Component information reading tool and device
Patent Information
- Application Number
- CN202522021609.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-19
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2035-09-19
AI Technical Summary
[0005]为此,本实用新型所要解决的技术问题在于克服现有技术中信号检测结构的适配性不高的问题,提供一种元器件信息读取工装及设备
本实用新型所述的元器件信息读取工装及设备,通过调节机构对对接机构的空间位置进行调节,其中升降调节组件可带动水平调节组件及与之连接的对接机构实现高度方向的精准调整,水平调节组件则能进一步带动对接机构在水平面上移动,从而使对接机构具备多维度的空间位置调节能力;同时,通过调节板与对接板对读取头的设置角度及位置进行精细调控,调节板可借助连接销在安装板的旋转连接孔和弧形角度调节槽内的配合实现倾斜角度的灵活改变,对接板又能在调节板上滑动以调整读取头的水平位置,进而让读取头可根据元器件的实际摆放位置、信息读取区域的具体方位进行全方位适配。
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Figure CN224651411U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of information reading, and specifically refers to a component information reading tooling and equipment. Background Art
[0002] In the production and application of electronic components, performance testing is the core process to ensure the reliability of subsequent assembly and the overall operation stability of the equipment. Before and during the testing, achieving a stable signal connection between the components and the testing system is the key prerequisite to ensure accurate test data and smooth test process. With the rapid development of the electronic industry, the types of components are constantly enriched, from basic passive components such as resistors, capacitors, and inductors to active components such as integrated circuits and microcontrollers, and their structural designs show significant differences.
[0003] Among them, the diversity of component terminals, as the core interface for signal transmission, is particularly prominent. There is no unified standard for the setting position and orientation of the terminals. The terminals of some components are distributed on the top of the housing, some are on the side or bottom, and the setting direction of the terminals may be horizontal or at an inclined angle. This diversity of terminal forms and layouts poses a great challenge to the signal connection link in the automated test process.
[0004] The current terminal connection solutions adopted in the industry are mostly based on fixed structure designs. Such connection structures are usually customized for specific models or specifications of components, and the shape, position, and orientation of their terminal docking interfaces are fixed and can only adapt to single or a few components with similar structures. When facing components of different types and different terminal designs, the existing fixed connection structures cannot achieve effective docking, and external auxiliary equipment often needs to be used to complete the signal plug-in between the reading head and the component terminals. For example, by adjusting the fixed position of the component through an external driving device or replacing a special转接接口 to adapt to different terminal forms, this not only increases the equipment investment cost and operation complexity, but also interrupts the continuity of the test process, seriously affecting the efficiency of automated testing. At the same time, it is difficult to avoid signal transmission instability problems caused by external equipment adjustment deviations or improper plug-in operations, which has an adverse impact on the accuracy of test results. Summary of the Invention
[0005] Therefore, the technical problem to be solved by the utility model is to overcome the problem of low adaptability of the signal detection structure in the prior art, and provide a component information reading tooling and equipment.
[0006] It should be noted that there is an unclear "转接接口" in the original text which may need to be further clarified in the actual context for a more accurate translation. Here it is directly translated as "转接接口" for the time.To solve the above-mentioned technical problems, this utility model provides a component information reading fixture, which includes: an adjustment mechanism, the adjustment mechanism including a lifting adjustment component and a horizontal adjustment component, the horizontal adjustment component moving up and down through the lifting adjustment component; a docking mechanism, the docking mechanism including a mounting plate, an adjustment plate, a docking plate and a reading head, the mounting plate being connected to the horizontal adjustment component and moving horizontally through the horizontal adjustment component, the mounting plate having a rotating connection hole and an angle adjustment groove, the angle adjustment groove being configured as an arc-shaped groove surrounding the rotating connection hole, at least two connecting pins being fixedly connected to the adjustment plate, one of the connecting pins passing through the rotating connection hole, and at least one other connecting pin passing through the angle adjustment groove and adjustable in position within the angle adjustment groove to change the tilt angle of the adjustment plate, the docking plate being slidably connected to the adjustment plate, and the reading head being disposed at one end of the docking plate and moving with the docking plate.
[0007] In one embodiment of the present invention, the docking mechanism further includes a docking module, a docking driver, and a third connecting plate. The docking module is disposed on the adjusting plate, the third connecting plate is fixed on the mounting plate, and the docking driver is disposed on the adjusting plate with its working end connected to the mounting plate to drive the adjusting plate to move along the docking module.
[0008] In one embodiment of this utility model, the component information reading fixture is provided with at least two docking mechanisms, the two docking mechanisms are spaced apart along a first direction, and each docking mechanism includes at least two reading heads.
[0009] In one embodiment of the present invention, the lifting adjustment assembly includes a lifting adjustment module and a lifting plate, and the horizontal adjustment assembly includes a horizontal adjustment module and a horizontal sliding plate. The lifting adjustment module extends vertically, the lifting plate is slidably connected to the lifting adjustment module, the horizontal adjustment module is disposed on the lifting plate and extends horizontally, the horizontal sliding plate is slidably connected to the horizontal adjustment module, and the mounting plate is fixedly connected to the horizontal sliding plate.
[0010] In one embodiment of the present invention, the adjustment mechanism further includes a fixed base plate, a vertical limiting member, and a horizontal limiting member. One end of the lifting adjustment module is supported on the fixed base plate, and the other end is connected to the vertical limiting member. The vertical limiting member is positioned towards the lifting plate. The horizontal limiting member is connected to the lifting plate, located at one end of the horizontal adjustment module, and is positioned towards the horizontal sliding plate.
[0011] In one embodiment of the present invention, the adjustment mechanism further includes a lifting driver, a first connecting plate, a horizontal driver, and a second connecting plate. The lifting driver is disposed on the fixed base plate, the first connecting plate is fixedly connected to the lifting plate, and the working end of the lifting driver is connected to the first connecting plate. The horizontal driver is disposed on the horizontal sliding plate, the second connecting plate is fixedly connected to the lifting plate, and the working end of the horizontal driver is connected to the second connecting plate.
[0012] In one embodiment of the present invention, the docking mechanism includes two mounting plates, which are symmetrically spaced apart in a first direction. An adjusting plate is disposed between the two mounting plates, and both sides of the adjusting plate are respectively connected to the two mounting plates.
[0013] In one embodiment of the present invention, the mounting plate includes a fixing part and an adjusting part, wherein the fixing part is fixedly connected to the horizontal adjusting assembly, and the rotating connecting hole and the angle adjusting groove are both provided on the adjusting part.
[0014] In one embodiment of this utility model, the component information reading fixture further includes a control mechanism, and the adjustment mechanism and the docking mechanism are respectively connected to the control mechanism.
[0015] This utility model also provides a component information reading device, which includes the above-mentioned component information reading fixture.
[0016] The above-mentioned technical solution of this utility model has the following advantages compared with the prior art: The component information reading fixture and equipment described in this utility model adjusts the spatial position of the docking mechanism through an adjustment mechanism. The lifting adjustment component can drive the horizontal adjustment component and the docking mechanism connected thereto to achieve precise adjustment in the height direction. The horizontal adjustment component can further drive the docking mechanism to move on the horizontal plane, thereby enabling the docking mechanism to have multi-dimensional spatial position adjustment capabilities. At the same time, the setting angle and position of the reading head can be finely controlled through the adjustment plate and the docking plate. The adjustment plate can flexibly change the tilt angle by means of the cooperation of the connecting pin in the rotating connecting hole and the arc angle adjustment groove of the mounting plate. The docking plate can slide on the adjustment plate to adjust the horizontal position of the reading head, so that the reading head can be fully adapted according to the actual placement position of the component and the specific orientation of the information reading area.
[0017] Based on the above structural design, this application has the advantages of wide spatial adjustment range, high angle and position adjustment accuracy, and strong adaptability. It can meet the information reading needs of components of different specifications and different placement states, and effectively avoid the problem of reading position deviation or inability to read due to limited adjustment.
[0018] Compared with existing reading structures, this application does not require the design of dedicated reading fixtures for different types of components, which greatly reduces the frequency of fixture replacement and usage costs. At the same time, it simplifies the adjustment process, shortens the preparation time before reading, and significantly improves the efficiency and accuracy of component information reading, thus better meeting the diverse and efficient reading needs of automated production lines. Attached Figure Description
[0019] To make the content of this utility model easier to understand, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings.
[0020] Figure 1 This is a three-dimensional structural diagram of the component information reading fixture in a preferred embodiment of this utility model; Figure 2 yes Figure 1 A three-dimensional structural diagram of the adjustment mechanism in the component information reading fixture shown; Figure 3 yes Figure 1 A three-dimensional structural diagram of the adjustment mechanism in the component information reading fixture, viewed from another angle. Figure 4 yes Figure 1 A three-dimensional structural diagram of the docking mechanism in the component information reading fixture shown; Figure 5 yes Figure 1 The diagram shows a three-dimensional view of the docking mechanism in the component information reading fixture, taken from another perspective.
[0021] Explanation of reference numerals in the accompanying drawings: 100, Adjustment mechanism; 110, Lifting adjustment assembly; 111, Lifting adjustment module; 112, Lifting plate; 113, Vertical limiting component; 114, Lifting driver; 115, First connecting plate; 120, Horizontal adjustment assembly; 121, Horizontal adjustment module; 122, Horizontal sliding plate; 123, Horizontal driver; 124, Horizontal limiting component; 125, Second connecting plate; 130, Fixed base plate; 200, Docking mechanism; 210, Mounting plate; 211, Adjustment part; 212, Fixing part; 213, Rotary connecting hole; 214, Angle adjustment slot; 220, Adjustment plate; 221, Docking module; 230, Docking driver; 240, Docking plate; 250, Reading head; 260, Third connecting plate; X, First direction; Y, Second direction; Z, Third direction. Detailed Implementation
[0022] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, so that those skilled in the art can better understand and implement the present invention. However, the embodiments are not intended to limit the present invention.
[0023] Example 1:
[0024] See Figure 1 As shown, this embodiment provides a component information reading fixture, which includes: an adjustment mechanism 100, the adjustment mechanism 100 including a lifting adjustment component 110 and a horizontal adjustment component 120, the horizontal adjustment component 120 moving up and down through the lifting adjustment component 110; and a docking mechanism 200, the docking mechanism 200 including a mounting plate 210, an adjustment plate 220, a docking plate 240, and a reading head 250, the mounting plate 210 being connected to the horizontal adjustment component 120 and moving horizontally through the horizontal adjustment component 120, the mounting plate 210 being provided with a rotating connection hole 213 and a horizontal connection hole 213. An angle adjustment groove 214 is configured as an arc-shaped groove surrounding the rotary connection hole 213. At least two connecting pins are fixedly connected to the adjustment plate 220. One of the connecting pins passes through the rotary connection hole 213, and the other at least one of the connecting pins passes through the angle adjustment groove 214 and can be adjusted in position in the angle adjustment groove 214 to change the tilt angle of the adjustment plate 220. The docking plate 240 is slidably connected to the adjustment plate 220. The reading head 250 is disposed at one end of the docking plate 240 and moves with the docking plate 240.
[0025] It should be noted that, for ease of description, in this embodiment, the length direction of the component information reading fixture is defined as the first direction X, the width direction of the component information reading fixture is defined as the second direction Y, and the height direction of the component information reading fixture is defined as the third direction Z. The first direction X, the second direction Y, and the third direction Z are set perpendicular to each other in pairs, and the first direction X and the second direction Y are located in the same plane.
[0026] See Figure 2 and Figure 3 As shown, the lifting adjustment component 110 is used to adjust the height of the docking mechanism 200 in the vertical direction. According to the height position requirements of the components, the entire docking mechanism 200 can be adjusted to a suitable height level. Correspondingly, the horizontal adjustment component 120 is supported by the lifting adjustment component 110 and can drive the docking mechanism 200 to move laterally or longitudinally in the horizontal direction, thereby adapting to the reading requirements of components at different positions on the horizontal plane.
[0027] Further, in this embodiment, the lifting adjustment assembly 110 includes a lifting adjustment module 111 and a lifting plate 112, and the horizontal adjustment assembly 120 includes a horizontal adjustment module 121 and a horizontal sliding plate 122. The lifting adjustment module 111 extends vertically, the lifting plate 112 is slidably connected to the lifting adjustment module 111, the horizontal adjustment module 121 is disposed on the lifting plate 112 and extends horizontally, the horizontal sliding plate 122 is slidably connected to the horizontal adjustment module 121, and the mounting plate 210 is fixedly connected to the horizontal sliding plate 122. The lifting adjustment module 111 serves as the track foundation for lifting adjustment, providing sliding guidance for the lifting plate 112; the lifting plate 112 is slidably connected to the lifting adjustment module 111, thereby driving the horizontal adjustment assembly 120 to achieve overall height adjustment. The horizontal adjustment module 121 is mounted on the lifting plate 112 and extends horizontally along the second direction Y, forming a horizontal adjustment track structure. The horizontal sliding plate 122 is slidably connected to the horizontal adjustment module 121, thereby driving the mounting plate 210 fixed thereon and the entire docking mechanism 200 to complete the precise adjustment of the horizontal position. Through the cooperation of the lifting adjustment module 111 and the lifting plate 112, and the cooperation of the horizontal adjustment module 121 and the horizontal sliding plate 122, a two-dimensional adjustment system is formed, providing a stable and precise spatial position adjustment basis for the docking mechanism 200, ensuring that the reading head 250 can reach the preset working position through multi-level adjustment.
[0028] Furthermore, the adjustment mechanism 100 also includes a fixed base plate 130, a vertical limiting member 113, and a horizontal limiting member 124. One end of the lifting adjustment module 111 is supported on the fixed base plate 130, and the other end is connected to the vertical limiting member 113, with the vertical limiting member 113 facing the lifting plate 112. The horizontal limiting member 124 is connected to the lifting plate 112, located at one end of the horizontal adjustment module 121, and facing the horizontal sliding plate 122. The fixed base plate 130 serves as the basic support component of the entire fixture, providing a stable installation reference for the lifting adjustment module 111 and ensuring the overall structural stability of the adjustment mechanism 100. A vertical limiting member 113 is connected to the end of the lifting adjustment module 111 away from the fixed base plate 130 and is positioned towards the lifting plate 112. Its main function is to limit the upward stroke of the lifting plate 112, preventing it from detaching from the lifting adjustment module 111 due to over-adjustment, thus ensuring the safety of vertical adjustment. Similarly, a horizontal limiting member 124 is connected to the lifting plate 112 and located at one end of the horizontal adjustment module 121, facing the horizontal sliding plate 122. It is used to limit the sliding stroke of the horizontal sliding plate 122, preventing it from slipping off the horizontal adjustment module 121 due to over-adjustment during horizontal adjustment, thus ensuring the reliability of horizontal adjustment.
[0029] Specifically, the adjustment mechanism 100 further includes a lifting driver 114, a first connecting plate 115, a horizontal driver 123, and a second connecting plate 125. The lifting driver 114 is disposed on the fixed base plate 130, the first connecting plate 115 is fixedly connected to the lifting plate 112, and the working end of the lifting driver 114 is connected to the first connecting plate 115. The horizontal driver 123 is disposed on the horizontal sliding plate 122, the second connecting plate 125 is fixedly connected to the lifting plate 112, and the working end of the horizontal driver 123 is connected to the second connecting plate 125. The lifting driver 114 serves as the power source for vertical adjustment. Its working end, connected to the first connecting plate 115, drives the lifting plate 112 to move stably up and down along the lifting adjustment module 111, thereby achieving automated height adjustment of the docking mechanism 200. The horizontal driver 123 serves as the power source for horizontal adjustment. Its working end, connected to the second connecting plate 125, drives the horizontal sliding plate 122 to slide horizontally along the horizontal adjustment module 121, thereby enabling the docking mechanism 200 to complete automated horizontal position adjustment. This utility model does not impose specific limitations on the specific type, quantity, or placement of the lifting driver 114 and the horizontal driver 123.
[0030] See Figure 4 and Figure 5 As shown, the docking mechanism 200 in this embodiment is used to dock with components to form signal transmission. The mounting plate 210 serves as a connecting carrier, with one end connected to the horizontal adjustment component 120, providing a mounting base for the entire docking mechanism 200. The rotating connection hole 213 and the arc-shaped angle adjustment groove 214 provided on the mounting plate 210 together constitute the reference structure for angle adjustment. The adjustment plate 220 cooperates with the mounting plate 210 through a connecting pin. The connecting pin passing through the rotating connection hole 213 serves as a rotation fulcrum, and the other connecting pin passing through the angle adjustment groove 214 can slide along the arc-shaped groove. By changing the position of the connecting pin in the groove, the adjustment plate 220 can be driven to rotate around the rotation fulcrum, thereby precisely adjusting the tilt angle of the adjustment plate 220 so that the reading head 250 can adapt to the tilt state of the component information surface. The docking plate 240 is slidably connected to the adjusting plate 220 and can move linearly along the adjusting plate 220 to finely adjust the horizontal position of the reading head 250, ensuring that the reading head 250 can be accurately aligned with the information reading area of the component. The reading head 250, as the final execution element, is set at one end of the docking plate 240 and adjusts its position as the docking plate 240 moves, ultimately achieving accurate reading of the component information.
[0031] Furthermore, the component information reading fixture is equipped with at least two docking mechanisms 200, which are spaced apart along a first direction X. Each docking mechanism 200 includes at least two reading heads 250. The spacing of the multiple docking mechanisms 200 can adapt to the synchronous reading requirements of multiple workstations or multiple rows of components, eliminating the need to frequently adjust the position of a single docking mechanism 200 to adapt to different workstations, thereby improving batch reading efficiency. The multiple reading heads 250 in each docking mechanism 200 can simultaneously read multiple sets of information at the same workstation, avoiding the cumbersome process of repeatedly adjusting the position of a single reading head 250. The combination of these two aspects enables the fixture to simultaneously handle multi-directional and multi-quantity information reading tasks, significantly improving the efficiency and continuity of information acquisition. It is particularly suitable for scenarios of rapid batch testing of components on automated production lines, effectively shortening the information reading cycle of a single component and improving the overall operating rhythm of the production line.
[0032] Furthermore, the docking mechanism 200 also includes a docking module 221, a docking driver 230, and a third connecting plate 260. The docking module 221 is disposed on the adjusting plate 220, the third connecting plate 260 is fixed on the mounting plate 210, and the docking driver 230 is disposed on the adjusting plate 220, with its working end connected to the mounting plate 210 to drive the adjusting plate 220 to move along the docking module 221. The docking module 221 is mounted on the adjusting plate 220, providing a guide track for the movement of the adjusting plate 220 and ensuring the stability and accuracy of its movement trajectory. The third connecting plate 260 is fixed on the mounting plate 210, serving as the force support point for the docking driver 230. The docking driver 230 is mounted on the adjusting plate 220, and its working end is connected to the third connecting plate 260 on the mounting plate 210. During operation, the extension and retraction of the driver can drive the adjusting plate 220 to move stably along the docking module 221, thereby realizing the active adjustment of the adjusting plate 220 and the docking plate 240 and the reading head 250 connected to it in a specific direction.
[0033] The docking mechanism 200 in this embodiment includes two mounting plates 210, which are symmetrically spaced apart in the first direction X. An adjusting plate 220 is disposed between the two mounting plates 210, with both sides of the adjusting plate 220 connected to the two mounting plates 210 respectively. The symmetrical spacing of the two mounting plates 210 in the first direction X forms a stable double-sided support structure, providing a foundation for the adjusting plate 220 to bear forces from both sides. Compared to a single-sided installation, this significantly improves the structural stability of the adjusting plate 220 during angle adjustment, avoiding swaying or displacement caused by unilateral force and ensuring the accuracy of angle adjustment. The adjusting plate 220's placement between the two mounting plates 210 and its connection to both sides not only makes the force on the adjusting plate 220 more balanced but also provides lateral restraint, preventing displacement of the adjusting plate 220 in non-adjustment directions. This further ensures the stability and reliability of the adjusting plate 220 during tilt angle adjustment, laying a structural foundation for the precise position control of the subsequent docking plate 240 and reading head 250.
[0034] Specifically, the mounting plate 210 includes a fixing part 212 and an adjusting part 211. The fixing part 212 is fixedly connected to the horizontal adjusting assembly 120, and the rotating connection hole 213 and the angle adjusting groove 214 are both provided on the adjusting part 211. The fixing part 212 is directly fixedly connected to the horizontal adjusting assembly 120, providing a stable connection base for the entire mounting plate 210 and ensuring that the mounting plate 210 can move synchronously and stably with the horizontal adjusting assembly 120, avoiding additional shaking during the adjustment process. The adjusting part 211 is specifically designed to carry the rotating connection hole 213 and the angle adjusting groove 214. As a functional area connected to the adjusting plate 220, the angle adjustment-related structures are centrally located, which facilitates manufacturing and makes the core structure of angle adjustment easier to maintain and calibrate.
[0035] The component information reading fixture described in this embodiment also includes a control mechanism, and the adjustment mechanism 100 and the docking mechanism 200 are respectively connected to the control mechanism. In actual production and processing, operators can use the control mechanism to adjust the above structure in real time, thereby improving the flexibility of the equipment. Parameters can also be preset through the control mechanism, thereby improving the automation level of the equipment.
[0036] Example 2:
[0037] This embodiment provides a component information reading device, which includes the component information reading fixture described in Embodiment 1.
[0038] In summary, this application boasts advantages such as a wide spatial adjustment range, high accuracy in angle and position adjustment, and strong adaptability. It can meet the information reading needs of components of different specifications and placement states, effectively avoiding reading position deviations or inability to read due to limited adjustment. Compared to existing reading structures, this application eliminates the need for designing dedicated reading fixtures for different types of components, significantly reducing fixture replacement frequency and usage costs. It also simplifies the adjustment process, shortens preparation time before reading, and significantly improves the efficiency and accuracy of component information reading, better meeting the diverse and efficient reading operation needs of automated production lines.
[0039] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art will recognize that other variations or modifications can be made based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. A component information reading fixture, characterized in that: include: An adjustment mechanism, comprising a lifting adjustment component and a horizontal adjustment component, wherein the horizontal adjustment component moves up and down via the lifting adjustment component; The docking mechanism includes a mounting plate, an adjusting plate, a docking plate, and a reading head. The mounting plate is connected to the horizontal adjusting component and moves horizontally via the horizontal adjusting component. The mounting plate has a rotating connecting hole and an angle adjusting groove. The angle adjusting groove is configured as an arc-shaped groove surrounding the rotating connecting hole. At least two connecting pins are fixedly connected to the adjusting plate. One connecting pin passes through the rotating connecting hole, and the other at least one connecting pin passes through the angle adjusting groove and can be adjusted to change the tilt angle of the adjusting plate. The docking plate is slidably connected to the adjusting plate. The reading head is disposed at one end of the docking plate and moves with the docking plate.
2. The component information reading fixture according to claim 1, characterized in that: The docking mechanism further includes a docking module, a docking driver, and a third connecting plate. The docking module is disposed on the adjusting plate, the third connecting plate is fixed on the mounting plate, and the docking driver is disposed on the adjusting plate with its working end connected to the mounting plate to drive the adjusting plate to move along the docking module.
3. The component information reading fixture according to claim 1, characterized in that: The component information reading fixture is provided with at least two docking mechanisms, which are spaced apart along a first direction, and each docking mechanism includes at least two reading heads.
4. The component information reading fixture according to claim 1, characterized in that: The lifting adjustment assembly includes a lifting adjustment module and a lifting plate, and the horizontal adjustment assembly includes a horizontal adjustment module and a horizontal sliding plate. The lifting adjustment module extends vertically, the lifting plate is slidably connected to the lifting adjustment module, the horizontal adjustment module is disposed on the lifting plate and extends horizontally, the horizontal sliding plate is slidably connected to the horizontal adjustment module, and the mounting plate is fixedly connected to the horizontal sliding plate.
5. The component information reading fixture according to claim 4, characterized in that: The adjustment mechanism further includes a fixed base plate, a vertical limiting member, and a horizontal limiting member. One end of the lifting adjustment module is supported on the fixed base plate, and the other end is connected to the vertical limiting member. The vertical limiting member is positioned towards the lifting plate. The horizontal limiting member is connected to the lifting plate, located at one end of the horizontal adjustment module, and is positioned towards the horizontal sliding plate.
6. The component information reading fixture according to claim 5, characterized in that: The adjustment mechanism further includes a lifting driver, a first connecting plate, a horizontal driver, and a second connecting plate. The lifting driver is disposed on the fixed base plate, the first connecting plate is fixedly connected to the lifting plate, and the working end of the lifting driver is connected to the first connecting plate. The horizontal driver is disposed on the horizontal sliding plate, the second connecting plate is fixedly connected to the lifting plate, and the working end of the horizontal driver is connected to the second connecting plate.
7. The component information reading fixture according to claim 1, characterized in that: The docking mechanism includes two mounting plates, which are symmetrically spaced apart in a first direction. An adjusting plate is disposed between the two mounting plates, and both sides of the adjusting plate are respectively connected to the two mounting plates.
8. The component information reading fixture according to claim 1, characterized in that: The mounting plate includes a fixing part and an adjusting part, wherein the fixing part is fixedly connected to the horizontal adjusting assembly, and the rotating connecting hole and the angle adjusting groove are both provided on the adjusting part.
9. The component information reading fixture according to claim 1, characterized in that: The component information reading fixture also includes a control mechanism, and the adjustment mechanism and the docking mechanism are respectively connected to the control mechanism.
10. A component information reading device, characterized in that: The component information reading fixture includes any one of claims 1 to 9.