Charging, Function - GF09.00-P-2000MNA
Engine 177.9 in model 205, 213, 253
Function requirements, general
- Engine runs
Forced induction, general
The cylinder charging efficiency is improved as a result of forced induction. The engine torque and the engine performance are therefore increased. The fuel quantity corresponding to the increased air mass is metered by the ME-SFI [ME] control unit (N3/10).
With forced induction, the flow energy of the exhaust gases is used to drive the ATL. The ATLs draw in fresh air via the air filters at the compressor inlets and lead it via the compressor outlets in the charge air pipes upstream to the charge air coolers.
Due to the high rotational speed of the compressor impellers and the resulting high volumetric flow rates, the intake air becomes compressed in the charge air pipes. The compressed charge air flows via the charge air pipes to the charge air coolers. These subsequently cool the air which was heated by the compression and lead it via the charge air distributor to the cylinders.
Shown on flow pattern for charge air (with engine 177.9 in model 205, 253)
The charging is divided into the following subsections:
- Charge pressure control
- Overrun mode bypass air
- Charge air cooling
Charge pressure control
The boost pressure control occurs electropneumatically over the boost pressure control pressure transducer (Y77/1). The vacuum is generated by the mechanical vacuum pump attached to the engine. The ME-SFI [ME] control unit actuates the pressure transducer depending on the characteristics map and the load. The ME-SFI [ME] control unit evaluates the signals from the following assembly parts for this:
- Left charge air temperature sensor
- Right charge air temperature sensor (B17/15)
- Pressure sensor downstream of air filter, left cylinder bank (B28/4)
- Pressure sensor downstream of air filter, right cylinder bank (B28/5)
- Left pressure sensor upstream of throttle valve
- Right pressure sensor upstream of throttle valve
- Left pressure sensor downstream of throttle valve
- Right pressure sensor downstream of throttle valve
- Accelerator pedal sensor (B37)
- Crankshaft Hall sensor (B70)
The ME-SFI [ME] control unit also evaluates the activities that take place within the following functions:
- Knock sensor system
- Transmission overload protection
- Overheating protection
In wide open throttle operation, maximum boost pressure builds up. To reduce the boost pressure, the exhaust flows that drive the ATLs are redirected through a bypass each by opening the boost pressure control flaps. In order to do this the boost pressure control pressure transducer actuates the boost pressure control flap vacuum cells with vacuum. The boost pressure control flap vacuum cells react by closing the boost pressure control flaps via a linkage, and therefore the bypasses. If there is no vacuum at the boost pressure control flap vacuum cells, the boost pressure control flaps and therefore the bypasses are opened. The boost pressure control flaps lead the exhaust flow past the turbine wheels of the ATL. The boost pressure can be adapted to the respective load requirement in this way. If there is a leakage in the line between the vacuum pump and the vacuum cells, boost pressure build-up is not possible. The pressure sensors upstream of the throttle valve record the boost pressure. The pressure sensors downstream of the air filter record the charging. The charge air temperature is recorded in the charge air coolers by the charge air temperature sensors.
The boost pressure control can only be evaluated with the diagnostic tester if the "Boost pressure control adapted" message is shown on the display. If the ME-SFI [ME] control unit or one of the ATLs is replaced, a longer driving distance is required in certain operating conditions, in order to allow the ME-SFI [ME] control unit to perform the adaptation. If the hose lines are leaky between the vacuum cells, the boost pressure control pressure transducer and the charge air cooler, the "Boost pressure too high" fault is stored in the ME-SFI [ME] control unit. Quick load requirements below the basic charge pressure are controlled via the throttle valve actuator.
Overrun mode bypass air
The ATLs continue turning for a period of time after the start of deceleration mode due to the inertia of the shaft, compressor and turbine wheel. Through rapid closing of the throttle valve back pressures and unfavorable vibrations occur in the air column downstream of the ATLs. This vibrations would create a condition with a low delivery volume and high pressure conditions at the compressor impellers, which causes charger pumping (brief howling and mechanical stress).
The ME-SFI [ME] control unit detects the closing of the throttle valves and therefore the onset of deceleration mode by evaluating the signals of the following assembly parts:
- Actual value potentiometer 1, left (M16/60r1)
- Actual value potentiometer 2, left (M16/60r2)
- Actual value potentiometer 1, right (M16/61r1)
- Actual value potentiometer 2, right (M16/61r2)
The ME-SFI [ME] control unit then actuates the bypass air switchover valves. These are located on the charge air coolers and they each open a bypass from the boost pressure side downstream of the ATLs to the intake side downstream of the air filters. The excess boost pressure and the corresponding air volume are quickly reduced, thus preventing deceleration of the ATL compressor impellers. If the engine changes from deceleration mode to load operation, the bypass air switchover valves are no longer actuated. The bypasses are closed.
Charge air cooling
The charge air cooling keeps the charge air temperature below 60°C at an ambient temperature of 20°C. The cooled charge air has a greater density. This increases the cylinder charge, and therefore engine performance.
The tendency to knock is also reduced, and the lower exhaust temperatures reduce the development of nitrogen oxides (NOx ). Each cylinder bank has a charge air cooler. The charge air coolers are connected to the low-temperature circuit.
If the charge air temperature is higher than 35°C, the powertrain control unit (N127) actuates low-temperature circuit circulation pump 1 (M43/6) and low-temperature circuit circulation pump 2 (M43/7) via the drive train LIN (LIN C3). The ME-SFI [ME] control unit transmits the charge air temperature via the engine CAN (CAN C) to the powertrain control unit. When the charge air temperature drops to below 25°C, the low-temperature circuit circulation pumps are switched off again.
Engine 177.9 in model 213, 253
The low-temperature circuit circulation pump 3 (M43/8) and the low-temperature circuit switchover valve (Y73/1) are also actuated, depending on the transmission oil temperature, by the powertrain control unit via the drive train LIN.
Schematic diagram of low-temperature circuit, engine 177.9 in model 205
Schematic diagram of low-temperature circuit, engine 177.9 in model 213
Low-temperature circuit for engine 177.9 in model 253
| Electrical function schematic for charging | Engine 177.9 in model 205, 253 | PE09.00-P-2050-97FBD | |
| Engine 177.9 in model 213 | PE09.00-P-2050-97DBG | ||
| Overview of system components for gasoline injection and ignition system with direct injection | Engine 177.9 in model 205, 253 | GF07.70-P-9998MNA | |
| Engine 177.9 in model 213 | GF07.70-P-9998MNE |