Claims
- 1. A gas sensor comprising a sensor element for detecting a specific gas component, a housing which contains said sensor element therein and has a sealing surface which forms a sealing section together with an installation section at the front in a direction in which said sensor element in inserted, and a rotating member which has a thread section which is formed outside said rotating member and is to be screwed into the installation section and can be rotated concentrically with respect to a central axis of said housing;
wherein when said gas sensor is installed in the installation section by screwing said rotating member into the installation section, a release torque of said rotating member at 850° C. (1123 K) is 9 N·m or more; and wherein an estimated value X3 of a gap formed between said sealing surface of said housing and a sealing surface of the installation section at 850° C. (1123 K), that is calculated according to the following equation, is 31 μm or less: X3(μm)={(L1×α1)−(L4×α4)−(L5×α5) }×1123;wherein X3 represents an estimated value (μm) of the gap, L1 represents a length (μm) from the sealing surface of the installation section to a top end of the installation section, L4 represents a length (μm) from a bottom end to a top end of said thread section, L5 represents a length (μm) from said sealing surface of said housing to the bottom end of said thread section, α1 represents a coefficient of thermal expansion (×10−6/° C.) of the installation section, α4 represents a coefficient of thermal expansion (×10−6/° C.) of said rotating member, and α5 represents a coefficient of thermal expansion (×10−6/° C.) of said housing.
- 2. The gas sensor according to claim 1, wherein a gasket is provided in contact with said sealing surface of said housing and an estimated value X4 of the gap, that is calculated according to the following equation, is 31 μm or less:
- 3. The gas sensor according to claim 2, wherein said gasket comprises at least one material selected from the group consisting of 430 SS, 304 SS, 310 SS, 316 SS, and 321 SS.
- 4. The gas sensor according to claim 1, wherein said rotating member comprises at least one material selected from the group consisting of 430 SS, 304 SS, 310 SS, 316 SS, and 321 SS.
- 5. A gas sensor installation structure comprising:
an installation section; and a gas sensor comprising a sensor element for detecting a specific gas component, a housing which contains said sensor element therein and has a sealing surface which forms a sealing section together with said installation section at the front in a direction in which said sensor element is inserted, and a rotating member which has a thread section which is formed outside said rotating member and is screwed into said installation section and can be rotated concentrically with respect to a central axis of said housing; wherein said gas sensor is installed in said installation section by screwing said rotating member into said installation section; wherein a release torque of said rotating member at 850° C. (1123 K) is 9 N·m or more; and wherein an estimated value X7 of a gap formed between said sealing surface of said housing and a sealing surface of said installation section at 850° C. (1123 K), that is calculated according to the following equation, is 31 μm or less:X7(μm)={(L1×α1)−(L4×α4)−(L5×α5)}×1123;wherein X7 represents an estimated value (μm) of said gap, L1 represents a length (μm) from said sealing surface of said installation section to a top end of said installation section, L4 represents a length (μm) from a bottom end to a top end of said thread section, L5 represents a length (μm) from said sealing surface of said housing to the bottom end of said thread section, α1 represents a coefficient of thermal expansion (×10−6/° C.) of said installation section, α4 represents a coefficient of thermal expansion (×10−6/° C.) of said rotating member, and α5 represents a coefficient of thermal expansion (×10−6/° C.) of said housing.
- 6. The gas sensor installation structure according to claim 5, wherein said sealing section is formed through a gasket and an estimated value X8 of said gap, that is calculated according to the following equation, 31 μm or less:
- 7. The gas sensor installation structure according to claim 6, wherein said gasket comprises at least one material selected from the group consisting of 430 SS, 304 SS, 310 SS, 316 SS, and 321 SS.
- 8. The gas sensor installation structure according to claim 5, wherein said rotating member comprises at least one material selected from the group consisting of 430 SS, 304 SS, 310 SS, 316 SS, and 321 SS.
- 9. A method for installing a gas sensor comprising the steps of:
providing an installation section having a sealing surface; providing a gas sensor comprising a sensor element for detecting a specific gas component, a housing which contains said sensor element therein and has a sealing surface which forms a sealing section together with said installation section at the front in a direction in which said sensor element in inserted, and a rotating member which has a thread section which is formed outside said rotating member and is screwed into said installation section and can be rotated concentrically with respect to a central axis of said housing; and installing said gas sensor in said installation section by screwing said rotating member; wherein a release torque of said rotating member at 850° C. (1123 K) is 9 N·m or more; and wherein an estimated value X11 of a gap formed between said sealing surface of said housing and a sealing surface of said installation section at 850° C. (1123 K), that is calculated according to the following equation, is 31 μm or less:X1(μm)={(L1×α1)−(L4×α4)−(L5×α5)}×1123;wherein X11 represents an estimated value (μm) of said gap, L1 represents a length (μm) from said sealing surface of said installation section to a top end of said installation section, L4 represents a length (μm) from a bottom end to a top end of said thread section, L5 represents a length (μm) from said sealing surface of said housing to the bottom end of said thread section, α1 represents a coefficient of thermal expansion (×10−6/° C.) of said installation section, α4 represents a coefficient of thermal expansion (×10−6/° C.) of said rotating member, and α5 represents a coefficient of thermal expansion (×10−6/° C.) of said housing.
- 10. The method for installing a gas sensor according to claim 9, wherein said sealing section is formed through a gasket and said rotating member is screwed in said installation step so that an estimated value X12 of the gap, that is calculated according to the following equation, is 31 μm or less:
Priority Claims (1)
Number |
Date |
Country |
Kind |
2002-095842 |
Mar 2002 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a division of U.S. application Ser. No. 10/396,633, filed Mar. 25, 2003, the entirety of which is incorporated herein by reference.
[0002] This application also claims the benefit of Japanese Application No. 2002-095842, filed Mar. 29, 2002, the entirety of which is incorporated herein by reference.
Divisions (1)
|
Number |
Date |
Country |
Parent |
10396633 |
Mar 2003 |
US |
Child |
10854728 |
May 2004 |
US |