Sensor

The sensor design with an expanded diameter housing and optional protective cover minimizes water contact with the heater, addressing the issue of water dripping and enhancing sensor reliability.

JP7733592B2Active Publication Date: 2025-09-03NGK CORP
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Patent Information

Application Number
JP2022017927
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-31
Filing Date
2022-02-08
Publication Date
2025-09-03
Estimated Expiration
2042-02-08

AI Technical Summary

Technical Problem

Conventional sensor cover members fail to adequately prevent water from dripping onto the heater portion of the sensor element, leading to potential damage due to condensation or humidity, despite reducing the likelihood of the sensor element becoming wet.

Method used

The sensor design incorporates a housing with an expanded diameter portion near the heater, positioning the heater further forward than the rear end of the expanded diameter, and optionally includes a protective cover and a porous protective layer to minimize water contact with the heater.

Benefits of technology

This configuration effectively reduces the probability of the heater portion becoming wet, thereby preventing potential damage and maintaining sensor efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a sensor allowing reduction of probability at which a heater part of a sensor element is submerged.SOLUTION: The sensor according to one aspect of the invention comprises a built-in heater, a sensor element extending in a longer direction, and a housing configured to surround the sensor element along the longer direction. The sensor element includes a tip part and a rear end part. The heater includes a heat generation part and a lead part. The heat generation part has a tip and a read end, and is arranged on a tip part side of the sensor element. The housing includes, in a cross section parallel to the axis of the longer direction, an enlarged diameter part configured to expand a housing inner wall as closer to the tip part side of the sensor. The enlarged diameter part has a tip part and a rear end part. The rear end part of the heat generation part is arranged closer to the tip side of the sensor than the rear end part of the enlarged diameter part.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a sensor. [Background technology]

[0002] There are sensors (for example, the gas sensor disclosed in Patent Document 1) that are configured with a sensor element. To suppress the influence of temperature, a heater may be built into the sensor element. For example, in the invention proposed in Patent Document 1, a heater is built into the sensor element to activate the solid electrolyte that constitutes the sensor element.

[0003] Furthermore, sensors may be used in locations exposed to environmental influences such as weather. For example, a gas sensor may be placed in an exhaust pipe of a vehicle to monitor exhaust gas from the vehicle. In such a case, if the sensor element (particularly the heater portion) becomes wet due to, for example, humidity, condensation, rain, or the like, the efficiency of heating by the heater may decrease, which may result in adverse effects such as cracks in the sensor element.

[0004] In response to this, Patent Documents 2 and 3 propose protecting the sensor element with a cover member such as a protective cover or housing. The cover members proposed in Patent Documents 2 and 3 reduce the probability of the sensor element (particularly the heater portion) becoming wet, and can reduce the possibility of the above-mentioned adverse effects occurring. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Publication No. 2020-180985 [Patent Document 2] Japanese Patent Application Laid-Open No. 2017-223619 [Patent Document 3] Special Publication No. 2018-536860 Summary of the Invention [Problem to be solved by the invention]

[0006] The present inventors have discovered the following problem with conventional cover members. Specifically, the housing proposed in Patent Document 3 has an inner wall with a wider diameter toward the tip, which increases the distance between the sensor element and the inner wall of the housing toward the tip. This reduces the likelihood of the sensor element becoming wet, even if water forms on the inner wall of the housing due to condensation or other reasons. However, this housing shape alone may not be sufficient to prevent water damage. For example, water generated by condensation or other reasons may flow along the inner wall of the housing to the rear end of the widening diameter (the starting point of the widening diameter), potentially dripping from this point onto the sensor element. This dripping water may land near the heat-generating portion of the heater in the sensor element, potentially causing the adverse effects described above.

[0007] In one aspect, the present invention has been made in view of the above circumstances, and an object of the present invention is to provide a sensor in which the probability that the heater portion of the sensor element will become wet is reduced. [Means for solving the problem]

[0008] In order to solve the above-mentioned problems, the present invention employs the following configuration.

[0009] A sensor according to one aspect of the present invention comprises a sensor element incorporating a heater and extending in a longitudinal direction, and a housing configured to surround the sensor element along the longitudinal direction. The sensor element has a front end and a rear end. The heater comprises a heat generating portion and a lead portion. The heat generating portion has a front end and a rear end and is arranged on the front end side of the sensor element. The housing comprises an expanded diameter portion configured so that, in a cross section parallel to the longitudinal axis, the diameter of the inner wall of the housing expands toward the front end of the sensor. The expanded diameter portion has a front end and a rear end. The rear end of the heat generating portion is arranged closer to the front end of the sensor than the rear end of the expanded diameter portion.

[0010] In this configuration, the housing is provided with an expanded diameter portion near the heat generating portion of the heater of the sensor element. This expanded diameter portion is configured so that the distance between the inner wall of the housing and the sensor element increases toward the tip of the sensor. In addition, the rear end of the expanded diameter portion is located closer to the rear end of the sensor than the rear end of the heat generating portion of the heater. As a result, even if water flows on the inner wall of the housing and drips from the rear end of the expanded diameter portion, the heater heat generating portion is located further forward than the rear end, preventing water dripping from the inner wall of the housing (the rear end of the expanded diameter portion) from contacting the heater heat generating portion. Therefore, a sensor with this configuration can reduce the probability of water getting on the heater portion of the sensor element.

[0011] In the sensor according to the above aspect, the cross-sectional shape of the expanded diameter portion may be configured to have a taper. The taper angle may be 10 degrees or more and less than 90 degrees. The taper angle may be 20 degrees or more and less than 90 degrees. Alternatively, the taper angle may be 30 degrees or more and less than 90 degrees. These configurations can effectively reduce the probability that the heater portion of the sensor element will become wet.

[0012] In the sensor according to the above aspect, the cross-sectional shape of the expanded diameter portion may be configured to be R. With this configuration, it is possible to effectively reduce the probability that the heater portion of the sensor element will be wetted.

[0013] The sensor according to the above aspect may further include a protective cover configured to surround at least a portion of the enlarged diameter portion of the housing along the longitudinal direction and extend beyond the tip end of the sensor element. With this configuration, the protective cover can reduce the probability of the housing and the sensor element becoming wet.

[0014] In the sensor according to the above aspect, the sensor element may have a porous protective layer that covers at least a portion of the sensor element. With this configuration, the porous protective layer can reduce the influence of water on the sensor element and improve the strength of the sensor element.

[0015] In the sensor according to the above aspect, the sensor element may be a gas sensor element. With this configuration, it is possible to provide a gas sensor in which the probability of the heater portion being wetted with water is reduced. [Effects of the Invention]

[0016] According to the present invention, it is possible to provide a sensor in which the probability that the heater portion of the sensor element will be wetted is reduced. [Brief explanation of the drawings]

[0017] [Figure 1] FIG. 1 is a cross-sectional view schematically illustrating an example of the configuration of a sensor according to an embodiment. [Figure 2] FIG. 2 is a cross-sectional view schematically illustrating an example of the configuration of the sensor element according to the embodiment. [Figure 3] FIG. 3 is a cross-sectional view schematically illustrating an example of the configuration of a sensor according to a modified example. [Figure 4] FIG. 4 is a cross-sectional view schematically illustrating an example of the configuration of a sensor according to a modified example. [Figure 5] FIG. 5 is a cross-sectional view schematically illustrating an example of the configuration of a sensor element according to a modified example. [Figure 6] FIG. 6 is a cross-sectional view schematically illustrating an example of the configuration of a sensor according to a modified example. [Figure 7] FIG. 7 is a cross-sectional view schematically illustrating an example of the configuration of a sensor according to a modified example. [Figure 8] FIG. 8 is a cross-sectional view schematically illustrating an example of the configuration of a sensor according to a modified example. DETAILED DESCRIPTION OF THE INVENTION

[0018] An embodiment according to one aspect of the present invention (hereinafter also referred to as "the present embodiment") will be described below with reference to the drawings. However, the present embodiment described below is merely an example of the present invention in all respects. It goes without saying that various improvements and modifications can be made without departing from the scope of the present invention. In other words, when implementing the present invention, specific configurations according to the embodiment may be appropriately adopted.

[0019] [Configuration example] FIG. 1 is a cross-sectional view schematically illustrating an example of the configuration of a sensor S according to this embodiment. The sensor S has an axis and is configured to extend along the longitudinal direction (axial direction). FIG. 1 schematically illustrates the configuration of a cross section parallel to and tangent to the longitudinal axis (a line along the vertical direction in the figure). The sensor S has a front end and a rear end as its respective longitudinal ends. One longitudinal end is the front end, and the other end is the rear end. In the example of FIG. 1, the sensor S is disposed so that the front end of the sensor S faces downward and the rear end of the sensor S faces upward. In other words, the vertical direction in FIG. 1 corresponds to the longitudinal direction (axial direction). In this embodiment, the sensor S includes a sensor element 100, a housing 200, and a protective cover 300.

[0020] (sensor element) The sensor element 100 incorporates a heater 70 and is configured to extend in the longitudinal direction (the vertical direction in FIG. 1 ). The sensor element 100 has a front end 110 and a rear end 120 as its respective ends in the longitudinal direction. The sensor element 100 is arranged so that the front end 110 faces the front end of the sensor S. The heater 70 includes a heat generating portion 72 and a lead portion 73. The heat generating portion 72 has a front end 721 and a rear end 722 as its respective ends in the longitudinal direction. The heat generating portion 72 is arranged on the front end 110 side of the sensor element 100 with the front end 721 of the heat generating portion 72 facing the front end 110 of the sensor element 100. The lead portion 73 is connected to the rear end 722 of the heat generating portion 72 and is arranged on the rear end 120 side of the sensor element 100.

[0021] In the example of FIG. 1 , the sensor element 100 is formed in a rectangular parallelepiped shape, but the shape of the sensor element 100 is not limited to this example. The shape of the sensor element 100 may be selected appropriately depending on the embodiment. Furthermore, the type of the sensor element 100 is not particularly limited and may be selected appropriately depending on the embodiment. In one example, the sensor element 100 may be a gas sensor element, and the sensor S may be configured to measure the concentration of any gas component. An example of the configuration of the sensor element 100 when a gas sensor element is used as the sensor element 100 will be described in detail later.

[0022] (housing) The housing 200 is configured to surround the sensor element 100 along the longitudinal direction. In the example shown in FIG. 1 , the housing 200 is formed in a cylindrical shape. As a result, the housing 200 is configured to surround the sensor element 100 except for a portion on the tip end 110 side by accommodating the sensor element 100 in the internal space of the housing 200. However, the shape of the housing 200 is not limited to this example. As shown in FIG. 1 , the housing 200 may be configured to surround a portion of the sensor element 100, or may be configured to completely surround the sensor element 100 along the longitudinal direction. As long as the housing 200 is configured to surround at least a portion of the sensor element 100, the shape of the housing 200 is not particularly limited and may be selected appropriately depending on the embodiment.

[0023] The housing 200 has a front end and a rear end as respective ends in the longitudinal direction, and is disposed so that the front end of the housing 200 faces the front end of the sensor S. In a cross section parallel to the longitudinal axis shown in FIG. 1, the housing 200 is provided with an expanding diameter portion 210 configured so that the diameter of an inner wall 215 of the housing 200 expands toward the front end of the sensor S. The inner wall 215 of the housing 200 is the inner wall of the housing 200 that faces the sensor element 100 accommodated in the internal space of the housing 200.

[0024] The expanded diameter portion 210 is disposed on the front end side of the housing 200. The expanded diameter portion 210 has a front end portion 211 and a rear end portion 212 as respective ends in the longitudinal direction, and is disposed so that the front end portion 211 of the expanded diameter portion 210 faces the front end of the sensor S. When the expanded diameter portion 210 is viewed from the rear end side to the front end side of the sensor S, the rear end portion 212 of the expanded diameter portion 210 is the position where the diameter of the inner wall 215 begins to expand. Therefore, the rear end portion 212 may also be referred to as the starting point of the expanded diameter portion 210. In this embodiment, the rear end portion 212 of the expanded diameter portion 210 is disposed closer to the rear end of the sensor S than the rear end 722 of the heat generating portion 72 of the heater 70. In other words, the rear end 722 of the heat generating portion 72 of the heater 70 is disposed closer to the front end of the sensor S than the rear end portion 212 of the expanded diameter portion 210.

[0025] The shape of the expanded diameter portion 210 may be determined appropriately depending on the embodiment as long as the diameter of the inner wall 215 increases toward the tip of the sensor S, i.e., the distance between the sensor element 100 and the inner wall 215 in the direction perpendicular to the axis (the left-right direction in FIG. 1 ) is greater at the tip end 211 than at the rear end 212. As an example, as shown in FIG. 1 , the shape of the expanded diameter portion 210 in the cross section of FIG. 1 may be tapered. The taper angle 220 may be determined appropriately depending on the embodiment. For example, the taper angle 220 may be 10 degrees or greater and less than 90 degrees. In another example, the taper angle 220 may be 20 degrees or greater and less than 90 degrees. In yet another example, the taper angle 220 may be 30 degrees or greater and less than 90 degrees. The taper angle 220 may be determined by the angle between the imaginary straight line and the inner wall 215 of the expanded diameter portion 210 when it is assumed that the shape of the rear end side of the sensor S continues in a straight line from the starting point of the expanded diameter portion 210 (i.e., the rear end portion 212) toward the tip side in the cross section of Figure 1.

[0026] 1, the inner wall 215 in the portion other than the expanded diameter portion 210 has a portion that is continuous with the rear end 212 of the expanded diameter portion 210 and has the same diameter as the rear end 212, and the portion further rearward of the sensor S than that portion has a slightly wider shape so as to receive the support member of the sensor element 100. However, the shape and diameter of the inner wall 215 in the portion other than the expanded diameter portion 210 are not limited to this example and may be determined appropriately depending on the embodiment.

[0027] For example, a metal material such as stainless steel (for example, SUS) may be used as the material of the housing 200. The housing 200 may be manufactured by appropriately shaping the metal material.

[0028] (protective cover) The protective cover 300 is configured to surround at least a portion of the enlarged diameter portion 210 of the housing 200 along the longitudinal direction and extend beyond the tip portion 110 of the sensor element 100. In the example of FIG. 1 , the protective cover 300 is formed in a roughly cylindrical shape and configured to surround the sensor element 100 and a portion of the tip side of the housing 200 around the axis. The protective cover 300 has a front end and a rear end as respective ends in the longitudinal direction, and the front end of the protective cover is positioned closer to the tip side of the sensor S than the tip portion 110 of the sensor element 100.

[0029] As an example, the configuration of the protective cover 300 may employ the configuration of a protective cover proposed in Japanese Patent Application Laid-Open No. 2017-223619. Specifically, in the example of FIG. 1, the protective cover 300 includes an inner cover 310 and an outer cover 320. The inner cover 310 includes a first member 311 and a second member 315 and is configured to cover the periphery of the sensor element 100 and the tip end of the housing 200. The first member 311 extends along the longitudinal direction from the outer wall of the tip end of the housing 200, reduces in diameter in a direction perpendicular to the longitudinal direction around the tip end of the housing 200, and then continues to extend along the longitudinal direction. The second member 315 is configured to cover the periphery of a portion of the tip end of the first member 311. The outer cover 320 is configured to cover the periphery of the inner cover 310. Openings are appropriately provided in the first member 311, the second member 315 of the inner cover 310, and the outer cover 320, thereby connecting the space at the tip portion 110 of the sensor element 100 to the space outside the protective cover 300. However, the configuration and shape of the protective cover 300 are not limited to this example. The configuration and shape of the protective cover 300 may be determined appropriately depending on the embodiment.

[0030] The protective cover 300 may be made of a metal material such as stainless steel (e.g., SUS). The protective cover 300 may be manufactured by appropriately shaping the metal material. Note that the protective cover 300 may be omitted from the configuration of the sensor S.

[0031] (Example of dimensions) The dimensions of the sensor element 100, the housing 200, and the protective cover 300 may be determined appropriately depending on the embodiment. As an example, a first distance (length in the left-right direction in FIG. 1 / distance between an inner wall 215 of the rear end 212 and an outer wall of the sensor element 100) between the rear end 212 of the enlarged diameter portion 210 of the housing 200 and the sensor element 100 may be 1 mm to 4 mm. Furthermore, a second distance (length in the left-right direction in FIG. 1 / distance between an inner wall 215 of the front end 211 and an outer wall of the sensor element 100) between the front end 211 of the enlarged diameter portion 210 of the housing 200 and the sensor element 100 may be 2 mm to 6 mm, which is longer than the first distance.

[0032] (Example of usage) The sensor S may be attached as appropriate depending on the embodiment. As an example, when a gas sensor element is used as the sensor element 100, the sensor S may be attached to a pipe 410 that is an exhaust path from a vehicle engine. In the example of FIG. 1 , the sensor S further includes a metal nut 400 having a male thread on its outer circumferential surface. The nut 400 is fixed to the outer circumferential surface of the housing 200. The housing 200 is welded to the pipe 410 and is inserted together with the nut 400 into a fixing member 412 having a female thread on its inner circumferential surface. The fixing member 412 is fixed to the pipe 410. The male thread of the nut 400 is then screwed into the female thread of the fixing member 412. In this way, the sensor S is fixed to the pipe 410 via the housing 200 and the fixing member 412.

[0033] In one example, the sensor element 100 configured as a gas sensor element detects NO contained in exhaust gas (measurement gas) discharged from an engine. x 1, the sensor S is fixed to the pipe 410 with the axis of the sensor S perpendicular to the flow of exhaust gas in the pipe 410 and the tip 110 of the sensor element 100 facing downward. The mounting angle of the sensor S to the pipe 410 is not limited to this example. The sensor S may be fixed to the pipe 410 with the axis of the sensor S tilted at any angle to the flow of exhaust gas. The mounting angle of the sensor S may be configured, for example, so that the tip 110 of the sensor element 100 faces an angle of 0 to 80 degrees with respect to the vertically downward direction. A similar mounting angle may be adopted in cases where the sensor element 100 is mounted other than on the pipe 410 or in cases where the sensor element 100 is configured as a device other than a gas sensor element.

[0034] (Configuration of sensor element) FIG. 2 is a cross-sectional view illustrating an example of the configuration of the sensor element 100 when a gas sensor element is used as the sensor element 100. The sensor element 100 has a structure in which six layers, namely, a first substrate layer 1, a second substrate layer 2, a third substrate layer 3, a first solid electrolyte layer 4, a spacer layer 5, and a second solid electrolyte layer 6, each of which is an oxygen ion conductive solid electrolyte layer made of zirconia (ZrO), etc., are stacked in this order from bottom to top in the cross-sectional view of FIG. 2. The solid electrolyte forming these six layers may be dense and airtight. Note that "dense and airtight" refers to a porosity of 5% or less. The sensor element 100 is manufactured, for example, by stacking ceramic green sheets corresponding to each layer after performing processes such as predetermined processing and printing of wiring patterns, and then sintering the stacked layers to integrate them. As an example, the sensor element 100 is a laminate of multiple ceramic layers.

[0035] At one tip of the sensor element 100, between the lower surface of the second solid electrolyte layer 6 and the upper surface of the first solid electrolyte layer 4, a gas inlet 10, a first diffusion-controlling section 11, a buffer space 12, a second diffusion-controlling section 13, a first internal space 20, a third diffusion-controlling section 30, and a second internal space 40 are formed adjacent to each other and communicate with each other in this order.

[0036] The gas inlet 10, the buffer space 12, the first internal space 20, and the second internal space 40 are spaces inside the sensor element 100 that are defined by hollowing out the spacer layer 5, with the upper part defined by the underside of the second solid electrolyte layer 6, the lower part defined by the upper surface of the first solid electrolyte layer 4, and the sides defined by the side surfaces of the spacer layer 5.

[0037] The first diffusion rate-controlling section 11 is provided as two horizontally elongated slits (with the openings having their long sides oriented perpendicular to the plane of the drawing). The second diffusion rate-controlling section 13 and the third diffusion rate-controlling section 30 are provided as holes whose lengths extending perpendicular to the plane of the drawing are shorter than those of the first internal space 20 and the second internal space 40, respectively. The second diffusion rate-controlling section 13 and the third diffusion rate-controlling section 30 will be described in detail later. The section from the gas inlet 10 to the second internal space 40 is also referred to as a gas flow section.

[0038] A reference gas introduction space 43 is provided at a position farther from the tip side than the gas flow section, between the upper surface of the third substrate layer 3 and the lower surface of the spacer layer 5, at a position defined by the side surface of the first solid electrolyte layer 4. A reference gas such as the atmosphere is introduced into the reference gas introduction space 43. However, the configuration of the sensor element 100 is not limited to this example. As another example, the first solid electrolyte layer 4 may be configured to extend to the rear end of the sensor element 100, and the reference gas introduction space 43 may be omitted. In this case, the atmosphere introduction layer 48 may be configured to extend to the rear end of the sensor element 100.

[0039] The air introduction layer 48 is made of porous alumina and is configured so that the reference gas is introduced through the reference gas introduction space 43. In addition, the air introduction layer 48 is formed so as to cover the reference electrode 42.

[0040] The reference electrode 42 is formed so as to be sandwiched between the upper surface of the third substrate layer 3 and the first solid electrolyte layer 4, and is surrounded by an air introduction layer 48 connected to the reference gas introduction space 43. The reference electrode 42 is used to measure the oxygen concentration (oxygen partial pressure) in the first internal space 20 and the second internal space 40. Details will be described later.

[0041] The gas inlet 10 is a portion of the gas flow section that opens to the outside space. The sensor element 100 is configured to take in the measurement gas from the outside space into the sensor element 100 through the gas inlet 10.

[0042] The first diffusion rate-controlling part 11 is a part that applies a predetermined diffusion resistance to the measurement gas taken in through the gas inlet 10.

[0043] The buffer space 12 is a space provided for guiding the measurement gas introduced from the first diffusion rate-controlling part 11 to the second diffusion rate-controlling part 13 .

[0044] The second diffusion rate-controlling portion 13 is a portion that applies a predetermined diffusion resistance to the measurement gas introduced from the buffer space 12 into the first internal space 20 .

[0045] When the measurement gas is introduced from the outside of the sensor element 100 into the first internal space 20, the measurement gas is suddenly taken into the sensor element 100 from the gas inlet 10 due to pressure fluctuations of the measurement gas in the external space (exhaust pressure pulsations if the measurement gas is automobile exhaust gas), but is not introduced directly into the first internal space 20, but passes through the first diffusion rate-controlling section 11, buffer space 12, and second diffusion rate-controlling section 13, where the concentration fluctuations of the measurement gas are canceled out, before being introduced into the first internal space 20. As a result, the concentration fluctuations of the measurement gas introduced into the first internal space become almost negligible.

[0046] The first internal space 20 is provided as a space for adjusting the oxygen partial pressure in the measurement gas introduced through the second diffusion-controlling part 13. The oxygen partial pressure is adjusted by the operation of the main pump cell 21.

[0047] The main pump cell 21 is an electrochemical pump cell including an inner pump electrode 22 having a ceiling electrode portion 22a provided on almost the entire lower surface of the second solid electrolyte layer 6 facing the first internal space 20, an outer pump electrode 23 provided on the upper surface of the second solid electrolyte layer 6 in a region corresponding to the ceiling electrode portion 22a so as to be exposed to the external space, and the second solid electrolyte layer 6 sandwiched between these electrodes.

[0048] The inner pump electrode 22 is formed across the upper and lower solid electrolyte layers (the second solid electrolyte layer 6 and the first solid electrolyte layer 4) that define the first internal space 20, and the spacer layer 5 that provides the side walls. Specifically, a ceiling electrode portion 22a is formed on the lower surface of the second solid electrolyte layer 6 that provides the ceiling surface of the first internal space 20, and a bottom electrode portion 22b is formed on the upper surface of the first solid electrolyte layer 4 that provides the bottom surface. Side electrode portions (not shown) are formed on the side wall surfaces (inner surfaces) of the spacer layer 5 that form both side wall portions of the first internal space 20, so as to connect to the ceiling electrode portion 22a and the bottom electrode portion 22b. The inner pump electrode 22 is arranged in a tunnel-like structure at the locations where the side electrode portions are provided.

[0049] The inner pump electrode 22 and the outer pump electrode 23 are formed as porous cermet electrodes (for example, cermet electrodes made of Pt and ZrO2 containing 1% Au). The inner pump electrode 22, which comes into contact with the gas under measurement, is used to separate nitrogen oxides (NO x ) It is formed using materials that have weakened reducing ability against the components.

[0050] The sensor element 100 is configured to pump oxygen from the first internal space 20 to the external space or pump oxygen from the external space into the first internal space 20 by applying a desired pump voltage Vp0 between the inner pump electrode 22 and the outer pump electrode 23 in the main pump cell 21 and flowing a pump current Ip0 in a positive or negative direction between the inner pump electrode 22 and the outer pump electrode 23.

[0051] In addition, in order to detect the oxygen concentration (oxygen partial pressure) in the atmosphere in the first internal space 20, the inner pump electrode 22, the second solid electrolyte layer 6, the spacer layer 5, the first solid electrolyte layer 4, the third substrate layer 3, and the reference electrode 42 constitute an oxygen partial pressure detection sensor cell 80 (i.e., an electrochemical sensor cell) for controlling the main pump.

[0052] The sensor element 100 is configured to be able to identify the oxygen concentration (oxygen partial pressure) in the first internal space 20 by measuring the electromotive force V0 in the main pump control oxygen partial pressure detection sensor cell 80. Furthermore, the pump current Ip0 is controlled by feedback controlling Vp0 so that the electromotive force V0 is constant. This allows the oxygen concentration in the first internal space 20 to be maintained at a predetermined constant value.

[0053] The third diffusion control section 30 is a section that imparts a predetermined diffusion resistance to the measurement gas whose oxygen concentration (oxygen partial pressure) has been controlled by the operation of the main pump cell 21 in the first internal space 20, and guides the measurement gas to the second internal space 40.

[0054] The second internal space 40 is provided as a space for carrying out processes related to the measurement of the nitrogen oxide concentration in the measurement gas introduced through the third diffusion-controlling section 30. x The concentration is measured mainly by the operation of the measuring pump cell 41 in the second internal space 40 where the oxygen concentration is adjusted by the auxiliary pump cell 50 .

[0055] In the second internal space 40, the sensor element 100 is configured such that, after the oxygen concentration (oxygen partial pressure) is pre-adjusted in the first internal space 20, the oxygen partial pressure of the measurement gas introduced through the third diffusion-controlling part is further adjusted by the auxiliary pump cell 50. This allows the oxygen concentration in the second internal space 40 to be kept constant with high precision, and therefore, in the sensor element 100, highly accurate NO x It becomes possible to measure the concentration.

[0056] The auxiliary pump cell 50 is an auxiliary electrochemical pump cell including an auxiliary pump electrode 51, an outer pump electrode 23 (not limited to the outer pump electrode 23, but any appropriate electrode on the outside of the sensor element 100 will suffice), and the second solid electrolyte layer 6. The auxiliary pump electrode 51 has a ceiling electrode portion 51a provided on substantially the entire lower surface of the second solid electrolyte layer 6 facing the second internal space 40.

[0057] The auxiliary pump electrode 51 has a tunnel-shaped structure similar to the inner pump electrode 22 provided in the first internal space 20, and is disposed in the second internal space 40. That is, a ceiling electrode portion 51a is formed on the second solid electrolyte layer 6 that provides the ceiling surface of the second internal space 40, and a bottom electrode portion 51b is formed on the first solid electrolyte layer 4 that provides the bottom surface of the second internal space 40. Side electrode portions (not shown) that connect the ceiling electrode portion 51a and the bottom electrode portion 51b are formed on both wall surfaces of the spacer layer 5 that provide the side walls of the second internal space 40, respectively. As a result, the auxiliary pump electrode 51 has a tunnel-shaped structure.

[0058] Like the inner pump electrode 22, the auxiliary pump electrode 51 is also made of a material with a weakened ability to reduce nitrogen oxide components in the gas under measurement.

[0059] The sensor element 100 is configured so that, by applying a desired voltage Vp1 between the auxiliary pump electrode 51 and the outer pump electrode 23 in the auxiliary pump cell 50, oxygen in the atmosphere within the second internal space 40 can be pumped out to the external space or pumped into the second internal space 40 from the external space.

[0060] In addition, in order to control the oxygen partial pressure in the atmosphere within the second internal space 40, the auxiliary pump electrode 51, the reference electrode 42, the second solid electrolyte layer 6, the spacer layer 5, the first solid electrolyte layer 4, and the third substrate layer 3 constitute an oxygen partial pressure detection sensor cell 81 (i.e., an electrochemical sensor cell) for controlling the auxiliary pump.

[0061] The auxiliary pump cell 50 pumps using a variable power supply 52 whose voltage is controlled based on the electromotive force V1 detected by the auxiliary pump control oxygen partial pressure detection sensor cell 81. As a result, the oxygen partial pressure in the atmosphere in the second internal space 40 is controlled by the following formula: NO x The partial pressure is controlled to a low level that does not substantially affect the measurement of the pressure.

[0062] At the same time, the pump current Ip1 is used to control the electromotive force of the main pump control oxygen partial pressure detection sensor cell 80. Specifically, the pump current Ip1 is input as a control signal to the main pump control oxygen partial pressure detection sensor cell 80, and by controlling the electromotive force V0, the gradient of the oxygen partial pressure in the measurement gas introduced from the third diffusion rate-controlling section 30 into the second internal space 40 is controlled to be always constant. x When used as a sensor, the oxygen concentration in the second internal space 40 is maintained at a constant value of about 0.001 ppm by the action of the main pump cell 21 and the auxiliary pump cell 50.

[0063] The measurement pump cell 41 measures the nitrogen oxide concentration in the measurement gas in the second internal space 40. The measurement pump cell 41 is an electrochemical pump cell comprising a measurement electrode 44, an outer pump electrode 23, a second solid electrolyte layer 6, a spacer layer 5, and a first solid electrolyte layer 4. The measurement electrode 44 is provided on the upper surface of the first solid electrolyte layer 4 facing the second internal space 40, at a position spaced apart from the third diffusion-controlling part 30.

[0064] The measuring electrode 44 is a porous cermet electrode. The measuring electrode 44 detects NO 2 present in the atmosphere in the second internal space 40. x Reduce NO x The measuring electrode 44 is covered with a fourth diffusion-controlling part 45, which also functions as a reduction catalyst.

[0065] The fourth diffusion rate-controlling part 45 is a membrane made of a porous body mainly composed of alumina (Al2O3). The fourth diffusion rate-controlling part 45 controls the NO 2 flowing into the measuring electrode 44. x The film serves to limit the amount of the liquid and also acts as a protective film for the measuring electrode 44.

[0066] The sensor element 100 is configured so that the measurement pump cell 41 pumps out oxygen generated by decomposition of nitrogen oxides in the atmosphere surrounding the measurement electrode 44, and the amount of oxygen generated can be detected as a pump current Ip2.

[0067] Furthermore, in order to detect the oxygen partial pressure around the measurement electrode 44, the second solid electrolyte layer 6, the spacer layer 5, the first solid electrolyte layer 4, the third substrate layer 3, the measurement electrode 44, and the reference electrode 42 constitute an oxygen partial pressure detection sensor cell 82 for controlling the measurement pump (i.e., an electrochemical sensor cell). The variable power supply 46 is controlled based on the voltage (electromotive force) V2 detected by the oxygen partial pressure detection sensor cell 82 for controlling the measurement pump.

[0068] The measurement gas introduced into the second internal space 40 reaches the measurement electrode 44 through the fourth diffusion-controlling part 45 under conditions where the oxygen partial pressure is controlled. Nitrogen oxides in the measurement gas around the measurement electrode 44 are reduced (2NO → N2 + O2) to generate oxygen. This generated oxygen is then pumped by the measurement pump cell 41, and the voltage Vp2 of the variable power supply is controlled so that the control voltage V2 detected by the measurement pump control oxygen partial pressure detection sensor cell 82 remains constant. Because the amount of oxygen generated around the measurement electrode 44 is proportional to the nitrogen oxide concentration in the measurement gas, the pump current Ip2 in the measurement pump cell 41 can be used to calculate the nitrogen oxide concentration in the measurement gas.

[0069] Furthermore, by combining the measurement electrode 44, the first solid electrolyte layer 4, the third substrate layer 3, and the reference electrode 42 to form an electrochemical sensor cell as an oxygen partial pressure detection means, NO in the atmosphere around the measurement electrode 44 can be detected. x It is possible to detect the electromotive force corresponding to the difference between the amount of oxygen generated by the reduction of the components and the amount of oxygen contained in the reference atmosphere, thereby making it possible to determine the concentration of nitrogen oxide components in the measurement gas.

[0070] An electrochemical sensor cell 83 is formed by the second solid electrolyte layer 6, the spacer layer 5, the first solid electrolyte layer 4, the third substrate layer 3, the outer pump electrode 23, and the reference electrode 42. The sensor element 100 is configured to be able to detect the oxygen partial pressure in the measurement gas outside the sensor by the electromotive force Vref obtained by the sensor cell 83.

[0071] In the sensor element 100 having the above configuration, by operating the main pump cell 21 and the auxiliary pump cell 50, the oxygen partial pressure is always kept at a constant low value (NO x Therefore, the sensor element 100 can measure the NO concentration in the measurement gas in a manner that is approximately proportional to the concentration of nitrogen oxides in the measurement gas. x The concentration of nitrogen oxides in the measurement gas can be determined based on a pump current Ip2 that flows when oxygen generated by the reduction of nitrogen oxides is pumped out of the measurement pump cell 41.

[0072] Furthermore, the sensor element 100 includes a heater 70 that adjusts the temperature by heating and keeping the sensor element 100 warm in order to increase the oxygen ion conductivity of the solid electrolyte. In the example of FIG. 2, the heater 70 further includes a heater electrode 71, a heater insulating layer 74, and a pressure release hole 75 in addition to the heat generating portion 72 and lead portion 73. The lead portion 73 may be formed of a through-hole. The heater 70 is disposed in a position closer to the bottom surface of the sensor element 100 than to the top surface of the sensor element 100 in the thickness direction of the sensor element 100. The top surface of the sensor element 100 is the top surface of the second solid electrolyte layer 6, and the bottom surface of the sensor element 100 is the bottom surface of the first substrate layer 1.

[0073] The heater electrode 71 is an electrode formed in a manner to contact the lower surface of the first substrate layer 1. By connecting the heater electrode 71 to an external power supply, it is possible to supply power to the heater 70 from the outside.

[0074] The heat generating portion 72 is an electrical resistor sandwiched between the second substrate layer 2 and the third substrate layer 3. The heat generating portion 72 is connected to the heater electrode 71 via the lead portion 73, and generates heat when power is supplied from the outside through the heater electrode 71, thereby heating and keeping warm the solid electrolyte that forms the sensor element 100.

[0075] In addition, the heat generating portion 72 is embedded throughout the entire area from the first internal space 20 to the second internal space 40, making it possible to adjust the temperature of the entire sensor element 100 to a temperature at which the solid electrolyte is activated.

[0076] The heater insulating layer 74 is an insulating layer made of an insulating material such as alumina and formed on the upper and lower surfaces of the heat generating portion 72. The heater insulating layer 74 is formed for the purpose of obtaining electrical insulation between the second substrate layer 2 and the heat generating portion 72, and between the third substrate layer 3 and the heat generating portion 72.

[0077] The pressure release hole 75 is a portion that penetrates the third substrate layer 3 and is provided so as to communicate with the reference gas introduction space 43, and is formed for the purpose of alleviating the increase in internal pressure that accompanies a rise in temperature within the heater insulating layer 74.

[0078] (Features) As described above, in the sensor S according to this embodiment, the housing 200 is provided with the expanded diameter portion 210 near the heat generating portion 72 of the heater 70 of the sensor element 100. Due to this expanded diameter portion 210, the distance between the inner wall 215 of the housing 200 and the sensor element 100 increases toward the tip of the sensor S (i.e., the distance from the sensor element 100 increases). In addition, the rear end 212 of the expanded diameter portion 210 is located closer to the rear end of the sensor S than the rear end 722 of the heat generating portion 72 of the heater 70. As a result, even if water flows on the inner wall 215 of the housing 200 and drips from the rear end 212 of the expanded diameter portion 210, the heat generating portion 72 of the heater 70 is located closer to the tip of the sensor S than the rear end 212, so that the water dripping from the inner wall 215 of the housing 200 (the rear end 212 of the expanded diameter portion 210) can be prevented from getting on the heat generating portion 72 of the heater 70. Therefore, the sensor S according to this embodiment can reduce the probability that the heat generating portion 72 of the heater 70 of the sensor element 100 is exposed to water.

[0079] 1, the cross-sectional shape of the expanded diameter portion 210 may be tapered. The taper angle 220 may be 10 degrees or more and less than 90 degrees, 20 degrees or more and less than 90 degrees, or 30 degrees or more and less than 90 degrees. This effectively reduces the probability of the heat generating portion 72 of the sensor element 100 becoming wet, as will be shown in the examples described later. In the sensor S according to this embodiment, the protective cover 300 reduces the probability of the housing 200 and the sensor element 100 becoming wet. Furthermore, by employing the gas sensor element illustrated in FIG. 2 as the sensor element 100, a gas sensor can be provided in which the probability of the heat generating portion 72 of the heater 70 becoming wet can be reduced.

[0080] [Variations] Although the embodiments of the present invention have been described above, the above-described embodiments are merely illustrative of the present invention in every respect. Various improvements and modifications may be made to the above-described embodiments. Components of the above-described embodiments may be omitted, replaced, or added as appropriate. Furthermore, the shape and dimensions of each component of the above-described embodiments may be modified as appropriate depending on the embodiment. For example, the following modifications are possible. Note that, below, the same reference numerals are used for components similar to those of the above-described embodiment, and descriptions of similar points to those of the above-described embodiment are omitted as appropriate. The following modifications may be combined as appropriate.

[0081] (I) Shape of the enlarged diameter section 1, the expanded diameter portion 210 of the housing 200 is configured to have a taper. However, the shape in which the diameter of the inner wall 215 expands toward the tip side of the sensor S is not limited to this example. In another example, the cross-sectional shape of the expanded diameter portion may be configured to be R-shaped.

[0082] 3 and 4 are cross-sectional schematic diagrams illustrating an example of the configuration of sensors (SA, SB) according to this modification, in which the expanded diameter portion is formed in an R-shape. Also, FIGS. 6 to 8 are cross-sectional schematic diagrams illustrating an example of the configuration of sensors (SP, SQ, and SR) according to this modification, in which the inner wall of the expanded diameter portion has multiple straight segments, multiple straight segments and inclined segments, or multiple inclined segments. Similar to FIG. 1, FIGS. 3, 4, and 6 to 8 each show a cross-sectional configuration parallel to and tangent to the longitudinal axis. In the sensor SA shown in FIG. 3, the expanded diameter portion 210A of the housing 200A is formed so that the R-shaped convexity faces inward. That is, when comparing the amount of expansion of the diameter of the inner wall 215A along the axial direction, the amount of expansion of the diameter of the inner wall 215A is greater at the front end 211A side than at the rear end 212A side of the expanded diameter portion 210A. The dimension of the R-shape may be determined arbitrarily. For example, when the inner wall 215A is considered as an arc, the radius of curvature of the inner wall 215A at the expanded diameter portion 210A in the cross section of FIG. 3 may be 1 mm to 4 mm. On the other hand, in the sensor SB shown in FIG. 4, the expanded diameter portion 210B of the housing 200B is formed so that the convex portion R faces outward. That is, when comparing the amount of expansion of the diameter of the inner wall 215B along the axial direction, the amount of expansion of the diameter of the inner wall 215B is greater on the rear end portion 212B side of the expanded diameter portion 210B than on the front end portion 211B side of the expanded diameter portion 210B. In other words, in the cross section of FIG. 4, the expanded diameter portion 210B has a shape in which an arc is cut out. The dimensions of this cut-out arc may be determined arbitrarily. For example, in the cross section of FIG. 4, the radius of curvature of the cut-out arc may be 1 mm to 4 mm. Except for these points, the configuration of each sensor (SA, SB) may be similar to that of the sensor S described above. According to the sensors (SA, SB) of this modified example, the expanded diameter portions (210A, 210B) are formed in an R-shape, so that the probability that the heat generating portion 72 of the sensor element 100 is exposed to water can be effectively reduced.

[0083] The shape in which the diameter of the inner wall increases toward the tip may be a shape in which the diameter of the inner wall increases stepwise, that is, in stages, from the rear end to the tip. For example, the inner wall may be formed with multiple straight sections where the diameter of the inner wall is constant, as long as the diameter of the inner wall in the straight sections toward the tip is wider (larger) than the diameter of the inner wall in the straight sections toward the rear end.

[0084] In the sensor SP illustrated in FIG. 6, the expanded diameter portion 210P of the housing 200P is formed so that the diameter of the inner wall 215P expands stepwise (i.e., stepwise) from the rear end portion 212P toward the front end portion 211P. Specifically, in the expanded diameter portion 210P, the inner wall 215P includes a straight portion 2011 and a straight portion 2013, each of which has a constant diameter. That is, the diameter of the inner wall 215P is constant in the straight portion 2011, and the diameter of the inner wall 215P is constant in the straight portion 2013. The straight portion 2013 is positioned closer to the rear end portion 212P of the expanded diameter portion 210P than the straight portion 2011. In other words, the straight portion 2011 is positioned closer to the front end portion 211P of the expanded diameter portion 210P than the straight portion 2013. The diameter of the inner wall 215P at the straight portion 2011 arranged on the front end 211P side is wider (larger) than the diameter of the inner wall 215P at the straight portion 2013 arranged on the rear end 212P side. In other words, when comparing the diameters of the inner wall 215P along the axial direction, the diameter of the inner wall 215P at the straight portion 2011 is larger than that of the straight portion 2013. Therefore, when comparing the amount of expansion of the diameter of the inner wall 215P along the axial direction, the amount of expansion of the diameter of the inner wall 215P is larger on the front end 211P side than on the rear end 212P side of the expanded diameter portion 210P.

[0085] 6, intermediate portion 2012 connecting straight portion 2011 and straight portion 2013 is perpendicular to both straight portion 2011 and straight portion 2013. More precisely, inner wall 215P in intermediate portion 2012 is perpendicular to both inner wall 215P in straight portion 2011 and inner wall 215P in straight portion 2013. However, it is not essential that intermediate portion 2012 be perpendicular to both straight portion 2011 and straight portion 2013. For example, intermediate portion 2012 may be inclined with respect to both straight portion 2011 and straight portion 2013 so that the diameter of inner wall 215P increases toward tip portion 211P. Specifically, in a cross section parallel to and tangent to the axis, the intermediate portion 2012 (the inner wall 215P in the intermediate portion 2012) may be configured as "a straight line or curve inclined relative to the axial direction so that the diameter of the inner wall 215P widens toward the tip portion 211P."

[0086] FIG. 6 shows an example of a converging section in which the inner wall has multiple linear portions with a constant inner diameter, and the diameter of the linear portions toward the front end is wider (larger) than the diameter of the linear portions toward the rear end. However, as a shape of a converging section in which the diameter of the inner wall increases toward the front end, the example in which "the inner wall in the converging section includes multiple linear portions" is just one example, and the inner wall in the converging section may also include an inclined portion. That is, the inner wall in the converging section may include an inclined portion in which the diameter of the inner wall increases toward the front end. In other words, in a cross section parallel to and tangent to the axis, the inclined portion may be represented as "a straight line or curve inclined with respect to the axial direction so that the diameter of the inner wall increases toward the front end." In addition to the inclined portion, the inner wall in the converging section may further include a linear portion as illustrated in FIG. 6, i.e., a linear portion in which the diameter of the inner wall is constant. The inner wall may include one or more linear portions and one or more inclined portions. The inner wall may include at least one of a plurality of straight portions and a plurality of inclined portions. When the inner wall includes a straight portion and an inclined portion, the straight portion may be located closer to the rear end than the inclined portion, or closer to the front end than the inclined portion. When the inner wall includes a plurality of inclined portions, the inclination of each of the inclined portions relative to the axial direction may be the same or different from each other.

[0087] In the sensor SQ shown in FIG. 7, the inner wall 215Q of the expanded diameter portion 210Q of the housing 200Q includes an inclined portion 2022 where the diameter of the inner wall 215Q increases toward the tip end 211Q, and a straight portion 2021 where the diameter of the inner wall 215Q is constant. The inclined portion 2022 is located closer to the rear end 212Q of the expanded diameter portion 210Q than the straight portion 2021. In other words, the straight portion 2021 is located closer to the tip end 211Q of the expanded diameter portion 210Q than the inclined portion 2022. In the example shown in FIG. 7, the inclined portion 2022 is in contact with the rear end 212Q of the expanded diameter portion 210Q, and the straight portion 2021 is in contact with the tip end 211Q of the expanded diameter portion 210Q. In the inclined portion 2022, the diameter of the inner wall 215Q increases toward the tip end 211Q. Therefore, when comparing the amount of expansion of the diameter of the inner wall 215Q along the axial direction, the amount of expansion of the diameter of the inner wall 215Q is greater on the front end 211Q side than on the rear end 212Q side of the expanded diameter portion 210Q.

[0088] 7, the inclined portion 2022 is represented by a "straight line inclined with respect to the axial direction so that the diameter of the inner wall 215Q increases toward the tip end 211Q" in a cross section parallel to and tangent to the axis. However, the inclined portion 2022 may have a shape represented by a "curve inclined with respect to the axial direction so that the diameter of the inner wall 215Q increases toward the tip end 211Q" in a cross section parallel to and tangent to the axis. The "inclined portion" in FIGS. 7 and 8 may be represented by a "straight line or curve inclined with respect to the axial direction so that the diameter of the inner wall increases toward the tip end" in a cross section parallel to and tangent to the axis.

[0089] In addition, in the example shown in Figure 7, the inclined portion 2022 is arranged on the rear end portion 212Q side and the straight portion 2021 is arranged on the front end portion 211Q side, but the inclined portion 2022 may be arranged on the front end portion 211Q side and the straight portion 2021 may be arranged on the rear end portion 212Q side.

[0090] Furthermore, it is not essential that the inclined portion 2022 contact the rear end 212Q of the expanded diameter portion 210Q, and the inclined portion 2022 does not have to contact the rear end 212Q of the expanded diameter portion 210Q, or the inclined portion 2022 may contact the front end 211Q of the expanded diameter portion 210Q. Similarly, it is not essential that the straight portion 2021 contact the front end 211Q of the expanded diameter portion 210Q, and the straight portion 2021 may not contact the front end 211Q of the expanded diameter portion 210Q, or the straight portion 2021 may contact the rear end 212Q of the expanded diameter portion 210Q.

[0091] As shown in Fig. 7, the inner wall of the expanded diameter section may include one or more straight portions (with a constant diameter) in addition to the inclined portion. The straight portion may be located on at least one of the leading end and trailing end of the inclined portion.

[0092] In the sensor SR shown in FIG. 8, the inner wall 215R in the expanded diameter portion 210R of the housing 200R includes multiple inclined portions where the diameter of the inner wall 215R increases toward the tip end 211R, specifically, the inclined portions 2031 and 2033. The inclined portion 2031 is positioned closer to the tip end 211R of the expanded diameter portion 210R than the inclined portion 2033. In other words, the inclined portion 2033 is positioned closer to the rear end 212R of the expanded diameter portion 210R than the inclined portion 2031. In the example shown in FIG. 8, the inclined portion 2031 contacts the tip end 211R of the expanded diameter portion 210R, and the inclined portion 2033 contacts the rear end 212R of the expanded diameter portion 210R. In the inclined portion 2031, the diameter of the inner wall 215R increases toward the tip end 211R. Furthermore, in the inclined portion 2033, the diameter of the inner wall 215R increases toward the tip end 211R. Therefore, when comparing the amount of increase in the diameter of the inner wall 215R along the axial direction, the amount of increase in the diameter of the inner wall 215R is greater on the tip end 211R side than on the rear end 212R side of the expanded diameter portion 210R.

[0093] 8, the diameter of inner wall 215R is constant in intermediate portion 2032 connecting inclined portion 2031 and inclined portion 2033. That is, intermediate portion 2032 configured as a "straight portion with a constant inner wall diameter" is disposed between inclined portion 2031 and inclined portion 2033. However, it is not essential that intermediate portion 2032 be configured as a straight portion, and intermediate portion 2032 may be configured as a "sloped portion with an inner wall diameter that widens toward the tip end." That is, in intermediate portion 2032, the diameter of inner wall 215R may widen toward tip end 211R.

[0094] 8, the inclination of inclined portion 2031 relative to the axial direction is different from the inclination of inclined portion 2033 relative to the axial direction. However, the inclination of inclined portion 2031 relative to the axial direction may be the same as the inclination of inclined portion 2033 relative to the axial direction. When the inclinations of the inclined portion 2031 and the inclined portion 2033 are different, it is optional to determine which inclination is greater.

[0095] Furthermore, when the inclination of the inclined portion 2031 relative to the axial direction differs from the inclination of the inclined portion 2033 relative to the axial direction, the inclined portion 2031 and the inclined portion 2033 may be directly connected without disposing the intermediate portion 2032.

[0096] As explained above, the shape of the expanded diameter section, in which the diameter of the inner wall increases toward the tip, does not have to be represented by "a single straight line or a single curve inclined relative to the axial direction so that the diameter of the inner wall increases toward the tip" in a cross section parallel to and tangent to the axis. The inner wall of the expanded diameter section may include multiple straight line segments, as long as the diameter of the inner wall in the straight line segment located toward the tip is wider (larger) than the diameter of the inner wall in the straight line segment located toward the rear end (Fig. 6). Furthermore, the inner wall of the expanded diameter section may include one or more inclined portions represented by "a single straight line or a curve inclined relative to the axial direction so that the diameter of the inner wall increases toward the tip" in a cross section parallel to and tangent to the axis. When the inner wall of the expanded diameter section includes a single inclined portion, a straight line segment may be located at least on the tip or rear end of the inclined portion (Fig. 7). When the inner wall of the expanded diameter section includes multiple inclined sections, straight sections may be disposed between the multiple inclined sections (Figure 8), or the inclined sections may be directly connected to each other without any straight sections. When the inner wall of the expanded diameter section includes multiple inclined sections, the inclination (angle) of each of the multiple inclined sections relative to the axial direction may be different or the same. However, when two inclined sections are directly connected without any straight sections, the inclination (angle) of each of the two inclined sections relative to the axial direction must be different from each other.

[0097] (II) Sensor element configuration In the above embodiment, components may be omitted, substituted, or added as appropriate for each component of the sensor element 100. As another example, the sensor element may be configured to have a porous protective layer covering at least a portion of the sensor element.

[0098] FIG. 5 is a cross-sectional view schematically illustrating an example of the configuration of a sensor element 100C according to this modification. The sensor element 100C has the same configuration as the sensor element 100, except that it further includes a porous protective layer 91. In the example of FIG. 5, the porous protective layer 91 covers a portion of the tip end of the upper surface (upper surface of the second solid electrolyte layer 6) of the sensor element 100C, the tip end surface (the surface on the left side in FIG. 5), and a portion of the tip end of the lower surface (lower surface of the first substrate layer 1). Note that as long as at least a portion of the sensor element 100C is covered with the porous protective layer 91, the area covered by the porous protective layer 91 is not limited to this example and may be determined appropriately depending on the embodiment. The porous protective layer 91 may be made of a porous material such as porous alumina, porous zirconia, porous spinel, porous cordierite, porous titania, or porous magnesia. According to this modification, the porous protective layer 91 can reduce the influence of water on the sensor element 100C and improve the strength of the sensor element 100C.

[0099] [Example] In order to verify the effects of the present invention, sensors according to the following examples and comparative examples were produced, although the present invention is not limited to the following examples.

[0100] A sensor according to Example 1 was fabricated by adopting the configuration shown in FIG. 1 for the sensor configuration and the configuration shown in FIG. 2 for the sensor element configuration. In the sensor according to Example 1, as in the above embodiment, the sensor element was disposed in the housing so that the rear end (rearmost end) of the heater's heat generating portion was located closer to the front end of the sensor than the rear end (starting point) of the enlarged diameter portion. The enlarged diameter portion of the housing was configured to have a 20-degree taper. The distance between the rear end of the enlarged diameter portion of the housing and the sensor element was 2 mm. The distance between the front end of the enlarged diameter portion of the housing and the sensor element was 3 mm.

[0101] The sensor according to the second example was fabricated by changing the taper angle of the expanded diameter portion of the first example to 30 degrees. The sensor according to the third example was fabricated by changing the taper angle of the expanded diameter portion of the first example to 40 degrees. The sensor according to the fourth example was fabricated by changing the taper angle of the expanded diameter portion of the first example to 60 degrees. The sensor according to the fifth example was fabricated by changing the taper angle of the expanded diameter portion of the first example to 10 degrees. The sensor according to the sixth example was fabricated by changing the shape of the expanded diameter portion of the first example to the R-shape shown in FIG. 3. The radius of curvature of the inner wall of the expanded diameter portion in the sixth example was 2 mm. The sensor according to the first comparative example was fabricated by omitting the expanded diameter portion of the first example and replacing it with a linear portion of the inner wall with a constant diameter. The sensor according to the second comparative example was fabricated by changing the arrangement of the sensor element in the first example so that the rear end of the heater's heat-generating portion was located closer to the rear end of the sensor than the rear end (starting point) of the expanded diameter portion. Other conditions for the second to sixth examples and the first to second comparative examples are the same as those for the first example.

[0102] To evaluate the amount of water exposure of the sensors according to Examples 1 to 6 and Comparative Examples 1 to 2, a water exposure test device described in JP 2019-185615 A ​​was used. This water exposure test device includes a horizontal, linear pipe with an internal gas flow path, a blower installed upstream of the pipe, a pressure fluctuation generator installed downstream of the pipe, and a chamber that is part of the pipe between the blower and the pressure fluctuation generator and in which the sensors of each Example and Comparative Example are attached. A vibrator that applies vibrations to the chamber is connected to the chamber. This water exposure test device can scatter water toward the sensor using gas simulating exhaust gas from an engine.

[0103] In the water exposure test, a sensor was first placed in the chamber of the water exposure test device with its central axis perpendicular to the axis of the piping and tilted 10 degrees from the horizontal. Next, a predetermined amount of moisture was supplied into the piping between the blower and the chamber. Subsequently, gas (atmospheric air) was supplied into the piping using the blower, and the gas pressure was fluctuated using a pressure fluctuation generator, while the chamber was vibrated using a vibrator. As a result, the moisture supplied into the piping was dispersed toward the sensor placed in the chamber by the pressure-fluctuating gas. In this state, the heater built into the sensor element was driven, and the heater power was controlled so that the temperature of the sensor element reached a predetermined target value between 100 and 200 degrees Celsius. The heater power control value at this time was applied to the previously derived relationship between heater power and the amount of water exposure, and the amount of water exposure of the sensor element for each example and comparative example was calculated. The amount of water exposure for each example and comparative example was evaluated using the following criteria: "A (excellent)" for an amount of water exposure of 10 μL (microliters) or less, "B (good)" for more than 10 μL and less than 20 μL, "C (passable)" for more than 20 μL and less than 30 μL, and "F (unacceptable)" for more than 30 μL. Table 1 below shows the evaluation results for each example and comparative example.

[0104] [Table 1]

[0105] As shown in Table 1, in the first and second comparative examples, the amount of water exposure on the sensor element exceeded 30 μL, whereas in all examples, the amount of water exposure on the sensor element was kept below 30 μL. These results demonstrate that the present invention can reduce the amount of water exposure on the sensor element, particularly on the heat-generating portion. Furthermore, the evaluation results for the first to fifth examples demonstrate that when the enlarged diameter portion is tapered, increasing the taper angle can effectively reduce the amount of water exposure on the sensor element. In particular, setting the taper angle to 20 degrees or more, 30 degrees or more, or 40 degrees or more can effectively reduce the amount of water exposure on the sensor element. Furthermore, the evaluation results for the sixth example demonstrate that forming the enlarged diameter portion into an R-shape can effectively reduce the amount of water exposure on the sensor element. [Explanation of symbols]

[0106] S: sensor, 100: sensor element, 110: front end, 120: rear end 70... heater, 72... heat generating part, 721... front end, 722... rear end, 73...Lead section, 200…Housing, 210... Expanded diameter part, 211... Tip part, 212... Rear end part, 215…Inner wall

Claims

1. a sensor element having a heater and extending in the longitudinal direction; a housing configured to surround the sensor element along the longitudinal direction; A sensor comprising: the sensor element has a leading end and a trailing end; the heater includes a heat generating portion and a lead portion, the heat generating portion has a front end and a rear end, and is disposed on the front end side of the sensor element; the housing includes an expanding diameter portion configured such that the diameter of the inner wall of the housing expands toward the tip end of the sensor in a cross section parallel to the longitudinal axis, the enlarged diameter portion has a leading end and a trailing end, a rear end of the heat generating portion is disposed closer to the front end of the sensor than a rear end of the enlarged diameter portion, and closer to the rear end of the sensor than the front end of the enlarged diameter portion; a tip of the heat generating portion is disposed closer to the tip of the sensor than the tip of the enlarged diameter portion; Sensor.

2. The cross-sectional shape of the expanded diameter portion is configured to have a taper. The sensor of claim 1 .

3. The taper angle is equal to or greater than 10 degrees and less than 90 degrees. The sensor of claim 2 .

4. The taper angle is equal to or greater than 20 degrees and less than 90 degrees. The sensor of claim 2 .

5. The taper angle is equal to or greater than 30 degrees and less than 90 degrees. The sensor of claim 2 .

6. The cross-sectional shape of the expanded diameter portion is configured to be R-shaped. The sensor of claim 1 .

7. a protective cover configured to surround at least a portion of the enlarged diameter portion of the housing along the longitudinal direction and extend beyond the tip of the sensor element; The sensor according to any one of claims 1 to 6.

8. the sensor element has a porous protective layer covering at least a portion of the sensor element; A sensor according to any one of claims 1 to 7.

9. The sensor element is a gas sensor element. A sensor according to any one of claims 1 to 8.

Citation Information

Patent Citations

  • Laminated gas sensor element and gas sensor

    JP2009257817A

  • Gas sensor

    JP2010266420A

  • Gas sensor

    JP2017223619A

  • Gas sensor

    JP2018096921A

  • gas sensor

    JP2018536860A