Biosound Sensor
The biological sound sensor addresses noise interference by using a vibration plate and soft member to transmit vibrations without housing contact with the body, enhancing detection accuracy.
Patent Information
- Application Number
- JP2025508162
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-03-22
- Filing Date
- 2024-01-24
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2044-01-24
AI Technical Summary
Existing body-conducted sound sensors suffer from noise generation due to open ends of the container coming into contact with the human body, which interferes with accurate detection of body sounds.
A biological sound sensor design featuring a vibration plate with a piezoelectric element and a soft member that contacts the body, where the housing is prevented from touching the body, and vibrations are transmitted through a soft member to a diaphragm, reducing noise interference.
The design effectively suppresses noise and enhances the accuracy of body sound detection by minimizing contact-induced noise and improving vibration transmission.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a biological sound sensor. [Background technology]
[0002] Patent Document 1 discloses, as an example of a biological sound sensor, a body-conducted sound sensor that includes a microphone element, an elastic polymer material having a sound wave input surface that comes into contact with the surface of the human body to input sound waves, and a container that houses the microphone element and to which the elastic polymer material is attached with the sound wave input surface exposed. Sound waves are transmitted from the sound wave input surface to the microphone element through the elastic polymer material. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Patent No. 5467265 Summary of the Invention [Problem to be solved by the invention]
[0004] However, in the body-conducted sound sensor of Patent Document 1, the container has open ends around the sound wave input surface, and when the sound wave input surface is in contact with the surface of the human body, the open ends also come into contact with the surface of the human body, which may generate noise. If the noise is transmitted to the microphone element, the body sound sensor may not be able to detect body sounds accurately.
[0005] The present disclosure has been made in view of the above, and has an object to provide a body sound sensor that suppresses noise generation and accurately detects body sounds. [Means for solving the problem]
[0006] The biological sound sensor of the present disclosure comprises a housing, a plate-shaped vibration plate having a first plate surface and a second plate surface located opposite each other and capable of vibrating in the thickness direction, a piezoelectric element arranged on the first plate surface and detecting vibrations of the vibration plate, and a soft member that is softer than the vibration plate and has a contact surface that contacts the living body and a non-contact surface that is separated from the living body when the contact surface is in contact with the living body, the housing holds one of the first plate surface and the non-contact surface, and the second plate surface is attached to the non-contact surface from the center to the periphery of the second plate surface. [Effects of the Invention]
[0007] According to the body sound sensor of the present disclosure, it is possible to suppress the generation of noise and detect body sounds with high accuracy. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a cross-sectional view showing the configuration of a body sound sensor according to a first embodiment of the present disclosure. [Figure 2] FIG. 2 is a cross-sectional view showing the configuration of a body sound sensor according to a modified example of the first embodiment of the present disclosure. [Figure 3] FIG. 3 is a cross-sectional view showing the configuration of a body sound sensor according to the second embodiment of the present disclosure. [Figure 4] FIG. 4 is a cross-sectional view showing the configuration of a body sound sensor according to a first modified example of the second embodiment of the present disclosure. [Figure 5] FIG. 5 is a cross-sectional view showing the configuration of a body sound sensor according to a second modified example of the second embodiment of the present disclosure. [Figure 6] FIG. 6 is a cross-sectional view showing the configuration of a body sound sensor according to a third modified example of the second embodiment of the present disclosure. [Figure 7] FIG. 7 is a cross-sectional view showing the configuration of a body sound sensor according to the third embodiment of the present disclosure. [Figure 8] FIG. 8 is a cross-sectional view showing the configuration of a body sound sensor according to another modified example of the first embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, embodiments will be described in detail with reference to the drawings. Note that the present disclosure is not limited to these embodiments. Each embodiment is an example, and it goes without saying that partial substitution or combination of the configurations shown in different embodiments is possible.
[0010] First Embodiment Fig. 1 is a cross-sectional view showing the configuration of a biological sound sensor 1 according to a first embodiment of the present disclosure. The Z direction shown in the drawing is the thickness direction of a diaphragm 20, which will be described later. In this specification, "plan view" means viewing the biological sound sensor 1 along the Z direction. Fig. 1 shows a state in which a soft member 40, which will be described later, is in contact with an outer surface B1 of a living organism B.
[0011] The biological sound sensor 1 comes into contact with the outer surface B1 of a living body B (e.g., a human body) and detects biological sounds (e.g., heart sounds). The biological sound sensor 1 is cylindrical with flat surfaces on both sides in the Z direction. It goes without saying that the biological sound sensor 1 is not limited to a cylindrical shape, and may be, for example, a rectangular parallelepiped shape.
[0012] The biological sound sensor 1 includes a housing 10, a diaphragm 20, a piezoelectric element 30, and a soft member 40.
[0013] The housing 10 is box-shaped and has an opening at one end in the Z direction. An open end 11 of the housing 10 is annular in plan view. The material of the housing 10 is, for example, a thermoplastic resin.
[0014] The diaphragm 20 is in the shape of a plate having a first plate surface 21 and a second plate surface 22 located on opposite sides. The diaphragm 20 is, for example, in the shape of a disk. The first plate surface 21 and the second plate surface 22 are planar. The diaphragm 20 is capable of vibrating in the Z direction (thickness direction). The diaphragm 20 is electrically conductive. The material of the diaphragm 20 is a metal (for example, copper or nickel).
[0015] The diaphragm 20 is held by the housing 10 with the first plate surface 21 attached to the opening edge 11 of the housing 10. In other words, the housing 10 holds the first plate surface 21. Specifically, the peripheral edge of the first plate surface 21 is held by the opening edge 11. In this way, the diaphragm 20 covers the opening of the housing 10. The first plate surface 21 is held by the opening edge 11 via an adhesive layer (not shown). The adhesive layer may be formed by an adhesive tape, or may be formed by hardening an adhesive.
[0016] The piezoelectric element 30 is housed in the housing 10. The piezoelectric element 30 detects vibrations of the diaphragm 20. The piezoelectric element 30 is a piezo element. The piezoelectric element 30 is made of, for example, a PZT-based piezoelectric ceramic material made of lead zirconate titanate. The piezoelectric element 30 is in the form of a film having a first electrode surface 31 and a second electrode surface 32 located on opposite sides of each other.
[0017] The piezoelectric element 30 is disposed on the first plate surface 21 of the diaphragm 20 with the second electrode surface 32 electrically connected to the first plate surface 21. The second electrode surface 32 is disposed on the first plate surface 21 via, for example, a conductive adhesive layer (not shown) having electrical conductivity. The conductive adhesive layer is, for example, a cured adhesive containing a conductive filler (for example, silver microparticles). The piezoelectric element 30 deforms in response to the vibration of the diaphragm 20, and a voltage is generated between the first electrode surface 31 and the second electrode surface 32.
[0018] The soft member 40 transmits vibrations of the living organism B to the diaphragm 20. The soft member 40 has a contact surface 41 and a non-contact surface 42. The contact surface 41 is the surface that contacts the living organism B. The non-contact surface 42 is the surface that is separated from the living organism B when the contact surface 41 is in contact with the living organism B. When the contact surface 41 is separated from the living organism B, the contact surface 41 and the non-contact surface 42 are flat.
[0019] In the first embodiment, the soft member 40 is plate-shaped, and the contact surface 41 and the non-contact surface 42 are located on opposite sides. The soft member 40 is, for example, disk-shaped. As described above, the soft member 40 and the diaphragm 20 are plate-shaped, and the piezoelectric element 30 is film-shaped. This allows the thickness of the biological sound sensor 1 to be reduced.
[0020] The soft member 40 has flexibility. The soft member 40 is softer than the vibration plate 20. The soft member 40 has a hardness that allows the contact surface 41 to deform along the outer surface B1 of the living body B when the contact surface 41 is in contact with the living body B. The Shore A hardness of the soft member 40 is 50 or less. In this first embodiment, the Asker C hardness of the soft member 40 is approximately 15. It goes without saying that the hardness of the soft member 40 is not limited to the above value. Furthermore, the soft member 40 has elasticity.
[0021] Furthermore, the soft member 40 has an acoustic impedance between the acoustic impedance of the skin of the living body B and the acoustic impedance of the diaphragm 20. This allows the soft member 40 to appropriately transmit the body sound. The material of the soft member 40 is a polymer material (such as silicone or urethane rubber).
[0022] The second plate surface 22 of the diaphragm 20 is attached to the non-contact surface 42 from the center to the periphery of the second plate surface 22. In other words, the second plate surface 22 is attached to the non-contact surface 42 all the way to the corners of the second plate surface 22. The non-contact surface 42 and the second plate surface 22 are attached via a first adhesive member 51. The thickness of the first adhesive member 51 is constant. No member other than the first adhesive member 51 is interposed between the non-contact surface 42 and the second plate surface 22. This prevents the non-contact surface 42 and the contact surface 41 from having convex or concave shapes along the thickness direction. The first adhesive member 51 may be formed of an adhesive tape, or may be formed by hardening an adhesive.
[0023] The entire housing 10 is located on the opposite side of the contact surface 41 with the first plate surface 21 in between. Furthermore, when the soft member 40 is viewed from the contact surface 41 side along the thickness direction (Z direction) of the vibration plate 20, the entire housing 10 is hidden by the soft member 40. This prevents the housing 10 from coming into contact with the living body B when the contact surface 41 is in contact with the living body B.
[0024] The biological sound sensor 1 also includes a first electric wire L1 and a second electric wire L2. A first end of the first electric wire L1 is electrically connected to a first electrode surface 31 of the piezoelectric element 30. A first end of the second electric wire L2 is electrically connected to a first plate surface 21 of the diaphragm 20. As described above, the diaphragm 20 is electrically conductive, and the first plate surface 21 and the second electrode surface 32 are electrically connected. Therefore, the first end of the second electric wire L2 is electrically connected to the second electrode surface 32 via the diaphragm 20. A second end of each of the first electric wire L1 and the second electric wire L2 is located outside the housing 10 and is electrically connected to, for example, a measuring instrument (not shown).
[0025] Next, we will explain the operation of the body sound sensor 1. When a user brings the contact surface 41 into contact with the outer surface B1 of the living body B, the body sound sensor 1 detects body sound.
[0026] Specifically, vibrations of the outer surface B1 of the living body B (hereinafter referred to as biological vibrations) are transmitted from the contact surface 41 to the soft member 40. At this time, as described above, the contact surface 41 is deformed along the outer surface B1 of the living body B and is in close contact with the outer surface B1 of the living body B. Also, as described above, the generation of convex and concave shapes along the thickness direction of the contact surface 41 is suppressed. Therefore, it is possible to suppress the generation of relatively large stresses locally in the soft member 40 due to contact between the contact surface 41 and the outer surface B1 of the living body B. Furthermore, it is possible to suppress the generation of noise (vibrations different from biological vibrations) due to friction between the contact surface 41 and the outer surface B1 of the living body B. Therefore, the soft member 40 can transmit biological vibrations with high accuracy.
[0027] The biological vibrations are transmitted to the diaphragm 20 via the soft member 40. Specifically, the soft member 40 vibrates due to the biological vibrations, and the diaphragm 20 vibrates in response to the vibration of the soft member 40. Furthermore, the piezoelectric element 30 vibrates in response to the vibration of the diaphragm 20. As a result, a voltage corresponding to the vibration of the piezoelectric element 30 is generated between the first electrode surface 31 and the second electrode surface 32 of the piezoelectric element 30. The waveform of the voltage generated in the piezoelectric element 30 corresponds to the waveform of the biological sound. In other words, the biological sound sensor 1 detects the voltage generated in the piezoelectric element 30 as biological sound. The voltage generated in the piezoelectric element 30 is output to a measuring instrument via the first electric wire L1 and the second electric wire L2.
[0028] Furthermore, as described above, when the contact surface 41 is in contact with the living body B, the housing 10 is prevented from coming into contact with the living body B. This prevents noise from being generated when the housing 10 comes into contact with the living body B. Therefore, the living body sound sensor 1 can detect living body sounds with high accuracy.
[0029] <Modification of the first embodiment> Next, a biological sound sensor 1 according to a modified example of the first embodiment of the present disclosure will be described, focusing on differences from the biological sound sensor 1 according to the first embodiment described above.
[0030] 2 is a cross-sectional view showing the configuration of a biological sound sensor 1 according to a modified example of the first embodiment of the present disclosure. The biological sound sensor 1 according to this modified example further includes an electric circuit 160 compared to the biological sound sensor 1 of the first embodiment described above.
[0031] The electric circuit 160 has a plate shape and is housed in the housing 10. The second ends of the first electric wire L1 and the second electric wire L2 are electrically connected to the electric circuit 160. That is, the first electrode surface 31 is electrically connected to the electric circuit 160 via the first electric wire L1, and the second electrode surface 32 is electrically connected to the electric circuit 160 via the diaphragm 20 and the second electric wire L2. As a result, the voltage generated in the piezoelectric element 30 is output to the electric circuit 160.
[0032] The electric circuit 160 includes an amplifier 161, a filter unit 162, and an output unit 163. The amplifier 161 amplifies the voltage output from the piezoelectric element 30. The filter unit 162 removes electrical noise generated in the electric circuit 160. The output unit 163 outputs the voltage amplified by the amplifier 161 (a voltage corresponding to the body sound) to a measuring instrument. The output unit 163 is, for example, a connector that electrically connects to the measuring instrument via an electric wire (not shown). Note that the output unit 163 may be a transmitter that wirelessly transmits a signal including information corresponding to the voltage amplified by the amplifier 161 to the measuring instrument.
[0033] The first electric wire L1 and the second electric wire L2 of this modification are housed in the housing 10, and the lengths of the first electric wire L1 and the second electric wire L2 of this modification are shorter than the lengths of the first electric wire L1 and the second electric wire L2 of the first embodiment. This makes it possible to prevent external electrical noise from entering the first electric wire L1 and the second electric wire L2. This allows the body sound sensor 1 to output body sound with high accuracy.
[0034] Furthermore, the piezoelectric element 30 may include a piezoelectric body (not shown) having a piezoelectric effect, and a first electrode (not shown) and a second electrode (not shown) that sandwich the piezoelectric body in the Z direction. The piezoelectric body deforms in response to vibration of the diaphragm 20, generating a voltage between the first electrode and the second electrode. The first electrode has a first electrode surface 31, and the second electrode has a second electrode surface 32. In this case, the diaphragm 20 does not need to have electrical conductivity, and the first end of the second electric wire L2 is electrically connected to the second electrode.
[0035] Second Embodiment Next, a biological sound sensor 1 according to a second embodiment of the present disclosure will be described, focusing on differences from the biological sound sensor 1 according to the modified example of the first embodiment.
[0036] 3 is a cross-sectional view showing the configuration of a biological sound sensor 1 according to a second embodiment of the present disclosure. Unlike the biological sound sensor 1 of the first embodiment, the biological sound sensor 1 according to the second embodiment does not include the first electric wire L1 and the second electric wire L2.
[0037] The housing 210 of the second embodiment is cylindrical and open on both sides in the Z direction. In the second embodiment, the open end of the housing 210 on the soft member 40 side is referred to as a first open end 211a, and the open end opposite the first open end 211a is referred to as a second open end 211b. The housing 210 is electrically conductive. The material of the housing 210 may be, for example, a metal or a thermoplastic resin containing a conductive filler (for example, fine particles of carbon (so-called carbon black)).
[0038] In the second embodiment, the electric circuit 260 has a disk shape, and the second opening end 211b holds the peripheral edge of the electric circuit 260. As a result, the electric circuit 260 covers the opening of the housing 210 on the second opening end 211b side. In addition, the second opening end 211b holds the electric circuit 260 via a conductive adhesive layer (not shown). As a result, the housing 210 and the electric circuit 260 are electrically connected.
[0039] Furthermore, the piezoelectric element 30 and the diaphragm 20 are housed in a housing 210. The first electrode surface 31 and the electric circuit 260 are electrically connected in contact with each other via a conductive adhesive layer (not shown).
[0040] Furthermore, in the second embodiment, the soft member 40 is held by the housing 210 with the non-contact surface 42 attached to the first opening end 211a of the housing 210. That is, the housing 210 holds the non-contact surface 42. Specifically, the peripheral edge of the non-contact surface 42 is held by the first opening end 211a. As a result, the soft member 40 covers the opening of the housing 210 on the first opening end 211a side.
[0041] Furthermore, the second plate surface 22 of the diaphragm 20 and the first open end 211a of the housing 210 are attached to the non-contact surface 42 via an electrically conductive second adhesive member 252. The second adhesive member 252 may be, for example, a hardened adhesive containing a conductive filler (e.g., silver microparticles), or may be an adhesive tape containing a conductive filler. The entire housing 210 is located on the opposite side of the non-contact surface 42 from the contact surface 41. This prevents noise from being generated when the housing 210 comes into contact with the living body B.
[0042] As in the first embodiment described above, the second plate surface 22 of the diaphragm 20 is attached to the non-contact surface 42 via the second adhesive member 252 from the center to the periphery of the second plate surface 22. The thickness of the second adhesive member 252 is constant. No member other than the second adhesive member 252 is interposed between the non-contact surface 42 and the second plate surface 22. This prevents the non-contact surface 42 and the contact surface 41 from having convex or concave shapes along the thickness direction, as in the first embodiment described above.
[0043] The second adhesive member 252 continues from the second plate surface 22 of the diaphragm 20 to the second opening end 211b of the housing 210. In other words, the diaphragm 20 and the housing 210 are electrically connected via the second adhesive member 252. Therefore, the second electrode surface 32 of the piezoelectric element 30 is electrically connected to the electric circuit 260 via the diaphragm 20, the second adhesive member 252, and the housing 210. Therefore, the voltage generated in the piezoelectric element 30 is output to the electric circuit 260.
[0044] In the biological sound sensor 1 of the second embodiment, the voltage generated in the piezoelectric element 30 is output to the electric circuit 260 without passing through an electric wire, so that the thickness of the biological sound sensor 1 can be reduced.
[0045] <First Modification of Second Embodiment> Next, a biological sound sensor 1 according to a first modified example of the second embodiment of the present disclosure will be described, focusing on differences from the biological sound sensor 1 according to the second embodiment (see FIG. 3) described above.
[0046] FIG. 4 is a cross-sectional view showing the configuration of a biological sound sensor 1 according to a first modified example of the second embodiment of the present disclosure. In this first modified example, the soft member 340 has electrical conductivity. The material of the soft member 340 is, for example, a polymer material containing a conductive filler. In addition, in this first modified example, the biological sound sensor 1 includes two second adhesive members 352. Hereinafter, in this first modified example, one second adhesive member 352 will be referred to as the first second adhesive member 352a, and the other second adhesive member 352 will be referred to as the second second adhesive member 352b.
[0047] The second plate surface 22 of the diaphragm 20 is attached to the non-contact surface 342 via the first second adhesive member 352a. No member other than the first second adhesive member 352a is interposed between the non-contact surface 342 and the second plate surface 22. The diaphragm 20 and the soft member 340 are electrically connected via the first second adhesive member 352a.
[0048] The first open end 211a of the housing 210 is attached to the non-contact surface 342 via a second adhesive member 352b. The second adhesive member 352b is annular in shape and surrounds the first adhesive member 352a in a plan view. This electrically connects the soft member 340 and the housing 210 via the second adhesive member 352b.
[0049] In this first modified example, the second electrode surface 32 of the piezoelectric element 30 is electrically connected to the electrical circuit 260 via the vibration plate 20, the first second adhesive member 352a, the soft member 340, the second second adhesive member 352b, and the housing 210.
[0050] In the first modified example, the first second adhesive member 352a and the second second adhesive member 352b may be integral with each other.
[0051] <Second Modification of Second Embodiment> Next, a biological sound sensor 1 according to a second modified example of the second embodiment of the present disclosure will be described, focusing on differences from the biological sound sensor 1 according to the second embodiment (see FIG. 3) described above.
[0052] 5 is a cross-sectional view showing the configuration of a biological sound sensor 1 according to a second modified example of the second embodiment of the present disclosure. The biological sound sensor 1 of the second modified example further includes a first connecting member 471. The first connecting member 471 is housed in the housing 210.
[0053] First connecting member 471 has a columnar shape with first end face 471a and second end face 471b, and is electrically conductive. The area of each of first end face 471a and second end face 471b is smaller than the area of first electrode surface 31. First connecting member 471 is made of a material such as a thermoplastic resin containing a conductive filler.
[0054] The first connecting member 471 connects the piezoelectric element 30 to the electric circuit 260 while electrically connecting the first electrode surface 31 to the electric circuit 260. Specifically, the first end surface 471a and the electric circuit 260 are electrically connected via a conductive adhesive layer (not shown). The second end surface 471b and the first electrode surface 31 are electrically connected via a conductive adhesive layer (not shown). The first connecting member 471 is disposed in the center of the piezoelectric element 30 in a plan view.
[0055] In the second modified example, the piezoelectric element 30 and the diaphragm 20 vibrate while being supported by the first connecting member 471. That is, the piezoelectric element 30 and the diaphragm 20 vibrate with the first connecting member 471 as a fulcrum. This increases the amplitude of the piezoelectric element 30 and the diaphragm 20 in response to biological vibrations. In other words, the first connecting member 471 amplifies the amplitude of the piezoelectric element 30 and the diaphragm 20. Therefore, the first connecting member 471 can improve the sensitivity of the biological sound sensor 1.
[0056] <Third Modification of Second Embodiment> Next, a biological sound sensor 1 according to a third modified example of the second embodiment of the present disclosure will be described, focusing on differences from the biological sound sensor 1 according to the second modified example of the second embodiment (see FIG. 5).
[0057] 6 is a cross-sectional view showing the configuration of a biological sound sensor 1 according to a third modification of the second embodiment of the present disclosure. The biological sound sensor 1 of this third modification includes two diaphragms 520 and further includes a second connecting member 572. Hereinafter, in this third modification, one diaphragm 520 will be referred to as a first diaphragm 520a, and the other diaphragm will be referred to as a second diaphragm 520b. The first diaphragm 520a and the second diaphragm 520b may be different sizes or may be the same size. The piezoelectric element 30, the first diaphragm 520a, the second diaphragm 520b, the first connecting member 471, and the second connecting member 572 are housed in a housing 210.
[0058] First diaphragm 520a is plate-shaped with first plate surface 521a and second plate surface 522a located opposite each other, has electrical conductivity, and can vibrate along its thickness direction. Second diaphragm 520b is plate-shaped with first plate surface 521b and second plate surface 522b located opposite each other, has electrical conductivity, and can vibrate along its thickness direction.
[0059] Similar to the diaphragm 20 of the second modified example of the second embodiment described above, the first diaphragm 520a has a piezoelectric element 30 arranged on a first plate surface 521a. That is, the piezoelectric element 30 is arranged on the first plate surface 521a of the first diaphragm 520a with the second electrode surface 32 and the first plate surface 521a of the first diaphragm 520a electrically connected, and detects vibrations of the first diaphragm 520a.
[0060] Second connecting member 572 is electrically conductive and connects first diaphragm 520a and second diaphragm 520b in a state in which second plate surface 522a of first diaphragm 520a and first plate surface 521b of second diaphragm 520b are electrically connected. Second connecting member 572 is made of, for example, a thermoplastic resin containing a conductive filler. Second connecting member 572 has an annular shape that surrounds first connecting member 471 when second diaphragm 520b is viewed along the Z direction (thickness direction). Second connecting member 572 is sandwiched between the peripheral edge of first diaphragm 520a and the peripheral edge of second diaphragm 520b.
[0061] Second connecting member 572 has first end surface 572a and second end surface 572b. First end surface 572a and second plate surface 522a of first diaphragm 520a are electrically connected via a conductive adhesive layer (not shown). Second end surface 572b and first plate surface 521b of second diaphragm 520b are electrically connected via a conductive adhesive layer (not shown).
[0062] The soft member 40 is softer than the first diaphragm 520a and the second diaphragm 520b. The soft member 40 transmits biological vibrations to the second diaphragm 520b. As in the second embodiment, the second plate surface 522b of the second diaphragm 520b is attached to the non-contact surface 42 of the soft member 40 via the second adhesive member 252 from the center to the periphery of the second plate surface 522b. No member other than the second adhesive member 252 is interposed between the non-contact surface 42 and the second plate surface 522b of the second diaphragm 520b. This prevents the non-contact surface 42 and the contact surface 41 from having convex or concave shapes along the thickness direction, as in the second embodiment. Furthermore, the first open end 211a of the housing 210 is attached to the non-contact surface 42 via the second adhesive member 252, as in the second embodiment.
[0063] By configuring the biological sound sensor 1 as described above, the second electrode surface 32 is electrically connected to the electrical circuit 260 via the first diaphragm 520a, the second connecting member 572, the second diaphragm 520b, the second adhesive member 252, and the housing 210.
[0064] Furthermore, as described above, when the second connecting member 572 is viewed along the Z direction, the second connecting member 572 surrounds the first connecting member 471, so that the piezoelectric element 30 and the first diaphragm 520a vibrate while being supported by the first connecting member 471 and the second connecting member 572. This increases the amplitude of the piezoelectric element 30 and the first diaphragm 520a in response to biological vibrations. In other words, the first connecting member 471 and the second connecting member 572 amplify the amplitude of the piezoelectric element 30 and the first diaphragm 520a. Therefore, the first connecting member 471 and the second connecting member 572 can improve the sensitivity of the biological sound sensor 1.
[0065] <Third embodiment> Next, the biological sound sensor 1 according to the third embodiment of the present disclosure will be described, focusing on the differences from the biological sound sensor 1 according to the second embodiment (see FIG. 3).
[0066] 7 is a cross-sectional view showing the configuration of a biological sound sensor 1 according to a third embodiment of the present disclosure. The biological sound sensor 1 according to the third embodiment further includes a second housing 681 and an attachment 682.
[0067] Housing 210 is attached to second housing 681. Specifically, second housing 681 has recess 681a into which electric circuit 260 and housing 210 fit. Second housing 681 is made of a material such as thermoplastic resin.
[0068] When the housing 210 is attached to the second housing 681, the entire second housing 681 is located on the opposite side of the contact surface 41 across the non-contact surface 42. This makes it possible to suppress noise caused by the second housing 681 coming into contact with the living body B.
[0069] The wearing body 682 is a second housing 681 to which the housing 210 is attached, which is worn on the living organism B with the contact surface 41 in contact with the outer surface B1 of the living organism B. The wearing body 682 is belt-shaped and is wrapped around, for example, the torso or arm of the living organism B. This makes it possible for the biological sound sensor 1 to be worn on the living organism B and to continuously detect biological sounds. Furthermore, it is possible to improve the adhesion between the contact surface 41 and the outer surface B1 of the living organism B, and to prevent the contact surface 41 and the outer surface B1 of the living organism B from shifting.
[0070] The housing 210 of the biological sound sensor 1 (see FIG. 1) according to the first embodiment may be attached to the second housing 681. In this case, the entire second housing 681 is located on the opposite side of the first plate surface 21 from the contact surface 41.
[0071] <Other variations> The above-described embodiments are intended to facilitate understanding of the present disclosure and are not intended to limit the present disclosure. The present disclosure may be modified or improved without departing from the spirit thereof, and equivalents thereof are also included in the present disclosure.
[0072] For example, the electric circuit 160 may not include either the amplifier 161 or the filter unit 162. Furthermore, when the soft member 40 is viewed from the contact surface 41 side along the thickness direction of the diaphragm 20, a part of the housing 10, 210 may be exposed from the soft member 40.
[0073] 8 is a cross-sectional view showing the configuration of a biological sound sensor 1 according to another modified example of the first embodiment of the present disclosure. The inside of the housing 10 of this modified example is filled with a filling member 790.
[0074] The filling member 790 is softer than the soft member 40. The material of the filling member 790 is a polymer material (such as silicone and urethane rubber).
[0075] The hardness of the filling member 790 changes the amplitude of the diaphragm 20 in response to biological vibrations. In other words, the sensitivity of the biological sound sensor 1 can be adjusted by the hardness of the filling member 790. Furthermore, the filling member 790 can suppress the impact acting on the piezoelectric element 30 and the diaphragm 20 when the biological sound sensor 1 is dropped, thereby preventing damage to the piezoelectric element 30 and the diaphragm 20. Furthermore, the filling member 790 can suppress noise other than biological vibrations that enter from the outside. The filling member 790 may be filled inside the housing 210 of the biological sound sensor 1 of the second embodiment described above.
[0076] In the body sound sensor 1 of each of the above-described embodiments and modifications, similarly to the body sound sensor 1 of the first embodiment, when the contact surface 41 is in contact with the living body B, the contact surface 41 is in close contact with the outer surface B1 of the living body B, which can prevent relatively large stresses from occurring locally in the soft member 40 and can prevent noise from being generated due to friction between the contact surface 41 and the outer surface B1 of the living body B. Furthermore, in the body sound sensor 1 of each of the embodiments and modifications, the housing 10, 210 and the second housing 681 are prevented from coming into contact with the living body B, which prevents noise from being generated due to the housing 10, 210 contacting the living body B. Therefore, the body sound sensor 1 can detect body sound with high accuracy.
[0077] The present disclosure may also be implemented as a combination of the following configurations.
[0078] (1) The housing and a diaphragm having a plate shape with a first plate surface and a second plate surface located opposite to each other and capable of vibrating along a thickness direction; a piezoelectric element disposed on the first plate surface and configured to detect vibration of the diaphragm; a soft member having a contact surface that contacts the living body and a non-contact surface that is separated from the living body when the contact surface is in contact with the living body, the soft member being softer than the diaphragm; the housing holds one of the first plate surface and the non-contact surface; The second plate surface is attached to the non-contact surface from the center to the periphery of the second plate surface. Biological sound sensor.
[0079] (2) the soft member has a plate shape having the contact surface and the non-contact surface on opposite sides of each other; The biological sound sensor according to (1).
[0080] (3) the entire housing is located on the opposite side of the contact surface with one of the first plate surface and the non-contact surface interposed therebetween; The biological sound sensor according to (1) or (2).
[0081] (4) When the soft member is viewed from the contact surface side along the thickness direction of the diaphragm, the entire housing is hidden by the soft member. A biological sound sensor according to any one of (1) to (3).
[0082] (5) further comprising an electrical circuit held in the housing; the diaphragm is electrically conductive; the piezoelectric element has a first electrode surface and a second electrode surface electrically connected to the electric circuit; the second electrode surface is disposed on the first plate surface and is electrically connected to the electric circuit via the diaphragm; A biological sound sensor according to any one of (1) to (4).
[0083] (6) the electric circuit and the piezoelectric element are housed in the housing; The housing holds the first plate surface. (5) The biological sound sensor according to (5).
[0084] (7) the piezoelectric element and the diaphragm are housed in the housing; the housing has electrical conductivity, is electrically connected to the electric circuit, and holds the non-contact surface; the second plate surface and the housing are attached to the non-contact surface via an electrically conductive adhesive member; the second electrode surface is electrically connected to the electric circuit via the diaphragm, the adhesive member, and the housing. (5) The biological sound sensor according to (5).
[0085] (8) the soft member has electrical conductivity, the second electrode surface is electrically connected to the electric circuit via the diaphragm, the adhesive member, the soft member, and the housing. (7) The biological sound sensor according to (7).
[0086] (9) a columnar first connecting member that is electrically conductive and connects the piezoelectric element and the electric circuit in a state in which the first electrode surface and the electric circuit are electrically connected; an area of an end face of the first connecting member disposed on the first electrode surface is smaller than an area of the first electrode surface; The biological sound sensor according to (7) or (8).
[0087] (10) The inside of the housing is filled with a filler material that is softer than the soft material. A biological sound sensor according to any one of (1) to (9).
[0088] (11) a second housing to which the housing is attached; and and a mounting body that mounts the second housing to which the housing is attached to the living body in a state in which the contact surface is in contact with the outer surface of the living body, the second housing is entirely located on the opposite side of the contact surface with one of the first plate surface and the non-contact surface interposed therebetween; A biological sound sensor according to any one of (1) to (10).
[0089] (12) the second housing is entirely located on the opposite side of the contact surface with one of the first plate surface and the non-contact surface interposed therebetween; The biological sound sensor according to (11).
[0090] (13) an electrically conductive housing; an electrical circuit held in the housing; a first diaphragm and a second diaphragm, each having a plate shape with a first plate surface and a second plate surface located opposite to each other, having electrical conductivity, and capable of vibrating along a thickness direction; a piezoelectric element having a first electrode surface and a second electrode surface, the piezoelectric element being disposed on the first surface of the first diaphragm in a state in which the second electrode surface and the first surface of the first diaphragm are electrically connected, the piezoelectric element detecting vibrations of the first diaphragm; a columnar first connecting member that is electrically conductive and connects the piezoelectric element and the electric circuit in a state in which the first electrode surface and the electric circuit are electrically connected; a second annular connecting member that has electrical conductivity, connects the first diaphragm and the second diaphragm in a state in which the second plate surface of the first diaphragm and the first plate surface of the second diaphragm are electrically connected, and surrounds the first connecting member when the second diaphragm is viewed along the thickness direction; a soft member having a contact surface that contacts a living body and a non-contact surface that is separated from the living body when the contact surface is in contact with the living body, the soft member being softer than the first diaphragm and the second diaphragm; the piezoelectric element, the first vibration plate, the second vibration plate, the first connecting member, and the second connecting member are housed in the housing; the housing is attached to the non-contact surface via an electrically conductive adhesive member; the second plate surface of the second diaphragm is attached to the non-contact surface via the adhesive member from the center to the periphery of the second plate surface, the second electrode surface is electrically connected to the electric circuit via the first diaphragm, the second connecting member, the second diaphragm, the adhesive member, and the housing. Biological sound sensor. [Explanation of symbols]
[0091] 1. Biosound sensor 10. Cabinet 20 diaphragm 21 1st board surface 22 2nd plate surface 30 Piezoelectric element 31 1st electrode surface 32 Second electrode surface 40 Soft materials 41 Contact surface 42 Non-contact surface 51 first adhesive member (adhesive member) 160 Electrical Circuits 252 Second adhesive member (adhesive member) 471 First connecting member 471a 1st end face 471b Second end surface (end surface of first connecting member) 572 Second connecting member 681 Second Case 682 Wearable body 790 Filler material B. Living organisms B1 outer surface
Claims
1. The housing and a diaphragm housed in the housing, having a plate shape with a first plate surface and a second plate surface positioned opposite to each other, and capable of vibrating along a thickness direction; a piezoelectric element housed in the housing and disposed on the first plate surface to detect vibration of the diaphragm; a soft member having a contact surface that contacts the living body and a non-contact surface that is spaced from the living body when the contact surface is in contact with the living body, the soft member being softer than the diaphragm; an electric circuit held in the housing; the housing has electrical conductivity, is electrically connected to the electric circuit, and is attached to the non-contact surface via an adhesive member having electrical conductivity; the second plate surface is attached to the non-contact surface via the adhesive member from the center to the periphery of the second plate surface; the diaphragm is electrically conductive; the piezoelectric element has a first electrode surface and a second electrode surface electrically connected to the electric circuit; the second electrode surface is disposed on the first plate surface and is electrically connected to the electric circuit via the vibration plate, the adhesive member, and the housing. Biological sound sensor.
2. the soft member has a plate shape having the contact surface and the non-contact surface on opposite sides of each other; The biological sound sensor according to claim 1 .
3. the entire housing is located on the opposite side of the contact surface with one of the first plate surface and the non-contact surface interposed therebetween; The biological sound sensor according to claim 1 or 2.
4. When the soft member is viewed from the contact surface side along the thickness direction of the diaphragm, the entire housing is hidden by the soft member. The biological sound sensor according to claim 1 or 2.
5. the soft member has electrical conductivity, the second electrode surface is electrically connected to the electric circuit via the diaphragm, the adhesive member, the soft member, and the housing. The biological sound sensor according to claim 1 or 2.
6. a columnar first connecting member that is electrically conductive and connects the piezoelectric element and the electric circuit in a state in which the first electrode surface and the electric circuit are electrically connected; an area of an end face of the first connecting member disposed on the first electrode surface is smaller than an area of the first electrode surface; The biological sound sensor according to claim 1 or 2.
7. a second housing to which the housing is attached; and a mounting body that mounts the second housing to which the housing is attached to the living body in a state in which the contact surface is in contact with an outer surface of the living body, the second housing is entirely located on the opposite side of the contact surface with one of the first plate surface and the non-contact surface interposed therebetween; The biological sound sensor according to claim 1 or 2.
8. The housing and a diaphragm having a plate shape with a first plate surface and a second plate surface located opposite to each other and capable of vibrating along a thickness direction; a piezoelectric element disposed on the first plate surface and detecting vibration of the diaphragm; a soft member having a contact surface that contacts the living body and a non-contact surface that is separated from the living body when the contact surface is in contact with the living body, the soft member being softer than the diaphragm; the housing holds one of the first plate surface and the non-contact surface; The inside of the housing is filled with a filling member that is softer than the soft member, The second plate surface is attached to the non-contact surface from the center to the periphery of the second plate surface. Biological sound sensor.
9. The soft member is plate-shaped with the contact surface and the non-contact surface on opposite sides of each other. The biological sound sensor according to claim 8 .
10. The entire housing is located on the opposite side of the contact surface, sandwiching one of the first plate surface and the non-contact surface. The biological sound sensor according to claim 8 or 9.
11. When the soft member is viewed from the contact surface side along the thickness direction of the diaphragm, the entire housing is hidden by the soft member. The biological sound sensor according to claim 8 or 9.
12. Further comprising an electrical circuit held in the housing, the diaphragm is electrically conductive; the piezoelectric element has a first electrode surface and a second electrode surface electrically connected to the electric circuit; the second electrode surface is disposed on the first plate surface and is electrically connected to the electric circuit via the diaphragm; The biological sound sensor according to claim 8 or 9.
13. The electrical circuit and the piezoelectric element are housed in the housing, The housing holds the first plate surface. The biological sound sensor according to claim 12.
14. The piezoelectric element and the diaphragm are housed in the housing, the housing has electrical conductivity, is electrically connected to the electric circuit, and holds the non-contact surface; the second plate surface and the housing are attached to the non-contact surface via an electrically conductive adhesive member; the second electrode surface is electrically connected to the electric circuit via the diaphragm, the adhesive member, and the housing. The biological sound sensor according to claim 12.
15. The soft member has electrical conductivity, the second electrode surface is electrically connected to the electric circuit via the diaphragm, the adhesive member, the soft member, and the housing. The biological sound sensor according to claim 14.
16. The piezoelectric element further comprises a first connecting member having electrical conductivity and having a columnar shape that connects the piezoelectric element to the electric circuit in a state in which the first electrode surface and the electric circuit are electrically connected; an area of an end face of the first connecting member disposed on the first electrode surface is smaller than an area of the first electrode surface; The biological sound sensor according to claim 14.
17. A second housing to which the housing is attached; a mounting body that mounts the second housing to which the housing is attached to the living body in a state in which the contact surface is in contact with an outer surface of the living body, the second housing is entirely located on the opposite side of the contact surface with one of the first plate surface and the non-contact surface interposed therebetween; The biological sound sensor according to claim 8 or 9.
18. an electrically conductive housing; an electrical circuit held in the housing; a first diaphragm and a second diaphragm each having a plate shape with a first plate surface and a second plate surface located opposite to each other, and each having electrical conductivity and capable of vibrating along a thickness direction; a piezoelectric element having a first electrode surface and a second electrode surface, the piezoelectric element being disposed on the first surface of the first diaphragm in a state in which the second electrode surface and the first surface of the first diaphragm are electrically connected, the piezoelectric element detecting vibrations of the first diaphragm; a columnar first connecting member that is electrically conductive and connects the piezoelectric element and the electric circuit in a state in which the first electrode surface and the electric circuit are electrically connected; a second annular connecting member that has electrical conductivity, connects the first diaphragm and the second diaphragm in a state in which the second plate surface of the first diaphragm and the first plate surface of the second diaphragm are electrically connected, and surrounds the first connecting member when the second diaphragm is viewed along the thickness direction; a soft member having a contact surface that contacts a living body and a non-contact surface that is separated from the living body when the contact surface is in contact with the living body, the soft member being softer than the first diaphragm and the second diaphragm; the piezoelectric element, the first vibration plate, the second vibration plate, the first connecting member, and the second connecting member are housed in the housing, the housing is attached to the non-contact surface via an electrically conductive adhesive member; the second plate surface of the second diaphragm is attached to the non-contact surface via the adhesive member from the center to the periphery of the second plate surface, the second electrode surface is electrically connected to the electric circuit via the first diaphragm, the second connecting member, the second diaphragm, the adhesive member, and the housing; Biological sound sensor.
Citation Information
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