Thermal Management, Function - GF07.10-D-1012TSA
Engine 651 in model 907
Block diagram
Function requirements for thermal management, general points
- Circuit 87 (engine management ON).
- Engine running.
Thermal management, general
The coolant temperature, the exhaust gas temperature, and the fuel pressure of the engine are regulated with the heat management controlled by the CDI control unit. The following advantages arise from this:
- The optimum operating temperature is reached faster.
- Reduction of exhaust gas emissions.
- Fuel savings (up to approx 4 %).
- Improved heat comfort.
- Component protection for high engine load.
Thermal management controlling is dependent on the following sensors and signals:
- Engine oil temperature sensor.
- Hot film mass air flow sensor, engine load.
- Boost pressure sensor, engine load.
- Coolant temperature sensor.
- Charge air temperature sensor.
- Temperature sensor upstream of diesel particulate filter.
- Diesel particulate filter differential pressure sensor.
- Accelerator pedal module, accelerator pedal actuation (how fast and how far → driver type calm or sporty).
- Fuel temperature sensor.
- Crankshaft position sensor, engine speed.
- SAM control unit, outside temperature via interior CAN, electronic ignition lock (EZS) control unit, suspension FlexRay, powertrain control unit, and engine CAN.
- Control and operating unit for automatic climate control, air conditioning status via interior CAN, electronic ignition lock (EZS) control unit, suspension FlexRay, powertrain control unit, and drive CAN.
- ESP® control unit, wheel speed via suspension FlexRay, powertrain control unit, and drive CAN.
- Fully integrated transmission control (VGS) electric controller unit (with code G42 (7G-TRONIC PLUS)), drive range via drive CAN.
Function sequence for thermal management
The thermal management is described in the following points:
- Function sequence for coolant thermostat
- Function sequence for maximum heating combustion
- Function sequence for fuel preheating system
- Function sequence for fuel tank protection
- Function sequence for fan control
- Function sequence for overheating protection
Function sequence for coolant thermostat
The two-disk thermostat can take the following positions:
- Short-circuit operation position; t< 87 °C; coolant flow in engine only, a flow through the passenger compartment heater is possible.
- Mixed-fuel operation position;87 °C<T<102 °C; two-disk thermostat opens, radiator flow starts.
- Radiator mode position; T>102 °C; the two-disk thermostat is opened, full flow through radiator.
The following advantages result from regulating the refrigerant temperature of the engine:
- Operating temperature is reached more quickly.
- Reduction of emissions.
- Improved heating comfort.
- Component protection for engine high load.
Schematic diagram
Function sequence for maximum heating combustion
With the maximum heating combustion more heat is introduced into the refrigerant by a new combustion strategy on the engine side.
The following function conditions must be met simultaneously:
- Accelerator pedal position as reported by the accelerator pedal sensor below 80 % (partial throttle).
- Diesel particulate filter (DPF) not in regeneration mode.
- At least 90 % of the heat output is requested from the climate control control unit.
- Outside temperature below 7 °C (cut-in again at 4 °C from front SAM control unit)
- Coolant temperature of coolant temperature sensor lies below 82 °C (cut-in again at 74 °C).
During maximum heating combustion, a higher exhaust gas temperature is achieved by means of 2 preinjections from the fuel injectors with a significantly higher fuel quantity and a retarded main injection. This process, in combination with exhaust gas recirculation (EGR), causes more heat to be transferred to the coolant inside the engine, allowing for more rapid attainment of the optimum operating temperature and improved warming of the vehicle interior. For this purpose, exhaust gas recirculation positioner is actuated by the CDI control unit.
The CDI control unit regulates, stabilizes and increases the idle speed depending on operating conditions and engine loads if the accelerator pedal is not actuated.
Function sequence for fuel preheating system
Fuel preheating is achieved using the following regulation strategies:
- Pressure regulating valve regulation
- 2-control concept regulation
- Quantity control valve regulation
Pressure regulating valve regulation
The fuel pressure is regulated by the pressure regulating valve during the starting procedure and for fuel heating. The quantity control valve is opened in a controlled manner.
Pressure regulating valve regulation takes place under one of the following conditions:
- Up to 30 seconds after engine start in neutral
- Up to a fuel temperature of 20 °C
Pressure regulating valve regulation causes the cold fuel to be heated rapidly by the fuel being forced at high pressure through a narrow gap in the pressure regulating valve.
2-control concept regulation
The fuel pressure is jointly regulated in idle and in deceleration mode by the pressure regulating valve and quantity control valve.
Quantity control valve regulation
The fuel pressure is regulated through the quantity control valve as from 30 seconds after engine start and as from a fuel temperature of 20 °C.
With the 2-regulator design and with regulation by the quantity control valve, the fuel is heated less than is the case with pressure regulating valve regulation.
Function sequence for fuel tank protection
Increasing the fuel pressure through the high-pressure pump from 4.5 bar to 1800 bar increases the fuel's temperature.
To protect the fuel tank from overheating, the CDI control unit reads in values from the fuel temperature sensor and thus monitors the temperature of the fuel delivered to the high-pressure pump. If the temperature of the fuel routed to the high-pressure pump increases to over 90 °C, the CDI control unit reduces the injection quantity and the fuel pressure using the pressure regulating valve
This causes less fuel to be compressed.
The CDI control unit causes the excess fuel to return to the fuel tank via the quantity control valve.
If the temperature of the fuel routed to the high-pressure pump drops below 90 °C, the protection function is deactivated by the CDI control unit.
Function sequence for fan control
The CDI control unit actuates the fan. Thus, the fan speed is prescribed continuously by the CDI control unit.
Delayed fan switch off
At "ignition OFF" the fan motor runs on for 5 minutes, when the coolant temperature, CDI control unit temperature or a thermal input integral calculated based on engine load, coolant temperature, vehicle speed and outside temperature (averaged over the last 6 minutes) exceeds specified threshold values.
If the battery voltage drops down a lot, the delayed fan switch off is suppressed.
The delayed fan switch off is not broken off by "ignition ON". When starting the engine in delayed fan switch off the fan regulation for normal operation is suppressed until the delayed fan switch off is completed.
Function sequence for overheating protection
The overheating protection protects against engine damage if there is a thermal overload. At a coolant temperature above 106 °C, the injection quantity is reduced based on the characteristics maps stored in the CDI control unit. Reduction occurs depending on the coolant temperature and oil temperature. To do this, the CDI control unit reads in the signals of the coolant temperature sensor, the engine oil temperature sensor, and the temperature sensor upstream of the exhaust gas turbocharger (turbocharger protection).
After evaluating the input signals, the CDI control unit regulates the fuel pressure in the rails via the quantity control valve and the pressure regulating valve, and controls the injection period by actuating the fuel injectors.
If the engine oil or coolant temperature is too high, a warning message in instrument cluster is shown. To do this, the CDI control unit sends an appropriate signal via the drive CAN, powertrain control unit, suspension FlexRay, electronic ignition lock (EZS) control unit, and the user interface CAN (CAN HMI) to the instrument cluster.
| Electrical function schematic for heat management | PE07.10-D-2712-97TSA |
| Overview of system components for common rail diesel injection (CDI) | GF07.16-D-9997TSA |