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Exhaust Treatment Function - GF14.00-P-3000MNH

Engine 176.9, 177.9 in model 463 as of model year 2019 

Function requirements for exhaust treatment, general points 

IMPORTANT The circuit relay 87M (K40/8kN) is switched on for circuit 15 ON. Exhaust treatment, general 

The task of exhaust treatment is to reduce the exhaust emissions:

To do this, among other things, the catalytic converters (three-way catalytic converters) must be rapidly brought up to operating temperature in order to reduce the exhaust emissions for a cold start.

Function sequence for exhaust treatment 

The function sequence for exhaust treatment encompasses the following sub functions:

Function sequence for catalytic process 

The pollutants emitted by the engine are converted chemically at A=1 by the catalytic converters (three-way catalytic converters). Through oxidation, carbon monoxide is converted to carbon dioxide (CO2) and hydrocarbon to water (H2O)+ carbon dioxide.

Through reduction the nitrogen oxides are converted into nitrogen (N2)+ carbon dioxide.

Additional function requirements for upshift delay 

Function sequence for upshift delay 

The upshift delay is designed to warm up the catalytic converters to operating temperature more rapidly after the engine has started. The ME-SFI [ME] control unit (N3/10) controls the upshift delay depending on the following signals:

Upshift delay is active for a maximum of 60 s and is entirely electronic. The ME-SFI [ME] control unit makes a request to the fully integrated transmission control unit (Y3/8n4) via drive CAN to move the shift characteristic curves.

Partial load gear shifts (1-2-1, 2-3-2) therefore take place at higher engine speeds or at higher vehicle speeds.

Additional function requirements for monitoring the catalytic converter efficiency 

Function sequence for monitoring the catalytic converter efficiency 

Hydrocarbon (HC) emissions must not exceed the limit specified by the legal requirements.

The task of the catalytic converter efficiency monitoring function is to determine the aging of the catalytic converters and thus their HC conversion based on their oxygen storage capability. The ME-SFI [ME] control unit reads in signals from the following sensors to monitor the catalytic converter efficiency:

The oxygen stored during the "lean operating phase" is reduced totally or partially during the "rich operating phase". With aging, the oxygen storage capacity of the catalytic converters is reduced, and thus also HC conversion.

Changes in the oxygen concentration level downstream of the catalytic converters are almost completely dampened by the high oxygen storage capacity of the catalytic converters.

Consequently, the signals from the lambda senors downstream of the catalytic converters have low amplitude and are virtually constant. When catalytic converters are at operating temperature and the lambda control is enabled, the signal amplitudes of the lambda senors upstream of the catalytic converters are compared with those downstream.

If the catalytic converters are no longer functional, then the lambda senor signals of the sensor elements for the lambda senors upstream of the catalytic converter and the lambda senor signals of the sensor elements for the lambda senors downstream of the catalytic converter are the same magnitude.

A number of measurements take place in the lower partial-load range in the specified rpm range. The results are compared with a characteristics map in the ME-SFI [ME] control unit. If a fault is detected, the engine diagnosis indicator lamp in the instrument cluster (A1) is actuated via the drive CAN, the powertrain control unit, the suspension FlexRay, the electronic ignition lock control unit (N73), and the user interface CAN (CAN HMI).

IMPORTANT Any faults detected are stored in the fault memory of the ME-SFI control unit. These can be read out and deleted with XENTRY Diagnostics.

  Electrical function schematic for exhaust treatment   PE14.00-P-2051-97ZGF 
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