Mounting device and mounting method

By using positioning elements and mounting notches in electronic devices, the problems of low efficiency and large errors in the installation and detection structure of electronic devices are solved, enabling rapid and accurate positioning and installation of sensors, and improving installation efficiency and consistency.

CN121531592APending Publication Date: 2026-02-13TAIWAN LENOVO GLOBAL TECH CO LTD
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Patent Information

Application Number
CN202511595695.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-03
Publication Date
2026-02-13

AI Technical Summary

Technical Problem

In the existing technology, electronic devices are inefficient and prone to large errors when installing detection structures, and manual operation leads to high inconsistency in installation.

Method used

An installation device is adopted, including a positioning component and a mounting notch. The positioning component is provided with a rectangular positioning groove and a mounting notch for matching with the functional components of the circuit board. The sensor is directly installed through the mounting notch. Combined with the cable management component and the installation component, the installation efficiency and accuracy are improved.

Benefits of technology

The design of the positioning components and mounting notches enables rapid and accurate positioning and installation of the sensors, reducing human error and improving installation efficiency and consistency.

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Abstract

The embodiment of the invention discloses an installation device and an installation method, and the installation device comprises a positioning part which is provided with rectangular positioning grooves and at least one installation gap which are arranged at intervals; the rectangular positioning groove is used for being matched with the shape of a functional part on a circuit board and positioning the positioning part based on the position of the functional part on the circuit board; the mounting notch is based on the position of the rectangular positioning groove so as to meet the position condition corresponding to the functional part, and the mounting notch is formed in the peripheral side of the positioning part around the rectangular positioning groove. And the mounting notch is used for mounting a sensor corresponding to the position of the functional part on the circuit board.
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Description

TECHNICAL FIELD

[0001] The present application relates to installation technology, in particular to an installation device and an installation method. BACKGROUND

[0002] In the production process of electronic devices such as mobile phones and computers, it is often necessary to detect the installation of functional structures of the electronic devices by detecting structures. In the related art, the detection structures are generally manually set in the corresponding areas of the functional structures of the electronic devices, and the installation efficiency is low. SUMMARY

[0003] The present application provides an installation device and an installation method, which can improve the installation efficiency.

[0004] The technical scheme of the present application is implemented as follows: The present application provides an installation device, comprising: A positioning member is provided with a rectangular positioning slot and at least one installation opening which are arranged at intervals; the rectangular positioning slot is used to match the shape of a functional member on a circuit board, and the positioning member is positioned based on the position of the functional member on the circuit board; the installation opening is arranged on the outer circumferential side of the positioning member around the rectangular positioning slot based on the position of the rectangular positioning slot to meet the position condition corresponding to the functional member; and the installation opening is used to install a sensor corresponding to the position of the functional member on the circuit board.

[0005] In some embodiments, the rectangular positioning slot is located in the middle of the positioning member, and the rectangular positioning slot is a through slot in the thickness direction of the positioning member; the number of installation openings is four, and the four installation openings are arranged at the corners of the outer circumferential side of the positioning member; and / or, The installation opening matches at least part of the shape of the sensor.

[0006] In some embodiments, further comprising: A wire arrangement member is arranged at intervals with the positioning member; the wire arrangement member has a matching mechanism for fixing the wire arrangement member to the circuit board; The wire arrangement member is provided with at least one wire arrangement slot on the side adjacent to the circuit board, and the wire arrangement slot is used to accommodate the connecting line of the sensor; The depth of the wire arrangement slot matches the width of the connecting line.

[0007] In some embodiments, the installation opening is used to install three sensors; the wire arrangement member is provided with three wire arrangement slots arranged at intervals; the three wire arrangement slots are used to accommodate two connecting lines of the three sensors, respectively; and / or, The mounting gap matches the shape of one of the three sensors; the other two of the three sensors are fixed to the one sensor.

[0008] In some embodiments, further comprising: a mounting member, disposed apart from the positioning member; the mounting member is used for being fixed to the circuit board; The positioning member and the mounting member are detachably connected through a connecting structure.

[0009] In some embodiments, the connecting structure comprises: at least two first connecting members, disposed apart from the positioning member; at least two second connecting members, disposed apart from the mounting member; the at least two first connecting members and the at least two second connecting members are respectively detachably connected.

[0010] In some embodiments, the mounting member is provided with a lead slot on a side adjacent to the circuit board; the lead slot is used for accommodating a connecting line of the sensor; the depth of the lead slot matches the width of the connecting line; wherein the number of the lead slots is at least two, and the at least two lead slots correspond to the positions of the at least two mounting gaps.

[0011] In some embodiments, the positioning member is a ring structure, and the mounting member is a ring structure; the mounting member is annularly arranged on the outside of the positioning member; The connecting structure comprises: at least two first connecting members, disposed apart from the outside of the positioning member; at least two second connecting members, disposed apart from the inside of the mounting member; the at least two first connecting members and the at least two second connecting members are respectively detachably connected.

[0012] In some embodiments, the mounting member and the positioning member are used for cooperating with the circuit board; or, the mounting member is used for cooperating with the circuit board, and the mounting member is used for spacing the positioning member and the circuit board through the connecting structure.

[0013] The embodiments of the present disclosure further provide an installation method, comprising: placing a positioning member of an installation device on a circuit board, so that a rectangular positioning slot of the positioning member matches the shape of a functional member on the circuit board; installing a sensor on the circuit board through a mounting gap of the positioning member, so as to detect a first parameter of a position corresponding area of the circuit board and the functional member. BRIEF DESCRIPTION OF DRAWINGS

[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present disclosure or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or prior art description. Obviously, the drawings in the following description are only some embodiments of the present disclosure, and for those skilled in the art, other drawings can also be obtained from these drawings without creative effort.

[0015] Figure 1 is a structural schematic diagram of the mounting device provided by the embodiment of the present disclosure; Figure 2 is a partial enlarged view of Figure 1 ; Figure 3 is a structural schematic diagram of the wire arranging piece provided by the embodiment of the present disclosure; Figure 4 is another perspective view of Figure 3 ; Figure 5 is another structural schematic diagram of the mounting device provided by the embodiment of the present disclosure; Figure 6 is an exploded view of Figure 5 ; Figure 7 is a structural schematic diagram of the wire arranging piece provided by the embodiment of the present disclosure; Figure 8 is another perspective view of Figure 7 ; Figure 9 is another perspective view of Figure 7 ; Figure 10 is a flow chart of the mounting method provided by the embodiment of the present disclosure.

[0016] It should be noted that the "first" and "second" mentioned above are only used to distinguish different solutions, and do not represent the advantages or disadvantages of the solutions or the priority in the implementation process.

[0017] Reference signs: 100, positioning piece; 110, rectangular positioning groove; 120, mounting notch; 200, wire arranging piece; 210, wire arranging groove; 300, mounting piece; 310, lead groove; 400, connecting structure; 410, first connecting piece; 420, second connecting piece; 421, clamping groove; 510, functional piece; 520, sensor; 521, connecting line. DETAILED DESCRIPTION

[0018] In order to make the purposes, technical solutions and advantages of the present application clearer, the present application will be further described in detail below with reference to the drawings, and the described embodiments should not be regarded as limiting the present application, and all other embodiments obtained by those of ordinary skill in the art without creative work fall within the scope of protection of the present application.

[0019] In the embodiments of the present disclosure, it should be noted that unless otherwise stated and limited, the term "connection" should be understood broadly, for example, it can be an electrical connection, or a connection between two elements, or a direct connection, or an indirect connection through an intermediate medium. Those of ordinary skill in the art can understand the specific meaning of the above-mentioned term according to the specific circumstances.

[0020] It should be noted that the terms "first", "second", "third" involved in the embodiments of the present disclosure are only to distinguish similar objects, and do not represent a specific order of the objects. Understandably, "first", "second", "third" can be interchanged in a specific order or sequence as allowed. It should be understood that the objects distinguished by "first", "second", "third" can be interchanged under appropriate circumstances, so that the embodiments of the present application described herein can be implemented in an order other than those illustrated or described herein.

[0021] The following will be described in detail Figures 1 to 9 The mounting device described in the embodiments of the present disclosure will be described in detail.

[0022] In the embodiments of the present disclosure, the mounting device can be used for installing sensors 520 on electronic devices such as mobile phones, computers, game consoles, watches, etc. The mounting device can also be used for installing sensors 520 on electronic components of electronic devices such as mobile phones, computers, game consoles, watches, etc. The present disclosure does not limit this. The present disclosure takes the mounting device for installing sensors 520 on electronic devices such as mobile phones, computers, game consoles, watches, etc. as an example for description. The electronic device can include a circuit board and a functional piece 510 disposed on the circuit board. The functional piece 510 can be fixed to the circuit board by adhesion, welding or the like. The sensor 520 can be used to detect the performance parameters of the corresponding position of the circuit board and the functional piece 510, to determine whether the performance parameters of the corresponding position of the circuit board and the functional piece 510 can meet the use performance requirements of the functional piece 510. For example, in the case that the performance parameters of the corresponding position of the circuit board and the functional piece 510 are good, the use performance of the functional piece 510 is not affected; in the case that the performance parameters of the corresponding position of the circuit board and the functional piece 510 are poor, the use performance of the functional piece 510 is affected, and here, the performance of the electronic device product can be affected. Therefore, by detecting the performance parameters of the corresponding position of the circuit board and the functional piece 510 through the sensor 520, it can be determined whether the functional piece 510 can be normally used on the circuit board.

[0023] The structure of the functional component 510 is not limited. For example, the functional component 510 can be a processor or a processing chip having a processing function, such as a central processing unit (CPU) or a graphics processing unit (GPU).

[0024] The sensor 520 is not limited. For example, the sensor 520 can be a sensor for detecting stress, strain, pressure, deformation, temperature, and the like. In the embodiments of the present disclosure, the sensor 520 is taken as an example for detecting strain. Here, the sensor 520 can be a strain gauge. However, the present disclosure is not limited to the sensor 520. As an example, during the production and manufacturing process of the electronic device, the circuit board can be installed, extruded, or cooperated with other structures. Some or all areas of the circuit board can be deformed. If the area of the circuit board fixing the functional component 510 is deformed greatly, the functional component 510 can also be deformed greatly. Here, the performance of the functional component 510 can be affected, thereby affecting the performance of the product. By detecting the deformation of the position of the circuit board corresponding to the functional component 510, it can be determined whether the installation of the functional component 510 is qualified. The inventors find that, during the production process, the operator manually determines the setting position of the sensor 520 through the position of the functional component 510 by using a detection tool, and then fixes the sensor 520 at the setting position. Here, the operator needs to detect at least two dimensions to determine the setting position of the sensor 520, and the installation efficiency is low. At the same time, since it is operated by the operator, the error rate of the setting position of the sensor 520 is high, and the error of the setting position of the sensor 520 of each product is large.

[0025] The embodiments of the present disclosure disclose an installation device, which comprises a positioning component 100. The positioning component 100 can be provided with a rectangular positioning groove 110 and at least one installation gap 120 arranged at intervals. The rectangular positioning groove 110 is used to match the shape of the functional component 510 on the circuit board, and position the positioning component 100 based on the position of the functional component 510 on the circuit board. The installation gap 120 is arranged on the outer circumferential side of the positioning component 100 around the rectangular positioning groove 110 based on the position of the rectangular positioning groove 110 to meet the position condition corresponding to the functional component 510. The installation gap 120 is used to install the sensor 520 corresponding to the position of the functional component 510 on the circuit board.

[0026] In the detection process, the rectangular positioning groove 110 of the positioning piece 100 can be matched with the shape of the functional piece 510 on the circuit board first, and the position of the mounting gap 120 is the mounting position of the sensor 520. The sensor 520 can be directly mounted on the circuit board based on the mounting gap 120, and the setting position of the sensor 520 does not need to be manually detected, which can greatly improve the installation efficiency. At the same time, since the mounting gap 120 and the rectangular positioning groove 110 are machined on one structural piece of the positioning piece 100, the correctness of the setting position of the sensor 520 can be greatly improved, and the consistency of the setting position of the sensor 520 of different products can be improved.

[0027] In the embodiments of the present disclosure, the shape of the functional piece 510 is not limited. For example, the shape of the functional piece 510 can be a rectangle, a shape similar to a rectangle, or the like.

[0028] In the embodiments of the present disclosure, the positioning piece 100 can be directly fixed to the circuit board by bonding, clamping, welding, or the like. The positioning piece 100 can also be fixed to the circuit board by a mounting structure such as the mounting piece 300. Of course, the operator can also hold the positioning piece 100 to install the sensor 520. Here, the positioning piece 100 does not need to be fixed to the circuit board.

[0029] The shape of the positioning piece 100 is not limited. For example, the positioning piece 100 can be a rectangle, a trapezoid, a triangle, or the like. The rectangular positioning groove 110 can be a through groove or a sunk groove. The rectangular positioning groove 110 can be located in the middle of the positioning piece 100. Here, the middle does not mean that the rectangular positioning groove 110 is located in the middle of the positioning piece 100, but the relative position of the rectangular positioning groove 110 and the mounting gap 120. In other words, the mounting gap 120 is located on the outer circumferential side of the positioning piece 100, and the rectangular positioning groove 110 can be inside or on the non-outer circumferential side of the positioning piece 100.

[0030] The rectangular positioning groove 110 of the positioning piece 100 is matched with the shape of the functional piece 510, and the positioning piece 100 is positioned based on the position of the functional piece 510 on the circuit board. Here, the rectangular positioning groove 110 of the positioning piece 100 is matched with the shape of the functional piece 510 to determine the position of the positioning piece 100 relative to the circuit board, so as to determine the position of the mounting gap 120.

[0031] The rectangular positioning groove 110 of the positioning piece 100 matched with the shape of the functional piece 510 can be that the positioning piece 100 is directly sleeved on the outside of the functional piece 510 based on the rectangular positioning groove 110, or that the positioning piece 100 is located on one side of the functional piece 510 based on the rectangular positioning groove 110, so that the positioning piece 100 corresponds to the position of the functional piece 510.

[0032] The mounting notch 120 is arranged on the outer circumferential side of the positioning member 100 around the rectangular positioning groove 110 based on the position of the rectangular positioning groove 110 to meet the position condition corresponding to the functional member 510. The detection position of the sensor 520 on the circuit board corresponds to the position of the functional member 510. The position of the mounting notch 120 relative to the rectangular positioning groove 110 can be the same as the position of the sensor 520 relative to the functional member 510. For example, the functional member 510 can be rectangular, and the detection position of the sensor 520 on the circuit board can be located at a corner of the functional member 510, and correspondingly, the mounting notch 120 can also be arranged at a corner of the positioning member 100. For another example, the functional member 510 can be rectangular, and the detection position of the sensor 520 on the circuit board can be located at a specific position on the side of the functional member 510, and correspondingly, the mounting notch 120 can also be arranged at a specific position on the side of the positioning member 100.

[0033] Here, meeting the position condition corresponding to the functional member 510 can refer to a position corresponding to the functional member 510 on the circuit board that needs to be detected. For example, in order to meet the performance requirements of the functional member 510, the position or positions corresponding to the functional member 510 on the circuit board need to meet the detection requirements of the sensor 520; here, the product of the functional member 510 generally indicates the setting position requirements of the functional member 510. As an example, the functional member 510 is rectangular, and the strain of the specific positions of the four corners of the functional member 510 needs to meet the requirements to ensure the performance of the functionality; the position condition here can be the specific positions of the four corners of the functional member 510.

[0034] Here, the mounting notch 120 is arranged on the outer circumferential side of the positioning member 100 around the rectangular positioning groove 110 to facilitate the installation of the sensor 520; the positioning of the positioning member 100 is achieved by the functional member 510 on the inner side, and the sensor 520 is installed by the mounting notch 120 on the outer side, which is convenient to operate and does not interfere with each other, thereby greatly improving the efficiency of installing the sensor 520 and improving the detection efficiency.

[0035] The number of mounting notches 120 is not limited. For example, the mounting notch 120 can be one, at least two, at least three, at least four, etc. Here, each mounting notch 120 can be used to install at least one sensor 520, and in the case of installing sensors 520 at at least two positions, at least two positions can be installed by positioning the positioning member 100 once, thereby further improving the installation efficiency of the sensor 520 and improving the detection efficiency.

[0036] The specific position of the mounting notch 120 is not limited. For example, the mounting notch 120 can be located at a corner of the outer circumferential side of the positioning member 100, or can be located at a side of the outer circumferential side of the positioning member 100.

[0037] The shape of the mounting notch 120 is not limited. For example, the mounting notch 120 can be rectangular, trapezoidal, semicircular, or the like.

[0038] As an example, as shown in FIG. 1, the rectangular positioning groove 110 is located in the middle of the positioning member 100, and the rectangular positioning groove 110 is a through groove in the thickness direction of the positioning member 100; the number of mounting notches 120 is four, and the four mounting notches 120 are arranged at the corner of the outer circumferential side of the positioning member 100; here, at least one sensor 520 can be mounted at each mounting notch 120, thereby greatly improving the mounting efficiency of the sensor 520 and improving the detection efficiency. Figure 1 Figure 2 The mounting notch 120 can match at least part of the shape of the sensor 520, so that the positioning of the sensor 520 can be achieved by matching at least part of the shape of the sensor 520 with the mounting notch 120, and then the sensor 520 can be quickly mounted. For example, one side of the sensor 520 can be in contact with the side of the mounting notch 120 to determine the mounting position of the sensor 520. For another example, two adjacent sides of the sensor 520 can be in contact with two adjacent sides of the mounting notch 120 to determine the mounting position of the sensor 520. For another example, three adjacent sides or all sides of the sensor 520 can be in contact with three adjacent sides or all sides of the mounting notch 120 to determine the mounting position of the sensor 520.

[0039] Of course, the mounting notch 120 can also not match the shape of the sensor 520. Here, the general position of the sensor 520 can be determined by the mounting notch 120, and the sensor 520 can be positioned in the mounting notch 120 to achieve the positioning of the sensor 520 on the circuit board.

[0040] As an example, the positioning member 100 is used to directly fit on the outside of the functional member 510 based on the rectangular positioning groove 110. Here, the functional member 510 can be located in the rectangular positioning groove 110, the positioning member 100 cannot move in the rectangular positioning groove 110 relative to the functional member 510, the position of the positioning member 100 relative to the circuit board is basically determined and relatively fixed, and the position of the mounting notch 120 relative to the circuit board is basically determined and relatively fixed, so that the sensor 520 can be directly mounted based on the position of the mounting notch 120.

[0041] As an example, the positioning member 100 is used to directly fit on the outside of the functional member 510 based on the rectangular positioning groove 110. Here, the functional member 510 can be located in the rectangular positioning groove 110, the positioning member 100 cannot move in the rectangular positioning groove 110 relative to the functional member 510, the position of the positioning member 100 relative to the circuit board is basically determined and relatively fixed, and the position of the mounting notch 120 relative to the circuit board is basically determined and relatively fixed, so that the sensor 520 can be directly mounted based on the position of the mounting notch 120.

[0042] ​Here, the positioning member 100 can be in contact with the circuit board, so that the position of the positioning member 100 in the height direction relative to the circuit board is also relatively fixed; here, the positioning member 100 can be attached to the circuit board based on gravity, and the operator can directly install the sensor 520 at the installation aperture 120 position. Of course, the positioning member 100 can also not be in contact with the circuit board, and here, the installation device can also include a structure for contacting the circuit board, so that the position of the positioning member 100 in the height direction relative to the circuit board is also relatively fixed. Alternatively, the operator can also hold the positioning member 100, and here, the position of the positioning member 100 in the length direction and the width direction of the rectangular positioning groove 110 relative to the functional member 510 is fixed.

[0043] For another example, the positioning member 100 can also be used based on the rectangular positioning groove 110 being located on the top side of the functional member 510, and here, the functional member 510 can not be in the rectangular positioning groove 110, and here, the position of the positioning member 100 in the length direction and the width direction of the rectangular positioning groove 110 relative to the functional member 510 can be determined based on the projection of the rectangular positioning groove 110 in the height direction being located on the outside of the functional member 510.

[0044] Here, the installation device can also include a mounting structure for connecting with the circuit board, so that the position of the positioning member 100 in each direction relative to the circuit board is fixed; in other words, the positioning member 100 can be first located on the top side of the functional member 510 based on the rectangular positioning groove 110, and then the positioning member 100 is fixedly connected with the circuit board through the mounting structure, so as to realize the position of the positioning member 100 relative to the circuit board is fixed, and the position of the installation aperture 120 relative to the circuit board is fixed. Alternatively, the operator can also hold the positioning member 100 so that the projection of the rectangular positioning groove 110 in the height direction is located on the outside of the functional member 510, to install the sensor 520.

[0045] In some implementations of the embodiments of the present disclosure, the installation device can further include a wire management member 200, which is arranged in a spaced manner with the positioning member 100; the wire management member 200 has a cooperation mechanism for fixing the wire management member 200 to the circuit board; the wire management member 200 is provided with at least one wire management groove 210 on a side adjacent to the circuit board, and the wire management groove 210 is used to accommodate the connecting line 521 of the sensor 520, so as to prevent the connecting line 521 from being stacked together and squeezed to deform the circuit board and affect the detection result of the sensor 520. At the same time, by accommodating the connecting line 521 in the wire management groove 210, it can also prevent the connecting line 521 from being too protruding relative to the circuit board and being collided or pulled, so as to affect the installation stability and detection result of the sensor 520.

[0046] In the present implementation, the sensor 520 can be electrically connected with the receiving structure through the connecting line 521, so that the receiving structure can acquire the first parameter detected by the sensor 520. Of course, in other implementations, the sensor 520 can also be electrically connected with the receiving structure in a wireless manner.

[0047] In the present implementation, the depth of the wire arranging groove 210 can match the width of the connecting line 521, that is, when the connecting line 521 includes at least two connecting lines 521, the at least two connecting lines 521 are arranged side by side in the wire arranging groove 210, or the at least two connecting lines 521 are not arranged on each other in the thickness direction of the circuit board, so that the at least two connecting lines 521 can be prevented from being pressed against each other to affect the detection result. Of course, the depth of the wire arranging groove 210 can also be unmatched with the width of the connecting line 521.

[0048] The number of the wire arranging groove 210 is not limited. For example, the number of the wire arranging groove 210 can be at least two, at least three, at least four, etc. As an example, as shown in FIGS. 2 and 3, the wire arranging member 200 is provided with three wire arranging grooves 210 arranged at intervals. Figure 3 Figure 4 The number of the wire arranging groove 210 is not limited. For example, the number of the wire arranging groove 210 can be at least two, at least three, at least four, etc. As an example, as shown in FIGS. 2 and 3, the wire arranging member 200 is provided with three wire arranging grooves 210 arranged at intervals.

[0049] In the present implementation, the fitting mechanism is used to fix the wire arranging member 200 to the circuit board, and the form of the fitting mechanism is not limited. For example, the fitting mechanism can be a clamping structure, a welding structure, an adhesive structure, etc. provided on the wire arranging member 200 and connected with the circuit board. As an example, the fitting mechanism can be the surface of the wire arranging member 200 adjacent to the circuit board, and the surface of the wire arranging member 200 adjacent to the circuit board can be fixed to the circuit board by means of adhesion, welding, etc. As another example, the fitting mechanism can be the side surface of the wire arranging member 200, and the side surface of the wire arranging member 200 can be fixed to the circuit board by means of adhesion, welding, etc.

[0050] In the present implementation, the number of the mounting aperture 120 used for mounting the sensor 520 is not limited. For example, the mounting aperture 120 can be used for mounting at least two, at least three, at least four, etc. sensors 520. Here, the at least two, at least three, at least four, etc. sensors 520 can be positioned with the mounting aperture 120 by means of one sensor 520 or a plurality of sensors 520.

[0051] ​As an example, the installation notch 120 can be used to install three sensors 520; the installation notch 120 matches the shape of one of the three sensors 520; the other two of the three sensors 520 are fixed to the one sensor 520; thus, the three sensors 520 can be installed simultaneously through the installation notch 120.

[0052] Here, the three sensors 520 can be fixed together before installation, and the three sensors 520 are similar to one sensor 520, which is convenient for installation. For example, two adjacent sensors 520 of the three sensors 520 form a first included angle; the value of the first included angle is not limited. The first included angle can be 40 to 50 degrees; or, the first included angle can be 45 degrees. For another example, the other two sensors 520 of the three sensors 520 are symmetrically arranged relative to one of the three sensors 520.

[0053] Here, the data detected by the three sensors 520 can be the same or different. For example, the three sensors 520 can correspond to detecting data in three mutually perpendicular directions, respectively. In an application, one of the three sensors 520 detects a first parameter in the X-axis direction of a three-dimensional coordinate system, one of the three sensors 520 detects a first parameter in the Y-axis direction of the three-dimensional coordinate system, and one of the three sensors 520 detects a first parameter in the Z-axis direction of the three-dimensional coordinate system. Of course, in other examples, two sensors 520 can be used to detect first parameters in two axis directions of a three-dimensional coordinate system.

[0054] Here, the installation notch 120 matches the shape of one of the three sensors 520 is similar to the above-mentioned installation notch 120 matching at least part of the shape of the sensor 520, which will not be repeated here. For example, the installation notch 120 can be rectangular, one end of one of the three sensors 520 can also be rectangular, and the one end of the sensor 520 can be inserted into the installation notch 120, thereby realizing the positioning of the sensor 520.

[0055] In the present implementation, the wire arrangement member 200 can be provided with three spaced-apart wire arrangement grooves 210; the three wire arrangement grooves 210 are used to accommodate two connection lines 521 of the three sensors 520, respectively; here, each wire arrangement groove 210 can accommodate two connection lines 521 of one sensor 520, so as to arrange the connection lines 521 of the three sensors 520 apart from each other, facilitating the operation of the connection. Of course, each wire arrangement groove 210 can also accommodate two connection lines 521 of two sensors 520.

[0056] In the present implementation, the number of wire arrangement members 200 is not limited. For example, the number of wire arrangement members 200 can be at least two, at least three, etc. The wire arrangement member 200 can be arranged on the path where the connection line 521 is arranged.

[0057] In some implementations of the embodiments of this disclosure, the mounting device may further include: a mounting member 300, which is spaced apart from the positioning member 100; the mounting member 300 is used to fix to the circuit board; the positioning member 100 and the mounting member 300 are detachably connected by a connecting structure 400, so that the positioning member 100 is not used to fix to the circuit board, so that the positioning member 100 can be reused.

[0058] In this implementation, the structure of the mounting component 300 is not limited. For example, the mounting component 300 can be a block structure or a plate structure. The number of mounting components 300 can be one, at least two, at least three, etc.

[0059] As an example, such as Figure 5 and Figure 6 As shown, the positioning member 100 can be a ring-shaped structure, and the mounting member 300 can be a ring-shaped structure; the mounting member 300 is arranged around the outside of the positioning member 100; fixing the positioning member 100 by the mounting member 300 arranged around the outside of the positioning member 100 can greatly improve the positional stability of the positioning member 100 relative to the circuit board. Here, the positioning member 100 can be rectangular, and the mounting member 300 can be rectangular.

[0060] Here, a rectangular positioning groove 110 is formed on the inner side of the annular positioning member 100, and an installation notch 120 is provided on the outer side of the annular positioning member 100.

[0061] Mounting component 300 can be fixed to the circuit board by means of adhesive, snap-fit, welding, etc.

[0062] In this implementation, the form of the connection structure 400 is not limited. For example, the connection structure 400 can be a threaded structure, a snap-fit ​​structure, a plug-in structure, etc.

[0063] As an example, the connection structure 400 may include at least two first connectors 410 and at least two second connectors 420. The at least two first connectors 410 may be spaced apart from the positioning member 100; the at least two second connectors 420 may be spaced apart from the mounting member 300; the at least two first connectors 410 and the at least two second connectors 420 may be detachably connected to each other, thereby improving the positional stability of the positioning member 100.

[0064] At least two first connectors 410 and positioning members 100 can be different parts of a structural member, such as Figure 3 and Figure 4 As shown, this is to simplify the structure. Of course, at least two first connectors 410 and positioning members 100 can also be connected by means of bonding, snap-fitting, welding, etc.

[0065] The structure of the first connecting member 410 is not limited. For example, the first connecting member 410 can be a plate structure, a strip structure, or the like.

[0066] The at least two second connecting members 420 and the mounting member 300 can be different parts of one structure, as shown in Figure 3 and Figure 4 so as to reduce the structure of the mounting device. Of course, the at least two second connecting members 420 and the mounting member 300 can also be connected by means of bonding, clamping, welding, or the like.

[0067] The structure of the second connecting member 420 is not limited. For example, the second connecting member 420 can be a plate structure, a strip structure, or the like.

[0068] Each first connecting member 410 can be detachably connected with one second connecting member 420 by means of a threaded structure, a clamping structure, a plug-in structure, or the like.

[0069] As an example, as shown in Figure 6 and Figure 8 the second connecting member 420 can be provided with a clamping groove 421, one end of the first connecting member 410 can be connected with the outer side of the positioning member 100, and as shown in Figure 5 the other end of the first connecting member 410 can be detachably clamped in the clamping groove 421, so as to realize quick connection and separation of the positioning member 100 and the mounting member 300.

[0070] In the present implementation, as shown in Figure 7 and Figure 9 the mounting member 300 is provided with a lead slot 310 on the side adjacent to the circuit board; the lead slot 310 is used for accommodating the connecting line 521 of the sensor 520, as shown in Figure 6 the depth of the lead slot 310 matches the width of the connecting line 521, so that the connecting line 521 is arranged side by side in the lead slot 310, and the connecting line 521 is prevented from being stacked in the lead slot 310 to affect the accuracy of detection.

[0071] Here, the mounting member 300 is used for fixing the positioning member 100 and providing the lead slot 310 for the connecting line 521, so as to greatly reduce the structure of the mounting device.

[0072] Here, the number of the lead slot 310 can be at least two, and the at least two lead slots 310 correspond to the positions of the at least two mounting apertures 120; so that each lead slot 310 can provide the lead function for the connecting line 521 of the sensor 520 mounted in the position corresponding to the mounting aperture 120; in other words, the mounting member 300 provided with multiple lead slots 310 can further reduce the structure of the mounting device.

[0073] In the present implementation, as shown in Figure 5 andFigure 6 As shown, the positioning member 100 can be a ring structure, and the mounting member 300 can be a ring structure; the mounting member 300 can be annularly arranged outside the positioning member 100; and the connecting structure 400 can include at least two first connecting members 410 and at least two second connecting members 420. The at least two first connecting members 410 can be arranged at intervals outside the positioning member 100; the at least two second connecting members 420 can be arranged at intervals inside the mounting member 300; and the at least two first connecting members 410 and the at least two second connecting members 420 are respectively detachably connected, so that the positioning member 100 can be fixed to the circuit board through the mounting member 300 arranged outside the positioning member 100, and the adaptability of the positioning member 100 can be improved.

[0074] In the implementation, the mounting member 300 and the positioning member 100 can be used to contact the circuit board. Alternatively, the mounting member 300 can be used to contact the circuit board, and the mounting member 300 is used to arrange the positioning member 100 at intervals from the circuit board through the connecting structure 400, so as to improve the adaptability of the positioning member 100. For example, the corresponding area of the circuit board and the positioning member 100 has electronic components, so that the positioning member 100 cannot be fixed flat on the circuit board. Here, the mounting member 300 is fixedly connected with different areas of the circuit board, so as to solve the problem that the positioning member 100 cannot be fixed flat on the circuit board. For another example, the corresponding area of the circuit board and the positioning member 100 has electronic components, and the electronic components need to be ground off to fix the positioning member 100. By arranging the mounting member 300, the electronic components do not need to be ground off, and the installation difficulty and cost can be reduced.

[0075] Of course, the mounting member 300 can also be arranged at intervals from the circuit board without contacting the circuit board. Here, the mounting member 300 can be fixed to the circuit board through the fixing structure.

[0076] As shown, Figure 10 The mounting method comprises the following steps: Step 101, placing the positioning member 100 of the mounting device on the circuit board, so that the rectangular positioning groove 110 of the positioning member 100 matches the outer shape of the functional member 510 on the circuit board.

[0077] Step 102, mounting the sensor 520 on the circuit board through the mounting gap 120 of the positioning member 100, so as to detect the first parameter of the position corresponding area of the circuit board and the functional member 510.

[0078] The above embodiments have described the mounting device, which will not be described here.

[0079] In step 101, the positioning member 100 can be directly fixed to the circuit board by bonding, clamping, welding, etc. or can be fixed to the circuit board by the mounting structure 300. Of course, the operator can also hold the positioning member 100 to install the sensor 520. Here, the positioning member 100 does not need to be fixed to the circuit board.

[0080] The rectangular positioning groove 110 of the positioning member 100 matches the shape of the functional member 510 on the circuit board, which can be used for the positioning member 100 to be directly sleeved on the outside of the functional member 510 based on the rectangular positioning groove 110, or can be used for the positioning member 100 to be located on one side of the functional member 510 based on the rectangular positioning groove 110, so that the positioning member 100 corresponds to the position of the functional member 510.

[0081] In step 102, the mounting aperture 120 can match at least part of the shape of the sensor 520, and at least part of the sensor 520 can be placed in the mounting aperture 120 to cooperate with the mounting aperture 120, so as to realize the positioning of the sensor 520 on the circuit board. Of course, the mounting aperture 120 and the shape of the sensor 520 can also not match. Here, the general position of the sensor 520 can be determined through the mounting aperture 120, and the sensor 520 can be placed in the mounting aperture 120 to realize the positioning of the sensor 520 on the circuit board.

[0082] After the position of the sensor 520 is fixed, the sensor 520 can be fixed to the circuit board by adhesive. Of course, the bracket of the sensor 520 can be fixed to the circuit board by welding. The present disclosure does not limit this.

[0083] The first parameter is not limited. For example, the first parameter can be stress, strain, pressure, deformation, temperature, etc.

[0084] In the embodiments of the present disclosure, various specific technical features described in the embodiments can be combined in any suitable manner without contradiction, for example, different embodiments and technical solutions can be formed by combining different specific technical features. In order to avoid unnecessary repetition, various possible combinations of each specific technical feature in the embodiments of the present disclosure are not described again.

[0085] The above is only an embodiment of the present application, and is not used to limit the protection scope of the present application. Any modification, equivalent replacement and improvement made within the spirit and scope of the present application are included in the protection scope of the present application.

Claims

1. An installation device, comprising: A positioning component has spaced rectangular positioning slots and at least one mounting notch. The rectangular positioning slots are used to match the shape of functional components on the circuit board and to position the positioning component based on the position of the functional components on the circuit board. The mounting notch is arranged around the rectangular positioning slots on the outer periphery of the positioning component, based on the position of the rectangular positioning slots to meet the positional conditions corresponding to the functional components. The mounting notch is used to install a sensor corresponding to the position of the functional components on the circuit board.

2. The mounting device according to claim 1, wherein the rectangular positioning groove is located in the middle of the positioning member, and the rectangular positioning groove is a through groove in the thickness direction of the positioning member; the number of mounting notches is four, and the four mounting notches are disposed at the corners of the outer periphery of the positioning member; and / or, The mounting notch matches at least a portion of the shape of the sensor.

3. The installation device according to claim 1 further includes: A cable management component is provided at a distance from the positioning component; the cable management component has a mating mechanism for fixing the cable management component to the circuit board; The cable management component has at least one cable management groove on the side adjacent to the circuit board, the cable management groove being used to accommodate the connection wire of the sensor; The depth of the cable management groove matches the width of the connecting wire.

4. The mounting device according to claim 3, wherein the mounting notch is used to mount three sensors; the cable management component has three spaced-apart cable management slots; the three cable management slots are used to respectively accommodate two connecting wires of the three sensors; and / or, The mounting notch matches the shape of one of the three sensors; the other two sensors are fixed to one sensor.

5. The installation device according to any one of claims 1 to 4, further comprising: The mounting component is spaced apart from the positioning component; the mounting component is used to fix the circuit board. The positioning element and the mounting element are detachably connected via a connecting structure.

6. The installation device according to claim 5, wherein the connection structure comprises: At least two first connecting members are spaced apart from the positioning member; At least two second connectors are spaced apart from the mounting member; At least two first connectors are detachably connected to at least two second connectors.

7. The mounting device according to claim 5, wherein the mounting member has a lead wire groove on the side adjacent to the circuit board; the lead wire groove is used to accommodate the connecting wire of the sensor, and the depth of the lead wire groove matches the width of the connecting wire; in, The number of lead slots is at least two, and the positions of at least two lead slots correspond to the positions of at least two mounting notches.

8. The mounting device according to claim 7, wherein the positioning member is a ring structure, and the mounting member is a ring structure; the mounting member is arranged around the outside of the positioning member; The connection structure includes: At least two first connectors are spaced apart on the outside of the positioning member; At least two second connectors are spaced apart on the inner side of the mounting member; at least two first connectors are detachably connected to at least two second connectors respectively.

9. The mounting device according to claim 5, wherein the mounting member and the positioning member are configured to engage with the circuit board; or, the mounting member is configured to engage with the circuit board, and the mounting member is configured to space the positioning member from the circuit board via the connecting structure.

10. An installation method, comprising: The positioning component of the mounting device is placed on the circuit board so that the rectangular positioning groove of the positioning component matches the shape of the functional component on the circuit board. The sensor is mounted on the circuit board through the mounting notch of the positioning member to detect a first parameter in the area where the circuit board and the functional component are located.