Processing equipment

By designing a processing equipment for button adjustment of electronic products, and using the electric batch assembly to automatically screw the adjustment screw, the problems of large errors and low efficiency caused by manual adjustment in the prior art are solved, and more efficient button height adjustment is achieved.

CN222857270UActive Publication Date: 2025-05-13HONGFUJIN PRECISION ELECTRONICS ZHENGZHOU
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Patent Information

Application Number
CN202421488744.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-27
Publication Date
2025-05-13
Estimated Expiration
2034-06-27

AI Technical Summary

Technical Problem

In the prior art, the adjustment screws of electronic product buttons need to be manually screwed, resulting in large errors and low efficiency.

Method used

Design a processing equipment, including a base, positioning table, load transfer assembly and electric batch assembly, through the electric batch assembly butt and screwing the specified angle to realize automatic adjustment of the button.

Benefits of technology

Reduce machining errors, improve machining efficiency, and achieve accurate height adjustment of buttons.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides machining equipment. The machining equipment comprises a machine base; the positioning table is arranged on the machine base and used for placing the button, and the button is provided with an adjusting screw; the transferring assembly is arranged on the machine base; the electric screwdriver assembly is connected to the transfer assembly; the electric screwdriver assembly is used for being driven by the transfer assembly to move to the position in butt joint with the adjusting screw and screwing the adjusting screw by a specified angle. According to the machining equipment provided by the invention, when the button needs to be adjusted, the button can be placed on the positioning table, the electric screwdriver assembly is driven to move through the transferring assembly, the electric screwdriver assembly can be in butt joint with the adjusting screw, then the electric screwdriver assembly can screw the adjusting screw by a specified angle, and therefore a pressing block of the button is completely connected with an electric connection structure; and the height difference between the button and the shell is adjusted to a specified numerical value, so that the button is automatically adjusted, and the effects of reducing machining errors and improving the machining efficiency are achieved.
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Description

Technical Field

[0001] The present application relates to the technical field of electronic product processing, and in particular to a processing device. Background Art

[0002] At present, electronic products, such as 3C electronic products (abbreviation for three types of electronic products, namely computers, communications and consumer electronic products), etc., usually include a housing and a button. Among them, the housing is provided with a through hole. The button is provided with a pressing block and an adjusting screw. The button is fixed to the housing, and the pressing block is exposed to the outside of the housing through the through hole. The adjusting screw is used to adjust the distance of the pressing block exposed to the through hole, that is, to adjust the height difference between the pressing surface of the pressing block and the outside of the housing.

[0003] In the process of processing electronic products, it is usually necessary to first install the button on the housing, and then adjust the adjustment screw of the button so that the height difference between the button and the housing meets the factory requirements. In the related art, the method of adjusting the adjustment screw of the button is manual adjustment, that is, manually screwing the adjustment screw with a tool, which has the problems of large error and low efficiency. Utility Model Content

[0004] In view of the above, it is necessary to provide a processing equipment that can reduce processing errors and improve processing efficiency.

[0005] The present application provides a processing equipment, including: a machine base; a positioning table, which is arranged on the machine base, the positioning table is used to place a button, and the button is provided with an adjusting screw; a transfer assembly, which is arranged on the machine base; an electric screwdriver assembly, which is connected to the transfer assembly; the electric screwdriver assembly is used to move to a position where it docks with the adjusting screw under the drive of the transfer assembly, and screw the adjusting screw to a specified angle.

[0006] In some embodiments, the electric screwdriver assembly includes a support frame, a rotating drive member and a screwdriver bit. The support frame is connected to the transfer assembly, and the rotating drive member is arranged on the support frame and connected to the screwdriver bit. The screwdriver bit is used to dock with the adjusting screw and rotate under the drive of the rotating drive member.

[0007] In some embodiments, the processing equipment also includes a clamping assembly, which is connected to the transfer assembly and moves synchronously with the electric screwdriver assembly; the clamping assembly is used to press the button and / or the shell on which the button is installed when the electric screwdriver assembly is docked with the adjusting screw.

[0008] In some embodiments, the clamping assembly includes a fixing member, a pressure member and an elastic member, the fixing member is connected to the transfer assembly, the pressure member and the fixing member are spaced apart and slidably connected in the axial direction of the adjusting screw, and the elastic member is arranged between the pressure member and the fixing member; wherein the pressure member is used to press the button and slide relative to the fixing member, and the elastic member undergoes elastic deformation following the relative sliding of the pressure member and the fixing member.

[0009] In some embodiments, the button is provided with a pressing block; the processing equipment also includes a touch assembly, the touch assembly includes a fixed frame, a touch drive member and a touch member, the fixed frame is arranged on the machine base, the touch drive member is arranged on the fixed frame and connected to the touch member; wherein the touch member is used to move along the pressing direction of the button under the drive of the touch drive member and touch the pressing block.

[0010] In some embodiments, the touch member includes a detection element, which is connected to the touch driving member; the detection element is used to detect the button by touching the pressing block.

[0011] In some embodiments, the touch member also includes a moving block and an elastic member, the moving block is connected to the touch drive member, the detection element is arranged on the moving block, the detection element and the moving block are spaced apart and slidably connected in the pressing direction of the button, and the elastic member is arranged between the detection element and the moving block; wherein the detection element is used to slide relative to the moving block when the pressing block is touched, and the elastic member undergoes elastic deformation following the relative sliding of the detection element and the moving block.

[0012] In some embodiments, the pressing direction of the pressing component and the touching direction of the touching component are parallel to and opposite to each other.

[0013] In some embodiments, the button is also provided with an electrical connection structure; the processing equipment also includes a transfer test assembly, the transfer test assembly includes a base, a first pressure block and a second pressure block, the base is provided with a first contact, the first contact is used for electrical connection to an external electronic device; the first pressure block is arranged on one side of the base, the first pressure block is provided with a second contact, the second contact is electrically connected to the first contact; the second pressure block is arranged relative to the first pressure block, the second pressure block is movably connected to the base, the second pressure block is used to cooperate with the first pressure block to clamp the electrical connection structure, and is electrically connected to the second contact via the electrical connection structure.

[0014] In some embodiments, the adapter test assembly also includes an adapter block, which is used to electrically connect to an external electronic device. The adapter block is detachably disposed on the base, and the adapter block is provided with a third contact, which is used to electrically connect to the first contact when the adapter block is disposed on the base.

[0015] Through the processing equipment provided by the present application, when the button needs to be adjusted, the button can be placed on the positioning table, and the electric screwdriver assembly can be driven to move by the transfer assembly so that the electric screwdriver assembly can be docked with the adjusting screw. Then the electric screwdriver assembly can screw the adjusting screw to a specified angle to fully connect the pressing block of the button with the electrical connection structure, and adjust the height difference between the button and the shell to a specified value, thereby realizing automatic adjustment of the button and achieving the effect of reducing processing errors and improving processing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 This is a schematic diagram of the structure of an electronic product according to an embodiment of the present application.

[0017] Figure 2 It is a front schematic diagram of a housing with a button installed according to an embodiment of the present application.

[0018] Figure 3 This is a cross-sectional view of a button according to an embodiment of the present application.

[0019] Figure 4 This is a schematic diagram of the state of a button when connected to an electronic device according to an embodiment of the present application.

[0020] Figure 5 It is a schematic diagram of the structure of the electric screwdriver assembly and the clamping assembly of an embodiment of the present application.

[0021] Figure 6 for Figure 5 A local enlarged view of point VI in the figure.

[0022] Figure 7 This is a schematic diagram of the state of the button of an embodiment of the present application when performing a conduction test.

[0023] Figure 8 It is a schematic diagram of the structure of the touch assembly of an embodiment of the present application.

[0024] Fig. 9 It is a schematic diagram of the structure of the switching test component of an embodiment of the present application.

[0025] Fig.10 This is a schematic diagram of the structure of the adapter block and the base when they are disassembled according to an embodiment of the present application.

[0026] Main component symbols

[0027] Processing equipment 100

[0028] Base 10

[0029] Positioning stage 20

[0030] Make way hole 21

[0031] Positioning structure 22

[0032] Adsorption structure 23

[0033] Transfer component 30

[0034] Electric screwdriver assembly 40

[0035] Support frame 41

[0036] Rotating drive member 42

[0037] Batch 43

[0038] Visual Identity Components 50

[0039] Clamping assembly 60

[0040] Fixing 61

[0041] First communication hole 611

[0042] Pressing member 62

[0043] The second communication hole 621

[0044] Bump 622

[0045] Elastic parts 63

[0046] Guide shaft 64

[0047] Scanning detection component 70

[0048] Touch assembly 80

[0049] Fixed frame 81

[0050] Touch drive element 82

[0051] Touch piece 83

[0052] Detection element 84

[0053] Move Block 85

[0054] Elastic member 86

[0055] Guide column 87

[0056] Support block 88

[0057] Transfer test kit 90

[0058] Base 91

[0059] First contact 911

[0060] The third magnetic member 912

[0061] Block 913

[0062] First pressing block 92

[0063] Second contact 921

[0064] Positioning slot 922

[0065] Positioning pin 923

[0066] The first magnetic member 924

[0067] Second pressing block 93

[0068] Positioning protrusion 931

[0069] Positioning hole 932

[0070] The second magnetic member 933

[0071] Transfer block 94

[0072] The third contact 941

[0073] Fourth magnetic member 942

[0074] Card slot 943

[0075] Housing 200

[0076] Press hole 201

[0077] Button 300

[0078] Bottom shell 301

[0079] Pressing block 302

[0080] Adjusting screw 303

[0081] Electrical connection structure 304

[0082] Conductive spring 305

[0083] The following specific implementation methods will further illustrate the present application in conjunction with the above-mentioned drawings. DETAILED DESCRIPTION

[0084] In the description of the embodiments of the present application, the technical terms "first", "second", etc. are only used to distinguish different objects, and cannot be understood as indicating or implying relative importance or implicitly indicating the number, specific order or primary and secondary relationship of the indicated technical features. In the description of the embodiments of the present application, the meaning of "multiple" is more than two, unless otherwise clearly and specifically defined.

[0085] It should be noted that when an element is considered to be "connected" to another element, it can be directly connected to the other element or there may be a centrally arranged element at the same time. When an element is considered to be "set on" another element, it can be directly set on the other element or there may be a centrally arranged element at the same time. The directional descriptions in this application are all based on the direction of the element to be processed in the processing test scenario, not the direction of the element in actual use.

[0086] In this application, unless otherwise clearly specified and limited, the terms "connection", "fixation" and the like should be understood in a broad sense. For example, fixed connection can be clamping fixation, bolting fixation or integral molding, etc. For ordinary technicians in this field, the specific meanings of the above terms in this application can be understood according to specific circumstances.

[0087] Reference to "embodiments" herein means that a particular feature, structure, or characteristic described in conjunction with the embodiments may be included in at least one embodiment of the present application. The appearance of the phrase in various locations in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0088] Currently, electronic products are usually provided with buttons, such as a power button (Power Bottom, PB for short).

[0089] Common buttons on the market are provided with a pressing block, a substrate and an adjusting screw, wherein the pressing block is provided on the substrate, and the adjusting screw is provided on the substrate and connected to the pressing block. By screwing the adjusting screw, the height of the pressing block can be adjusted, that is, the distance between the pressing surface of the pressing block and the substrate can be adjusted.

[0090] The electronic product is provided with a housing, and the housing is provided with a through hole adapted to the button. When installing the button, the button needs to be fixed inside the housing, and the pressing block is exposed outside the housing through the through hole.

[0091] In the processing of electronic products, after the button is fixed, the adjusting screw of the button needs to be adjusted so that the button can meet the corresponding production requirements, including but not limited to the requirements for the height difference between the button and the shell, the requirements for the gap width between the button and the shell, the requirements for the feel of pressing the button, etc., and the above production requirements can all be met by screwing the adjusting screw. Among them, the height difference refers to the distance between the pressing surface of the pressing block and the outer side of the shell. The height difference between the button and the shell can be directly adjusted by screwing the adjusting screw, and the height difference between the button and the shell will affect the gap width between the button and the shell, as well as the feel of pressing the button.

[0092] In the related art, the button's adjustment screw is adjusted manually, that is, the adjustment screw is manually screwed with a tool to rotate the adjustment screw to a specified angle, and then multiple points of the button (such as top, bottom, left, right, and center) are manually pressed to perform a feel test, which has problems of large errors and low efficiency.

[0093] To this end, an embodiment of the present application provides a processing device that has the effect of reducing processing errors and improving processing efficiency.

[0094] Figure 1 This is a schematic diagram of the structure of an electronic product according to an embodiment of the present application. Figure 2 It is a front schematic diagram of a housing with a button installed according to an embodiment of the present application.

[0095] like Figure 1 and Figure 2As shown, a processing device 100 provided in the present application can be used to process an electronic product, and the electronic product can be a shell 200 equipped with a button 300.

[0096] Figure 3 This is a cross-sectional view of a button according to an embodiment of the present application.

[0097] like Figure 2 and Figure 3 As shown, the housing 200 has a front side and a back side, and a pressing hole 201 is provided on the front side of the housing 200, and the pressing hole 201 penetrates the housing 200. The button 300 includes a bottom shell 301, a pressing block 302, an adjusting screw 303 and an electrical connection structure 304, wherein the bottom shell 301 is fixedly connected to the back side of the housing 200. The pressing block 302 is provided on the bottom shell 301, and the pressing block 302 is exposed to the front side of the housing 200 through the pressing hole 201, and the side of the pressing block 302 exposed to the pressing hole 201 forms a pressing surface. The distance between the pressing surface of the pressing block 302 and the outside of the housing 200 (i.e., the front side of the housing 200) forms a height difference between the button 300 and the housing.

[0098] The adjusting screw 303 is arranged on the bottom shell 301 and connected to the side of the pressing block 302 away from the pressing surface. The end of the adjusting screw 303 away from the pressing block 302 is provided with a jack, and the jack can be a plum blossom hole, a cross hole, etc. The adjusting screw 303 is docked with the tool of the screwdriver bit 43 through the jack, and rotates under the drive of the tool of the screwdriver bit 43. When the adjusting screw 303 rotates, the adjusting screw 303 can drive the pressing block 302 to move along the pressing direction. Among them, the pressing direction refers to the moving direction of the pressing block 302 when it is pressed. In the example of the present application, the axial direction of the adjusting screw 303 is parallel to the vertical direction (i.e., the Z-axis direction), and the pressing direction of the pressing block 302 is also parallel to the vertical direction.

[0099] It is worth noting that the displacement of the pressing block 302 can be calculated by the rotation angle of the adjusting screw 303 and the screw pitch. Therefore, by controlling the adjusting screw 303 to rotate to a specified angle, the pressing block 302 can be adjusted to a specified position. Exemplarily, when the adjusting screw 303 rotates forward (such as clockwise) to a specified angle, the adjusting screw 303 drives the pressing block 302 to move a corresponding distance in the direction of being exposed from the housing 200, and the height difference between the button 300 and the housing 200 is reduced. When the adjusting screw 303 is reversed (such as counterclockwise) to a specified angle, the adjusting screw 303 drives the pressing block 302 to move a corresponding distance in the direction of being retracted from the housing 200, and the height difference between the button 300 and the housing 200 is increased.

[0100] Figure 4 This is a schematic diagram of the state of a button when connected to an electronic device according to an embodiment of the present application.

[0101] like Figure 3 and Figure 4 As shown, the electrical connection structure 304 is provided on the bottom shell 301, and the electrical connection structure 304 is used to electrically connect with the electronic device 400 outside the button 300. Among them, the electronic device 400 can be a control machine, which can be connected with the electrical connection structure 304 and receive and process the signal sent by the electrical connection structure 304. Exemplarily, the electrical connection structure 304 can be a flexible circuit board, and the flexible circuit board can be provided with electronic components for realizing the function of the button 300. One end of the electrical connection structure 304 is provided with a flat cable, and the flat cable is used to electrically connect with the electronic device 400 outside the button 300.

[0102] A conductive spring 305 is disposed at one end of the adjusting screw 303 facing the pressing block 302. The conductive spring 305 is located between the pressing block 302 and the electrical connection structure 304. The conductive spring 305 is used to connect the pressing block 302 with the electrical connection structure 304. The conductive spring 305 can generate elastic deformation when the pressing block 302 is pressed, and contact the preset electrical breakpoint on the electrical connection structure 304, so that the electrical connection structure 304 outputs a corresponding signal to the external electronic device 400. The connection state between the conductive spring 305 and the electrical connection structure 304 is affected by the position of the pressing block 302.

[0103] For example, when the button 300 leaves the factory, the conductive spring 305 is temporarily not connected to the electrical connection structure 304, so that the pressing block 302 is not completely connected to the electrical connection structure 304. At this time, even if the electrical connection structure 304 is already connected to the external electronic device 400, the electrical connection structure 304 will not output an electrical signal to the electronic device 400 when the pressing block 302 is pressed. When the pressing block 302 moves a certain distance driven by the adjusting screw 303, the conductive spring 305 is connected to the electrical connection structure 304, so that the pressing block 302 is completely connected to the electrical connection structure 304, and the electrical connection structure 304 can output an electrical signal to the electronic device 400 when the pressing block 302 is pressed.

[0104] For the convenience of description, the following takes the adjustment screw 303 at different rotation angles as an example to illustrate the installation of the button 300.

[0105] When the button 300 is not adjusted, the rotation angle of the adjustment screw 303 is at the first rotation angle A1°, at this time, the pressing block 302 is at the first position relative to the housing 200, and the height difference between the button 300 and the housing 200 is the first height difference D1. At this time, the pressing block 302 is not completely connected to the electrical connection structure 304, and when the pressing block 302 is pressed, the electrical connection structure 304 will not output an electrical signal to the corresponding electronic device 400.

[0106] On this basis, if the adjusting screw 303 is rotated forward by a specified angle △A°, so that the adjusting screw 303 is at a second rotation angle A2°, the pressing block 302 moves from the first position to the second position relative to the housing 200, and the displacement of the pressing block 302 is △S1. At this time, the height difference between the button 300 and the housing 200 is N2, N2 = N1-△S1. At this time, the pressing block 302 is completely connected to the electrical connection structure 304, and when the pressing block 302 is pressed, the electrical connection structure 304 can output an electrical signal to the corresponding electronic device 400.

[0107] On this basis, if the adjusting screw 303 continues to rotate forward by an angle △A°, so that the adjusting screw 303 is at a third rotation angle A3°, the pressing block 302 moves from the second position to the third position relative to the housing 200, and the displacement of the pressing block 302 is △S2. At this time, the height difference between the button 300 and the housing 200 is N3, N3 = N2-△S2. At this time, the pressing block 302 is completely connected to the electrical connection structure 304, and when the pressing block 302 is pressed, the electrical connection structure 304 can still output an electrical signal to the corresponding electronic device 400.

[0108] On this basis, if the adjusting screw 303 is reversed by an angle △A°, the adjusting screw 303 returns to the second rotation angle, the pressing block 302 moves from the third position to the second position relative to the housing 200, and the height difference between the button 300 and the housing 200 returns to N2. At this time, the pressing block 302 is completely connected to the electrical connection structure 304, and when the pressing block 302 is pressed, the electrical connection structure 304 can output an electrical signal to the corresponding electronic device 400.

[0109] like Figure 1 and Figure 3 As shown, it is worth noting that in actual application, in order to ensure that the button 300 can work normally, after the processing equipment 100 completes the adjustment of the button 300, the pressing block 302 of the button 300 and the electrical connection structure 304 should be completely connected, that is, the maximum value of the height difference between the button 300 and the housing 200 is N2. In the example of the present application, the pressing block 302 of the button 300 put into the processing equipment 100 is in the first position. Therefore, the processing equipment 100 is configured to ensure that the pressing block 302 first moves to the second position, and then reduces the height difference between the button 300 and the housing 200, so as to adjust the height difference between the button 300 and the housing 200 on the basis of satisfying the condition that the electrical connection structure 304 is turned on. In other embodiments, if the pressing block 302 of the button 300 put into the processing equipment 100 is in the second position, the height difference between the button 300 and the housing 200 can be directly reduced, and the condition that the electrical connection structure 304 is turned on can be ensured.

[0110] like Figure 1 and Figure 3As shown, the processing equipment 100 includes a base 10, a positioning platform 20, a transfer assembly 30 and an electric screwdriver assembly 40. The positioning platform 20 and the transfer assembly 30 are both arranged on the base 10, and the base 10 is used to support the positioning platform 20 and the transfer assembly 30. The positioning platform 20 is used to place the button 300, wherein the button 300 is placed in a manner that the housing 200 with the button 300 installed is placed on the positioning platform 20 with the front side facing downward, so that the button 300 and the housing 200 are relatively fixed to the positioning platform 20. The electric screwdriver assembly 40 is connected to the transfer assembly 30. The transfer assembly 30 is used to drive the electric screwdriver assembly 40 to move. When the electric screwdriver assembly 40 moves to a specified position under the drive of the transfer assembly 30, the electric screwdriver assembly 40 can dock with the adjusting screw 303 and screw the adjusting screw 303 to a specified angle.

[0111] Through the processing equipment 100 provided by the present application, when the button 300 needs to be adjusted, the button 300 can be placed on the positioning table 20, and the electric screwdriver component 40 can be driven to move by the transfer component 30 so that the electric screwdriver component 40 can be docked with the adjusting screw 303, and then the electric screwdriver component 40 can screw the adjusting screw 303 to a specified angle so that the pressing block 302 of the button 300 is fully connected with the electrical connection structure 304, and the height difference between the button 300 and the shell 200 is adjusted to a specified value, thereby realizing automatic adjustment of the button 300, thereby reducing processing errors and improving processing efficiency.

[0112] It is worth noting that the rotation angle of the adjustment screw 303 is a system preset value. Different buttons 300 may correspond to different system preset values. The system preset values ​​may be obtained by analyzing the statistical data. The statistical data include the height difference of the button 300, the feel coefficient reflecting the pressing feel, etc.

[0113] In this embodiment, the processing equipment 100 further includes a visual recognition component 50, which is connected to the transfer component 30 and can be moved under the drive of the transfer component 30. The visual recognition component 50 is used to photograph the electronic product to obtain photographing information, and the photographing information can be processed to obtain product information corresponding to the electronic product, so as to realize functions such as product traceability and screwdriver angle calibration.

[0114] In the present embodiment, the processing equipment 100 further includes a clamping assembly 60, which is connected to the transfer assembly 30 and moves synchronously with the electric screwdriver assembly 40. When the electric screwdriver assembly 40 moves to the position of the docking button 300 under the drive of the transfer assembly 30, the clamping assembly 60 can press the button 300 and / or the housing 200 on which the button 300 is installed, position the button 300, and prevent the button 300 from being kept from deviating from the position during the adjustment process. It can be understood that the button 300 is fixedly connected to the housing 200, and the clamping assembly 60 can fix the button 300 by directly pressing the button 300, can also fix the button 300 by directly pressing the housing 200, and can also fix the button 300 by pressing the button 300 and the housing 200 at the same time.

[0115] In this embodiment, the processing equipment 100 further includes a scanning detection component 70, which is disposed on the base 10. The scanning detection component 70 is used to detect the gap and height difference between the button 300 and the housing 200 to determine whether the adjusted button 300 meets the corresponding gap requirement.

[0116] In this embodiment, the processing device 100 further includes a contact component 80, which is disposed on the base 10 and corresponds to the position of the pressing block 302 of the button 300. The contact component 80 is used to touch the pressing block 302 along the pressing direction of the button 300, so that the user can be simulated to press the pressing block 302 of the button 300.

[0117] like Figure 1 , Figure 3 and Figure 4 As shown, in this embodiment, the processing equipment 100 also includes a transfer test component 90, which is used to electrically connect to the external electronic device 400, and the transfer test component 90 is used to electrically connect to the electrical connection structure 304 of the button 300. It can be understood that the electrical connection between the electrical connection structure 304 of the button 300 and the external electronic device 400 can be established by using the transfer test component 90. Exemplarily, the electronic device 400 is provided with an indicator light, and when the electrical connection structure 304 is connected to the electronic device 400 and outputs a corresponding signal, the indicator light can be illuminated; when the electrical connection structure 304 is not connected to the electronic device 400 or outputs a corresponding signal, the indicator light does not emit light.

[0118] It is worth noting that by using the cooperation of the adapter test component 90 and the touch component 80, it is possible to detect whether the pressing block 302 is in the second position. Exemplarily, when the electrical connection structure 304 is connected to the electronic device 400 through the adapter test component 90, and the touch component 80 touches the pressing block 302, if the electrical connection structure 304 is not connected to the electronic device 400 or outputs a corresponding signal, it can be determined that the pressing block 302 is not fully connected to the electrical connection structure 304; if the electrical connection structure 304 is connected to the electronic device 400 and outputs a corresponding signal, it can be determined that the pressing block 302 is fully connected to the electrical connection structure 304, and at the moment when the electrical connection structure 304 goes from not outputting a signal to outputting a signal, it can be determined that the pressing block 302 is in the second position.

[0119] On the other hand, for the same batch of buttons 300 that have not been adjusted, although the multiple buttons 300 are in a state where the pressing block 302 is not completely connected to the electrical connection structure 304, the actual position of the pressing block 302 may be different. That is, for different buttons 300, the height of the pressing block 302 in the first position may be different, resulting in different height differences of different buttons 300 before adjustment. In this way, in the process of adjusting the buttons 300, if the adjustment screws 303 of different buttons 300 are directly screwed according to the same system preset value, it may cause a large error between the final height difference of each button 300 and the ideal value.

[0120] However, since the pressing blocks 302 and the electrical connection structures 304 of the same batch of buttons 300 have the same structure, the heights of the pressing blocks 302 in the second position are the same (or the height difference is within a preset range) for different buttons 300. In this way, in the process of adjusting the buttons 300, the pressing blocks 302 can be moved to the second position first, and this position can be used as a reference, and then the adjustment screws 303 of different buttons 300 can be screwed according to the same system preset value, so as to reduce the error between the final height difference of each button 300 and the ideal value.

[0121] like Figure 1 As shown, in one embodiment of the present application, the main body of the transfer assembly 30 is bolted and fixed to the machine base 10, and the movable end of the transfer assembly 30 is provided with a mounting plate 31, and the mounting plate 31 is used to connect the electric screwdriver assembly 40. The transfer assembly 30 is a two-dimensional servo translation device, which can drive the electric screwdriver assembly 40 to move in the X-axis and Z-axis directions. In other embodiments, the transfer assembly 30 can also be a three-dimensional servo translation device, a multi-axis manipulator or other driving device, as long as it can achieve the function of driving the electric screwdriver assembly 40 to move to a specified position, and the present application does not limit this.

[0122] Figure 5 It is a schematic diagram of the structure of the electric screwdriver assembly and the clamping assembly of an embodiment of the present application.

[0123] like Figure 1 , Figure 3 and Figure 5 As shown, in one embodiment of the present application, the electric screwdriver assembly 40 includes a support frame 41, a rotating drive member 42 and a screwdriver bit 43. The support frame 41 is connected to the transfer assembly 30. The rotating drive member 42 is disposed on the support frame 41 and connected to the screwdriver bit 43. The screwdriver bit 43 is parallel to the axial direction of the adjusting screw 303, and the screwdriver bit 43 is used to dock with the adjusting screw 303 and rotate under the drive of the rotating drive member 42.

[0124] Exemplarily, the support frame 41 is located above the positioning platform 20, and the support frame 41 is bolted and fixed to the mounting plate 31. The rotating drive member 42 can be a servo motor, the body of the servo motor is bolted and fixed to the support frame 41, and the output end of the servo motor is arranged downward. The screwdriver bit 43 includes a clamping portion and a cutter head (not shown in the figure), the clamping portion is fixedly connected to the output end of the servo motor through a coupling, and the cutter head is detachably mounted on the lower end of the clamping portion, and the cutter head is used to be plugged into the socket of the adjusting screw 303, and the cutter head is replaced according to the shape of the socket of the adjusting screw 303.

[0125] It can be understood that the rotating driving member 42 and the screwdriver bit 43 both move along with the support frame 41 , and the transfer assembly 30 drives the screwdriver bit 43 to move to a designated position by driving the support frame 41 to move.

[0126] When the button 300 needs to be adjusted, the transfer assembly 30 can drive the bit 43 to move to the top of the adjusting screw 303; then, the transfer assembly 30 can drive the bit 43 to descend so that the lower end of the bit 43 is inserted into the jack of the adjusting screw 303 and docked with the adjusting screw 303; then, the rotating drive member 42 drives the bit 43 to rotate a specified angle to screw the adjusting screw 303 to a specified angle. After the button 300 is adjusted, the transfer assembly 30 can drive the bit 43 to rise and move away from the adjusting screw 303.

[0127] In one embodiment of the present application, the visual recognition component 50 includes a camera module, which is located above the positioning platform 20 and on one side of the support frame 41. The main body of the camera module is bolted and fixed to the mounting plate 31, and the shooting end of the camera module faces the positioning platform 20.

[0128] Before the screwdriver bit 43 is docked with the adjusting screw 303, the transfer component 30 can first move the visual recognition component 50 to the top of the adjusting screw 303 and photograph the adjusting screw 303 to obtain first photographing information of the socket of the adjusting screw 303. By analyzing the first photographing information, the actual angle of the socket of the adjusting screw 303 can be obtained.

[0129] When the transfer assembly 30 drives the bit 43 to move to just above the adjusting screw 303, the bit 43 can be driven to rotate by rotating the driving member 42 so that the angle of the cutting head of the bit 43 is consistent with the angle of the socket of the adjusting screw 303. In this way, the bit 43 can directly dock with the adjusting screw 303 when descending, thereby realizing the bit angle correction and reducing the mechanical wear between the bit 43 and the adjusting screw 303.

[0130] In this embodiment, a product identification is provided on the surface of the housing 200, and the product identification may be a QR code, and the product identification records the product information of the electronic product. Before the shooting module shoots the adjustment screw 303, the transfer component 30 may first cause the visual recognition component 50 to move directly above the product identification and shoot the product identification to obtain the second shooting information that shoots the product identification. By decoding the second shooting information, the product information of the housing 200 can be obtained. After completing the adjustment of the button 300, the corresponding adjustment information (such as rotation angle, displacement, time, equipment model, etc.) can be bound to the product information of the electronic product to facilitate the subsequent tracing of the processing process of the electronic product.

[0131] Figure 6 for Figure 5 A local enlarged view of point VI in the figure.

[0132] like Figure 3 , Figure 5 and Figure 6 As shown, in one embodiment of the present application, the clamping assembly 60 includes a fixing member 61, a pressing member 62 and an elastic member 63, wherein the fixing member 61 is connected to the transfer assembly 30, and the pressing member 62 and the fixing member 61 are spaced apart and slidably connected in the axial direction of the adjusting screw 303. The elastic member 63 is disposed between the pressing member 62 and the fixing member 61. The pressing member 62 is used to press the button 300, and when the pressing member 62 presses the button 300, the pressing member 62 and the fixing member 61 slide relative to each other, and the elastic member 63 elastically deforms following the relative sliding of the pressing member 62 and the fixing member 61.

[0133] Exemplarily, the fixing member 61 is located below the support frame 41, the fixing member 61 is bolted and fixed to the mounting plate 31, and the fixing member 61 is provided with a first communication hole 611, and the first communication hole 611 penetrates the fixing member 61 in the vertical direction. The pressing member 62 is located below the fixing member 61, and the pressing member 62 is provided with a second communication hole 621, and the second communication hole 621 penetrates the pressing member 62 in the vertical direction and corresponds to the first communication hole 611. The batch head 43 is penetrated through the first communication hole 611 and the second communication hole 621. The bottom of the pressing member 62 is provided with a protrusion 622 for pressing the button 300 and / or the housing 200, and the protrusion 622 can be set according to the shape of the button 300 and / or the housing 200. In the example of the present application, the pressing member 62 is provided with a first protrusion for pressing the button 300 and a second protrusion for pressing the housing 200 at the same time. In other embodiments, the pressing member 62 can also be provided with a first protrusion or a second protrusion separately.

[0134] A guide shaft 64 is provided between the fixing member 61 and the pressing member 62. The guide shaft 64 is parallel to the vertical direction. The fixing member 61 is slidably connected with the pressing member 62 through the guide shaft 64. A plurality of guide shafts 64 are provided, and the plurality of guide shafts 64 are distributed around the circumference of the pressing member 62. When the fixing member 61 and the pressing member 62 slide relative to each other, the plurality of guide shafts 64 simultaneously guide and limit the pressing member 62. The elastic member 63 is a spring. The elastic member 63 is wound around the guide shaft 64. The fixing member 61 and the pressing member 62 are respectively supported at the upper and lower ends of the elastic member 63. When the fixing member 61 and the pressing member 62 are close to each other, the elastic member 63 is compressed; when the elastic member 63 is released, the elastic member 63 pushes the fixing member 61 and the pressing member 62 away from each other.

[0135] When the transfer assembly 30 drives the bit 43 to move to the top of the adjusting screw 303, the pressing member 62 is also located above the button 300. As the transfer assembly 30 drives the bit 43 to descend, the pressing member 62 will synchronously descend and press the button 300 and the housing 200, and compress the elastic member 63. When the transfer assembly 30 drives the bit 43 to rise and move away from the adjusting screw 303, the pressing member 62 will synchronously rise and move away from the button 300 and the housing 200, and release the elastic member 63.

[0136] In the example of the present application, when the pressing member 62 does not contact the button 300 and the shell 200, the height of the bottom surface of the pressing member 62 is lower than the height of the lower end of the bit 43. During the descending process of the bit 43, the pressing member 62 will first press the button 300 and the shell 200, and then the bit 43 will dock with the adjusting screw 303 to prevent the button 300 from deviating from its position before the bit 43 docks with the adjusting screw 303.

[0137] like Figure 1 and Figure 3As shown, in one embodiment of the present application, the positioning platform 20 is provided with a positioning structure 22 and an adsorption structure 23. The positioning structure 22 is distributed around the circumference of the housing 200, and the positioning structure 22 is used to position the housing 200. The adsorption structure 23 is used to adsorb the bottom of the housing 200, so that the housing 200 and the positioning platform 20 are relatively fixed, and the housing 200 is prevented from deviating from the position during the processing and testing process.

[0138] Figure 7 This is a schematic diagram of the state of the button of an embodiment of the present application when performing a conduction test.

[0139] like Figure 7 As shown, in one embodiment of the present application, the pressing direction of the pressing component 60 is parallel to and opposite to the touching direction of the contact component 80. In this way, while the contact component 80 touches the pressing block 302 upward, the pressing component 60 presses the button 300 downward to prevent the contact component 80 from damaging the connection structure between the housing 200 and the button 300 during the process of touching the pressing block 302.

[0140] Figure 8 It is a schematic diagram of the structure of the touch assembly of an embodiment of the present application.

[0141] like Figure 1 , Figure 7 and Figure 8 As shown, in one embodiment of the present application, the touch assembly 80 includes a fixing frame 81, a touch driving member 82 and a touch member 83. The fixing frame 81 is disposed on the base 10, and the touch driving member 82 is disposed on the fixing frame 81 and connected to the touch member 83. The touch member 83 is used to move along the pressing direction of the button 300 under the drive of the touch driving member 82 and touch the pressing block 302.

[0142] Exemplarily, the fixing frame 81 is located below the positioning platform 20, and the fixing frame 81 is bolted and fixed to the machine base 10. The touch driving member 82 can be a slide cylinder, the cylinder body of the cylinder is bolted and fixed to the fixing frame 81, and the slide of the cylinder is connected to the touch member 83. The positioning platform 20 is provided with a clearance hole 21, which passes through the positioning platform 20 in the vertical direction, and the clearance hole 21 is located below the pressing block 302 of the button 300. The touch member 83 is penetrated into the positioning platform 20 through the clearance hole 21 to contact the pressing block 302 of the button 300.

[0143] When the housing 200 is placed on the positioning platform 20, the pressing block 302 of the button 300 is located directly above the touch member 83. When the pressing block 302 needs to be pressed, the touch driving member 82 can drive the touch member 83 to rise, so that the touch member 83 passes through the clearance hole 21 and touches the pressing block 302, simulating the user pressing the pressing block 302 of the button 300. When the pressing block 302 does not need to be pressed, the touch driving member 82 can drive the touch member 83 to descend, so that the touch member 83 is away from the pressing block 302.

[0144] In one embodiment of the present application, the touch member 83 includes a detection element 84 , and the detection element 84 is connected to the touch driving member 82 . The touch driving member 82 is used to detect the button 300 by touching the pressing block 302 .

[0145] For example, the detection element 84 may be a displacement sensor, and a spring is built into the displacement sensor. When the displacement sensor rises and touches the pressing block 302 under the drive of the touch driving member 82, the spring built into the displacement sensor yields, and the displacement sensor detects the existence of the pressing block 302 and provides feedback, thereby ensuring that the button 300 is located on the positioning platform 20. In addition, the displacement sensor can detect the displacement of the pressing block 302.

[0146] In one embodiment of the present application, the touch member 83 also includes a moving block 85 and an elastic member 86, wherein the moving block 85 is connected to the touch driving member 82, and the detection element 84 is arranged on the moving block 85. The detection element 84 is connected to the touch driving member 82 through the moving block 85, and the touch driving member 82 drives the detection element 84 to move up and down by driving the moving block 85 to rise and fall. The detection element 84 and the moving block 85 are spaced and slidably connected in the pressing direction of the button 300, and the elastic member 86 is arranged between the detection element 84 and the moving block 85. When the detection element 84 touches the pressing block 302, the detection element 84 and the moving block 85 slide relative to each other, and the elastic member 86 elastically deforms following the relative sliding of the detection element 84 and the moving block 85.

[0147] Exemplarily, the moving block 85 is bolted and fixed to the slide of the touch driving member 82. A support block 88 is provided at the bottom of the detection element 84, and the support block 88 is located above the moving block 85. A guide column 87 is provided between the support block 88 and the moving block 85, and the guide column 87 is parallel to the vertical direction. The detection element 84 is slidably connected with the moving block 85 through the guide column 87. When the detection element 84 and the moving block 85 slide relative to each other, the guide column 87 plays a guiding and limiting role on the detection element 84. The elastic member 86 is a spring, and the elastic member 86 is wound around the guide column 87. The support block 88 and the moving block 85 are respectively supported at the upper and lower ends of the elastic member 86. When the detection element 84 and the moving block 85 are close to each other, the elastic member 86 is compressed; when the elastic member 86 is released, the elastic member 86 pushes the detection element 84 and the moving block 85 away from each other.

[0148] In the process of the touch drive 82 driving the detection element 84 to touch the pressing block 302 upward, the detection element 84 will first contact the pressing block 302, and the spring built into the detection element 84 will be compressed. Since the elastic force of the spring built into the detection element 84 is weak, the detection element 84 may not be able to directly push the pressing block 302 to move. At this time, the elastic member 86 can provide support for the detection element 84. As the detection element 84 continues to move upward, the elastic member 86 supports the detection element 84 to touch the pressing block 302, so that the pressing block 302 moves into place. In addition, in the process of the detection element 84 touching the pressing block 302, the detection element 84 and the moving block 85 approach each other, and the elastic member 86 is compressed to absorb kinetic energy to prevent the excessive driving force of the touch drive 82 from damaging the pressing block 302.

[0149] like Figure 1 and Figure 7 As shown, in one embodiment of the present application, the scanning detection component 70 includes a laser line scanning camera. The scanning detection component 70 is located below the positioning platform 20 and is bolted to the base 10. The shooting end of the scanning detection component 70 scans the button 300 through the clearance hole 21, and the gap and height difference between the button 300 and the housing 200 can be obtained by analyzing the scanning results.

[0150] Fig. 9 It is a schematic diagram of the structure of the switching test component of an embodiment of the present application. Fig.10 This is a schematic diagram of the structure of the adapter block and the base when they are disassembled according to an embodiment of the present application.

[0151] like Figure 4 , Fig. 9 and Fig.10As shown, in one embodiment of the present application, the adapter test assembly 90 includes a base 91, a first pressure block 92 and a second pressure block 93, wherein the base 91 is provided with a first contact 911, and the first contact 911 is used for electrical connection with an external electronic device 400. The first pressure block 92 is provided on one side of the base 91, and the first pressure block 92 is provided with a second contact 921, and the second contact 921 is electrically connected to the first contact 911. The second pressure block 93 is arranged relative to the first pressure block 92, and the second pressure block 93 is movably connected to the base 91, and the second pressure block 93 is used to cooperate with the first pressure block 92 to clamp the electrical connection structure 304, and the electrical connection structure 304 is electrically connected to the second contact 921.

[0152] It can be understood that the adapter test component 90 is used to establish a connection between the button 300 and the electronic device 400 so that the electronic device 400 can detect whether the electrical connection structure 304 of the button 300 can be turned on or output a signal, thereby realizing the function of the conduction test.

[0153] When it is necessary to perform a conduction test on the button 300, the second pressure block 93 can be moved away from the first pressure block 92, and then the electrical connection structure 304 can be placed on the first pressure block 92 and contacted with the second contact 921. Then, the second pressure block 93 can be moved close to the first pressure block 92, and the second pressure block 93 and the first pressure block 92 can cooperate to clamp the electrical connection structure 304, so that the electrical connection structure 304 and the second contact 921 maintain electrical connection, thereby preventing the electrical connection structure 304 from detaching from the second contact 921 during the conduction test.

[0154] like Figure 7 As shown, it is worth noting that the transfer test assembly 90 in the present application is detachable relative to the positioning platform 20. During the conduction test, the transfer test assembly 90 as a whole can be directly placed on the housing 200, or on the positioning platform 20 or other supporting structures. In this way, it is convenient for operators to connect the electrical connection structure 304.

[0155] like Figure 4 , Fig. 9 and Fig.10 As shown, illustratively, the first pressing block 92 is fixedly disposed on one side of the base 91, and the fixing method can be an integrated fixing. The first contact 911 and the second contact 921 can both be copper column structures, the first contact 911 is embedded and fixed on the upper side of the base 91, and the second contact 921 is embedded and fixed on the upper side of the first pressing block 92. The second contact 921 includes a second positive contact and a second negative contact, and the second positive contact and the second negative contact are used to contact the positive and negative poles of the electrical connection structure 304. The second pressing block 93 is located above the first pressing block 92, and the second pressing block 93 is rotatably connected to the base 91. The second pressing block 93 can move relative to the first pressing block 92 by rotation.

[0156] When the electrical connection structure 304 needs to be fixed, the second pressing block 93 can be turned upward to move the second pressing block 93 away from the first pressing block 92, and the power connection structure 304 can be placed between the first pressing block 92 and the second pressing block 93; then, when the second pressing block 93 is turned downward, the second pressing block 93 and the first pressing block 92 are closed to quickly complete the clamping and fixing of the electrical connection structure 304. In other embodiments, the second pressing block 93 can also be movably connected to the base 91 by means of sliding fit, detachable connection, etc., as long as the effect of conveniently clamping and fixing the electrical connection structure 304 can be achieved, and this application does not limit this.

[0157] In one embodiment of the present application, the first pressing block 92 is provided with a positioning groove 922, and the positioning groove 922 is used to accommodate the electrical connection structure 304. The second pressing block 93 is provided with a positioning protrusion 931 adapted to the positioning groove 922. Exemplarily, the positioning groove 922 can be L-shaped and adapted to the shape of the electrical connection structure 304. When the first pressing block 92 and the second pressing block 93 cooperate to clamp the electrical connection structure 304, the electrical connection structure 304 is accommodated in the positioning groove 922, and the positioning protrusion 931 and the positioning groove 922 cooperate to clamp the electrical connection structure 304, and the electrical connection structure 304 is further fixed.

[0158] In one embodiment of the present application, the first pressing block 92 is provided with a positioning pin 923, and the second pressing block 93 is provided with a positioning hole 932, and the positioning hole 932 is used for the positioning pin 923 to be inserted and positioned. The cooperation between the positioning pin 923 and the positioning hole 932 prevents the first pressing block 92 and the second pressing block 93 from positionally deviating, ensures that the first pressing block 92 and the second pressing block 93 can be closed normally, and improves the clamping stability.

[0159] In one embodiment of the present application, the first pressing block 92 is provided with a first magnetic member 924, and the second pressing block 93 is provided with a second magnetic member 933. When the first pressing block 92 and the second pressing block 93 are closed, the first magnetic member 924 and the second magnetic member 933 are attracted to each other to prevent the first pressing block 92 and the second pressing block 93 from automatically opening without human operation, thereby improving the clamping stability.

[0160] In one embodiment of the present application, the adapter test assembly 90 further includes an adapter block 94. The adapter block 94 is used to electrically connect to an external electronic device 400, that is, to establish a connection between the first contact 911 and the electronic device 400. The adapter block 94 is detachably disposed on the base 91, and the adapter block 94 is provided with a third contact 941, which is used to electrically connect to the first contact 911 when the adapter block 94 is disposed on the base 91, and the third contact 941 is electrically connected to the electronic device 400 through a lead.

[0161] When the adapter block 94 is mounted on the base 91, the third contact 941 contacts the first contact 911, and the first contact 911 is electrically connected to the electronic device 400. When the adapter block 94 is removed from the base 91, the third contact 941 does not contact the first contact 911, and the first contact 911 is not electrically connected to the electronic device 400.

[0162] It can be understood that by removing the adapter block 94 from the base 91, the connection between the electronic device 400 and the first contact 911 can be disconnected, thereby reducing the constraints of the lead wires and other structures of the electronic device 400 on the base 91, so as to facilitate the operator to operate the base 91 or the second pressing block 93 in a small space and quickly complete the clamping and fixing of the electrical connection structure 304. When a continuity test is required, the adapter block 94 can be reinstalled on the base 91 to re-establish the electrical connection between the first contact 911 and the electronic device 400.

[0163] Exemplarily, the adapter block 94 can be placed on the upper side of the base 91. The third contact 941 can be a copper column, and the third contact 941 is embedded and fixed at the bottom of the adapter block 94. The first contact 911 includes a first positive contact and a first negative contact, and the third contact 941 includes a third positive contact and a third negative contact. The third positive contact and the third negative contact are used to contact the first positive contact and the first negative contact, respectively, and the third positive contact and the third negative contact are electrically connected to the positive and negative electrodes of the electronic device 400 through leads, respectively. When the adapter block 94 is placed on the upper side of the base 91, the adapter block 94 is fixed to the base 91 under the action of gravity, and the operator can separate the adapter block 94 from the base 91 by removing the adapter block 94 from the base, thereby disconnecting the first contact 911 and the third contact 941.

[0164] In one embodiment of the present application, a third magnetic member 912 is disposed on the upper side of the base 91, and a fourth magnetic member 942 is disposed on the bottom of the adapter block 94. When the adapter block 94 is placed on the upper side of the base 91, the third magnetic member 912 and the fourth magnetic member 942 are attracted to each other to prevent the adapter block 94 from being separated from the base 91 without human operation, thereby improving the stability of the adapter block 94.

[0165] It is worth noting that in the present embodiment, the adapter block 94 and the base 91 are fixed by gravity and the magnetic adsorption structure 23. In other embodiments, a snap-fit ​​structure or a locking structure may be provided between the adapter block 94 and the base 91 to achieve fixation. As long as the effect of detachable fixation can be achieved, the present application does not impose any restrictions on this.

[0166] In one embodiment of the present application, a card block 913 is further provided on the upper side of the base 91, and a card slot 943 adapted to the card block 913 is provided on the bottom of the adapter block 94. When the adapter block 94 is placed on the upper side of the base 91, the card block 913 is plugged into the card slot 943 to position the adapter block 94, ensuring that the first contact 911 and the third contact 941 can be in normal contact, thereby improving the test stability.

[0167] like Figure 1 , Figure 4 and Figure 7 As shown, for ease of understanding, a workflow of the processing equipment 100 in the example of this embodiment is described below, and the workflow may include the following steps.

[0168] S1. Place the housing 200 with the button 300 installed on the positioning platform 20, and connect the button 300 and the electronic device 400 through a switching component.

[0169] S2. Drive the visual inspection to a specified position through the transfer component 30, photograph the product logo of the shell 200 to obtain the corresponding product information, and drive the visual inspection to another specified position through the transfer component 30, photograph the socket of the adjusting screw 303 to obtain the actual angle of the socket of the adjusting screw 303, and adjust the angle of the tool head of the electric screwdriver component 40 according to the actual angle of the socket of the adjusting screw 303.

[0170] S3. The electric screwdriver assembly 40 is driven to move to the top of the adjusting screw 303 by the transfer assembly 30 , and then the pressing assembly 60 is driven and pressed by the transfer assembly 30 until the pressing assembly 60 presses against the button 300 and the housing 200 .

[0171] S4. Touch the pressing block 302 of the button 300 through the touch component 80, and complete the detection of the button 300.

[0172] S5. The transfer assembly 30 and the pressing assembly 60 are driven to continue to descend through the transfer assembly 30 until the electric screwdriver assembly 40 is docked with the adjusting screw 303.

[0173] S6. Screw the adjusting screw 303 through the electric screwdriver assembly 40 until the button 300 is connected to the electronic device 400 and outputs a corresponding signal to determine that the pressing block 302 is in the second position.

[0174] S7. Use the electric screwdriver assembly 40 to screw the adjusting screw 303 so that the adjusting screw 303 rotates a specified angle (such as 360°, i.e. one circle) on the basis that the pressing block 302 is in the second position to achieve the best hand feeling range. At the same time, the detection element 84 of the touch assembly 80 records the displacement of the pressing block 302 in real time.

[0175] S8, the gap and height difference between the button 300 and the housing 200 are detected by the scanning detection component 70. If the gap and height difference are both within the preset range, it is confirmed that the button 300 is adjusted properly; otherwise, the electric screwdriver component 40 is used to screw the adjustment screw 303 to continue adjustment.

[0176] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of the present application and are not intended to limit it. Although the present application has been described in detail with reference to the preferred embodiments, a person of ordinary skill in the art should understand that the technical solution of the present application may be modified or replaced by equivalents without departing from the spirit and scope of the technical solution of the present application.

Claims

1. A processing equipment, characterized in that: include: Machine base; A positioning platform, arranged on the machine base, the positioning platform is used to place a button, and the button is provided with an adjusting screw; A transfer assembly, arranged on the machine base; An electric screwdriver assembly connected to the transfer assembly; The electric screwdriver assembly is used to move to a position where it docks with the adjusting screw under the drive of the transfer assembly, and to screw the adjusting screw to a specified angle.

2. The processing equipment according to claim 1, characterized in that: The electric screwdriver assembly includes a support frame, a rotating drive member and a screwdriver bit. The support frame is connected to the transfer assembly, and the rotating drive member is arranged on the support frame and connected to the screwdriver bit. The screwdriver bit is used to dock with the adjusting screw and rotate under the drive of the rotating drive member.

3. The processing equipment according to claim 1, characterized in that: The processing equipment also includes a clamping assembly, which is connected to the transfer assembly and moves synchronously with the electric batch assembly; The pressing assembly is used to press the button and / or the housing on which the button is installed when the electric screwdriver assembly is docked with the adjusting screw.

4. The processing equipment according to claim 3, characterized in that: The clamping assembly includes a fixing member, a pressing member and an elastic member, wherein the fixing member is connected to the transfer assembly, the pressing member and the fixing member are spaced apart and slidably connected in the axial direction of the adjusting screw, and the elastic member is arranged between the pressing member and the fixing member; The pressing member is used to press the button and slide relative to the fixing member, and the elastic member undergoes elastic deformation following the relative sliding of the pressing member and the fixing member.

5. The processing equipment according to claim 3, characterized in that: The button is provided with a pressing block; The processing equipment also includes a touch component, which includes a fixed frame, a touch drive member and a touch member, the fixed frame is arranged on the machine base, the touch drive member is arranged on the fixed frame and connected to the touch member; wherein the touch member is used to move along the pressing direction of the button under the drive of the touch drive member and touch the pressing block.

6. The processing equipment according to claim 5, characterized in that The touch member includes a detection element, and the detection element is connected to the touch driving member; the detection element is used to detect the button by touching the pressing block.

7. The processing equipment according to claim 6, characterized in that The touch member further comprises a moving block and an elastic member, the moving block is connected to the touch driving member, the detection element is arranged on the moving block, the detection element and the moving block are spaced apart and slidably connected in the pressing direction of the button, and the elastic member is arranged between the detection element and the moving block; Wherein, the detection element is used to slide relative to the moving block when touching the pressing block, and the elastic member is elastically deformed following the relative sliding of the detection element and the moving block.

8. The processing equipment according to claim 5, characterized in that: The pressing direction of the pressing component and the touching direction of the contact component are parallel to and opposite to each other.

9. The processing equipment according to claim 1, characterized in that: The button is also provided with an electrical connection structure; The processing equipment also includes a transfer test assembly, which includes a base, a first pressure block and a second pressure block, wherein the base is provided with a first contact, and the first contact is used for electrical connection with an external electronic device; the first pressure block is arranged on one side of the base, and the first pressure block is provided with a second contact, and the second contact is electrically connected to the first contact; The second pressing block is arranged relative to the first pressing block, the second pressing block is movably connected to the base, and the second pressing block is used to cooperate with the first pressing block to clamp the electrical connection structure, and electrically connect the electrical connection structure to the second contact.

10. The processing equipment according to claim 9, characterized in that The adapter test assembly also includes an adapter block, which is used to electrically connect to an external electronic device. The adapter block is detachably arranged on the base. The adapter block is provided with a third contact, and the third contact is used to electrically connect to the first contact when the adapter block is arranged on the base.