Millimeter wave automatic assembling carrier

By designing the combination of the prototypical fixing seat and the compression mechanism, the assembly accuracy problem caused by the shaking of the millimeter wave assembly in the carrier is solved, and the relative position fixation of the millimeter wave and the shell in the production process is achieved, improving assembly accuracy and stability.

CN223084159UActive Publication Date: 2025-07-11SUZHOU JINGRONG PRECISION CONTROL TECH CO LTD
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Patent Information

Application Number
CN202422054921.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2025-07-11
Estimated Expiration
2034-08-23

AI Technical Summary

Technical Problem

The shaking of existing millimeter wave components in the vehicle results in poor assembly accuracy and making it difficult to maintain a consistent relative position.

Method used

An automatic assembly vehicle including a profiling fixing seat, a millimeter-wave housing compression mechanism and a millimeter-wave pressing mechanism is designed, and structures such as a profiling cavity, a block, a return spring and a silicone block are used to ensure that the millimeter-wave and the housing are fixed in relative positions during the production process.

Benefits of technology

The relative position of millimeter wave and shell during production is achieved, which improves assembly accuracy and stability and avoids assembly errors caused by shaking.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a millimeter wave automatic assembly carrier which comprises a profiling fixing seat, a profiling cavity is arranged in the profiling fixing seat, one side of the profiling cavity is provided with a notch, the other side of the profiling cavity is provided with a stop block, one side of the notch of the profiling fixing seat is provided with a millimeter wave shell pressing mechanism, and the other side of the notch of the profiling fixing seat is provided with a millimeter wave shell pressing mechanism. The millimeter wave shell pressing mechanism is arranged on one side of the profiling fixing base, so that the millimeter wave shell can be fixed between the stopping block and the millimeter wave shell pressing mechanism, the millimeter wave pressing mechanism used for pressing millimeter waves in the millimeter wave shell is further arranged on one side of the profiling fixing base, and a fixing block arranged on one side of the profiling fixing base is further included and internally provided with a plurality of through grooves. The meter wave shell clamping and pressing mechanism and the millimeter wave pressing mechanism are arranged in the through groove at present, and the millimeter wave shell and the millimeter wave shell are pressed through the millimeter wave shell pressing mechanism and the millimeter wave pressing mechanism, so that a product is fixed in the profiling fixing seat, and the relative positions of the millimeter wave shell and the millimeter wave shell are kept consistent in the production process.
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Description

Technical Field

[0001] The utility model relates to the field of production carriers, and particularly relates to a millimeter-wave automatic assembly carrier. Background Art

[0002] The millimeter-wave component is a part used in a mobile phone, and its assembly accuracy requirement is relatively high. It has a total of two parts, one is the millimeter wave, and the other is the housing of the millimeter wave. Its technological process is: applying heat dissipation silica gel inside the millimeter-wave housing, then assembling the millimeter wave, then applying UV glue on both sides of the millimeter wave, and then curing the UV glue by UV irradiation to fix the millimeter wave and the millimeter-wave housing.

[0003] The original carrier positions by means of carrier profiling and limiting the outer shape of the millimeter-wave component. During the transportation process of the carrier, the millimeter-wave component will shake inside the carrier, resulting in poor assembly accuracy of the millimeter-wave component. Content of the Utility Model

[0004] The technical problem solved by the utility model is to provide a millimeter-wave automatic assembly carrier, which can keep the relative positions of the millimeter wave and the millimeter-wave housing consistent during the production process.

[0005] The technical solution adopted by the utility model to solve its technical problems is: a millimeter-wave automatic assembly carrier, including a profiling fixing seat, a profiling cavity is arranged inside the profiling fixing seat, a notch is arranged on one side of the profiling cavity, a blocking block is arranged on the other side of the profiling cavity, a millimeter-wave housing pressing mechanism is arranged on the notch side of the profiling fixing seat, so that the millimeter-wave housing can be fixed between the blocking block and the millimeter-wave housing pressing mechanism, a millimeter-wave pressing mechanism for pressing the millimeter wave into the millimeter-wave housing is also arranged on one side of the profiling fixing seat, and a fixing block is also arranged on one side of the profiling fixing seat, a plurality of through grooves are arranged inside the fixing block, and the millimeter-wave housing pressing mechanism and the millimeter-wave pressing mechanism are arranged in the through grooves.

[0006] Furthermore: the millimeter-wave housing pressing mechanism includes a vertically arranged housing pressing block, a first rotating shaft is arranged in the middle of the housing pressing block, both ends of the first rotating shaft are connected to the profiling fixing seat, the housing pressing block is rotationally connected to the first rotating shaft, and a first return spring is also arranged between the lower part of the housing pressing block and the profiling fixing seat, one end of the first return spring is fixedly connected to the profiling fixing seat, and the other end of the first return spring is fixedly connected to the housing pressing block.

[0007] Furthermore: a first silica gel block is arranged on the upper end of the housing pressing block facing the profiling cavity side.

[0008] Furthermore, the millimeter-wave pressing mechanism includes an L-shaped pressing block. The L-shaped pressing block includes a horizontal pressing block at the upper end and a vertical driving block connected to the horizontal pressing block. A second rotating shaft is provided in the middle of the vertical driving block. Both ends of the second rotating shaft are connected to the profiling fixed seat. The vertical driving block is rotatably connected to the second rotating shaft. A second return spring is further included between the lower part of the vertical driving block and the profiling fixed seat. One end of the second return spring is fixedly connected to the profiling fixed seat, and the other end of the second return spring is fixedly connected to the vertical driving block.

[0009] Furthermore, a second arc-shaped silica gel block is provided at one end of the horizontal pressing block facing the profiling cavity. The arc surface of the first arc-shaped silica gel block faces the profiling cavity.

[0010] Furthermore, a rotating spherical joint is provided at one end of the second return spring facing the vertical driving block. The rotating ball part of the rotating spherical joint extends into the vertical driving block.

[0011] The beneficial effects of the present utility model are as follows:

[0012] 1. By using the millimeter-wave housing pressing mechanism and the millimeter-wave pressing mechanism to press the millimeter wave and the millimeter-wave housing, the product is fixed in the profiling fixed seat, so that the relative positions of the millimeter wave and the millimeter-wave housing are kept consistent during the production process.

[0013] 2. The millimeter-wave housing pressing mechanism and the millimeter-wave pressing mechanism can be opened separately, so that the millimeter-wave housing can remain clamped when assembling the millimeter wave and will not move due to the assembly of the millimeter wave.

[0014] 3. By providing the first silica gel block, the friction force of the housing pressing block can be increased, thereby improving the pressing stability of the millimeter-wave housing pressing mechanism.

[0015] 4. By providing the second arc-shaped silica gel block, the arc structure can always be in contact with the product line, thereby ensuring its clamping force. Description of the Drawings

[0016] Figure 1 It is a schematic structural diagram of the millimeter-wave automatic assembly carrier according to the embodiment of the present application.

[0017] Figure 2 It is a schematic structural diagram of another perspective of the millimeter-wave automatic assembly carrier according to the embodiment of the present application.

[0018] Figure 3 It is a cross-sectional view of the millimeter-wave automatic assembly carrier according to the embodiment of the present application.

[0019] The markings in the figure are: profiling fixed seat 1, blocking block 2, millimeter-wave housing pressing mechanism 3, housing pressing block 301, first return spring 302, first silicone block 303, millimeter-wave pressing mechanism 4, lateral pressing block 401, vertical driving block 402, second rotating shaft 403, second return spring 404, second arc-shaped silicone block 405, rotating ball joint 406, fixed block 5, through slot 6. Detailed implementation manners

[0020] In order to make the above objects, features and advantages of the present utility model more obvious and understandable, the following detailed description of the specific implementation manners of the present utility model will be given in conjunction with the accompanying drawings.

[0021] As Figure 1 shown, an embodiment of the present application discloses a millimeter-wave automatic assembly carrier, including a profiling fixed seat 1. A profiling cavity is provided inside the profiling fixed seat 1. A notch is provided on one side of the profiling cavity. A blocking block 2 is provided on the other side of the profiling cavity. A millimeter-wave housing pressing mechanism 3 is provided on one side of the notch of the profiling fixed seat 1, so that the millimeter-wave housing can be fixed between the blocking block 2 and the millimeter-wave housing pressing mechanism 3. A millimeter-wave pressing mechanism 4 for pressing the millimeter-wave into the millimeter-wave housing is further provided on one side of the profiling fixed seat 1. It further includes a fixed block 5 provided on one side of the profiling fixed seat 1. A plurality of through slots 6 are provided inside the fixed block 5. The millimeter-wave housing pressing mechanism and the millimeter-wave pressing mechanism 4 are provided in the through slots 6.

[0022] During specific operation, the millimeter-wave housing pressing mechanism 3 and the housing pressing mechanism are driven by manual or external cooperating mechanisms to be in an open state. Then, the millimeter-wave housing is placed into the profiling cavity. Then, the millimeter-wave housing is pressed by the millimeter-wave housing pressing mechanism 3. Thus, under the combined action of the profiling cavity and the millimeter-wave housing pressing mechanism 3, the XYZ-axis directions of the millimeter-wave housing can be restricted. An external dispensing mechanism is used to perform a dispensing operation on the millimeter-wave housing. Then, the millimeter-wave is assembled into the millimeter-wave housing. The millimeter-wave pressing mechanism 4 is used to press the millimeter-wave into the millimeter-wave housing, so that the XYZ-axis directions of the millimeter-wave are also restricted. Thus, the subsequent UV glue fixing operation can be better realized.

[0023] In this structure, the millimeter-wave and the millimeter-wave housing are pressed by the millimeter-wave housing pressing mechanism 3 and the millimeter-wave pressing mechanism 4, so that the product is fixed inside the profiling fixed seat 1, and the relative positions of the millimeter-wave and the millimeter-wave housing are kept consistent during the production process. At the same time, the millimeter-wave housing pressing mechanism 3 and the millimeter-wave pressing mechanism 4 can be opened separately, so that the millimeter-wave housing can be kept in a clamped state when the millimeter-wave is assembled, and will not move due to the assembly of the millimeter-wave.

[0024] In this embodiment, the millimeter-wave housing pressing mechanism 3 includes a vertically arranged housing pressing block 301. A first rotating shaft is arranged in the middle of the housing pressing block 301. Both ends of the first rotating shaft are connected to the profiling fixing seat 1. The housing pressing block 301 is rotationally connected to the first rotating shaft. It further includes a first return spring 302 arranged between the lower part of the housing pressing block 301 and the profiling fixing seat 1. One end of the first return spring 302 is fixedly connected to the profiling fixing seat 1, and the other end of the first return spring 302 is fixedly connected to the housing pressing block 301.

[0025] Specifically, when performing the pressing operation on the millimeter-wave housing, first make the upper part of the housing pressing block 301 in an open state. Then place the millimeter-wave housing into the profiling cavity, and release the housing pressing block 301, so that the housing pressing block 301 rotates around the first rotating shaft under the action of the first return spring 302, and further enables the housing pressing block 301 to press the side of the millimeter-wave housing, realizing the pressing operation on the millimeter-wave housing.

[0026] This structure is simple, and the pressing force comes from the spring force of the first return spring 302, so that the pressing operation can be realized without the drive of other external forces.

[0027] In this embodiment, a first silica gel block 303 is arranged on one side of the upper end of the housing pressing block 301 facing the profiling cavity.

[0028] Specifically, the setting of the first silica gel block 303 can increase the friction force of the housing pressing block 301, thereby improving the pressing stability of the millimeter-wave housing pressing mechanism 3.

[0029] In this embodiment, the millimeter-wave pressing mechanism 4 includes an L-shaped pressing block. The L-shaped pressing block includes a horizontal pressing block 401 at the upper end and a vertical driving block 402 connected to the horizontal pressing block 401. A second rotating shaft 403 is arranged in the middle of the vertical driving block 402. Both ends of the second rotating shaft 403 are connected to the profiling fixing seat 1. The vertical driving block 402 is rotationally connected to the second rotating shaft 403. It further includes a second return spring 404 arranged between the lower part of the vertical driving block 402 and the profiling fixing seat 1. One end of the second return spring 404 is fixedly connected to the profiling fixing seat 1, and the other end of the second return spring 404 is fixedly connected to the vertical driving block 402.

[0030] Specifically, when performing the pressing operation on the millimeter-wave, first make the upper part of the L-shaped pressing block in an open state. Then place the millimeter-wave housing into the millimeter-wave housing, and release the L-shaped pressing block, so that the vertical driving block 402 rotates around the second rotating shaft 403 under the action of the second return spring 404, and further enables the horizontal pressing block 401 to press on the upper surface of the millimeter-wave, realizing the pressing operation on the millimeter-wave.

[0031] This structure is simple, and the pressing force comes from the spring force of the second return spring 404, so that the pressing operation can be realized without the drive of other external forces.

[0032] In this embodiment, a second arc-shaped silica gel block 405 is arranged at one end of the transverse pressing block 401 facing the profiling cavity, and the arc surface of the first arc-shaped silica gel block faces the profiling cavity.

[0033] In this structure, during the press operation, through the arrangement of the second arc-shaped silica gel block 405, the arc structure can always be in contact with the product line, thus ensuring its clamping force.

[0034] In this embodiment, a rotating ball joint 406 is arranged at one end of the second return spring 404 facing the vertical driving block 402, and the rotating ball part of the rotating ball joint 406 extends into the vertical driving block 402.

[0035] In this structure, through the arrangement of the rotating ball joint 406, it can be prevented that when the L-shaped pressing block is opened, the second return spring 404 is damaged due to excessive twisting caused by too large an opening angle.

[0036] The specific embodiments described above further elaborate on the purpose, technical solutions, and beneficial effects of the present invention. It should be understood that the above are only specific embodiments of the present invention and are not used to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention shall be included within the protection scope of the present invention.

Claims

1. A millimeter-wave automatic assembly vehicle, characterized in that: It includes a profiling fixed seat (1). A profiling cavity is provided inside the profiling fixed seat (1). A notch is provided on one side of the profiling cavity, and a blocking block (2) is provided on the other side of the profiling cavity. A millimeter-wave housing pressing mechanism (3) is provided on the side of the notch of the profiling fixed seat (1), so that the millimeter-wave housing can be fixed between the blocking block (2) and the millimeter-wave housing pressing mechanism (3). A millimeter-wave pressing mechanism (4) for pressing the millimeter-wave into the millimeter-wave housing is further provided on one side of the profiling fixed seat (1). It also includes a fixed block (5) provided on one side of the profiling fixed seat (1). A plurality of through grooves (6) are provided inside the fixed block (5). The millimeter-wave housing pressing mechanism and the millimeter-wave pressing mechanism (4) are arranged inside the through grooves (6).

2. The millimeter-wave automatic assembly vehicle according to claim 1, characterized in that: The millimeter-wave housing pressing mechanism (3) includes a vertically arranged housing pressing block (301). A first rotating shaft is provided in the middle of the housing pressing block (301). Both ends of the first rotating shaft are connected to the profiling fixed seat (1). The housing pressing block (301) is rotatably connected to the first rotating shaft. It also includes a first return spring (302) provided between the lower part of the housing pressing block (301) and the profiling fixed seat (1). One end of the first return spring (302) is fixedly connected to the profiling fixed seat (1), and the other end of the first return spring (302) is fixedly connected to the housing pressing block (301).

3. The millimeter-wave automatic assembly vehicle according to claim 2, characterized in that: A first silica gel block (303) is provided on the upper end of the housing pressing block (301) facing the profiling cavity side.

4. The millimeter-wave automatic assembly vehicle according to claim 1, wherein: The millimeter-wave pressing mechanism (4) includes an L-shaped pressing block. The L-shaped pressing block includes a horizontal pressing block (401) at the upper end and a vertical driving block (402) connected to the horizontal pressing block (401). A second rotating shaft (403) is provided in the middle of the vertical driving block (402). Both ends of the second rotating shaft (403) are connected to the profiling fixed seat (1). The vertical driving block (402) is rotatably connected to the second rotating shaft (403). It also includes a second return spring (404) provided between the lower part of the vertical driving block (402) and the profiling fixed seat (1). One end of the second return spring (404) is fixedly connected to the profiling fixed seat (1), and the other end of the second return spring (404) is fixedly connected to the vertical driving block (402).

5. The millimeter-wave automatic assembly vehicle according to claim 4, wherein: A second arc-shaped silica gel block (405) is provided at one end of the horizontal pressing block (401) facing the profiling cavity. The arc surface of the second arc-shaped silica gel block faces the profiling cavity.

6. The millimeter-wave automatic assembly vehicle according to claim 4, characterized in that: A rotating spherical joint (406) is provided at one end of the second return spring (404) facing the vertical driving block (402). The rotating spherical part of the rotating spherical joint (406) extends into the vertical driving block (402).