Sensors and Electronic Devices

The deformation detection sensor with corner fixing portions and gaps between the holding member and housing improves deformation detection sensitivity by enabling easier deformation of the holding member.

JP7718607B2Active Publication Date: 2025-08-05MURATA MFG CO LTD
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Patent Information

Application Number
JP2024557321
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-11-10
Filing Date
2023-10-27
Publication Date
2025-08-05
Estimated Expiration
2043-10-27

AI Technical Summary

Technical Problem

Existing deformation detection sensors struggle to easily detect deformation of a member due to the entire outer periphery of the holding member being fixed to the housing, limiting the deformation of the piezoelectric sensor's ability to detect changes.

Method used

A deformation detection sensor with a holding member and deformation detection sensor that includes four first fixing portions at the corners, allowing gaps between the holding member and housing, enabling easier deformation detection by the sensor.

Benefits of technology

The sensor can more effectively detect deformation of the member by allowing the holding member to protrude and deform, enhancing the sensitivity of the deformation detection.

✦ Generated by Eureka AI based on patent content.

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Abstract

This sensor comprises a holding member that includes a first main surface and a second main surface which are aligned in a first direction and has a rectangular shape when viewed in the first direction; a deformation detection sensor which outputs a signal corresponding to the deformation of the holding member; and a plurality of first fixed sections that are fixed to the second main surface and overlap corner sections of the holding member when viewed in the first direction, wherein the plurality of first fixed sections are spaced apart from each other.
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Description

[Technical Field]

[0001] The present invention relates to a sensor and an electronic device that include a deformation detection sensor that detects deformation of a member. [Background technology]

[0002] Patent Document 1 describes a terminal that detects a load applied by a user. The terminal includes a housing, a holding member, and a piezoelectric sensor. The entire outer periphery of the holding member is fixed to the housing with an adhesive. The piezoelectric sensor is provided on the holding member. The piezoelectric sensor outputs a signal in response to deformation of the holding member. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] International Publication No. 2016 / 027603 Summary of the Invention [Problem to be solved by the invention]

[0004] In the field of the terminal described in Patent Document 1, there is a demand for a deformation detection sensor that can easily detect deformation of a member.

[0005] An object of the present invention is to provide a deformation detection sensor that detects deformation of a member and that can easily detect deformation of the member. [Means for solving the problem]

[0006] The sensor according to one embodiment of the present invention comprises: a holding member including a first main surface and a second main surface aligned in a first direction and having a rectangular shape when viewed from the first direction; a deformation detection sensor that outputs a signal corresponding to the deformation of the holding member; a plurality of first fixing portions fixed to the second main surface and overlapping corners of the holding member when viewed from the first direction; It is equipped with The plurality of first fixing portions are spaced apart from one another. [Effects of the Invention]

[0007] According to the sensor according to one embodiment of the present invention, the deformation detection sensor that detects deformation of a member can more easily detect deformation of the member. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a cross-sectional view showing an electronic device EE equipped with a sensor 1 according to the first embodiment. [Figure 2] FIG. 2 is an exploded perspective view of the sensor 1. [Figure 3] FIG. 3 is a view of the sensor 1 as viewed in the positive direction of the Z axis. [Figure 4] FIG. 4 is a cross-sectional view taken along line AA in FIG. [Figure 5] FIG. 5 is a diagram showing a sensor 1a according to the first modification. [Figure 6] FIG. 6 is a diagram showing a sensor 1b according to the second modification. [Figure 7] FIG. 7 is a diagram showing a sensor 1c according to the third modification. [Figure 8] FIG. 8 is a diagram showing a sensor 1d according to the fourth modification. [Figure 9] FIG. 9 is a diagram showing a sensor 1e according to the fifth modification. [Figure 10] FIG. 10 is an exploded perspective view of the electronic device EEa1. [Figure 11] FIG. 11 is an exploded perspective view of the electronic device EEa2. [Figure 12] FIG. 12 is an exploded perspective view of the electronic device EEb1. [Figure 13] FIG. 13 is an exploded perspective view of the electronic device EEb2. DETAILED DESCRIPTION OF THE INVENTION

[0009] [First embodiment] A sensor 1 according to a first embodiment of the present invention will be described below with reference to the drawings. FIG. 1 is a cross-sectional view showing an electronic device EE equipped with a sensor 1 according to the first embodiment. FIG. 2 is an exploded perspective view of the sensor 1. FIG. 3 is a view of the sensor 1 as seen in the positive direction of the Z axis. FIG. 4 is a cross-sectional view taken along line AA in FIG. 2.

[0010] In this embodiment, directions are defined as follows. As shown in FIGS. 1 and 2, the Z-axis direction is the direction in which the holding member 10 and the deformation detection sensor 12 are lined up. The negative direction of the Z-axis is the direction in which the holding member 10 and the deformation detection sensor 12 are lined up in this order. The positive direction of the Z-axis is the direction in which the deformation detection sensor 12 and the holding member 10 are lined up in this order. The X-axis direction is the direction perpendicular to the Z-axis. The Y-axis direction is the direction perpendicular to the Z-axis and X-axis directions. In this embodiment, the first direction F coincides with the Z-axis direction. In this embodiment, the second direction S coincides with the X-axis direction. In this embodiment, the third direction T coincides with the Y-axis direction.

[0011] In the following, M is a part or member of the sensor 1. In this specification, unless otherwise specified, each part of M is defined as follows: The end of M in the positive direction of the X axis means the end of M in the positive direction of the X axis and its vicinity. The end of M in the negative direction of the X axis means the end of M in the negative direction of the X axis and its vicinity. The end of M in the positive direction of the Y axis means the end of M in the positive direction of the Y axis and its vicinity. The end of M in the negative direction of the Y axis means the end of M in the negative direction of the Y axis and its vicinity. The end of M in the positive direction of the Z axis means the end of M in the positive direction of the Z axis and its vicinity. The end of M in the negative direction of the Z axis means the end of M in the negative direction of the Z axis and its vicinity.

[0012] As shown in Fig. 1, the sensor 1 is a module provided in an electronic device EE such as a smartphone. As shown in Fig. 2, the sensor 1 includes a holding member 10, a housing 11, a deformation detection sensor 12, and a plurality of first fixing portions. In this embodiment, the sensor 1 includes four first fixing portions 13a, 13b, 13c, and 13d.

[0013] The holding member 10 is a member that holds electronic components such as a circuit board. As shown in FIGS. 1 to 3 , the holding member 10 has a rectangular shape when viewed in a first direction F. The holding member 10 has a rectangular shape with two long sides extending in a second direction S and two short sides extending in a third direction T. Specifically, as shown in FIG. 3 , the holding member 10 has a first side H1 and a second side H2 that extend along the X-axis. Each of the first side H1 and the second side H2 is one of the two long sides of the holding member 10. The first side H1 and the second side H2 are aligned in this order in the positive direction of the Y-axis. The holding member 10 has a third side H3 and a fourth side H4 that extend along the Y-axis. Each of the third side H3 and the fourth side H4 is one of the two short sides of the holding member 10. The third side H3 and the fourth side H4 are aligned in this order in the positive direction of the X-axis.

[0014] As shown in FIGS. 2 and 3 , the holding member 10 has a rectangular shape with four corners. Specifically, the holding member 10 has a first corner D1 formed by a first side H1 and a third side H3. The first corner D1 includes the corner formed by the first side H1 and the third side H3 and the vicinity thereof. The holding member 10 has a second corner D2 formed by a second side H2 and the third side H3. The second corner D2 includes the corner formed by the second side H2 and the third side H3 and the vicinity thereof. The holding member 10 has a third corner D3 formed by the first side H1 and a fourth side H4. The third corner D3 includes the corner formed by the first side H1 and the fourth side H4 and the vicinity thereof. The holding member 10 has a fourth corner D4 formed by the second side H2 and the fourth side H4. The fourth corner portion D4 includes the corner formed by the second side H2 and the fourth side H4 and the vicinity thereof.

[0015] As shown in FIG. 1, the holding member 10 includes a first principal surface UF10 and a second principal surface DF10 aligned in a first direction F. The first principal surface UF10 and the second principal surface DF10 are aligned in this order in the negative direction of the Z axis. The holding member 10 is elastic. The holding member 10 is deformed by a force applied to the holding member 10. For example, as shown in FIG. 1, a user 200 pushes the holding member 10 in the negative direction of the Z axis. The force applied to the holding member 10 in the negative direction of the Z axis causes the holding member 10 to deform so as to protrude in the negative direction of the Z axis.

[0016] The housing 11 is made of, for example, resin. For example, the housing 11 has a plate-shaped portion 110 and a frame-shaped portion 111 (see FIGS. 1 and 2). The plate-shaped portion 110 and the frame-shaped portion 111 are arranged in this order in the positive direction of the Z axis. The plate-shaped portion 110 has a plate shape with two sides extending along the X axis and two sides extending along the Y axis. The frame-shaped portion 111 is in contact with the plate-shaped portion 110. The frame-shaped portion 111 has a ring shape when viewed in the Z axis direction. The vicinity of the center of the plate-shaped portion 110 in the X axis direction and the Y axis direction is not in contact with the frame-shaped portion 111.

[0017] 2 and 3, the deformation detection sensor 12 has a rectangular shape with long sides extending along the X-axis and short sides extending along the Y-axis. As shown in Fig. 4, the deformation detection sensor 12 includes a piezoelectric film 121, a first electrode 120, a second electrode 122, and a detection circuit (not shown). The first electrode 120, the piezoelectric film 121, and the second electrode 122 are arranged in this order in the negative direction of the Z-axis.

[0018] 2 and 3, the piezoelectric film 121 has a rectangular shape with long sides extending along the X-axis and short sides extending along the Y-axis. As shown in Fig. 4, the piezoelectric film 121 has a first main surface SF1 and a second main surface SF2 aligned in the Z-axis direction.

[0019] The piezoelectric film 121 generates charges according to the amount of deformation of the piezoelectric film 121. For example, the polarity of the charges generated when the piezoelectric film 121 is stretched in the negative direction of the X-axis and the positive direction of the Y-axis is different from the polarity of the charges generated when the piezoelectric film 121 is stretched in the negative direction of the X-axis and the negative direction of the Y-axis, or the polarity of the charges generated when the piezoelectric film 121 is stretched in the positive direction of the X-axis and the positive direction of the Y-axis. Specifically, the piezoelectric film 121 is a film formed from a chiral polymer. An example of a chiral polymer is polylactic acid (PLA), particularly poly-L-lactic acid (PLLA). PLLA has a helical main chain structure. PLLA has piezoelectricity in which the molecules are oriented when uniaxially stretched. The piezoelectric film 121 has a piezoelectric constant of d14. As shown in FIGS. 2 and 3, the uniaxial stretching direction OD of the piezoelectric film 121 forms an angle of 0 degrees or 180 degrees with respect to the X-axis direction. This 0 degree includes, for example, angles including approximately 0 degree ±10 degrees. This 180 degree includes, for example, angles including approximately 180 degree ±10 degrees. As a result, the piezoelectric film 121 generates electric charge when the piezoelectric film 121 is stretched in the positive direction of the X axis and the positive direction of the Y axis, the positive direction of the X axis and the negative direction of the Y axis, the negative direction of the X axis and the positive direction of the Y axis, or the negative direction of the X axis and the negative direction of the Y axis. For example, the piezoelectric film 121 generates a positive electric charge when stretched in the negative direction of the X axis and the positive direction of the Y axis. For example, the piezoelectric film 121 generates a negative electric charge when stretched in the negative direction of the X axis and the negative direction of the Y axis. The magnitude of the electric charge depends on the differential value of the deformation of the piezoelectric film 121 due to stretching or compression.

[0020] In this embodiment, the first electrode 120 is a reference electrode connected to a reference potential. The first electrode 120 is fixed to the first main surface SF1 with an adhesive (not shown) such as OCA. The first electrode 120 covers the first main surface SF1.

[0021] In this embodiment, the second electrode 122 is a signal electrode. The second electrode 122 is fixed to the second main surface SF2 with an adhesive (not shown) such as OCA. The second electrode 122 covers the second main surface SF2.

[0022] The detection circuit includes a charge amplifier (not shown), an AD converter (not shown), etc. The charge amplifier converts the charge generated by the piezoelectric film 121 into a voltage signal. The AD converter generates a digital signal by AD converting the voltage signal.

[0023] The deformation detection sensor 12 outputs a signal corresponding to the deformation of the holding member 10. As shown in FIGS. 1 to 3, the deformation detection sensor 12 is fixed to the holding member 10 with an adhesive (not shown) such as OCA. This causes the deformation detection sensor 12 to deform in accordance with the deformation of the holding member 10. The deformation detection sensor 12 outputs a signal corresponding to the deformation of the deformation detection sensor 12.

[0024] As shown in FIGS. 2 and 3, the first fixing portion 13a has a rectangular shape with two sides extending along the X-axis and two sides extending along the Y-axis. In the Z-axis direction, the first fixing portion 13a is located between the holding member 10 and the housing 11. The first fixing portion 13a is in contact with the second main surface DF10. The first fixing portion 13a is in contact with the frame-shaped portion 111 of the housing 11. The first fixing portion 13a is, for example, double-sided tape. This allows the first fixing portion 13a to be fixed to the second main surface DF10. The first fixing portion 13a is fixed to the housing 11.

[0025] The first fixed portion 13a is disposed at the first corner D1. When viewed from the first direction F, the first fixed portion 13a overlaps the first corner D1. In the present embodiment, as shown in FIG. 3, the end of the first fixed portion 13a in the negative direction of the X axis overlaps the third side H3 when viewed in the Z axis direction. The end of the first fixed portion 13a in the negative direction of the Y axis overlaps the first side H1 when viewed in the Z axis direction. The first fixed portion 13a does not overlap the deformation detection sensor 12 when viewed in the Z axis direction. The first fixed portion 13a does not contact the deformation detection sensor 12. The first fixed portion 13a is separated from the first fixed portion 13b, the first fixed portion 13c, and the first fixed portion 13d. When viewed in the Z axis direction, the first fixed portion 13a does not overlap the first fixed portion 13b, the first fixed portion 13c, and the first fixed portion 13d. First fixed portion 13a is not in contact with first fixed portion 13b, first fixed portion 13c, and first fixed portion 13d.

[0026] The size of first fixing portion 13a is smaller than the size of holding member 10. Specifically, the length of first fixing portion 13a in second direction S is not less than 1 / 5 and less than 1 / 2 of the length of holding member 10 in second direction S. Furthermore, the length of first fixing portion 13a in third direction T is not less than 1 / 3 and less than 1 / 2 of the length of holding member 10 in third direction T.

[0027] First fixed portion 13b is disposed at second corner D2. When viewed from first direction F, first fixed portion 13b overlaps second corner D2. In this embodiment, the end of first fixed portion 13b in the negative direction of the X axis overlaps third side H3 when viewed in the Z axis direction. The end of first fixed portion 13b in the positive direction of the Y axis overlaps second side H2 when viewed in the Z axis direction. First fixed portion 13b is separated from first fixed portion 13a, first fixed portion 13c, and first fixed portion 13d. When viewed in the Z axis direction, first fixed portion 13b does not overlap first fixed portion 13a, first fixed portion 13c, or first fixed portion 13d. First fixed portion 13b is not in contact with first fixed portion 13a, first fixed portion 13c, or first fixed portion 13d. The other configuration of first fixed portion 13b is the same as that of first fixed portion 13a, and therefore description thereof will be omitted.

[0028] First fixed portion 13c is disposed at third corner D3. When viewed from first direction F, first fixed portion 13c overlaps third corner D3. In this embodiment, the end of first fixed portion 13c in the positive direction of the X axis overlaps fourth side H4 when viewed in the Z axis direction. The end of first fixed portion 13c in the negative direction of the Y axis overlaps first side H1 when viewed in the Z axis direction. First fixed portion 13c is separated from first fixed portion 13a, first fixed portion 13b, and first fixed portion 13d. When viewed in the Z axis direction, first fixed portion 13c does not overlap first fixed portion 13a, first fixed portion 13b, or first fixed portion 13d. First fixed portion 13c is not in contact with first fixed portion 13a, first fixed portion 13b, or first fixed portion 13d. The other configuration of first fixed portion 13c is the same as that of first fixed portion 13a, and therefore description thereof will be omitted.

[0029] First fixed portion 13d is disposed at fourth corner D4. When viewed from first direction F, first fixed portion 13d overlaps fourth corner D4. In this embodiment, the end of first fixed portion 13d in the positive direction of the X-axis overlaps fourth side H4 when viewed in the Z-axis direction. The end of first fixed portion 13d in the positive direction of the Y-axis overlaps second side H2 when viewed in the Z-axis direction. First fixed portion 13d is separated from first fixed portion 13a, first fixed portion 13b, and first fixed portion 13c. When viewed in the Z-axis direction, first fixed portion 13d does not overlap first fixed portion 13a, first fixed portion 13b, or first fixed portion 13c. First fixed portion 13d is not in contact with first fixed portion 13a, first fixed portion 13b, or first fixed portion 13c. The other configuration of first fixed portion 13d is the same as that of first fixed portion 13a, and therefore description thereof will be omitted.

[0030] The four first fixing portions 13a, 13b, 13c, and 13d create a gap between the holding member 10 and the housing 11. For example, a gap exists between the holding member 10 and the housing 11 between the first fixing portion 13a and the first fixing portion 13b. A gap exists between the holding member 10 and the housing 11 between the first fixing portion 13a and the first fixing portion 13c. A gap exists between the holding member 10 and the housing 11 between the first fixing portion 13c and the first fixing portion 13d. A gap exists between the holding member 10 and the housing 11 between the first fixing portion 13b and the first fixing portion 13d.

[0031] (effect) In the terminal described in Patent Document 1 (hereinafter referred to as the comparative example), the entire outer periphery of the holding member is fixed to the housing. In this case, when a user presses the outer periphery of the holding member in the negative direction of the Z axis, the holding member is unlikely to deform so as to protrude in the negative direction of the Z axis. Therefore, in the comparative example, when a user presses the outer periphery of the holding member, the piezoelectric sensor provided on the holding member is unlikely to deform. As a result, in the comparative example, there is a possibility that the piezoelectric sensor will not be able to detect deformation of the holding member.

[0032] Meanwhile, the sensor 1 includes four first fixing portions 13a, 13b, 13c, and 13d. The four first fixing portions 13a, 13b, 13c, and 13d are disposed at four corners of the holding member 10, respectively. As a result, the portions of the holding member 10 where the four first fixing portions 13a, 13b, 13c, and 13d are in contact (hereinafter referred to as contact portions) are fixed to the housing 11. At this time, for example, compared to the contact portions, the portions of the holding member 10 located between the first fixing portions 13a and 13b are not firmly fixed to the housing 11. Therefore, compared to the contact portions, the portions of the holding member 10 located between the first fixing portions 13a and 13b are more likely to deform and protrude in the negative direction of the Z axis. Therefore, the deformation detection sensor 12 fixed to the holding member 10 is more likely to deform. As a result, with the sensor 1, the deformation detection sensor 12 can easily detect the deformation of the holding member 10.

[0033] For the same reason, the portion of the holding member 10 located between the first fixed portion 13a and the first fixed portion 13c is more easily deformed than the contact portion, making it easier for the deformation detection sensor 12 to detect deformation of the holding member 10. The portion of the holding member 10 located between the first fixed portion 13b and the first fixed portion 13d is more easily deformed than the contact portion, making it easier for the deformation detection sensor 12 to detect deformation of the holding member 10. The portion of the holding member 10 located between the first fixed portion 13c and the first fixed portion 13d is more easily deformed than the contact portion, making it easier for the deformation detection sensor 12 to detect deformation of the holding member 10.

[0034] In the sensor 1, a gap exists between the holding member 10 and the housing 11 due to the four first fixing portions 13a, 13b, 13c, and 13d (plurality of first fixing portions). For example, a gap exists between the holding member 10 and the housing 11, between the first fixing portion 13a and the first fixing portion 13b. As a result, when the user 200 presses the holding member 10 between the first fixing portion 13a and the first fixing portion 13b (the outer peripheral edge of the holding member 10) in the negative direction of the Z axis, the holding member 10 is likely to deform so as to protrude in the negative direction of the Z axis. Therefore, the deformation detection sensor 12 fixed to the holding member 10 is likely to deform. As a result, according to the sensor 1, the deformation detection sensor 12 can easily detect deformation of the holding member 10.

[0035] For the same reason, the holding member 10 is easily deformed between first fixed portion 13b and first fixed portion 13d, making it easier for deformation detection sensor 12 to detect deformation of holding member 10. For the same reason, the holding member 10 is easily deformed between first fixed portion 13a and first fixed portion 13b, making it easier for deformation detection sensor 12 to detect deformation of holding member 10. For the same reason, the holding member 10 is easily deformed between first fixed portion 13c and first fixed portion 13d, making it easier for deformation detection sensor 12 to detect deformation of holding member 10.

[0036] [Variation 1] The sensor 1a according to Modification 1 will be described below with reference to the drawings. Fig. 5 is a diagram showing the sensor 1a according to Modification 1. Fig. 5 is a diagram showing the holding member 10, the four first fixing portions 13a to 13d, and the four second fixing portions 14a to 14d as viewed in the positive direction of the Z axis.

[0037] Sensor 1a differs from sensor 1 in that it further includes at least one second fixed portion. In this modification, as shown in FIG. 5, sensor 1a further includes four second fixed portions 14a, 14b, 14c, and 14d. Each of the four second fixed portions 14a to 14d is fixed to the second main surface DF10 of holding member 10. Each of the four second fixed portions 14a to 14d overlaps the outer periphery of holding member 10 when viewed from first direction F. Each of the four second fixed portions 14a to 14d does not overlap one another when viewed from the Z-axis direction. Each of the four second fixed portions 14a to 14d does not contact one another. Each of the four second fixed portions 14a to 14d does not overlap one another with the four first fixed portions 13a to 13d (plurality of first fixed portions) when viewed from first direction F. Each of the four second fixing portions 14a to 14d does not overlap with the deformation detection sensor 12. Each of the four second fixing portions 14a to 14d is, for example, a double-sided tape.

[0038] Second fixed portion 14a is located between first fixed portion 13a and first fixed portion 13c when viewed in the Z-axis direction. Second fixed portion 14a overlaps with first side H1 when viewed in the Z-axis direction. The end of second fixed portion 14a in the negative Y-axis direction overlaps with first side H1 when viewed in the Z-axis direction.

[0039] Second fixed portion 14a is softer than first fixed portion 13a. Specifically, the product of the Young's modulus of first fixed portion 13a and the thickness of first fixed portion 13a in first direction F is the first coefficient of first fixed portion 13a. The product of the Young's modulus of second fixed portion 14a and the thickness of second fixed portion 14a in first direction F is the second coefficient of second fixed portion 14a. In this case, the second coefficient of second fixed portion 14a is smaller than the first coefficient of first fixed portion 13a.

[0040] Similarly, second fixed portion 14a is softer than first fixed portions 13b, 13c, and 13d. Specifically, the second coefficient of second fixed portion 14a is smaller than the first coefficient of first fixed portion 13b. The second coefficient of second fixed portion 14a is smaller than the first coefficient of first fixed portion 13c. The second coefficient of second fixed portion 14a is smaller than the first coefficient of first fixed portion 13d.

[0041] Second fixed portion 14b is located between first fixed portion 13b and first fixed portion 13d when viewed in the Z-axis direction. Second fixed portion 14b overlaps with second side H2 when viewed in the Z-axis direction. The end of second fixed portion 14b in the positive direction of the Y-axis overlaps with second side H2 when viewed in the Z-axis direction. As with second fixed portion 14a, the second coefficient of second fixed portion 14b is smaller than the first coefficients of each of first fixed portions 13a to 13d. The other configuration of second fixed portion 14b is the same as the configuration of second fixed portion 14a, so a description thereof will be omitted.

[0042] Second fixed portion 14c is located between first fixed portion 13a and first fixed portion 13b when viewed in the Z-axis direction. Second fixed portion 14c overlaps with third side H3 when viewed in the Z-axis direction. The end of second fixed portion 14c in the negative direction of the X-axis overlaps with third side H3 when viewed in the Z-axis direction. As with second fixed portion 14a, the second coefficient of second fixed portion 14c is smaller than the first coefficients of each of first fixed portions 13a to 13d. The other configuration of second fixed portion 14c is the same as the configuration of second fixed portion 14a, so a description thereof will be omitted.

[0043] Second fixed portion 14d is located between first fixed portion 13c and first fixed portion 13d when viewed in the Z-axis direction. Second fixed portion 14d overlaps with fourth side H4 when viewed in the Z-axis direction. The end of second fixed portion 14d in the positive direction of the X-axis overlaps with fourth side H4 when viewed in the Z-axis direction. As with second fixed portion 14a, the second coefficient of second fixed portion 14d is smaller than the first coefficients of each of first fixed portions 13a to 13d. The other configuration of second fixed portion 14d is the same as the configuration of second fixed portion 14a, so a description thereof will be omitted.

[0044] In the above configuration, the largest second coefficient among the second coefficients possessed by each of the plurality of second fixed portions 14a to 14d is smaller than the smallest first coefficient among the first coefficients possessed by each of the plurality of first fixed portions 13a to 13d.

[0045] (effect) When viewed in the Z-axis direction, four second fixing portions 14a to 14d are provided in addition to four first fixing portions 13a to 13d around the deformation detection sensor 12 of the sensor 1a. In this case, foreign matter such as liquid is less likely to enter the sensor 1a from outside. Therefore, the deformation detection sensor 12 and electronic components other than the deformation detection sensor 12 provided in the sensor 1a are less likely to come into contact with foreign matter such as liquid. Therefore, the sensor 1a is less likely to break down.

[0046] For example, the second coefficient of second fixed portion 14a is smaller than the first coefficient of first fixed portion 13a. In this case, the portion of holding member 10 where second fixed portion 14a is arranged is more likely to deform so as to protrude in the negative direction of the Z axis than the portion of holding member 10 where first fixed portions 13a, 13b, and 13c are arranged. Therefore, deformation detection sensor 12 provided on holding member 10 can more easily detect deformation of holding member 10. For the same reason, the portions of holding member 10 where second fixed portions 14b, 14c, and 14d are arranged are more likely to deform, making it easier for deformation detection sensor 12 to detect deformation of holding member 10.

[0047] [Variation 2] The sensor 1b according to Modification 2 will be described below with reference to the drawings. Fig. 6 is a diagram showing the sensor 1b according to Modification 2. Fig. 6 is a diagram showing the holding member 10, the first fixing portions 13a to 13d, and the second fixing portions 14a to 14d as viewed in the positive direction of the Z axis.

[0048] The softness of second fixed portion 14c in sensor 1b is different from the softness of second fixed portion 14c in sensor 1a. Specifically, in this modification, second fixed portion 14c is softer than second fixed portion 14a. More specifically, the second coefficient of second fixed portion 14c is smaller than the second coefficient of second fixed portion 14a. Similarly, the second coefficient of second fixed portion 14c is smaller than the second coefficient of second fixed portion 14b. The other configuration of second fixed portion 14c in sensor 1b is the same as the configuration of second fixed portion 14c in sensor 1a, so description will be omitted.

[0049] Furthermore, the softness of second fixed portion 14d in sensor 1b is different from the softness of second fixed portion 14d in sensor 1a. Specifically, in this modification, second fixed portion 14d is softer than second fixed portion 14a. More specifically, the second coefficient of second fixed portion 14d is smaller than the second coefficient of second fixed portion 14a. Similarly, the second coefficient of second fixed portion 14d is smaller than the second coefficient of second fixed portion 14b. The other configuration of second fixed portion 14d in sensor 1b is the same as the configuration of second fixed portion 14d in sensor 1a, so a description thereof will be omitted.

[0050] In the above configuration, the second coefficient of the second fixing portions 14a, 14b, which are arranged on the long sides of the holding member 10 among the multiple second fixing portions 14a to 14d, is larger than the second coefficient of the second fixing portions 14c, 14d, which are arranged on the short sides of the holding member 10 among the multiple second fixing portions 14a to 14d.

[0051] (effect) For example, the vicinity of the first side H1, which is the long side, is more easily deformed than the vicinity of the third side H3, which is the short side. Here, the second fixed portion 14c arranged near the third side H3 is softer than the second fixed portion 14a arranged near the first side H1. In this case, the second fixed portion 14a, which is less likely to deform, is arranged near the first side H1, which is more easily deformed. Furthermore, the second fixed portion 14c, which is more likely to deform, is arranged near the third side H3, which is less likely to deform. As a result, if the magnitude of the force applied near the first side H1 is the same as the magnitude of the force applied near the third side H3, the amount of deformation near the first side H1 is likely to be the same as the amount of deformation near the third side H3. As a result, an arithmetic circuit or the like (not shown) that receives the signal output by the deformation detection sensor 12 can easily determine the magnitude of the force applied to the holding member 10.

[0052] [Variation 3] The sensor 1c according to the third modification will be described below with reference to the drawings. Fig. 7 is a diagram showing the sensor 1c according to the third modification.

[0053] Sensor 1c differs from sensor 1b in that sensor 1c includes five or more second fixed portions 14aa to 14ae, 14ba to 14be, 14ca to 14cd, and 14da to 14dd.

[0054] Second fixed portions 14aa to 14ae are aligned in this order at intervals in the negative direction of the X axis. The ends of second fixed portions 14aa to 14ae in the negative direction of the Y axis overlap first side H1 when viewed in the Z axis direction.

[0055] In this modification, the second coefficient of each of second fixing portions 14aa-14ae preferably has a stepped value according to the distance from the corner of holding member 10. For example, the second coefficient of second fixing portions 14ab, 14ad is preferably larger than the second coefficient of second fixing portions 14aa, 14ae. The second coefficient of second fixing portion 14ac is preferably larger than the second coefficient of second fixing portions 14ab, 14ad.

[0056] The ends of second fixed portions 14ba-14be in the positive direction of the Y axis overlap with second side H2 when viewed in the Z axis direction. As with second fixed portions 14aa-14ae, the second coefficients of second fixed portions 14ba-14be preferably have stepped values that correspond to the distance from the corners of holding member 10. The other configurations of second fixed portions 14ba-14be are the same as those of second fixed portions 14aa-14ae, and therefore will not be described here.

[0057] Second fixing portions 14ca-14ce are aligned in this order at intervals in the negative direction of the Y axis. Similar to second fixing portions 14aa-14ae, second coefficients of second fixing portions 14ca-14ce have stepped values according to the distance from the corners of holding member 10. The ends of second fixing portions 14ca-14ce in the negative direction of the X axis overlap with third side H3 when viewed in the Z axis direction.

[0058] The ends of second fixed portions 14da-14de in the positive direction of the X-axis overlap fourth side H4 when viewed in the Z-axis direction. As with second fixed portions 14aa-14ae, the second coefficients of second fixed portions 14da-14de preferably have stepped values that correspond to the distance from the corners of holding member 10. The rest of the configuration of second fixed portions 14da-14de is the same as that of second fixed portions 14ca-14ce, so a description thereof will be omitted.

[0059] As described above, in this modification, a plurality of second fixing portions are provided on each side of the holding member 10. In this case, the second coefficient is calculated based on the average value of the thicknesses of the plurality of second fixing portions provided on each side of the holding member 10. For example, the average value of the thicknesses of the plurality of second fixing portions 14aa-14ae provided on the first side H1 is defined as the thickness of the second fixing portions on the first side H1. Then, the average value obtained by dividing the second coefficient of each of the plurality of second fixing portions 14aa-14ae by the number of the plurality of second fixing portions arranged on the first side H1 is defined as the second coefficient of the second fixing portions on the first side H1. In this case, the second coefficient of the second fixing portions on the first side H1 (the long side of the holding member 10) is greater than the second coefficient of the second fixing portions on the third side H3 (the short side of the holding member 10) or the second coefficient of the second fixing portions on the fourth side H4 (the short side of the holding member 10). Similarly, the second coefficient of the second fixed portion on the second side H2 is greater than the second coefficient of the second fixed portion on the third side H3 or the second coefficient of the second fixed portion on the fourth side H4.

[0060] (effect) The area near the center of the first side H1 is more susceptible to deformation than the areas near both ends of the first side H1. Here, the second coefficients of the second fixed portions 14ab and 14ad are greater than the second coefficients of the second fixed portions 14aa and 14ae. The second coefficient of the second fixed portion 14ac is greater than the second coefficients of the second fixed portions 14ab and 14ad. In this case, the second fixed portion 14ac, which is less susceptible to deformation, is disposed near the center of the first side H1, which is more susceptible to deformation. Furthermore, the second fixed portions 14aa and 14ae, which are more susceptible to deformation, are disposed near both ends of the first side H1, which is less susceptible to deformation. As a result, if the magnitude of the force applied near the center of the first side H1 is the same as the magnitude of the force applied near both ends of the first side H1, the amount of deformation near the center of the first side H1 is likely to be the same as the amount of deformation near both ends of the first side H1. As a result, a calculation circuit or the like (not shown) that receives the signal output by the deformation detection sensor 12 can more accurately determine the magnitude of the force applied to the holding member 10.

[0061] For the same reason, the second fixing portions 14ba to 14be, 14ca to 14ce, or 14da to 14de having different softnesses make it easier for the calculation circuit to accurately determine the magnitude of the force applied to the holding member 10.

[0062] [Variation 4] A sensor 1d according to Modification 4 will be described below with reference to the drawings. Fig. 8 is a diagram showing a sensor 1d according to Modification 4.

[0063] 8, sensor 1d differs from sensor 1 in that it includes first fixed portions 13a2, 13b2, 13c2, and 13d2 that have different shapes from first fixed portions 13a, 13b, 13c, and 13d, instead of first fixed portions 13a, 13b, 13c, and 13d. Each of first fixed portions 13a2, 13b2, 13c2, and 13d2 has an L-shape when viewed in the first direction F.

[0064] As shown in FIG. 8 , a portion of first fixed portion 13a2 extends from first corner D1 in the positive direction of the X-axis. A portion of first fixed portion 13a2 extends from first corner D1 in the positive direction of the Y-axis. A portion of first fixed portion 13b2 extends from second corner D2 in the positive direction of the X-axis. A portion of first fixed portion 13b2 extends from second corner D2 in the negative direction of the Y-axis. A portion of first fixed portion 13c2 extends from third corner D3 in the negative direction of the X-axis. A portion of first fixed portion 13c2 extends from third corner D3 in the positive direction of the Y-axis. A portion of first fixed portion 13d2 extends from fourth corner D4 in the negative direction of the X-axis. A portion of first fixed portion 13d2 extends from fourth corner D4 in the negative direction of the Y-axis.

[0065] (effect) For example, first fixing portion 13a2 is L-shaped when viewed in the Z-axis direction. In this case, the area of the portion of sensor 1d where first fixing portion 13a2 is in contact with holding member 10 is larger than the area of the portion of sensor 1 where first fixing portion 13a is in contact with holding member 10. Therefore, holding member 10 is more easily fixed to housing 11. For the same reason, first fixing portions 13b2, 13c2, and 13d2 also make it easier to fix holding member 10 to housing 11.

[0066] When viewed in the Z-axis direction, the deformation detection sensor 12 is surrounded by the L-shaped first fixing portions 13a2, 13b2, 13c2, and 13d2. In this case, the distance between the portion of the holding member 10 pressed by the user 200 and the portion of the holding member 10 where the fixing portions 13a2, 13b2, 13c2, and 13d2 are provided tends to be constant. Therefore, when the force with which the user 200 presses the holding member 10 is constant, the amount of deformation of the holding member 10 tends to be constant regardless of the position where the user 200 presses the holding member 10. As a result, a calculation circuit (not shown) that receives a signal output by the deformation detection sensor 12 can easily accurately determine the magnitude of the force applied to the holding member 10. In addition, the sensor 1d has the same effects as the sensor 1.

[0067] [Variation 5] A sensor 1e according to Modification 5 will be described below with reference to the drawings. Fig. 9 is a diagram showing a sensor 1e according to Modification 5.

[0068] 9, sensor 1e differs from sensor 1d in that it includes second fixed portions 14a to 14d. The configuration of second fixed portions 14a to 14d in sensor 1e is the same as the configuration of second fixed portions 14a to 14d in sensor 1a. Sensor 1e achieves the same effects as sensor 1a and sensor 1d.

[0069] [Electronic device EE variant 1] Hereinafter, electronic devices EEa1 and EEa2 according to Modification 1 of the electronic device EE will be described with reference to the drawings. Fig. 10 is an exploded perspective view of the electronic device EEa1. Fig. 11 is an exploded perspective view of the electronic device EEa2. In Figs. 10 and 11, the housing 11 is omitted.

[0070] The electronic device EEa1 includes a sensor 1 and a touch panel 16. As shown in FIG. 10, the touch panel 16 is located between the holding member 10 and the deformation detection sensor 12 in the Z-axis direction. The touch panel 16 is, for example, a capacitive touch panel. The touch panel 16 identifies the position on the holding member 10 that is pressed by the user 200. The electronic device EEa1 can identify the position on the holding member 10 that the user 200 pressed, in addition to information such as the amount of deformation of the holding member 10.

[0071] 11, the electronic device EEa2 differs from the electronic device EEa1 in that the touch panel 16, the deformation detection sensor 12, and the holding member 10 are arranged in this order in the positive direction of the Z axis. The electronic device EEa2 has the same effects as the electronic device EEa1.

[0072] [Modification 2 related to electronic device EE] Hereinafter, electronic devices EEb1 and EEb2 according to a second modification of the electronic device EE will be described with reference to the drawings. Fig. 12 is an exploded perspective view of the electronic device EEb1. Fig. 13 is an exploded perspective view of the electronic device EEb2. In Figs. 12 and 13, the housing 11 is omitted.

[0073] As shown in FIG. 12, the electronic device EEb1 differs from the electronic device EEa1 in that it further includes a display 17. The display 17 is located between the deformation detection sensor 12 and the touch panel 16 in the Z-axis direction. The display 17 is an organic EL display, a liquid crystal display, or the like. The electronic device EEb1 allows the user 200 to view information displayed on the display 17. In addition, the electronic device EEb1 achieves the same effects as the electronic device EEa1.

[0074] 13, the electronic device EEb2 differs from the electronic device EEb1 in that the display 17, the deformation detection sensor 12, the touch panel 16, and the holding member 10 are arranged in this order in the positive direction of the Z axis. The electronic device EEb2 has the same effects as the electronic device EEb1.

[0075] [Other embodiments] The sensors and electronic devices according to the present invention are not limited to the sensors 1, 1a to 1e and the electronic devices EE, EEa1 to EEb2, and can be modified within the scope of the gist thereof. The configurations of the sensors 1, 1a to 1e and the electronic devices EE, EEa1 to EEb2 may be combined in any manner.

[0076] The holding member 10 may have a square shape when viewed in the first direction F.

[0077] The X-axis, Y-axis, and Z-axis directions are defined for the purpose of explanation. Therefore, the X-axis, Y-axis, and Z-axis directions during actual use of the sensors 1, 1a-1e and the electronic devices EE, EEa1-EEb2 do not necessarily coincide with the X-axis, Y-axis, and Z-axis directions in each embodiment and each modified example. For example, the long side of the holding member 10 may extend along the Y-axis, or the short side of the holding member 10 may extend along the X-axis.

[0078] The first direction F, the second direction S, and the third direction T are directions defined for the purpose of explanation. Therefore, the first direction F, the second direction S, and the third direction T during actual use of the sensors 1, 1a to 1e and the electronic devices EE, EEa1 to EEb2 do not necessarily have to match the first direction F, the second direction S, and the third direction T in each embodiment and each modified example.

[0079] It should be noted that each of first fixing portions 13a to 13d does not necessarily have to be double-sided tape. It should be noted that each of second fixing portions 14a to 14d does not necessarily have to be double-sided tape. It should be noted that each of second fixing portions 14aa to 14ae and each of second fixing portions 14ba to 14be do not necessarily have to be double-sided tape. It should be noted that each of second fixing portions 14ca to 14cd do not necessarily have to be double-sided tape. It should be noted that each of second fixing portions 14da to 14de do not necessarily have to be double-sided tape.

[0080] The sensor 1c may include 21 or more second fixed portions. The sensor 1c may include 5 to 19 second fixed portions.

[0081] The electronic devices EEa1, EEa2, EEb1, and EEb2 may include, instead of the sensor 1, any one of the sensors 1a to 1e.

[0082] It should be noted that the first electrode 120 does not necessarily have to be a reference electrode, and the second electrode 122 does not necessarily have to be a signal electrode. For example, in the sensors 1, 1a to 1e, the first electrode 120 may be a signal electrode, and the second electrode 122 may be a reference electrode.

[0083] It should be noted that the sensors 1, 1a to 1e do not necessarily have to include the housing 11. For example, the housing 11 may be one of the components of the electronic devices EEa1, EEa2, EEb1, and EEb2.

[0084] The configuration of the housing 11 is not limited to the example described in the first embodiment and Fig. 1. For example, the frame-shaped portion 111 of the housing 11 may be produced by cutting a plate having a planar shape.

[0085] In Modification 1, sensor 1a does not necessarily have to include four second fixing portions 14a to 14d. Sensor 1a only needs to include at least one of four second fixing portions 14a to 14d.

[0086] In Modification 1, sensor 1a does not necessarily have to include four second fixed portions 14a to 14d. Sensor 1a may, for example, include only two second fixed portions out of four second fixed portions 14a to 14d. For example, sensor 1a may include only second fixed portions 14a and 14b, or only second fixed portions 14c and 14d.

[0087] In the first modification, the values of the second coefficients of the second fixed portions 14a to 14d do not necessarily have to be the same.

[0088] The present invention has the following structure:

[0089] (1) a holding member including a first main surface and a second main surface aligned in a first direction and having a rectangular shape when viewed from the first direction; a deformation detection sensor that outputs a signal corresponding to the deformation of the holding member; a plurality of first fixing portions fixed to the second main surface and overlapping corners of the holding member when viewed from the first direction; It is equipped with The plurality of first fixing portions are spaced apart from each other. Sensor.

[0090] (2) the sensor further includes at least one second fixing portion fixed to the second main surface, At least one of the second fixing portions overlaps with an outer circumferential portion of the holding member when viewed from the first direction, and does not overlap with the plurality of first fixing portions when viewed from the first direction. The sensor according to (1).

[0091] (3) In each first fixing portion, the product of the Young's modulus and the thickness is a first coefficient, In each second fixing portion, the product of the Young's modulus and the thickness is a second coefficient, the largest second coefficient among the second coefficients included in the at least one second fixed portion is smaller than the smallest first coefficient among the first coefficients included in the plurality of first fixed portions; (2) The sensor according to (2).

[0092] (4) the second coefficient of the second fixing portion arranged on a long side of the holding member among the at least one second fixing portion is larger than the second coefficient of the second fixing portion arranged on a short side of the holding member among the at least one second fixing portion; (3) The sensor according to (3).

[0093] (5) the number of the plurality of first fixing portions is four, When viewed from the first direction, the four first fixing portions and corner portions of the holding member overlap with each other. A sensor according to any one of (1) to (4).

[0094] (6) the holding member has a rectangular shape with two long sides extending in the second direction and two short sides extending in the third direction; a length of each of the plurality of first fixing portions in the second direction is equal to or greater than 1 / 5 and less than 1 / 2 of a length of the holding member in the second direction, a length of each of the plurality of first fixing portions in the third direction is equal to or greater than 1 / 3 and less than 1 / 2 of a length of the holding member in the third direction; A sensor module according to any one of (1) to (5).

[0095] (7) Each of the plurality of first fixing portions has an L-shape when viewed in the first direction. A sensor module according to any one of (1) to (6).

[0096] (8) Each of the plurality of first fixing portions is a double-sided tape. A sensor module according to any one of (1) to (7).

[0097] (9) The sensor further comprises a housing; each of the plurality of first fixed portions is fixed to the housing; In the first direction, each of the plurality of first fixing portions is located between the holding member and the housing. A sensor according to any one of (1) to (8).

[0098] (10) A sensor according to any one of (1) to (9); Touch panel and An electronic device that is equipped with

[0099] (11) The electronic device further comprises a display. (10) The electronic device described in (10). [Explanation of symbols]

[0100] 1, 1a to 1e: Sensor 10: Holding member 11: Housing 12: Deformation detection sensor 13a~13d: 1st fixed part D1: First corner D2:Second corner D3: Third corner D4: Fourth corner SF1: First principal surface SF2: Second principal surface F: 1st direction S:Second direction T: 3rd direction EE,EEa1~EEb2:Electronic equipment

Claims

1. a holding member including a first main surface and a second main surface aligned in a first direction and having a rectangular shape when viewed from the first direction; a deformation detection sensor that outputs a signal corresponding to the deformation of the holding member; a plurality of first fixing portions fixed to the second main surface and overlapping corners of the holding member when viewed from the first direction; At least one second fixing portion fixed to the second main surface; The housing and It is equipped with each of the plurality of first fixing portions is a double-sided tape, and fixes the second main surface to the housing; the plurality of first fixing portions are spaced apart from one another, at least one of the second fixing portions overlaps with an outer circumferential portion of the holding member when viewed from the first direction, and does not overlap with the plurality of first fixing portions when viewed from the first direction; In each first fixing portion, the product of the Young's modulus and the thickness is a first coefficient, In each second fixing portion, the product of the Young's modulus and the thickness is a second coefficient, a largest second coefficient among the second coefficients included in the at least one second fixed portion is smaller than a smallest first coefficient among the first coefficients included in the plurality of first fixed portions; Each of the plurality of first fixing portions has an L-shape when viewed in the first direction. Sensor.

2. the second coefficient of the second fixing portion disposed on a long side of the holding member among the at least one second fixing portion is larger than the second coefficient of the second fixing portion disposed on a short side of the holding member among the at least one second fixing portion; The sensor of claim 1 .

3. the number of the plurality of first fixing portions is four, When viewed from the first direction, the four first fixing portions and corner portions of the holding member overlap with each other. The sensor according to claim 1 or 2.

4. the holding member has a rectangular shape with two long sides extending in the second direction and two short sides extending in the third direction; a length of each of the plurality of first fixing portions in the second direction is equal to or greater than 1 / 5 and less than 1 / 2 of a length of the holding member in the second direction, a length of each of the plurality of first fixing portions in the third direction is equal to or greater than one-third and less than one-half of a length of the holding member in the third direction; The sensor according to claim 1 or 2.

5. In the first direction, each of the plurality of first fixing portions is located between the holding member and the housing. The sensor according to claim 1 or 2.

6. a holding member including a first main surface and a second main surface aligned in a first direction and having a rectangular shape when viewed from the first direction; a deformation detection sensor that outputs a signal corresponding to the deformation of the holding member; a plurality of first fixing portions fixed to the second main surface and overlapping corners of the holding member when viewed from the first direction; At least one second fixing portion fixed to the second main surface; It is equipped with the plurality of first fixing portions are spaced apart from one another, at least one of the second fixing portions overlaps with an outer circumferential portion of the holding member when viewed from the first direction, and does not overlap with the plurality of first fixing portions when viewed from the first direction; In each first fixing portion, the product of the Young's modulus and the thickness is a first coefficient, In each second fixing portion, the product of the Young's modulus and the thickness is a second coefficient, a largest second coefficient among the second coefficients included in the at least one second fixed portion is smaller than a smallest first coefficient among the first coefficients included in the plurality of first fixed portions; the second coefficient of the second fixing portion disposed on a long side of the holding member among the at least one second fixing portion is larger than the second coefficient of the second fixing portion disposed on a short side of the holding member among the at least one second fixing portion; Sensor.

7. A sensor according to any one of claims 1, 2 and 6; Touch panel and An electronic device that is equipped with:

8. The electronic device further comprises a display.

8. The electronic device according to claim 7.

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