This application claims the benefit of Japanese Pat. Application No. 2020-142105 filed Aug. 25, 2020, which is hereby incorporated by reference herein in its entirety.
The present disclosure relates to a vibration power generation device and to a sensor module.
As the Internet of Things (IoT) technology becomes popular, sensor modules that detect various states of things and transmit the detection results to an external device are expected to expand the application area. Studies are conducted on obtaining energy from the ambient environment and generating the electric power for actuating the sensor module. For example, Patent Literature 1 proposes a power generation element that receives external forces from ambient environment and thereby vibrates a piezoelectric element to generate electricity.
Patent Literature 1: International Publication No. 2019-021400
According to a first aspect of the present disclosure, a vibration power generation device includes a beam including a flat surface, a piezoelectric member disposed on the flat surface of the beam, and a fixation member. The fixation member sandwiches the beam at two or more end portions of the beam from a side of a first surface of the beam and from a side of a second surface of the beam, the second surface being opposite to the first surface. At at least one of the end portions of the beam, a position of a boundary on the first surface between a contact region of the first surface in contact with the fixation member and a non-contact region of the first surface not in contact with the fixation member is different from a position of a boundary on the second surface between a contact region of the second surface in contact with the fixation member and a non-contact region of the second surface not in contact with the fixation member.
According to a second aspect of the present disclosure, a sensor module includes a vibration power generation device, a sensor, a communication unit, and a controller. The vibration power generation device includes a beam including a flat surface, a piezoelectric member disposed on the flat surface of the beam, and a fixation member. The fixation member sandwiches the beam at two or more end portions of the beam from a side of a first surface of the beam and from a side of a second surface of the beam, the second surface being opposite to the first surface. At at least one of the end portions of the beam, a position of a boundary on the first surface between a contact region of the first surface in contact with the fixation member and a non-contact region of the first surface not in contact with the fixation member is different from a position of a boundary on the second surface between a contact region of the second surface in contact with the fixation member and a non-contact region of the second surface not in contact with the fixation member. The sensor is actuated by electric power supplied from the vibration power generation device. The communication unit is actuated by the electric power supplied from the vibration power generation device and is configured to communicate with an external device. The controller is actuated by the electric power supplied from the vibration power generation device and is configured to control the sensor and the communication unit.
An embodiment of the present disclosure is described with reference to the drawings. The drawings to which the following description refers are schematic illustrations. Dimensional relationships of elements in the drawings do not necessarily correspond to actual ones.
As illustrated in
The sensor 22 is configured to detect an arbitrary state of an arbitrary object. Examples of the sensor 22 are a vibration sensor, a temperature sensor, and a pressure sensor. The sensor 22 is actuated by the electric power supplied from the vibration power generation device 10.
The communication unit 23 includes a communication module for communication with an external device through a network. For example, the sensor 22 detects an arbitrary state of a thing, and the communication unit 23 transmits a signal containing detection results to the external device. The communication unit 23 may receive instructions from the external device and transmit the instructions to the controller 24. The communication unit 23 is actuated by the electric power supplied from the vibration power generation device 10.
The controller 24 includes one or more processors and a memory. The processor may be a general purpose processor that performs a specific function in accordance with a specific program provided or may be a special purpose processor dedicated to a specific function. The special purpose processor may include an application specific integrated circuit (ASIC). The above processor may include a programmable logic device (PLD). The PLD may further include a field-programmable gate array (FPGA). The controller 24 may be either a system in a package (SiP) or a system on a chip (SoC) with which one or more processors collaborate. The controller 24 controls the sensor 22 and the communication unit 23. The controller 24 is actuated by the electric power supplied from the vibration power generation device 10.
As illustrated in
The beam 11 has flat surfaces. The beam 11 is a tabular member made of, for example, a stainless steel (SUS) and having elasticity. The beam 11 can have multiple end portions. In the case of the weight 14 being provided, the weight 14 may be disposed at the center of the beam 11. The beam 11 may extend from the weight 14 in different directions. In the present embodiment, as illustrated in
The housing 13 fixes the end portions of the beam 11 that are positioned oppositely in the extending direction of the beam 11. In other words, the housing 13 supports the opposite ends of the beam 11. The vibration power generation device 10 receives vibrations from the ambient environment, which causes the beam 11 to vibrate in the direction normal to the surfaces of the beam 11. The vibration direction of the beam 11 is indicated in
The weight 14 provides inertia to the beam 11 and thereby intensifies the vibration of the beam 11 that is supported by the housing 13. The weight 14 may be disposed at a surface of the beam 11, the surface facing in the vibration direction in which the beam 11 vibrates. The weight 14 may be disposed at opposite surfaces of the beam 11, the surfaces facing in the vibration direction. The weight 14 does not need to be a member different from the beam 11. In other words, the weight 14 may be formed integrally with the beam 11.
The piezoelectric member 12 is disposed at a position at which stress occurs to the piezoelectric member 12 due to the vibration of the beam 11. The piezoelectric member 12 is disposed on the flat surface of the beam 11. The piezoelectric member 12 may be disposed on the surface of the beam 11 that faces in the vibration direction. Multiple piezoelectric members 12 may be arranged side by side on the beam 11 in the extending direction thereof. Multiple piezoelectric members 12 may be disposed on the opposite surfaces of the beam 11 that face in the vibration direction. Note that in
As illustrated in
The housing 13 sandwiches the opposite end portions of the beam 11 from the side of a first surface 11a of the beam 11 and from the side of a second surface 11b of the beam 11, the first surface 11a being opposite to the second surface 11b. For example, the first surface 11a is the upper surface of the beam 11 as illustrated in
In the present embodiment, as illustrated in
As illustrated in
Accordingly, in the vibration power generation device 10 of the present embodiment, the fulcrum of vibration is shifted regularly in each period of vibration of the beam 11. When the fulcrum of vibration is shifted in each period of vibration, the resonance frequency becomes lower and the frequency width at half maximum of the resonant peak becomes larger compared with a beam 11 that is fixed so as to have the same boundary positions in the extending direction of the beam 11. The cause of this effect may be related to attenuation of vibration due to the fulcrum of vibration being shifted.
As illustrated in
In the example illustrated in
The upper housing 15 and the lower housing 16 may include respective rounded corner portions that adjoin the beam 11 in the boundary region as illustrated in
In the above embodiment described with reference to
The beam of the vibration power generation device 10 is not limited to the beam 11 having the rectangular shape elongated in one direction as viewed in plan. The beam 11 may have various different shapes. For example, as illustrated in
The present invention has been described with reference to the drawings and through examples. Note that those skilled in the art can modify and/or alter the embodiment easily on the basis of the present disclosure. Accordingly, such modifications and/or alterations are deemed within the scope of the invention.
For example, in the above embodiment, the fixation member that fixes the beam 11 has been described as the housing 13 that includes the upper housing 15 and the lower housing 16. The fixation member for fixing the beam 11, however, is not limited to the housing 13 that includes the upper housing 15 and the lower housing 16. The vibration power generation device 10 may include another fixation member that is different from the housing for fixing the beam 11. The fixation member to which the beam 11 is fixed may be incorporated in the housing 13. In the case of the vibration power generation device 10 including the fixation member that is different from the housing 13, the vibration power generation device 10 does not need to include the housing 13. The vibration power generation device 10 can be incorporated in a different device, such as the sensor module 21.
The terms used in the above embodiment, including “upper” or “lower”, are adopted for the purpose of explaining the above examples. These terms are not intended to limit the orientation of the vibration power generation device and of the sensor module of the present disclosure. The vibration power generation device and the sensor module of the present disclosure can be disposed so as to face in various different directions.
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Number | Date | Country | Kind |
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2020-142105 | Aug 2020 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2021/031034 | 8/24/2021 | WO |