Claims
- 1. A gas sensor, comprising:
a housing; a sensor element; and a seal assembly arranged to fix the sensor element in the housing and including at least one sealing element; wherein the sealing element one of:
includes a ceramic material sintered in a heat treatment; and is porous and includes a metallic component; and wherein the sealing element is adapted to experience, after heat treatment, one of a maximum decrease in volume of 5 percent and an increase in volume based on the volume of the sealing element prior to heat treatment.
- 2. The gas sensor according to claim 1, wherein the gas sensor is configured to determine at least one physical quantity of a gas.
- 3. The gas sensor according to claim 2, wherein the gas includes an exhaust gas of an internal combustion engine.
- 4. The gas sensor according to claim 1, wherein a ceramic fraction of the sealing element is in the range of 0 to 70 weight percent, and the sealing element includes a metallic component at a level in a range of 30 to 100 weight percent.
- 5. The gas sensor according to claim 4, wherein the ceramic fraction of the sealing element is 30 weight percent.
- 6. The gas sensor according to claim 4, wherein the metallic component is at the level of 30 weight percent.
- 7. The gas sensor according to claim 1, further comprising another metallic element, the sealing element coupled to one of the housing and the another metallic element of the gas sensor by a weld.
- 8. The gas sensor according to claim 7, wherein the weld includes a laser weld.
- 9. The gas sensor according to claim 1, wherein the sealing element includes a maximum glass fraction of 20 weight percent.
- 10. The gas sensor according to claim 1, wherein the sealing element includes a maximum glass fraction of 10 weight percent.
- 11. The gas sensor according to claim 1, wherein the sealing element is integrally connected to at least one part of the gas sensor adjacent to the sealing element.
- 12. The gas sensor according to claim 1, wherein the sealing element is integrally connected to at least one of the sensor element and the housing adjacent to the sealing element.
- 13. The gas sensor according to claim 1, wherein the sealing element has a closed porosity, a pore fraction of the sealing element in a range of 15 to 50 volume percent, an average pore size in a range of 1 to 100 μm, and at least 90 percent of the pores having a pore size in a range of 10 to 60 μm.
- 14. The gas sensor according to claim 13, wherein the pore fraction is 35 volume percent.
- 15. The gas sensor according to claim 13, wherein the average pore size is 30 μm.
- 16. The gas sensor according to claim 1, wherein the sealing element completely fills a region between the sensor element and the housing.
- 17. The gas sensor according to claim 1, wherein the housing is metallic and the seal assembly includes a machined, metallic part joined to the housing by a weld.
- 18. The gas sensor according to claim 17, wherein the weld includes a laser weld.
- 19. The gas sensor according to claim 17, wherein the machined, metallic part is cup-shaped, and the sensor element is arranged in a center of the machined, metallic part.
- 20. The gas sensor according to claim 19, further comprising an insulating element having an opening arranged to receive the sensor element, on one side, the metallic machined part has an opening arranged to receive the insulating element.
- 21. The gas sensor according to claim 1, wherein the seal assembly includes a body surrounding the sensor element, at least one of a first sealing element arranged between the body and the housing and a second sealing element arranged between the body and the sensor.
- 22. The gas sensor according to claim 21, wherein, in a sectional plane perpendicular to the sensor element, the body includes an opening arranged to accommodate the sensor element, a shape of the opening corresponding to a cross-section of the sensor element.
- 23. The gas sensor according to claim 1, wherein the sealing element includes a first region adjacent to the sensor element and a second region adjacent to the housing having a higher metallic fraction and a lower ceramic fraction than the first region, at least one of the metallic and ceramic fraction changing one of in at least one step and continuously from the second region to the first region.
- 24. The gas sensor according to claim 1, further comprising a layer covering at least one region of at least one of the sealing element, the housing, and the sensor element, the layer including at least one of a ceramic material and a glass.
- 25. The gas sensor according to claim 1, further comprising an intermediate layer including at least one of aluminum oxide, zirconium oxide, and aluminum phosphate between the sealing element and one of the housing and another metallic element of the gas sensor.
- 26. A method for manufacturing a gas sensor having a sensor element which is fixed in a housing by a seal assembly including a sealing element, comprising:
introducing a starting material for the sealing element into the seal assembly; subjecting the seal assembly having the starting material to a heat treatment; and subjecting the starting material to a sintering process during the heat treatment so that, after the heat treatment, the sealing element has one of a maximum decrease in volume of 5 percent and an increase in volume, based on the volume of the sealing element prior to the heat treatment.
- 27. The method according to claim 26, wherein the gas sensor is configured to determine at least one physical quantity of a gas.
- 28. The method according to claim 27, wherein the gas includes an exhaust gas of an internal combustion engine.
- 29. The method according to claim 26, wherein, in accordance with the heat treatment, a continuous material connection is produced between the sealing element and at least one part of the gas sensor adjacent to the sealing element, and the sealing element includes a closed porosity after the heat treatment, a temperatures occurring during the heat treatment not exceeding 1000 degrees Celsius.
- 30. The method according to claim 26, wherein, after the heat treatment, the sealing element includes a ceramic fraction in the range of 0 to 70 weight percent and a metallic fraction in the range of 30 to 100 weight percent.
- 31. The method according to claim 26, wherein, after the heat treatment, the sealing element includes a ceramic fraction of 40 weight percent and a metallic fraction of 60 weight percent.
- 32. The method according to claim 26, wherein, prior to the heat treatment, the starting material of the sealing element is introduced into the seal assembly in the introducing step one of in the form of a preformed element and by an injection-molding process.
Priority Claims (1)
Number |
Date |
Country |
Kind |
102 22 789.6 |
May 2002 |
DE |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims priority to Application No. 102 22 789.6, filed in the Federal Republic of Germany on May 23, 2002, which is expressly incorporated herein in its entirety by reference thereto.