Contents Wiring diagrams Section: Automatic HVAC System All sections

Heating, Ventilation and Air Conditioning: Other GMC Sierra 3500 HD

Automatic HVAC System ~2352 words

Fluorescent Leak Detector

Fluorescent dye will assist in locating any leaks in the A/C system.

  1. Condensation on the evaporator core or the refrigerant lines may wash the PAG oil and fluorescent dye away from the actual leak. Condensation may also carry dye through the HVAC module drain.
  2. Leaks in the A/C system will be indicated in a light green or yellow color when using the leak detection lamp. Use the leak detection lamp in the following areas: All fittings or connections that use seal washers or O-rings All of the A/C components The A/C compressor shaft seal The A/C hoses and pressure switches The HVAC module drain tube, if the evaporator core is suspected of leaking The service port sealing caps The sealing cap is the primary seal for the service ports.
  3. Follow the instructions supplied with the J-42220: lamp.
  4. To prevent false diagnosis in the future, thoroughly clean the residual dye from any area where leaks were found. Use a rag and the approved J-43872: cleaner.

Fluorescent Dye Injection

  1. Not all of the fluorescent dyes are compatible with PAG oil. Some types of dye decrease the oil viscosity or may chemically react with the oil.
  2. R-134A leak detection dye requires time to work. Depending upon the leak rate, a leak may not become visible for between 15 minutes and 7 days.
  3. To prevent false diagnosis, thoroughly clean any residual dye from the service port with a rag and the approved fluorescent dye cleaner J-43872: dye cleaner.

Halogen Leak Detector

WARNINGDo not operate the detector in a combustible atmosphere since its sensor operates at high temperatures or personal injury and/or damage to the equipment may result.

Ensure that the vehicle has at least 0.45 kg (1 lb) of refrigerant in the A/C refrigeration system in order to perform a leak test. Refer to Refrigerant Recovery and Recharging (Non-HP2) or Refrigerant Recovery and Recharging (HP2) for recharging the A/C system.

Note. Halogen leak detectors are sensitive to the following items: Windshield washing solutions Many solvents and cleaners Some adhesives used in the vehicle

Clean and dry all surfaces in order to prevent a false warning. Liquids will damage the detector.

Note. Follow a continuous path in order to ensure that you will not miss any possible leaks. Test all areas of the system for leaks.

Follow the instructions supplied with the J-39400-A: detector.

A/C System Pressure Zone Classification - Gas Engine With Engine Driven Cooling Fan

Ambient Air TemperatureRelative HumidityService Port PressureMaximum Left Center Discharge Air Temperature
Low SideHigh Side
13-16°C (55-65°F)0-100%150-246 kPa (25-36 psi)730-1190 kPa (106-173 psi)12°C (54°F)
19-24°C (66-75°F)Below 40%150-280 kPa (22-41 psi)900-1390 kPa (131-202 psi)14°C (57°F)
Greater than 40%179-137 kPa (26-46 psi)990-1500 kPa (144-218 psi)16°C (61°F)
25-29°C (76-85°F)Below 35%218-328 kPa (32-48 psi)1240-1640 kPa (180-238 psi)17°C (63°F)
35-60%236-342 kPa (34-50 psi)1290-1680 kPa (187-244 psi)18°C (64°F)
Above 60%250-365 kPa (36-53 psi)1340-1760 kPa (194-255 psi)20°C (68°F)
30-35°C (86-95°F)Below 30%266-386 kPa (39-56 psi)1500-1940 kPa (218-282 psi)21°C (70°F)
30-50%280-397 kPa (41-58 psi)1540-1990 kPa (224-289 psi)22°C (72°F)
Above 50%330-430 kPa (44-62 psi)1600-2070 kPa (232-300 psi)24°C (75°F)
36-41°C (96-105°F)Below 20%328-439 kPa (48-64 psi)1810-2240 kPa (263-325 psi)25°C (77°F)
20-40%337-457 kPa (49-66 psi)1840-2290 kPa (267-332 psi)26°C (79°F)
Above 40%355-474 kPa (52-69 psi)1890-2340 kPa (274-340 psi)27°C (81°F)
42-46°C (106-115°F)Below 20%391-491 kPa (57-71 psi)2130-2500 kPa (309-363 psi)29°C (84°F)
Above 20%397-508 kPa (58-74 psi)2160-2550 kPa (313-370 psi)30°C (86°F)
47-49°C (116-120°F)Below 30%451-552 kPa (65-80 psi)2420-2790 kPa (351-405 psi)33°C (92°F)

A/C Performance Table - Gas Engine With Engine Driven Cooling Fan

Defrosting Insufficient

StepActionYesNo
1Were you sent here from Symptoms or another diagnostic table?Go to Step 2Go to Symptoms - HVAC Systems - Manual or Go to Symptoms - HVAC Systems - Automatic
2Start the engine. Select the DEFROST mode. Select the maximum blower speed. Does sufficient air flow from the defroster outlets?Go to Step 3Go to Step 10
3Measure the engine operating temperature. Does engine reach a normal operating temperature?Go to Step 10Go to Step 8
4Select the minimum blower speed. Select the warmest temperature setting. WARNING: Refer to Moving Parts and Hot Surfaces Warning . Feel the temperature of the inlet and outlet hoses at the heater core. Does the inlet heater hose feel warmer than the outlet heater hose?Go to Step 11Go to Step 5
5Test the operation of the A/C compressor clutch. Does the A/C compressor clutch engage?Go to Step 7Go to Step 6
6Repair the A/C compressor clutch. Refer to Air Conditioning Compressor Malfunction for the automatic system or to Air Conditioning Compressor Malfunction for the manual system. Is the repair complete?Go to Step 14
7Perform the A/C system performance test. Refer to Air Conditioning (A/C) System Performance Test (Diesel Engine) , Air Conditioning (A/C) System Performance Test (Gas Engine w/Electric Cooling Fan) , Air Conditioning (A/C) System Performance Test (Gas Engine w/Engine Driven Fan) or Air Conditioning (A/C) System Performance Test (HP2 ) . Is the A/C system operating within the specifications?Go to Step 9Go to Step 12
8Repair the low engine temperature concern. Refer to Engine Fails To Reach Normal Operating Temperature . Is the repair complete?Go to Step 14
9Inspect for correct operation of the recirculation door. Is the recirculation door operating correctly?Go to Step 14Go to Step 13
10Repair the air delivery concern. Refer to Diagnostic Starting Point - Heating, Ventilation and Air Conditioning . Is the repair complete?Go to Step 14
11Repair the heating concern. Refer to Heating Performance Diagnostic . Is the repair complete?Go to Step 14
12Repair the A/C performance concern. Refer to Air Conditioning (A/C) System Performance Test (Diesel Engine) , Air Conditioning (A/C) System Performance Test (Gas Engine w/Electric Cooling Fan) , Air Conditioning (A/C) System Performance Test (Gas Engine w/Engine Driven Fan) or Air Conditioning (A/C) System Performance Test (HP2 ) . Is the repair complete?Go to Step 14
13Repair the recirculation door concern. Refer to Diagnostic Starting Point - Heating, Ventilation and Air Conditioning . Is the repair complete?Go to Step 14
14Operate the system in order to verify the repair. Did you find and correct the condition?System OKGo to Step 2
WARNING
Refer to Moving Parts and Hot Surfaces Warning .

Eliminating Air Conditioning Odor

Odors may be emitted from the air conditioning system primarily at start up in hot, humid climates. The following conditions may cause the odor

  1. Debris is present in the HVAC module.
  2. Microbial growth on the evaporator core

When the blower motor fan is turned on, the microbial growth may release an unpleasant musty odor into the passenger compartment. To remove odors of this type, the microbial growth must be eliminated. Perform the following procedure

Deodorize the evaporator core using Deodorizing Aerosol Kit.

Perform the following steps in order to deodorize the A/C system

  1. Ensure that the plenum which draws outside air into the HVAC module is clear of debris.
  2. Disable the A/C compressor clutch operation by disconnecting the clutch coil electrical connector.
  3. Dry the evaporator core by performing the following steps: Start the engine. Select the warmest temperature setting. Select the recirculation mode. Run the blower motor on high for 10 minutes.
  4. Locate an area in the air conditioning duct between the blower motor and the evaporator core downstream of the blower motor.
  5. Drill a 3.175 mm (0.125 in) hole where the hole will not interfere with or damage the following components: The blower motor The evaporator core Any other operating part the of system
  6. Wear safety goggles and latex gloves in order to perform the following actions: Select the maximum blower speed. Insert the deodorizer extension tube into the hole to the mark on the extension tube. Use short spray bursts and vary the direction of spray for a 2-3 minute period of time.
  7. Shut the engine OFF. Allow the vehicle to sit for 3-5 minutes.
  8. Seal the 3.175 mm (0.125 in) hole with body sealer or RTV gasket compound.
  9. Start the engine.
  10. Operate the blower motor on high for 15-20 minutes to dry.
  11. Reconnect the A/C compressor clutch coil electrical connector.
  12. Verify proper clutch operation.

A/C Refrigerant System Oil Charge Replenishing

If oil was removed from the A/C system during the recovery process or due to component replacement, the oil must be replenished. Oil can be injected into a charged system using J 45037: injector. For the proper quantities of oil to add to the A/C refrigerant system, refer to Refrigerant System Capacities (Non-HP2) .

If POE oil was removed from the A/C system during the recovery process or due to component replacement, the oil must be replenished. POE Oil can be injected into a charged system using J 45037: injector along with GE 48997: adapter hose. For the proper quantities of oil to add to the A/C refrigerant system, refer to Refrigerant System Capacities (Non-HP2) .

Balancing Procedure

  1. Before installing the compressor, the refrigerant oil will have to be fully drained.
  2. Add back the same quantity of polyalkylene glycol (PAG) oil as drained from the removed compressor. Refer to the amount of refrigerant oil recorded during the compressor removal.

Engine Coolant

Engine coolant is the essential element of the heating system. The thermostat controls the normal engine operating coolant temperature. The thermostat also creates a restriction for the cooling system that promotes a positive coolant flow and helps prevent cavitation.

Coolant enters the heater core through the inlet heater hose, in a pressurized state. The heater core is located inside the HVAC module. The ambient air drawn through the HVAC module absorbs the heat of the coolant flowing through the heater core. Heated air is distributed to the passenger compartment, through the HVAC module, for passenger comfort. Opening or closing the air temperature door controls the amount of heat delivered to the passenger compartment. The coolant exits the heater core through the return heater hose and recirculated back through the engine cooling system.

A/C Cycle

Refrigerant is the key element in an air conditioning system. R-134a is presently the only EPA approved refrigerant for automotive use. R-134a is a very low temperature gas that can transfer the undesirable heat and moisture from the passenger compartment to the outside air.

The electric A/C compressor is a self contained high voltage inverter, electric motor, and direct coupled compressor. The electric A/C compressor requires the high voltage system on the vehicle to be engaged and operates on command from the climate control panel. The electric A/C compressor has the ability to run and provide cooling performance while the vehicle engine is not running. This feature enables the electric A/C compressor to run at a speed independent of the engine. The control system will command the electric A/C compressor to a speed necessary to maintain a desired cooling level rather than cycle the electric A/C compressor on and off. Limits of operation for the electric A/C compressor are controlled by software within the climate control panel. The electric A/C compressor builds pressure on the vapor refrigerant. Compressing the refrigerant also adds heat to the refrigerant. The refrigerant is discharged from the compressor, through the discharge hose, and forced to flow to the condenser and then through the balance of the A/C system. The A/C system is mechanically protected with the use of a high pressure relief valve. If the A/C refrigerant pressure sensor were to fail or if the refrigerant system becomes restricted and refrigerant pressure continued to rise, the high pressure relief will pop open and release refrigerant from the system.

Compressed refrigerant enters the condenser in a high temperature, high pressure vapor state. As the refrigerant flows through the condenser, the heat of the refrigerant is transferred to the ambient air passing through the condenser. Cooling the refrigerant causes the refrigerant to condense and change from a vapor to a liquid state.

The condenser is located in front of the radiator for maximum heat transfer. The condenser is made of aluminum tubing and aluminum cooling fins, which allows rapid heat transfer for the refrigerant. The semi-cooled liquid refrigerant exits the condenser and flows through the liquid line, to the orifice tube.

The orifice tube is located in the liquid line between the condenser and the evaporator. The orifice tube is the dividing point for the high and the low pressure sides of the A/C system. As the refrigerant passes through the orifice tube, the pressure on the refrigerant is lowered. Due to the pressure differential on the liquid refrigerant, the refrigerant will begin to vaporize at the orifice tube. The orifice tube also meters the amount of liquid refrigerant that can flow into the evaporator.

Refrigerant exiting the orifice tube flows into the evaporator core in a low pressure, liquid state. Ambient air is drawn through the HVAC module and passes through the evaporator core. Warm and moist air will cause the liquid refrigerant to boil inside the evaporator core. The boiling refrigerant absorbs heat from the ambient air and draws moisture onto the evaporator. The refrigerant exits the evaporator through the suction line and back to the compressor, in a vapor state, and completing the A/C cycle of heat removal. At the compressor, the refrigerant is compressed again and the cycle of heat removal is repeated.

The conditioned air is distributed through the HVAC module for passenger comfort. The heat and moisture removed from the passenger compartment will also change form, or condense, and is discharged from the HVAC module as water.

A/C Cycle with Auxiliary

The auxiliary A/C system operates from the vehicles primary A/C system. The front or primary A/C system must be ON to allow the rear A/C system to function.

Refrigerant is the key element in an air conditioning system. R-134a is presently the only EPA approved refrigerant for automotive use. R-134a is an very low temperature gas that can transfer the undesirable heat and moisture from the passenger compartment to the outside air.

The A/C system used on this vehicle is a non cycling system. Non cycling A/C systems use a high pressure switch to protect the A/C system from excessive pressure. The high pressure switch will OPEN the electrical signal, to the compressor clutch, in the event that the refrigerant pressure becomes excessive. After the high and low side of the A/C system pressure equalize, the high pressure switch will CLOSE. Closing the high pressure switch will complete the electrical circuit to the compressor clutch. The A/C system is also mechanically protected with the use of a high pressure relief valve. If the high pressure switch were to fail or if the refrigerant system becomes restricted and refrigerant pressure continued to rise, the high pressure relief will pop open and release refrigerant from the system.

The electric A/C compressor is a self contained high voltage inverter, electric motor, and direct coupled compressor. The electric A/C compressor requires the high voltage system on the vehicle to be engaged and operates on command from the climate control panel. The electric A/C compressor has the ability to run and provide cooling performance while the vehicle engine is not running. This feature enables the electric A/C compressor to run at a speed independent of the engine. The control system will command the electric A/C compressor to a speed necessary to maintain a desired cooling level rather than cycle the electric A/C compressor on and off. Limits of operation for the electric A/C compressor are controlled by software within the climate control panel. The electric A/C compressor builds pressure on the vapor refrigerant. Compressing the refrigerant also adds heat to the refrigerant. The refrigerant is discharged from the compressor, through the discharge hose, and forced to flow to the condenser and then through the balance of the A/C system.

Compressed refrigerant enters the condenser in a high temperature, high pressure vapor state. As the refrigerant flows through the condenser, the heat of the refrigerant is transferred to the ambient air passing through the condenser. Cooling the refrigerant causes the refrigerant to condense and change from a vapor to a liquid state.

The condenser is located in front of the radiator for maximum heat transfer. The condenser is made of aluminum tubing and aluminum cooling fins, which allows rapid heat transfer for the refrigerant. The semi-cooled liquid refrigerant exits the condenser and flows through the liquid line. The liquid line flow is split and the liquid refrigerant flows to both the front or primary A/C system, and to the liquid line for the rear A/C system.

The liquid refrigerant, flowing to the rear A/C system, flows into the rear thermal expansion valve (TXV). The rear TXV is located at the rear evaporator inlet. The TXV is the dividing point for the high and the low pressure sides of the rear A/C system. As the refrigerant passes through the TXV, the pressure on the refrigerant is lowered. Due to the pressure differential on the liquid refrigerant, the refrigerant will begin to boil at the expansion device. The TXV also meters the amount of liquid refrigerant that can flow into the evaporator.

Refrigerant exiting the TXV flows into the evaporator core in a low pressure, liquid state. Ambient air is drawn through the rear A/C module and passes through the evaporator core. Warm and moist air will cause the liquid refrigerant boil inside of the evaporator core. The boiling refrigerant absorbs heat from the ambient air and draws moisture onto the evaporator. The refrigerant exits the evaporator through the suction line and back to the primary A/C systems suction line. Refrigerant in the primary A/C system suction line flows back to the compressor, in a vapor state, and completes the A/C cycle of heat removal. At the compressor, the refrigerant is compressed again and the cycle of heat removal is repeated.

The conditioned air is distributed through the rear A/C module for passenger comfort. The heat and moisture removed from the rear passenger compartment will also change form, or condense, and is discharged from the rear A/C module as water.