IP Library › Granted Patent US 9,482,570
Granted Patent B2
US 9,482,570 · App. 14/426,164 · Granted Nov 1, 2016

Device and method for recalibrating an exhaust gas mass flow sensor

Inventors: Lars Baumeister (Nettetal, DE); Karl Wuebbeke (Inden, DE); Dirk Kamarys (Willich, DE)
Assignee: PIERBURG GMBH
G01F25/00F02D41/1445G01F1/68G01F1/684G01F1/692G01F1/6965G01F25/0007G01M15/10F01N2900/1411F02D41/1494F02D41/187
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Quick Facts
Patent No.
US 9,482,570
App. No.
14/426,164
Granted
Nov 1, 2016
Kind
B2
Abstract

A device for recalibrating an exhaust gas mass flow sensor includes a first sensor, a second sensor, and a control unit. The first sensor comprises a heating element and a first temperature measuring element. The second sensor comprises a second temperature measuring element. The control unit controls a temperature signal produced at the heating element and comprises a first and second characteristic map. The first characteristic map plots an exhaust gas mass flow as a function of a heat dissipation of the heating element. A correction factor can be determined from the second characteristic map based on the temperature signal produced at the heating element and measured by the first temperature measuring element and based on a temperature signal measured via the heating element at the second temperature measuring element. The correction facture corrects a measured heat dissipation of the unit heating element to a corrected exhaust gas mass flow.

Claims (34)

1. A device for recalibrating an exhaust gas mass flow sensor, the device comprising:

a first sensor unit comprising a first sensor unit heating element and at least one first sensor unit temperature measuring element;

a second sensor unit comprising a second sensor unit temperature measuring element; and

a control unit configured to control a temperature signal produced at the first sensor unit heating element, the control unit comprising,

a first characteristic map in which an exhaust gas mass flow is plotted as a function of a heat dissipation of the first sensor unit heating element, and

a second characteristic map from which a correction factor can be determined based on the temperature signal produced at the first sensor unit heating element and measured by the at least one first sensor unit temperature measuring element and based on a temperature signal measured via the first sensor unit heating element at the second sensor unit temperature measuring element,

wherein, the correction facture is used to correct a measured heat dissipation of the first sensor unit heating element to a corrected exhaust gas mass flow.

2. The device as recited in claim 1 , wherein the second sensor unit further comprises a second sensor unit heating element.

3. A method for recalibrating an exhaust gas mass flow sensor, the method comprising:

providing an exhaust gas mass flow sensor comprising:

a first sensor unit comprising a first sensor unit heating element and at least one first sensor unit temperature measuring element,

a second sensor unit comprising a second sensor unit temperature measuring element, and

a control unit configured to control a temperature signal produced at the first sensor unit heating element;

generating, prior to installing the exhaust gas mass flow sensor, a first characteristic map in which an exhaust gas mass flow is plotted as a function of a heat dissipation of the first sensor unit heating element;

storing the first characteristic map in the control unit;

measuring a reaction temperature profile for various degrees of contamination of the first sensor unit and the second sensor unit at the second sensor unit temperature measuring element relative to a temperature profile generated at the first sensor unit heating element and determined by the at least one first sensor unit temperature element;

generating a correction factor from the reaction temperature profile;

storing the correction factor as a second characteristic map in the control unit; and

correcting the exhaust gas mass flow calculated during an operation of the exhaust gas mass flow sensor with first characteristic map and the correction factor.

4. The method as recited in claim 3 , wherein the correction factor is generated during a controlled stationary state of an internal combustion engine by generating the temperature profile at the first sensor unit heating element and measuring a reaction temperature profile at the second sensor unit temperature measuring element.

5. The method as recited in claim 4 , wherein the controlled stationary state is a state in which the internal combustion engine has not been started.

6. The method as recited in claim 3 , wherein for different degrees of contamination of the first sensor unit and the second sensor unit, the method comprises,

measuring at least two reaction temperature profiles for the different degrees of contamination of the first sensor unit and the second sensor unit at the second sensor unit temperature measuring element relative to at least two different temperature profiles generated at the first sensor unit heating element;

generating the correction value from a change in the at least two reaction temperature profiles and a difference of the at least two reaction temperature profiles;

storing the correction factor as the second characteristic map in the control unit; and

correcting the exhaust gas mass flow calculated during the operation of the exhaust gas mass flow sensor with first characteristic map and the correction factor.

7. The method as recited in claim 3 , wherein,

the first characteristic map plots the exhaust gas flow as a function of a heat dissipation of the first sensor unit heating element and as a function of the correction factor, and

the correction factor is respectively extracted from the second characteristic map as a function of a last measured reaction temperature signal.

8. The method as recited in claim 3 , wherein,

the second sensor unit further comprises a second sensor unit heating element, and

the method further comprises,

cleaning the first sensor unit by burning-free the first sensor unit with the first sensor unit heating element; and

cleaning the second sensor unit by burning-free the second sensor unit with the second sensor unit heating element.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 5, 2015
From: BAUMEISTER, LARS, MR.; WUEBBEKE, KARL, MR.; KAMARYS, DIRK, MR.
To: PIERBURG GMBH
Reel/Frame 035089/0473 →
Priority Claims (1)
DE 10 2012 108 350 · Sep 7, 2012 · national
Continuity (1)
Related Publication 20150226596A1 · Aug 13, 2015