Exhaust Treatment Function - GF14.00-P-3000MNG
ENGINE 276.8/9 in MODEL 166 as of model year 2016
ENGINE 276.8 in MODEL 292
Function requirements for exhaust treatment, general points
- Engine runs
The ME-SFI [ME] control unit (N3/10) detects the engine running via the evaluation of the crankshaft Hall sensor signals (B70). The ME-SFI [ME] control unit directly reads in the signals of the crankshaft Hall sensor.
Exhaust treatment, general
The exhaust gas cleaning reduces the harmful components of the combustion gases and residues emitted by the engine.
The following are involved here:
- Nitrogen oxides (NOx)
- Hydrocarbon (HC)
- Carbon monoxide (CO)
- Soot particles
The reduction is achieved by means of reduction and oxidation in the three-way catalytic converter, oxidation in the NOx storage catalytic converter and filtration in the gasoline particulate filter.
The NOx storage catalytic converter is installed for vehicles with engine 276.9 and code 920 (gasoline direct injection with stratified charge).
The gasoline particulate filter is installed for vehicles with code 472 (gasoline particulate filter).
Exhaust gas cleaning in three-way catalytic converter
For a three-way catalytic converter, the operating temperature is decisive. Significant pollutant conversion only begins from an operating temperature of about 250 °C.
Ideal operating conditions for high conversion rates and a long service life exist in the temperature range between approx. 400 and 800 °C.
To reach this temperature quickly, the switch points are increased for a maximum of 60 s during a cold start (coolant temperature < 35 °C).
However, upshift delay is active only up to a speed of 40 km/h. The gears are therefore not shifted up until higher rotational speeds are reached.
Depending on the coolant temperature and wheel speed, the ME-SFI [ME] control unit transmits the upshift delay to the fully integrated transmission control unit (Y3/8n4) via the drive CAN (CAN C).
The ME-SFI [ME] control unit reads in the signals of the coolant temperature sensor (B11/4) directly.
On vehicles with code ME05 (HYBRID DRIVE 80KW VARIANT (INCLUDING PLUGIN)), the Electronic Stability Program control unit (N30/4) transmits the wheel speed to the ME-SFI [ME] control unit via the chassis CAN 1 (CAN E1), powertrain control unit (N127) and drive CAN.
On vehicles except code ME05 (HYBRID DRIVE 80KW VARIANT (INCLUDING PLUGIN)), the Electronic Stability Program control unit transmits the wheel speed to the ME-SFI [ME] control unit via the chassis CAN 1.
The chemical conversion takes place in the three-way catalytic converter at Δ = 1.
Through oxidation, the carbon monoxide (CO) is converted into carbon dioxide (CO2 ) and the hydrocarbon (HC) into water (H2 O) and carbon dioxide (CO2 ).
Through reduction, the nitrogen oxide (NOx) is converted into nitrogen (N 2) and carbon dioxide (CO2 ).
Once the operating temperature is reached and lambda control has been enabled, the function of the three-way catalytic converter is monitored by the ME-SFI [ME] control unit.
For this purpose, the ME-SFI [ME] control unit reads in the signals from the following component parts directly:
- Crankshaft Hall sensor
- Left oxygen sensor upstream of catalytic converter (G3/3)
- Left oxygen sensor element upstream of CAT (G3/3b1)
- Right oxygen sensor upstream of catalytic converter (G3/4)
- Right oxygen sensor element upstream of CAT (G3/4b1)
- Left oxygen sensor downstream of catalytic converter (G3/5)
- Left oxygen sensor element downstream of CAT (G3/5b1)
- Right oxygen sensor downstream of catalytic converter (G3/6),
- Right oxygen sensor element downstream of CAT (G3/6b1)
The ME-SFI [ME] control unit assesses the oxygen storage capacity of the three-way catalytic converter and, with that, assesses its aging.
Any oxygen exceeding the amount required for the three-way catalytic converter to oxidize carbon monoxide (CO) is stored.
If the oxygen present in the exhaust gas is not sufficient for oxidizing the carbon monoxide (CO), the stored oxygen is fully or partially removed. In combination with the high oxygen storage capacity of the three-way catalytic converter, this procedure achieves an almost complete compensation for the fluctuations in oxygen concentration upstream of the three-way catalytic converter. The oxygen storage capacity, and thus the function of the three-way catalytic converter, can be assessed on the basis of the lambda sensor signals upstream and downstream of the three-way catalytic converter. In the case of a fully functional three-way catalytic converter, high values and changes are measured upstream and downstream of the three-way catalytic converter. In contrast, the lambda sensor signal downstream of the three-way catalytic converter is virtually constant. As the aging process advances, the oxygen storage capacity of the three-way catalytic converter, and thus its ability to convert carbon monoxide (CO) and hydrocarbons (HC), is reduced. Consequently, the lambda sensor signal downstream of the three-way catalytic converter becomes increasingly similar to the lambda sensor signal upstream of the three-way catalytic converter.
The lambda sensor signals upstream and downstream of the three-way catalytic converter are compared. If both signals are almost identical, the three-way catalytic converter is no longer operational. Multiple measurements are performed in the lower partial-load range at specified rotational speeds. The results are compared with a characteristics map in the ME-SFI control unit.
Where a defect is detected, a fault message is output in the instrument cluster (A1). On vehicles with code ME05 (HYBRID DRIVE 80KW VARIANT (INCLUDING PLUGIN)), the ME-SFI [ME] control unit transmits the request for the output of the fault message to the instrument cluster via the drive CAN, powertrain control unit, chassis CAN 1, electronic ignition lock control unit (N73) and chassis CAN 2 (CAN E2). On vehicles except code ME05 (HYBRID DRIVE 80KW VARIANT (INCLUDING PLUGIN)), the ME-SFI [ME] control unit transmits the request for the output of the fault message to the instrument cluster via the chassis CAN 1, electronic ignition lock control unit and chassis CAN 2. Recognized fault are stored in fault memory of the ME-SFI [ME] control unit. These can be read out and deleted with the vehicle diagnosis system.
Exhaust gas cleaning in the NOx storage catalytic converter (engine 276.9 with code 920 (Gasoline direct injection with stratified charge))
In homogenous injection operation with Δ = 1, the pollutants hydrocarbon (HC), carbon monoxide (CO) and nitrogen oxide (NOx ) are converted in the three-way catalytic converter.
In stratified charge operation with Δ > 1, the percentage of nitrogen oxide (NOx ) increases. The nitrogen oxide (NOx ) is converted by the NOx storage catalytic converter. It stores the nitrogen oxide (NOx ) through chemical binding.
The fuel-saving stratified charge operation can be enabled only if the increasing amounts of nitrogen oxide (NOx) can be absorbed by the NOx storage catalytic converter.
If the storage capacity is exhausted, the stored nitrogen oxide (NOx) is converted into nitrogen (N2 ) and carbon dioxide (CO2 ) during the regeneration.
Purging of NOx storage catalytic converter
The ME-SFI [ME] control unit reads in the signals of the following component parts for the regeneration of the NOx storage catalytic converter:
- Temperature sensor upstream of right NOx storage catalytic converter (B16)
- Temperature sensor upstream of left NOx storage catalytic converter (B161)
- Left NOx sensor control unit (N37/5) (via drive train sensor CAN (CAN I))
- Left NOx sensor (N37/5b1)
- Right NOx sensor control unit (N37/6) (via drive train sensor CAN)
- Right NOx sensor (N37/6b1)
The ME-SFI [ME] control unit uses the NO x sensors to detect any abrupt increase in NOx , which indicates that the NOx storage catalytic converter is filled. Regeneration is started by activating homogeneous injection operation.
Stratified charge operation is enabled again after the regeneration has been completed.
For NOx conversion a temperature range of 250 to 500 °C in the NOx storage catalytic converter is optimal. The NOx storage catalytic converter must not exceed a temperature of 800 °C.
The exhaust temperature is monitored by a temperature sensor in every strand of the exhaust system. The temperature sensors are read in directly by the ME-SFI [ME] control unit.
Mixture formation is used to regulate the temperature of the NOx storage catalytic converter. The mixture formation is adapted on the basis of the stored temperature models in order to protect the NOx storage catalytic converter against excessively high temperatures.
In order to convert all pollutants in the exhaust, sulfur-free fuel is required. Sulfur blocks the spaces for nitrogen oxides (NOx
) in the NOx
storage catalytic converter, resulting in fewer nitrogen oxides (NOx
) being stored. Stratified operation is therefore shortened and purging must be performed more frequently.
Exhaust gas cleaning in the gasoline particulate filter (with code 472 (gasoline particulate filter))
The gasoline particulate filter absorbs the emitted soot particles and regenerates itself under specific operating conditions.
The regeneration (soot combustion) of the gasoline particulate filter takes place while the vehicle is being operated in a conventional driving style, predominantly in overrun mode. The soot combustion takes place as soon as enough oxygen is available in the gasoline particulate filter.
| Electrical function schematic for exhaust treatment | PE14.00-P-2051-97NBG | ||
| Overview of system components for gasoline injection and ignition system with direct injection | Engine 276.8 in model 166 (except 166.063) as of model year 2016 | GF07.70-P-9998MMX | |
| Engine 276.8 in model 292 Engine 276.9 in model 166 as of model year 2016 |
GF07.70-P-9998MNG | ||
| Engine 276.8 in model 166.063 as of model year 2016 | GF07.70-P-9998MMM |