the parts and clean with solvent. Clean the oil passages.

Connecting Rod Large End Bore

Scheme 1536

Scheme 1536: Connecting Rod Large End Bore
  1. Tighten the bolts to specification, then measure the bore in 2 directions. The difference is the connecting rod bore out-of-round. Verify the out-of-round is within specification.

Connecting Rod Bushing Diameter

Scheme 1537

Scheme 1537: Connecting Rod Bushing Diameter

Scheme 1538

Scheme 1538
  1. Use a telescoping gauge to determine the ID of the connecting rod bushing, if equipped.
  2. Measure the telescoping gauge with a micrometer. Verify the diameter is within specification.

Connecting Rod Bend

SPECIAL TOOLS CHART Feeler Gauge Set 303-D027 (D81L-4201-A) or equivalent

Scheme 1539

Scheme 1539
  1. Using the Feeler Gauge Set, measure the connecting rod bend on a suitable alignment fixture. Follow the instructions of the fixture manufacturer. Verify the bend measurement is within specification.

Connecting Rod Twist

SPECIAL TOOLS CHART Feeler Gauge Set 303-D027 (D81L-4201-A) or equivalent

Scheme 1540

Scheme 1540
  1. Using the Feeler Gauge Set, measure the connecting rod twist on a suitable alignment fixture. Follow the instructions of the fixture manufacturer. Verify the measurement is within specification.

Connecting Rod to Crankshaft Side Clearance

SPECIAL TOOLS CHART Feeler Gauge Set 303-D027 (D81L-4201-A) or equivalent

Scheme 1541

Scheme 1541
  1. Using the Feeler Gauge Set, measure the clearance between the connecting rod and the crankshaft. Verify the measurement is within specification.

Connecting Rod Bearing Journal-to-Bearing Clearance

Note. The crankshaft connecting rod journals must be within specifications to check the connecting rod bearing journal clearance.

Scheme 1542

Scheme 1542: Connecting Rod Bearing Journal-to-Bearing Clearance

Scheme 1543

Scheme 1543
  1. Remove the connecting rod bearing cap.
  2. Position a piece of Plastigage across the bearing surface.
  3. Install and tighten to specifications, then remove the connecting rod bearing cap.
  4. Measure the Plastigage to get the connecting rod bearing journal clearance. The Plastigage should be smooth and flat. A changing width indicates a tapered or damaged connecting rod or connecting rod bearing.

Connecting Rod Bearing Journal Taper and Out-of-Round

  1. Measure the crankshaft connecting rod journal diameters in 2 directions perpendicular to one another at each end of the connecting rod journal. The difference in the measurements from one end to the other is the taper. Verify measurement is within the wear limit.

Scheme 1544

Scheme 1544: Roller Follower Inspection
  1. Inspect the roller follower for flat spots or scoring. If any damage is found, inspect the camshaft lobes and hydraulic lash adjuster for damage.

Valve Stem Diameter

Scheme 1545

Scheme 1545: Valve Stem Diameter
  1. Measure the diameter of each intake and exhaust valve stem at the points shown in illustration. Verify the diameter is within specification.

Valve Stem to Valve Guide Clearance

SPECIAL TOOLS CHART Clearance Gauge, Valve Guide 303-004 (TOOL-6505-E) or equivalent Dial Indicator Gauge with Holding Fixture 100-002 (TOOL-4201-C) or equivalent

Note. The valve stem diameter must be within specifications before checking valve stem-to-valve guide clearance.

  1. Install a Valve Guide Clearance Gauge on the valve stem and install a Dial Indicator Gauge with Holding Fixture. Lower the valve until the clearance gauge contacts the upper surface of the valve guide.
  2. Move the Valve Guide Clearance Gauge toward the Dial Indicator Gauge with Holding Fixture and zero the Dial Indicator Gauge. Move the Valve Guide Clearance Gauge away from the Dial Indicator Gauge with Holding Fixture and note the reading. The reading will be DOUBLE the valve stem-to-valve guide clearance.

Scheme 1546

Scheme 1546: Valve Inspection
  1. Inspect the following valve areas: The end of the stem for grooves or scoring. The valve face and the edge for pits, grooves or scores. The valve head for signs of burning, erosion, warpage and cracking. The valve margin for wear.

Valve Guide Inner Diameter

Scheme 1547

Scheme 1547: Valve Guide Inner Diameter
  1. Use a ball gauge to determine the inside diameter of the valve guides in 2 directions at the top, middle and bottom of the valve guide.
  2. Measure the ball gauge with a micrometer.
  3. If the valve guide is not within specifications, install a new cylinder head assembly.

Valve Spring Installed Length

Scheme 1548

Scheme 1548: Valve Spring Installed Length
  1. Measure the installed length of each valve spring.

Valve Spring Free Length

Scheme 1549

Scheme 1549: Valve Spring Free Length
  1. Measure the free length of each valve spring.

Scheme 1550

Scheme 1550: Valve Spring Squareness
  1. Measure the out-of-square on each valve spring. Turn the valve spring and observe the space between the top of the valve spring and the square.

Valve Spring Strength

SPECIAL TOOLS CHART Pressure Gauge, Valve/Clutch Spring 303-006 (TOOL-6513-DD) or equivalent

Scheme 1551

Scheme 1551: Valve Spring Strength
  1. Use the Valve/Clutch Spring Pressure Gauge to check the valve spring for correct strength at the specified valve spring length.

Valve and Seat Refacing Measurements

Note. After grinding valves or valve seats, check valve clearance.

Scheme 1552

Scheme 1552: Valve and Seat Refacing Measurements
  1. Check the valve head and seat. Check valve angles. Check margin width. Be sure margin width is within specification.
  2. Inspect for abnormalities on the valve face and seat. Install a new cylinder head assembly if abnormalities are found.

Valve Seat Width

Scheme 1553

Scheme 1553: Valve Seat Width
  1. Measure the valve seat width. If necessary, grind the valve seat to specification. Measure the intake valve seat width. Measure the exhaust valve seat width. Recheck the valve spring installed length after the seats have been ground, and shim the valve springs as necessary to achieve the correct installed spring length. Depending on the engine, check the valve lash. Refer to «ENGINE MECHANICAL - 4.6L (2V)»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-mechanical-46l-2v) or «ENGINE MECHANICAL - 5.4L (2V)»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-mechanical-54l-2v-e-series) or «ENGINE MECHANICAL - 6.8L»(/ford/econoline-e250/2012-2013/remont/mechanical/#engine-mechanical-68l-e-series) General Procedures .

Valve Seat Runout

Scheme 1554

Scheme 1554: Valve Seat Runout
  1. Use a valve seat runout gauge to check valve seat runout.

Scheme 1555

Scheme 1555: Flexplate Inspection
  1. Inspect the flexplate for: any cracks. worn ring gear teeth. chipped or cracked ring gear teeth.

Cylinder Head Distortion

SPECIAL TOOLS CHART Feeler Gauge Set 303-D027 (D81L-4201-A) or equivalent

  1. Using a Straightedge and a Feeler Gauge Set, inspect the cylinder head for flatness in the sequence shown in illustration.

Cylinder Block Distortion

SPECIAL TOOLS CHART Feeler Gauge Set 303-D027 (D81L-4201-A) or equivalent

  1. Use a Straightedge and a Feeler Gauge Set to inspect the cylinder block for flatness.

Cylinder Bore Cleaning

ItemSpecification
Motorcraft® SAE 5W-20 Premium Synthetic Blend Motor Oil (US); Motorcraft® SAE 5W-20 Super Premium Motor Oil (Canada) XO-5W20-QSP (US); CXO-5W20-LSP12 (Canada)WSS-M2C945-A

MATERIAL SPECIFICATIONS

  1. Clean the cylinder bores with soap or detergent and water.
  2. Thoroughly rinse with clean water and wipe dry with a clean, lint-free cloth.
  3. Use a clean, lint-free cloth and lubricate the cylinder bores. Use clean engine oil meeting Ford specification.

Core Plug Replacement

SPECIAL TOOLS CHART Slide Hammer 100-001 (T50T-100-A)

Scheme 1556

Scheme 1556: Core Plug Replacement
ItemSpecification
High Temperature Retaining Compound Loctite® 620™/Permatex® 62050, or equivalent; obtain locallyWSK-M2G349-A9
Threadlock 262 TA-26WSK-M2G351-A6

MATERIAL SPECIFICATIONS

Note. It is necessary to use High Temperature Retaining Compound Loctite® 620™/Permatex® 62050 or equivalent on all 3 valve modular engine cylinder head cup plugs. If not used, the cylinder head cup plugs could leak or seep, causing serious engine damage.

Note. Use threadlock 262 on all other applications.

All core plugs

  1. Use the Slide Hammer and a freeze plug remover to remove the core plug.
  2. Inspect the core plug bore for any damage that would interfere with the correct sealing of the plug. If the core plug bore is damaged, bore for the next oversize plug. Cup-type
  3. Coat the cup-type core plug and bore lightly with sealant and install the core plug using a freeze plug installer. Expansion-type
  4. Coat the expansion-type core plug and bore lightly with sealant and install the core plug using a freeze plug installer.

Scheme 1557

Scheme 1557: Spark Plug Inspection

Scheme 1558

Scheme 1558

Scheme 1559

Scheme 1559

Scheme 1560

Scheme 1560

Scheme 1561

Scheme 1561

Scheme 1562

Scheme 1562

Scheme 1563

Scheme 1563
  1. Inspect the spark plug for a bridged gap. Check for deposit build-up closing the gap between the electrodes. Deposits are caused by oil or carbon fouling. Install a new spark plug.
  2. Check for oil fouling. Check for wet, black deposits on the insulator shell bore electrodes, caused by excessive oil entering the combustion chamber through worn rings and pistons, excessive valve-to-guide clearance or worn or loose bearings. Correct the oil leak concern. Install a new spark plug.
  3. Inspect for carbon fouling. Look for black, dry, fluffy carbon deposits on the insulator tips, exposed shell surfaces and electrodes, caused by a spark plug with an incorrect heat range, dirty air cleaner, too rich a fuel mixture or excessive idling. Install new spark plugs.
  4. Inspect for normal burning. Check for light tan or gray deposits on the firing tip.
  5. Inspect for pre-ignition, identified by melted electrodes and a possibly damaged insulator. Metallic deposits on the insulator indicate engine damage. This may be caused by incorrect ignition timing, wrong type of fuel or the unauthorized installation of a heli-coil insert in place of the spark plug threads. Install a new spark plug.
  6. Inspect for overheating, identified by white or light gray spots and a bluish-burnt appearance of electrodes. This is caused by engine overheating, wrong type of fuel, loose spark plugs, spark plugs with an incorrect heat range, low fuel pump pressure or incorrect ignition timing. Install a new spark plug.
  7. Inspect for fused deposits, identified by melted or spotty deposits resembling bubbles or blisters. These are caused by sudden acceleration. Install new spark plugs.

Exhaust Manifold Cleaning and Inspection

SPECIAL TOOLS CHART Feeler Gauge Set 303-D027 (D81L-4201-A) or equivalent

  1. Clean the exhaust manifold using a suitable solvent. Use a plastic scraping tool to clean the gasket sealing surfaces.
  2. Using the Straightedge and a Feeler Gauge Set, check the exhaust manifold sealing surface for warpage. If the warpage is greater than 0.76 mm (0.0299 in), install a new exhaust manifold.

Scheme 1564

Scheme 1564: Bearing Inspection
  1. Inspect bearings for the following defects: Cratering - fatigue failure Spot polishing - incorrect seating Imbedded dirty engine oil Scratching - dirty engine oil Base exposed - poor lubrication Both edges worn - journal damaged One edge worn - journal tapered or bearing not seated

Powertrain/Drivetrain Mount Neutralizing

Note. Refer to the appropriate information and procedure for special instructions on loosening and tightening mount fasteners.

  1. With the vehicle in NEUTRAL, position it on a hoist. For additional information, refer to «JACKING & LIFTING»(/ford/econoline-e250/2012-2013/remont/hoistjack/#jacking-lifting) .
  2. Loosen, but do not remove, the powertrain/drivetrain mount fasteners.
  3. Lower the vehicle.
  4. Start the vehicle and move it in forward 0.6-1.2 m (2-4 ft). Then move the vehicle in reverse the same distance.
  5. Raise and support the vehicle.
  6. Tighten the powertrain/drivetrain mount fasteners.
  7. Lower the vehicle.
  8. Test the system for normal operation.

See also:
ENGINE MECHANICAL - 4.6L (2V)
ENGINE MECHANICAL - 5.4L (2V)
ENGINE MECHANICAL - 6.8L
INTRODUCTION - GASOLINE MODELS
MAINTENANCE SCHEDULE
IDENTIFICATION CODES
MODULE COMMUNICATIONS NETWORK
MULTIFUNCTION ELECTRONIC MODULES
NOISE, VIBRATION & HARSHNESS
CHARGING SYSTEM
ACCESSORY DRIVE
ENGINE COOLING
FUEL TANK & FUEL LINES
SUSPENSION SYSTEM - GENERAL INFORMATION
BRAKE SYSTEM - GENERAL INFORMATION
AUTOMATIC TRANSAXLE/TRANSMISSION - 4R70E/4R75E
AUTOMATIC TRANSAXLE/TRANSMISSION - TORQSHIFT(R)
INTAKE AIR DISTRIBUTION & FILTERING
STARTING SYSTEM
JACKING & LIFTING
INSPECTION AND VERIFICATION - ENGINE PERFORMANCE
INSPECTION AND VERIFICATION - NVH
SYMPTOM CHART - ENGINE PERFORMANCE
SYMPTOM CHART - NVH
VALVE TRAIN ANALYSIS
COMPONENT TEST
OIL PRESSURE TEST
VALVE GUIDE INNER DIAMETER PROCEDURE
VALVE SEAT INSPECTION PROCEDURE
PISTON TO CYLINDER BORE CLEARANCE PROCEDURE
PISTON PIN BORE DIAMETER
PISTON PIN DIAMETER PROCEDURES
CONNECTING ROD BEARING JOURNAL-TO-BEARING CLEARANCE PROCEDURE
CRANKSHAFT MAIN BEARING JOURNAL-TO-BEARING CLEARANCE PROCEDURE
COMPRESSION TEST CHART
SPECIFICATION CHART