DESCRIPTION
The basic liquid cooling system consists of a radiator, water pump, thermostat, cooling fan, pressure cap, heater (if equipped), various connecting hoses and cooling passages in the block and cylinder head. In addition, many cars use a fan clutch (incorporating a thermostatic control) or flexible fan blade. These reduce noise and power requirements at higher engine speeds.
Some models may use a thermostatic vacuum switch to advance ignition timing in the event of overheating. Most models use a coolant recovery system to prevent loss of anti-freeze.
DRAINING
Remove radiator cap and open heater control valve to maximum heat position. Open drain cocks or remove plugs in bottom of radiator and in engine block. In-line engines usually have one plug or cock, while "V" type engines will have two, one in each bank of cylinders.
CLEANING
A good cleaning compound removes most rust and scale. Follow manufacturer's instructions in the use of the cleaner. If considerable rust and scale has to be removed, flushing should be used. Clean radiator air passages by blowing with compressed air from back to front of radiator.
FLUSHING
| CAUTION | Some manufacturers use an aluminum/plastic radiator on some models (identified by a note below the filler neck). Material used for cleaning and flushing must be compatible with aluminum, according to manufacturer's recommendations. |
- Back flushing is a very effective means of removing rust and scale from a cooling system. For best results, the radiator, engine and heater core should be flushed separately.
- To flush radiator, connect flushing gun to water outlet of radiator and disconnect water inlet hose. Use a leadaway hose, connected to radiator inlet, to prevent flooding the engine. Use air in short bursts only as a clogged radiator could be easily damaged. Continue flushing until water runs clear.
- To flush engine, first remove thermostat and replace housing. Connect flushing gun to water outlet of engine. Disconnect heater hoses from engine. Flush using short air bursts until water runs clean. Flush heater core as described for radiator. Make sure heater valve is set to maximum heat position before flushing heater.
REFILLING
Engine should be running while refilling cooling system to prevent air from being trapped in the engine block. After system is full, continue running engine until thermostat is open, then recheck fill level. Do not overfill system. Refer to appropriate article for correct cooling system capacity.
Scheme 1
- Visually inspect thermostat for corrosion and proper sealing of valve and seat. If satisfactory, suspend thermostat and a thermometer in a container with a 50/50 mixture of anti-freeze and water (AMC recommends 100% anti-freeze). (Scheme 1)
- Do not allow either thermostat or thermometer to touch bottom of container as this concentration of heat could cause an incorrect reading. Heat water until thermostat just begins to open. (Scheme 1): Testing Thermostat in Anti-Freeze/Water Solution NOTE: Support thermometer so it does not touch bottom of container.
- Read temperature on thermometer. This is the initial opening temperature and should be within specifications. Continue heating water until thermostat is fully open and note temperature. This is the fully opened temperature. If either reading is outside of specifications, replace thermostat, as it is not adjustable.
PRESSURE TESTING RADIATOR CAP
A pressure testing tool is used to test both radiator cap and complete cooling system. Test as follows, following tool manufacturer's instructions.
Visually inspect radiator cap, then dip cap in water and connect to tester. Pump tester to bring pressure to upper limit of cap specifications. If cap fails to hold pressure within specifications, replace cap.
Testing Radiator Pressure Cap. Scheme 2
Note. Wet cap gasket before testing.
Scheme 3
- With engine off, wipe radiator filler neck seat clean. Fill radiator to correct level. Attach tester to radiator and pump until pressure is at upper limit of radiator rating.
- If pressure drops, inspect for external leaks. If no leaks are apparent, detach tester and run engine until normal operating temperature is obtained. Reattach tester and observe. If pressure builds up immediately, a possible leak exists from a faulty head gasket or crack in head or block. CAUTION: Pressure may build up quickly. Release any excess pressure or cooling system damage may result.
- If there is no immediate pressure build up, pump tester to within system pressure range (on radiator cap). Vibration of gauge pointer indicates compression or combustion leak into cooling system. Isolate leak by shorting each spark plug wire to cylinder block. Gauge pointer should stop or decrease vibration when leaking cylinder is shorted. CAUTION: Do not disconnect spark plug wires while engine is operating, or operate engine with spark plug shorted for more than 1 minute as catalytic converter may be damaged.
- Remove engine and transmission (automatic only) oil dipsticks and check if water drops appear in oil. If so, a serious internal leak is indicated. If all checks are negative and system holds pressure for 2 minutes, there are no serious leaks in system. (Scheme 3): Pressure Testing Cooling System Pump up to specified pressure.
ANTI-FREEZE CONCENTRATION
Note. On models using aluminum engines or cooling system components, refer to Owners Manual for anti-freeze requirements and recommendations. Aluminum components require a different formulation of anti-freeze to prevent corrosion.
On all cooling systems, test anti-freeze concentration using anti-freeze tester. Tester should have a temperature-compensating feature, as failing to take temperature into consideration could cause an error as large as 30°F. Follow tester manufacturer's instructions for correct use of tester.
A coolant recovery system differs from other cooling systems in that an overflow bottle is connected to the radiator overflow hose. The overflow bottle is transparent or translucent to permit checking of coolant level without removing radiator cap. No adjustment or test is required except keeping vent hole or hose clean and checking pressure relief of radiator cap.
OPERATION
As coolant temperature rises and pressure in system exceeds pressure relief valve of radiator cap, excess coolant flows into overflow bottle. As engine cools and coolant contracts, a vacuum is formed in the system. The vacuum draws coolant, stored in overflow bottle, back into radiator. In a properly maintained cooling system, the only coolant losses will be through evaporation.
Typical Coolant Recover System. Scheme 4
Note. Overflow bottle captures & releases coolant according to temperature.
FWD Models, All 2.3L Engine with A/C & 3.8L Capri/Mustang
All electrically-driven fans are actuated by thermal relay switches. Thermal switches turn fan motor on when necessary and shut fan motor off when not needed. All air conditioned vehicles are equipped with over-ride switches. These switches turn fan motor on whenever air conditioning system is operating, and return fan motor control to thermal relay when system is turned off.
Although all electric fans operate on same principle, the following are special descriptions that apply to specific models
Except Tempo/Topaz, Escort/Lynx, EXP
Operation of the engine cooling fan motor is dependent on engine coolant temperature when the ignition switch is On and/or the A/C compressor is in operation. The system is designed to have engine cooling fan operation whenever the A/C compressor is operating or whenever the engine coolant temperature reaches 105°C (221°F) with the ignition switch in the ON position regardless of A/C compressor operation. This is accomplished with a solid state cooling fan controller which also contains one or two relays.
When the engine coolant temperature reaches 105°C (221°F), the cooling fan temperature switch (located in the heater hose tube) will close to complete the ground circuit to the fan relay coil in the cooling fan controller. When the relay is energized, the contacts close to complete the circuit for engine cooling fan motor operation. The fan will continue to operate until the engine coolant temperature drops to approximately 94°C (201°F).
During A/C operation, the A/C clutch cycling pressure switch controls evaporator temperature by controlling compressor operation. The pressure switch also completes the electrical circuit to energize the second relay in the cooling fan controller (Scheme 5) The second relay closes to energize the fan relay coil (part of the cooling fan controller) for engine cooling fan operation. When compressor operation stops, the engine cooling fan operation also stops unless the engine coolant temperature calls for cooling fan operation.
Normal operation and cycling of the engine cooling fan will cause the temperature gauge indicator to read between the mid-point and upper portion of the temperature gauge scale. The slightly higher indicator reading will return to the mid-point when fan operation begins.
Scheme 5
Tempo/Topaz, Escort/Lynx, EXP
The electro-drive cooling fan system consists of a fan and electric motor attached to a fan shroud located behind the radiator. The system utilizes a coolant temperature switch mounted in the thermostat housing. If the vehicle is equipped with A/C, the cooling fan system also includes a cooling fan controller. On Tempo/Topaz vehicles with a standard heater, a cooling fan relay is used in place of the fan controller. On Escort/Lynx, EXP vehicles with a standard heater, the engine cooling fan is powered through the coolant temperature switch.
The electro-drive cooling fan on Tempo/Topaz and diesel vehicles is wired to operate only when the ignition switch is in the Run position thereby preventing cooling fan operation after the ignition switch is turned to Off. On Escort/Lynx, EXP vehicles (except diesel), the electro-drive cooling fan is wired to operate with the ignition switch On or Off.
If the vehicle is equipped with A/C, the cooling fan is still wired to operate only when the ignition switch is in the Run position. The cooling fan is then controlled during vehicle operation by the cooling fan controller, which will energize the cooling fan whenever the A/C compressor clutch is energized and/or, when the coolant temperature reaches approximately 99°C (210°F) (Tempo/Topaz) or 105°C (221°F) (Escort/Lynx, EXP). With this system, the cooling fan will cycle On and Off with the A/C compressor except when the coolant temperature is above 99°C (210°F) (Tempo/Topaz) or 105°C (221°F) (Escort/Lynx, EXP). At or above this point the fan will run continuously until the coolant drops below approximately 89°C (193°F).
Several different controllers are available depending on application. Proper operation of the system cannot be obtained unless the correct controller is used. (Scheme 6)- (Scheme 12) for complete system circuitry.
The electric cooling fan is mounted within a shroud behind the radiator. A thermal switch activates the fan when the coolant reaches a specified temperature.
The electric fan is also activated during air conditioner operation.
The A/C heater system contains a function control and temperature selector assembly (on the instrument panel), a blower housing and evaporator assembly and ductwork (behind the instrument panel), and compressor and condenser (in the engine compartment).
The function control lever controls system vacuum and electrical operation. Vacuum motors operate doors to direct air flow. The electrical switches attached to the function control lever connect power to the blower motor, the clutch cycling pressure switch, and the A/C fan controller.
The solid-state A/C fan controller controls power to the A/C clutch field coil and the fan motor simultaneously, throttle kicker solenoid valve, if so equipped, and cooling fan temperature switch. When A/C is selected, the A/C clutch field coil engine cooling fan and throttle kicker solenoid valve, if so equipped, are energized by the controller.
Note. The fan motor and A/C clutch field coil cylinder in sync except vehicles equipped w/ATX, A/C and power brakes. On these vehicles, when the A/C clutch field is de-energized, the engine cooling fan remains On.
The cooling fan operates when engine coolant temperature goes above 99°C (210°F) (Tempo/Topaz) or 105°C (221°F) (Escort/Lynx, EXP), or when the A/C is operated. When there is low refrigerant suction pressure, the clutch cycling pressure switch signals the A/C fan controller to cut off power to the A/C clutch field coil, fan motor and throttle solenoid kicker.
The wide open throttle (WOT) A/C cut-out switch is used on some applications. During hard acceleration, the WOT A/C cut-out switch signals the A/C fan controller to cut off power to the A/C clutch field coil and throttle solenoid kicker, if so equipped. This keeps the engine from being overloaded. For the same reason, the stoplamp switch signals the A/C fan controller to cut off power to the A/C clutch field coil and throttle solenoid kicker for 3-5 seconds after the power brakes are applied.
Cooling Fan Controller
| WARNING | Disconnect the cooling fan prior to performing any underhood service since the fan could cycle if the ignition switch is left in the On position even though the engine is not running. |
A cooling fan controller is used w/all vehicles w/diesel engines and/or A/C, to control the engine cooling fan operation. On Escort/Lynx, EXP vehicles, the cooling fan will operate whenever the engine coolant temperature reaches 105°C (221°F), regardless of the position of the ignition switch. On Tempo/Topaz vehicles, the ignition switch must be in the run position for the cooling fan to operate. The engine cooling fan will also operate during A/C compressor operation and, will cycle On and Off w/the A/C compressor clutch. The one exception to that condition is on ATX vehicles with power brakes (except diesel). On these models, brake application will interrupt A/C compressor operation for 3-5 seconds after the brake pedal is depressed, but the engine cooling fan will continue to operate.
Several different cooling fan controllers are used depending on the optional equipment on the vehicle. Proper operation of the entire system cannot be obtained unless the correct controller is used. Each of the four controllers can be identified by the engineering part number printed on the controller mounting bracket and by the color of the controller. The color code of the controller and the part number is shown on each wiring diagram. (Scheme 6)- (Scheme 12), depending on application.
The cooling fan controller on Escort/Lynx, EXP is located under the instrument panel, forward of the evaporator mounting bracket. On Tempo/Topaz, the controller is mounted on the right cowl panel under the instrument panel. The controller can be serviced through the glove compartment opening.
Scheme 6
Scheme 7
Scheme 8
Scheme 9
Scheme 10
Scheme 11
Scheme 12
Note. Timer relay works only when ignition switch is turned off. Avoid working around fan with ignition off when temperature at carburetor may exceed 155°F (68°C).
Cooling Fan Controller Diagnosis - Tempo/Topaz, Escort/Lynx (EFI), EXP (EFI)
If it is suspected that the cooling fan controller is not operating properly, diagnosis of the controller can be perfomed by taking voltage readings at the controller connector when the connector is plugged into the controller.
Note. The electronic switches within the controller are shown as relays in the following schematics to simplify the circuit and make it easier to understand. With the exception of the A/C fan control relay, some switching within the controller is done with electronic circuits and not with relays as shown.
The voltage readings should be made during the following condition
- Ignition switch in run - engine running and A/C "ON"
The voltage readings shown should be obtained at the indicated connector pins. If the indicated voltage/continuity reading is not present, refer to the appropriate WIRING DIAGRAMS article in the WIRING DIAGRAMS Section to determine where the problem is (in the circuits connected to the controller or within the controller).
The Component Location for the Cooling Fan Controller is behind the glove box.
| Connector Pin No. | Voltmeter Should Read |
|---|---|
| 1 | 0 - Volts w/clutch cycling pressure switch closed and A/C clutch closed. |
| 2 | 0 - Volts w/brake pedal not depressed. Battery Voltage w/brake applied. |
| 3 | Battery Voltage w/coolant temp. sw. closed and/or clutch cycling pressure switch closed. 0 - volts otherwise. |
| 4 | Battery Voltage |
| 5 | 0 - Volts |
| 6 | About 6 volts during nomal operation 0 - Volts during wide open throttle operation (Pin 6 grounded during W.O.T. operation. |
| 7 | Battery Voltage |
| 8 | Battery Voltage when A/C clutch cycling pressure switch closed (used only on early 1984 models w/ATX - USA) 0 - Volts when either switch is open. |
| 9 | Battery Voltage |
| 10 | Battery Voltage when A/C clutch cycling pressure switch and high pressure cut-out switch closed. 0 - Volts when either switch is open. |
IGNITION SW. IN RUN - ENG. RUNNING & A/C "ON" (U.S.A.)
| Connector Pin No. | Voltmeter Should Read |
|---|---|
| 1 | Battery Voltage |
| 2 | Battery Voltage |
| 3 | Battery Voltage |
| 4 | Battery Voltage with W.O.T. Switch closed |
| 5 | Battery Voltage |
| 6 | Battery Voltage w/coolant switch closed and/or A/C pressure sw. and W.O.T. sw. closed Otherwise 0 - voltage is read |
| 7 | 0 - volts w/coolant temperature switch or the A/C pressure cycling switch closed. Battery voltage w/both switches open. |
| 8 | 0 - volts with A/C pressure cycling switch open and battery voltage with the A/C pressure switch closed. |
| 9 | Not Used |
| 10 | 0 - volts with A/C cycling pressure switch or the W.O.T. switch open. Battery voltage w/both switches closed. |
IGNITION SW. IN RUN - ENG. RUNNING & A/C "ON" (DIESEL)
| Connector Pin No. | Voltmeter Should Read |
|---|---|
| 1 | Battery Voltage w/coolant temp. sw. open approximately 1 volt w/coolant temp. switch closed |
| 2 | 5 - Volts w/brake pedal not depressed. Battery Voltage w/brakes applied. |
| 3 | Battery Voltage w/temp. sw. closed and/or clutch cycling switch closed. 0 - volts if switch is open |
| 4 | Battery Voltage |
| 5 | Battery Voltage w/clutch cycling switch closed or wide open throttle or power steering pressure switch open. 0 - Volts w/clutch cycling or switch open or wide open throttle and power steering switches closed. |
| 6 | 0 - Volts w/wide open throttle or power steering switchesopen. Ohterwise 12 Volts for normal operation. |
| 7 | Battery Voltage with A/C "ON" |
| 8 | Battery Voltage with clutch cycling, wide open throttle and power steering pressure closed. 0 - Volts if any switch is open. |
| 9 | Battery Voltage |
| 10 | Battery Voltage with clutch cycling switch closed. |
IGNITION SW. IN RUN - ENG. RUNNING & A/C "ON" (CANADA)
TESTING
If fan is not operating properly, disconnect fan motor wire connector and connect it with 14 gauge wire to a good 12-volt battery. If fan runs, motor is all right, indicating car battery, radiator fan switch (Chrysler), coolant relay, timer relay (Ford), coolant temperature switch (GM) or A/C relay (all models) may be defective. If fan motor does not run when connected directly to a good battery, replace fan motor.
Thermostatically Controlled Electric Fan. Scheme 13
This unit is a fixed blade assembly designed to flex the blades as the engine RPM increases. As RPM increases blade pitch decreases, thereby saving power and decreasing noise level. No adjustment or test is required beyond keeping the fan belt adjusted to the proper tension.
Flex Blade Fan Assembly. Scheme 14
Most air conditioned models use a thermostatically controlled fluid fan and torque control clutch. The thermal control drive is a silicone-filled coupling connecting the fan to the fan pulley, and is operated by a control valve. Control valve is operated by a temperature sensitive bimetal coil or strip and controls the flow of silicone through the clutch.
During periods of operation when radiator discharge air temperature is low, the fan clutch limits the fan speed. High radiator discharge air temperature causes bimetal to allow a greater flow of silicone to enter the clutch. This increases the drag between the driven member and driving member resulting in a higher fan speed and increased cooling.
In cases of engine overheating or insufficient air conditioning proceed with the following tests
Scheme 15
- Start with a cool engine to ensure complete fan clutch disengagement.
- Cover radiator grille sufficiently to induce high engine temperature.
- Start engine and operate at 2000 RPM. Turn on air conditioning if equipped.
- A fan roar will be noticed when the fan clutch engages. (Scheme 15): Thermostatically Controlled Fan Assembly NOTE: Shown with stamped face and bi-metal coil spring. NOTE: It will take approximately 5 to 10 minutes for the temperature to become high enough to allow engagement of the fan clutch. While operating engine under these conditions, observe temperature light to prevent overheating. If hot light comes on, remove cover from radiator grille.
- As soon as the clutch engages, remove the radiator grille cover and turn the A/C off to assist in engine cooling.
- After several minutes the fan clutch should disengage. This can be determined by a reduction in fan speed and roar. If the fan fails to function as described, it should be replaced.