CN211321318U - Pressure sensor module, pressure detection device and electronic equipment - Google Patents

Pressure sensor module, pressure detection device and electronic equipment Download PDF

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Publication number
CN211321318U
CN211321318U CN202020122945.1U CN202020122945U CN211321318U CN 211321318 U CN211321318 U CN 211321318U CN 202020122945 U CN202020122945 U CN 202020122945U CN 211321318 U CN211321318 U CN 211321318U
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full
leg
bridge
bridge circuit
panel
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CN202020122945.1U
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Chinese (zh)
Inventor
张志义
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Chipsea Technologies Shenzhen Co Ltd
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Chipsea Technologies Shenzhen Co Ltd
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Abstract

The application provides a pressure sensor module, pressure measurement and electronic equipment, the pressure sensor module includes: the panel, first full-bridge circuit and second full-bridge circuit. The first full-bridge circuit is arranged on the panel. And four bridge arms of the first full-bridge circuit are all strain resistors. The second full-bridge circuit is arranged on the panel. The second full bridge circuit comprises a first bridge arm and a second bridge arm. The first bridge arm is not connected with the second bridge arm, and the first bridge arm and the second bridge arm are both non-strain resistors. And the output end of the first full-bridge circuit and the output end of the second full-bridge circuit are respectively used for connecting a pressure signal detection circuit. This application is in when the panel bears pressure, through first full-bridge circuit with the cooperation of second full-bridge circuit can correctly discern forward and side direction and press the signal, avoids the mistake recognition phenomenon, and then improves the reliability of discernment.

Description

Pressure sensor module, pressure detection device and electronic equipment
Technical Field
The application relates to the technical field of pressure sensing keys, in particular to a pressure sensor module, a pressure detection device and electronic equipment.
Background
The forced induction button is based on the novel button of forced induction technique, adopts the forced induction structure to replace mechanical button structure, can turn into control signal with applying the power on the forced induction panel to realize corresponding control function. Compared with a mechanical key, the pressure sensing key has the advantages of high sensitivity, long service life, small occupied area and the like, can replace the original mechanical key in a plurality of fields, and provides a richer man-machine interaction mode for a plurality of input devices.
Currently, the pressure sensing key is widely applied to electronic equipment. The pressure sensing button realizes the principle on electronic equipment to be with the sensor laminating at the center inner wall, through the deformation of response frame to convert the signal of telecommunication into. Identified as a key by some algorithm. However, the deformation of the frame is not only generated when the frame is pressed, but also the middle frame is deformed when the electronic device is distorted. The existing pressure sensing key can not correctly identify the forward and lateral pressing signals, and has the problem of false identification.
SUMMERY OF THE UTILITY MODEL
Accordingly, it is desirable to provide a pressure sensor module, a pressure detection device and an electronic apparatus, which are capable of accurately identifying a forward pressing signal and a lateral pressing signal and thus causing erroneous identification.
A pressure sensor module, comprising:
a panel;
the first full-bridge circuit is arranged on the panel, and four bridge arms of the first full-bridge circuit are all strain resistors; and
the second full-bridge circuit is arranged on the panel and comprises a first bridge arm and a second bridge arm, the first bridge arm is not connected with the second bridge arm, and the first bridge arm and the second bridge arm are both non-strain resistors;
and the output end of the first full-bridge circuit and the output end of the second full-bridge circuit are respectively used for connecting a pressure signal detection circuit.
In one embodiment, the second full-bridge circuit further comprises: a third leg and a fourth leg;
the third bridge arm is not connected with the fourth bridge arm, and the third bridge arm and the fourth bridge arm are both strain resistors.
In one embodiment, the first leg, the second leg, the third leg, and the fourth leg are located in a same plane.
In one embodiment, the first leg and the second leg are located on one side of the panel, and the third leg and the fourth leg are located on the other side of the panel.
In one embodiment, two legs of the first full-bridge circuit are located on one side of the panel and the other two legs of the first full-bridge circuit are located on the other side of the panel.
In one embodiment, the first end of the first bridge arm and the first end of the fourth bridge arm are both used for electrically connecting a preset positive reference voltage source, the second end of the first bridge arm is electrically connected with the first end of the third bridge arm, the second end of the fourth bridge arm is electrically connected with the first end of the second bridge arm, and the second end of the third bridge arm and the second end of the second bridge arm are both used for electrically connecting a preset negative reference voltage source.
In one embodiment, the first full-bridge circuit comprises: the first strain resistor, the second strain resistor, the third strain resistor and the fourth strain resistor;
the first end of first strain resistance with the first end of second strain resistance all is used for the electricity to connect predetermined positive reference voltage source, the second end of first strain resistance with the first end electricity of third strain resistance is connected, the second end of second strain resistance with the first end electricity of fourth strain resistance is connected, the second end of third strain resistance with the second end of fourth strain resistance all is used for the electricity to connect predetermined negative reference voltage source.
A pressure detection device, comprising the pressure sensor module of any one of the above embodiments; and
and the processor is electrically connected with the first full-bridge circuit and the second full-bridge circuit respectively.
In one embodiment, the pressure detecting device further includes:
and the processor is electrically connected with the first full-bridge circuit and the second full-bridge circuit respectively through the pressure signal detection circuit.
An electronic device comprising the pressure detection apparatus according to any one of the above embodiments.
Compared with the prior art, above-mentioned pressure sensor module, pressure detection device and electronic equipment when the panel bears pressure, through first full-bridge circuit response pressure and production first difference input signal, simultaneously through in the second full-bridge circuit disconnected first bridge arm with second bridge arm (non-strain resistance) cooperation to produce second difference input signal, and based on first difference input signal with whether the second difference input signal confirms to respond the atress of panel, thereby make this application can correctly discern forward and side direction pressing signal, avoid the misidentification phenomenon, and then improve the reliability of discernment.
Drawings
Fig. 1 is a schematic structural diagram of a pressure sensor module according to an embodiment of the present disclosure;
fig. 2 is a schematic circuit diagram of a second full-bridge circuit according to an embodiment of the present disclosure;
fig. 3 is a schematic structural diagram of a pressure sensor module according to another embodiment of the present disclosure;
fig. 4 is a schematic circuit diagram of a first full-bridge circuit according to an embodiment of the present disclosure;
FIG. 5 is a schematic block diagram of a pressure detection apparatus according to an embodiment of the present disclosure;
fig. 6 is a schematic block diagram of an electronic device according to an embodiment of the present application.
10 pressure sensor module
100 panel
101 pressure signal detection circuit
110 first surface
120 second surface
20 pressure detection device
21 processor
200 first full bridge circuit
210 first strain resistance
220 second strain resistance
230 third strain resistance
240 fourth strain resistance
30 electronic device
300 second full bridge circuit
301 positive reference voltage source
302 negative reference voltage source
310 first leg
320 second bridge arm
330 third bridge arm
340 fourth leg
Detailed Description
In order to make the aforementioned objects, features and advantages of the present application more comprehensible, embodiments accompanying the present application are described in detail below with reference to the accompanying drawings. In the following description, numerous specific details are set forth in order to provide a thorough understanding of the present application. This application is capable of embodiments in many different forms than those described herein and those skilled in the art will be able to make similar modifications without departing from the spirit of the application and it is therefore not intended to be limited to the embodiments disclosed below.
It will be understood that when an element is referred to as being "secured to" another element, it can be directly on the other element or intervening elements may also be present. When an element is referred to as being "connected" to another element, it can be directly connected to the other element or intervening elements may also be present.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein in the description of the present application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. As used herein, the term "and/or" includes any and all combinations of one or more of the associated listed items.
Referring to fig. 1 to 3, an embodiment of the present application provides a pressure sensor module 10, including: a panel 100, a first full-bridge circuit 200 and a second full-bridge circuit 300. The first full-bridge circuit 200 is disposed on the panel 100. The four arms of the first full-bridge circuit 200 are all strain resistors. The second full-bridge circuit 300 is disposed on the panel 100. The second full-bridge circuit 300 includes a first leg 310 and a second leg 320. The first leg 310 is not connected to the second leg 320, and both the first leg 310 and the second leg 320 are non-strain resistors. The output end of the first full-bridge circuit and the output end of the second full-bridge circuit are respectively used for being connected with a pressure signal detection circuit 101.
It is understood that the material of the panel 100 is not limited as long as it can withstand the pressure applied by the operator. In one embodiment, the panel 100 is a rigid material, such as a metal plate, a glass plate, a plastic plate, an aluminum alloy plate, or other rigid material.
It is understood that the specific circuit structure of the first full-bridge circuit 200 is not limited as long as it has the function of sensing the pressure and generating the first differential input signal. In one embodiment, the first full-bridge circuit 200 may include four legs, and each leg is a strain resistor. In one embodiment, the four legs may be located in the same plane.
It should be understood that the manner of disposing the first full-bridge circuit 200 on the panel 100 is not limited, as long as the first full-bridge circuit 200 is secured to the panel 100. In one embodiment, the first full-bridge circuit 200 may be adhered to the panel 100. In one embodiment, the first full bridge circuit 200 may be embedded on the panel 100.
It should be understood that the manner of disposing the second full-bridge circuit 300 on the panel 100 is not limited, as long as the second full-bridge circuit 300 is secured to the panel 100. In one embodiment, the second full-bridge circuit 300 may be attached to the panel 100. In one embodiment, the second full-bridge circuit 300 may be embedded on the panel 100.
In one embodiment, the second full bridge circuit 300 may include a first bridge leg 310 and a second bridge leg 320, and the first bridge leg 310 and the second bridge leg 320 are both non-strain resistors. While first leg 310 is unconnected to second leg 320. That is, there is no electrical connection between the first leg 310 and the second leg 320. In one embodiment, the non-strain resistance of both the first leg 310 and the second leg 320 means: the first leg 310 and the second leg 320 are both common resistors.
In one embodiment, the second full-bridge circuit 300 further comprises: third leg 330 and fourth leg 340. Third leg 330 is unconnected to fourth leg 340. Third leg 330 and fourth leg 340 are each a strain resistor. In one embodiment, the disconnection of third leg 330 from fourth leg 340 means: the third leg 330 and the fourth leg 340 are not electrically connected. In one embodiment, the pressure signal detection circuit 101 may employ a conventional signal detection circuit, such as a signal detector.
In this embodiment, when the panel 100 bears a pressure, the first full-bridge circuit 200 senses the pressure and generates a first differential input signal, and simultaneously, the first bridge arm 310 and the second bridge arm 320 (non-strain resistors) which are not connected in the second full-bridge circuit 300 cooperate with each other, the second full-bridge circuit 300 senses the pressure and generates a second differential input signal, and whether the stress of the panel 100 is responded is determined based on the first differential input signal and the second differential input signal, so that the present embodiment can correctly recognize forward and lateral pressing signals, avoid a false recognition phenomenon, and further improve the reliability of recognition.
In one embodiment, first leg 310, second leg 320, third leg 330, and fourth leg 340 are in the same plane. That is, first leg 310, second leg 320, third leg 330, and fourth leg 340 may all be located on first surface 110 of panel 100. Whether to respond to the stress of the panel 100 can be determined by the arrangement mode.
Referring to fig. 3 and 4, in one embodiment, the first leg 310 and the second leg 320 are located on one side of the panel 100, and the third leg 330 and the fourth leg 340 are located on the other side of the panel 100. In one embodiment, two legs of the first full-bridge circuit 200 are located on one side of the panel 100, and the other two legs of the first full-bridge circuit 200 are located on the other side of the panel 100.
In one embodiment, first leg 310 and second leg 320 can be positioned on first surface 110 of panel 100 and third leg 330 and fourth leg 340 can be positioned on second surface 120 of panel 100. That is, the non-strain resistor in the second full-bridge circuit 300 is located on the first surface 110, and the strain resistor is located on the second surface 120. In one embodiment, the positional relationship of the unstrained resistors and the strained resistors may be interchanged. That is, first leg 310 and second leg 320 can be positioned on second surface 120 of panel 100 and third leg 330 and fourth leg 340 can be positioned on first surface 110 of panel 100.
In one embodiment, as can be seen from the above embodiments, the first leg 310 and the second leg 320 are always located on the same plane, and the third leg 330 and the fourth leg 340 are always located on the same plane. In one embodiment, any two legs of the first full-bridge circuit 200 may be located on one side of the panel 100 (i.e., the first surface 110 or the second surface 120), and the other two legs of the first full-bridge circuit 200 may be located on the other side of the panel 100 (i.e., the second surface 120 or the first surface 110).
That is, any two legs of the first full-bridge circuit 200 must be located on the same plane as the first leg 310 and the second leg 320, and the other two legs of the first full-bridge circuit 200 must be located on the same plane as the third leg 330 and the fourth leg 340. Whether to respond to the stress of the panel 100 can also be determined by the arrangement mode.
In one embodiment, the first end of first leg 310 and the first end of fourth leg 340 are both configured to electrically connect to a predetermined positive reference voltage source 301. The second end of first leg 310 is electrically connected to the first end of third leg 330. A second end of the fourth leg 340 is electrically connected to a first end of the second leg 320. The second end of the third bridge arm 330 and the second end of the second bridge arm 320 are both used for electrically connecting a preset negative reference voltage source 302. In an embodiment, the negative reference voltage source 302 may be grounded or not, and may be selected according to actual requirements.
In one embodiment, the first full-bridge circuit 200 includes: a first strain resistor 210, a second strain resistor 220, a third strain resistor 230, and a fourth strain resistor 240. The first end of the first strain resistor 210 and the first end of the second strain resistor 220 are both used for electrically connecting a preset positive reference voltage source 301. The second end of the first strain resistor 210 is electrically connected to the first end of the third strain resistor 230. The second end of the second strain resistor 220 is electrically connected to the first end of the fourth strain resistor 240. The second end of the third strain resistor 230 and the second end of the fourth strain resistor 240 are both used for electrically connecting a preset negative reference voltage source 302.
In an embodiment, the negative reference voltage source 302 may be grounded or not, and may be selected according to actual requirements. In one embodiment, the first strain resistor 210 and the third strain resistor 230 are always in the same plane. In one embodiment, the second strain resistor 220 and the fourth strain resistor 240 are always located on the same plane.
Referring to fig. 5, another embodiment of the present application provides a pressure detection apparatus 20, which includes the pressure sensor module 10 according to any one of the above embodiments and a processor 21. The processor 21 is electrically connected to the first full-bridge circuit 200 and the second full-bridge circuit 300, respectively. In one embodiment, pressure may be sensed by the first full-bridge circuit 200 and a first differential input signal generated; the pressure may be sensed by the second full-bridge circuit 300 and a second differential input signal generated. The first differential input signal and the second differential input signal may be obtained by the processor 21, and it is determined whether to respond to the force applied to the panel 100 based on the first differential input signal and the second differential input signal.
In one embodiment, the specific circuit structure of the first full-bridge circuit 200 and the second full-bridge circuit 300 may adopt the structure described in the above embodiments. In one embodiment, the force applied to the panel 100 (i.e., the pressure applied by the implementer) may be sensed by the first full-bridge circuit 200 (strain resistance) and a first differential input signal is generated. Likewise, the force applied to the panel 100 can be sensed by the second full-bridge circuit 300 and a second differential input signal can be generated.
In one embodiment, the processor 21 may determine whether to respond to the force of the panel 100 based on the first differential input signal and the second differential input signal after acquiring the first differential input signal and the second differential input signal. Specifically, it is assumed that the four legs of the first full-bridge circuit 200 are R11, R12, R13 and R14; the resistance of the first leg 310 is R24, the resistance of the second leg 320 is R21, the resistance of the third leg 330 is R22, and the resistance of the fourth leg 340 is R23. Wherein, R24 and R21 are common resistors (namely non-strain resistors), and R11, R12, R13, R14, R22 and R23 are all strain resistors. The variation of the first differential input signal S1 and the second differential input signal S2 at this time can be obtained by the following formula:
S1=(S1+)-(S1-)=VS*(R12/(R12+R11)-R14/(R13+R14));
S2=(S2+)-(S2-)=VS*(R22/(R22+R24)-R21/(R21+R23));
when the panel 100 is subjected to pressure from the Z-axis (i.e., a positive force), the pressure is assumed to be directed downward along the Z-axis, i.e., opposite to the Z-axis arrow. Taking fig. 1 as an example, all the strain resistors (R11, R12, R13, R14, R22, and R23) in the same plane have larger tensile resistance values, while the resistance values of the non-strain resistors R23 and R24 are not changed, and as can be seen from the above formula, the S1+ (representing the positive input of the first differential input signal) signal is not changed because the ratio of R11 to R12 is larger; the ratio of R13, R14, etc. is large, and the S1- (representing the negative input of the first differential input signal) signal is unchanged; i.e., S1 is unchanged. That is, the first differential input signal does not change significantly at this time. Since R22 becomes large and R24 does not change, it is known that the S2+ (indicating the positive input of the second differential input signal) signal becomes large; since R23 becomes large and R21 does not change, it is known that the S2- (representing the negative input of the second differential input signal) signal becomes small; i.e., S2 becomes larger. That is, the second differential input signal changes significantly at this time. Taking fig. 3 as an example, when the resistors are distributed on different planes, the strain resistors on the outer side in the force-receiving direction are all increased in tensile resistance value, the strain resistors on the inner side in the force-receiving direction are all decreased in compressive resistance value, and the resistance values of the non-strain resistors R23 and R24 are not changed, which also results in that the first differential signal S1 is not changed significantly and the second differential signal S2 is changed significantly.
From the above logic, when the panel 100 is subjected to pressure from the Z-axis, the first differential input signal does not change significantly and the second differential input signal does change significantly. That is, whether the panel 100 is pressed from the Z-axis may be determined by whether the change of the first differential input signal and the change of the second differential input signal are significant, so that the processor 21 may determine whether to respond to the force applied to the panel 100. In one embodiment, when the panel 100 is under pressure, if the first differential input signal does not change significantly and the second differential input signal does change significantly, the processor 21 responds to the force applied to the panel 100.
When the panel 100 is subjected to a pressure in the direction of the arrow of the Y axis (i.e., a lateral force), taking fig. 1 as an example, the strain resistors (R12, R13, and R23) on the outer side in the force receiving direction become larger in tensile resistance, the strain resistors (R11, R14, and R22) on the inner side in the force receiving direction become smaller in compression resistance, and the non-strain resistors R21 and R24 do not become constant in resistance. The variation of the first differential input signal S1 and the second differential input signal S2 at this time can be obtained by the above formula. Specifically, as R11 becomes smaller and R12 becomes larger, the S1+ signal becomes larger; the R13 becomes large, the R14 becomes small, and the S1-signal becomes small; i.e., S1 becomes significantly smaller. That is, the first differential input signal changes significantly at this time. Since R22 became small and R24 became unchanged, it was found that the S2+ signal became small; the S2-signal becomes smaller because R23 becomes larger and R21 becomes unchanged; i.e., S2 did not change significantly.
From the above logic, when the panel 100 is subjected to pressure from the Y-axis, the first differential input signal changes significantly and the second differential input signal does not change significantly. That is, whether the panel 100 is pressed from the Y-axis may be determined by whether the change of the first differential input signal and the change of the second differential input signal are significant, so that the processor 21 may determine whether to respond to the force applied to the panel 100. In one embodiment, when the panel 100 is under pressure, if the first differential input signal changes significantly and the second differential input signal does not change significantly, the processor 21 does not respond to the force applied to the panel 100.
In one embodiment, the processor 21 may output a touch instruction when the panel 100 is pressed by a positive pressure, i.e., when the processor 21 responds to the force applied to the panel 100. When the panel 100 is pressed by lateral pressure, that is, when the processor 21 does not respond to the force applied to the panel 100, the processor 21 does not output a touch instruction. Optionally, the touch instruction may be a key instruction or a non-key instruction.
In this embodiment, when the panel 100 bears a pressure, the first full-bridge circuit 200 senses the pressure and generates a first differential input signal, and simultaneously, the second full-bridge circuit 300 senses the pressure and generates a second differential input signal by matching the first bridge arm 310 and the second bridge arm 320 (non-strain resistors) which are not connected in the second full-bridge circuit 300, and the processor 21 determines whether to respond to the stress of the panel 100 based on the first differential input signal and the second differential input signal, so that the present embodiment can correctly recognize forward and lateral pressing signals, avoid a misrecognition phenomenon, and further improve the reliability of recognition.
In one embodiment, the pressure detection device 20 further includes: the pressure signal detection circuit 101. The processor 21 is electrically connected to the first full-bridge circuit 200 and the second full-bridge circuit 300 through the pressure signal detection circuit 101. In one embodiment, the pressure signal detection circuit 101 may be a signal detector. In one embodiment, the pressure signal detection circuit 101 detects signals at the output terminals of the first full-bridge circuit 200 and the second full-bridge circuit 300 in real time and sends the detected signals to the processor 21, so that the processor 21 determines whether to respond to the stress of the panel 100.
Referring to fig. 6, another embodiment of the present application provides an electronic device 30, which is applied to the pressure detection apparatus 20 according to any of the above embodiments. Optionally, the electronic device 30 may be a mobile terminal such as a mobile phone and a tablet computer, a wearable device such as a bracelet, a watch and an earphone, and an electronic scale, an intelligent toilet, a mobile power source and a household appliance.
In one embodiment, the pressure sensor module 10 may be disposed in a housing of the electronic device 30. For example, on an inner surface of the housing of the electronic device 30 to sense pressure applied by a user to the housing of the electronic device 30. The processor 21 may be disposed in the housing or disposed outside the housing (inside the electronic device 30), which is not limited in this application.
In one embodiment, for a cell phone, the cell phone housing includes a center frame and a back cover. The pressure sensor module 10 in the pressure detection device 20 may be disposed on the middle frame or the rear cover of the mobile phone, and electrically connected to the processor inside the mobile phone, so as to implement a pressure touch function of the side frame of the mobile phone or a pressure touch function of the rear cover of the mobile phone.
The electronic device 30 can determine whether to respond to the stress of the panel 100 through the pressure detection device 20, so that the electronic device 30 can correctly recognize the forward and lateral pressing signals, avoid the phenomenon of false recognition, and further improve the reliability of recognition.
To sum up, this application is in when panel 100 bears pressure, through first full-bridge circuit 200 response pressure and produce first difference input signal, pass through simultaneously in the second full-bridge circuit 300 disconnected first bridge arm 310 with second bridge arm 320 (non-strain resistance) cooperation to produce second difference input signal, and based on first difference input signal with whether the second difference input signal is confirmed to respond to panel 100's atress, thereby make this application can correctly discern forward and side direction and press the signal, avoid the misidentification phenomenon, and then improve the reliability of discernment.
The technical features of the embodiments described above may be arbitrarily combined, and for the sake of brevity, all possible combinations of the technical features in the embodiments described above are not described, but should be considered as being within the scope of the present specification as long as there is no contradiction between the combinations of the technical features.
The above-mentioned embodiments only express several embodiments of the present application, and the description thereof is more specific and detailed, but not construed as limiting the scope of the utility model. It should be noted that, for a person skilled in the art, several variations and modifications can be made without departing from the concept of the present application, which falls within the scope of protection of the present application. Therefore, the protection scope of the present patent shall be subject to the appended claims.

Claims (10)

1. A pressure sensor module, comprising:
a panel (100);
the first full-bridge circuit (200) is arranged on the panel (100), and four bridge arms of the first full-bridge circuit (200) are all strain resistors; and
the second full-bridge circuit (300) is arranged on the panel (100), the second full-bridge circuit (300) comprises a first bridge arm (310) and a second bridge arm (320), the first bridge arm (310) is not connected with the second bridge arm (320), and the first bridge arm (310) and the second bridge arm (320) are both non-strain resistors;
and the output end of the first full-bridge circuit and the output end of the second full-bridge circuit are respectively used for being electrically connected with the pressure signal detection circuit.
2. The pressure sensor module of claim 1, wherein the second full-bridge circuit (300) further comprises: a third leg (330) and a fourth leg (340);
the third bridge arm (330) is not connected to the fourth bridge arm (340), and both the third bridge arm (330) and the fourth bridge arm (340) are strain resistors.
3. The pressure sensor module of claim 2, wherein the first leg (310), the second leg (320), the third leg (330), and the fourth leg (340) are in the same plane.
4. Pressure sensor module according to claim 2, characterized in that the first leg (310) and the second leg (320) are located on one side of the panel (100) and the third leg (330) and the fourth leg (340) are located on the other side of the panel (100).
5. Pressure sensor module according to claim 4, characterized in that two legs of the first full-bridge circuit (200) are located at one side of the panel (100) and the other two legs of the first full-bridge circuit (200) are located at the other side of the panel (100).
6. Pressure sensor module according to claim 2, characterized in that the first end of the first bridge leg (310) and the first end of the fourth bridge leg (340) are both used for electrically connecting a preset positive reference voltage source (301), the second end of the first bridge leg (310) is electrically connected to the first end of the third bridge leg (330), the second end of the fourth bridge leg (340) is electrically connected to the first end of the second bridge leg (320), and the second end of the third bridge leg (330) and the second end of the second bridge leg (320) are both used for electrically connecting a preset negative reference voltage source (302).
7. The pressure sensor module of claim 1, characterized in that the first full-bridge circuit (200) comprises: a first strain resistance (210), a second strain resistance (220), a third strain resistance (230), and a fourth strain resistance (240);
the first end of first strain resistance (210) with the first end of second strain resistance (220) all is used for the electricity to connect predetermined positive reference voltage source (301), the second end of first strain resistance (210) with the first end electricity of third strain resistance (230) is connected, the second end of second strain resistance (220) with the first end electricity of fourth strain resistance (240) is connected, the second end of third strain resistance (230) with the second end of fourth strain resistance (240) all is used for the electricity to connect predetermined negative reference voltage source (302).
8. A pressure detection device, characterized by comprising a pressure sensor module (10) according to any one of claims 1-5; and
a processor (21) electrically connected to the first full-bridge circuit (200) and the second full-bridge circuit (300), respectively.
9. The pressure detection device of claim 8, further comprising:
a pressure signal detection circuit (101), through which the processor (21) is electrically connected with the first full-bridge circuit (200) and the second full-bridge circuit (300), respectively.
10. An electronic device, characterized in that it comprises a pressure detection apparatus (20) according to claim 8.
CN202020122945.1U 2020-01-19 2020-01-19 Pressure sensor module, pressure detection device and electronic equipment Active CN211321318U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202020122945.1U CN211321318U (en) 2020-01-19 2020-01-19 Pressure sensor module, pressure detection device and electronic equipment

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202020122945.1U CN211321318U (en) 2020-01-19 2020-01-19 Pressure sensor module, pressure detection device and electronic equipment

Publications (1)

Publication Number Publication Date
CN211321318U true CN211321318U (en) 2020-08-21

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Country Link
CN (1) CN211321318U (en)

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