Radar precision component arrangement and placement device
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUZHOU TENGXIANG PRECISE MASCH CO LTD
- Filing Date
- 2025-06-12
- Publication Date
- 2026-08-07
AI Technical Summary
[0003]在传统雷达精密件排列摆放作业中,主要依靠人工操作完成,工作人员需从输送机构上逐个拿取雷达精密件,再将其放置于指定存放区域,并手动排列整齐,这种方式不仅效率低,受人为因素影响,导致精密件摆放位置出现偏差,人工摆放速度过快可能出现雷达精密件之间磕碰,因此难以满足雷达精密件排列摆放工作需求
本实用新型通过活动夹持块和固定夹持块之间的相对移动,能够确保多个雷达精密件牢固夹持在一起,通过排列摆放组件在完成雷达精密件的夹持后,进一步旋转机构实现90度转动,使得零件能够准确对齐到放置盒板的位置,有效的通过夹持、排列和放置操作减少了人工干预,降低了人工成本和操作,避免人工摆放过程中导致精密件摆放位置出现偏差,防止人工摆放速度过快导致雷达精密件之间磕碰,提高了雷达精密件排列摆放工作需求。
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Figure CN224604034U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of placement devices, specifically a device for arranging and placing radar precision components. Background Technology
[0002] Radar is a technology that uses multiple precision components to detect the position, speed and other characteristics of objects by emitting and receiving radio waves. Radar is widely used in military, aviation, transportation, meteorological monitoring and marine exploration. After the precision components of the radar are processed in the processing area, they are placed in other locations for storage.
[0003] In traditional radar precision component arrangement and placement operations, the process mainly relies on manual operation. Workers need to take radar precision components one by one from the conveyor mechanism, place them in the designated storage area, and manually arrange them neatly. This method is not only inefficient, but also susceptible to human factors, which can lead to deviations in the placement of precision components. If the manual placement speed is too fast, radar precision components may bump into each other. Therefore, it is difficult to meet the requirements of radar precision component arrangement and placement work. Utility Model Content
[0004] The purpose of this invention is to provide a device for arranging and placing precision radar components to solve the problems mentioned in the background art.
[0005] The objective of this utility model can be achieved through the following technical solutions: A radar precision component arranging and placement device includes a worktable, a connecting plate fixedly installed on the upper end of the worktable, a rotating mechanism fixedly installed near the center of the upper end of the connecting plate, a rotating disk provided on the inner wall of the rotating mechanism, an arranging and placement component for clamping and placing radar precision components provided on the upper end of the rotating disk, a conveying mechanism for arranging and conveying the processed radar precision components provided on one end of the worktable and the arranging and placement component, a support frame provided on one side of both the worktable and the arranging and placement component, a fixed platform fixedly connected to the upper end of multiple support frames, and a placement box plate provided on the upper end of the fixed platform.
[0006] Preferably, the arrangement assembly includes a guide plate, both sides of which are bolted to the upper end of the rotating disk via connectors. A guide groove is formed in the center of the guide plate, and an mounting plate is fixedly installed at one end of the guide groove. A servo motor is fixedly installed on one side of the mounting plate. The output shaft of the servo motor is rotatably sleeved inside the mounting plate, and the output shaft of the servo motor is driven by a first lead screw.
[0007] Preferably, the first lead screw is rotatably sleeved inside the guide groove of the guide plate, a guide block is slidably connected inside the guide groove, the first lead screw is rotatably connected inside the guide block near its center, and a T-shaped plate is fixedly connected to the upper end of the guide block.
[0008] Preferably, a fixing rod is fixedly connected to both ends of one side of the T-shaped plate, a horizontally arranged plate is fixedly installed at one end of the two fixing rods, a support member is fixedly installed at one end of the horizontally arranged plate, and a micro motor is fixedly installed on one side of the support member.
[0009] Preferably, the output shaft of the micro motor is rotatably sleeved inside the support member at the upper part. The output shaft of the micro motor is driven by a second lead screw. The end of the second lead screw away from the support member is rotatably sleeved on one end of the horizontally arranged plate. Four movable sleeve blocks are rotatably connected to the outer side of the second lead screw at equal intervals. The four movable sleeve blocks are located at the upper end of the horizontally arranged plate at equal intervals. A sliding groove is opened inside one side of the horizontally arranged plate.
[0010] Preferably, each of the four movable sleeve blocks has a movable clamping block fixedly connected to one side of its lower end, and each of the four movable clamping blocks has a sliding block fixedly connected to one end. The four sliding blocks are slidably connected inside the four sliding grooves respectively.
[0011] Preferably, the horizontally arranged plates are equidistantly arranged on the side near the sliding groove and are fixedly connected with fixed clamping blocks. The four fixed clamping blocks are located on one side of the four movable clamping blocks and are opposite to each other with a gap.
[0012] The beneficial effects of this utility model are: This invention ensures that multiple precision radar components are firmly clamped together by the relative movement between the movable clamping block and the fixed clamping block. After the arrangement and placement assembly completes the clamping of the precision radar components, the rotating mechanism further rotates the components 90 degrees, allowing the parts to be accurately aligned with the placement box. This effectively reduces manual intervention through clamping, arrangement, and placement operations, lowers labor costs and operations, avoids deviations in the placement of precision components during manual placement, and prevents collisions between precision radar components due to excessively fast manual placement. This improves the efficiency of the arrangement and placement of precision radar components. Attached Figure Description
[0013] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Figure 1This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the workbench, connecting plate, and structure of this utility model; Figure 3 This is a structural schematic diagram of the guide plate and guide groove of this utility model; Figure 4 This is a structural diagram showing the disassembled arrangement components of this utility model; Figure 5 This is a structural schematic diagram of the movable clamping block and the fixed clamping block of this utility model.
[0014] The reference numerals in the diagram are as follows: 1. Workbench; 11. Connecting plate; 2. Rotating mechanism; 21. Rotating disk; 3. Arranging and placement assembly; 31. Guide plate; 32. Mounting plate; 33. Guide groove; 34. Servo motor; 35. First lead screw; 36. Guide block; 37. T-shaped plate; 38. Fixed rod; 39. Horizontal arrangement plate; 310. Support component; 311. Micro motor; 312. Sliding groove; 313. Fixed clamping block; 314. Second lead screw; 315. Movable sleeve block; 316. Sliding block; 318. Movable clamping block; 4. Conveying mechanism; 5. Support frame; 6. Fixed platform; 7. Placement box plate. Detailed Implementation
[0015] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0016] like Figure 1 and Figure 2 As shown, a radar precision component arranging and placement device includes a worktable 1. A connecting plate 11 is fixedly installed on the upper end of the worktable 1. A rotating mechanism 2 is fixedly installed near the center of the upper end of the connecting plate 11. A rotating disk 21 is provided on the inner wall of the rotating mechanism 2. An arranging and placement component 3 for clamping and placing radar precision components is provided on the upper end of the rotating disk 21. A conveying mechanism 4 for arranging and conveying the processed radar precision components is provided at one end of the worktable 1 and the arranging and placement component 3. A support frame 5 is provided on one side of both the worktable 1 and the arranging and placement component 3. A fixed platform 6 is fixedly connected to the upper end of multiple support frames 5. A placement box plate 7 is provided on the upper end of the fixed platform 6.
[0017] In a specific embodiment, after the radar precision parts are processed, the arranged radar precision parts are conveyed by the conveying mechanism 4. Then, the multiple arranged radar precision parts are clamped by the arrangement and placement assembly 3. The arrangement and placement assembly 3 is further rotated 90 degrees by the rotating mechanism 2 to align with the position of the placement box 7. Finally, the multiple radar precision parts are arranged and placed in the placement box 7 by the arrangement and placement assembly 3. Both the conveying mechanism 4 and the rotating mechanism 2 are driven by external motors, which drive the conveyor belt and the rotating disk 21 to rotate. The conveying mechanism 4 and the rotating mechanism 2 are existing technologies and will not be described in detail here.
[0018] like Figures 1 to 5 As shown, as a technical optimization of this utility model, the arrangement component 3 includes a guide plate 31. Both sides of the guide plate 31 are bolted to the upper end of the rotating disk 21 through connectors. A guide groove 33 is provided in the center of the guide plate 31. An installation plate 32 is fixedly installed at one end of the guide groove 33. A servo motor 34 is fixedly installed on one side of the installation plate 32. The output shaft of the servo motor 34 is rotatably sleeved inside the installation plate 32. The output shaft of the servo motor 34 is driven by a first lead screw 35. The first lead screw 35 is rotatably sleeved inside the guide groove 33 of the guide plate 31. A guide block 36 is slidably connected inside the guide groove 33. The first lead screw 35 is rotatably connected in the center of the guide block 36. A T-shaped plate 37 is fixedly connected to the upper end of the guide block 36.
[0019] In a specific embodiment, when the conveying mechanism 4 transports the arranged radar precision components to one end of the arrangement and placement assembly 3, the conveying mechanism 4 stops transporting and drives the servo motor 34 to drive the first lead screw 35 to rotate, thereby driving the guide block 36 to move back and forth inside the guide groove 33.
[0020] Furthermore, a fixing rod 38 is fixedly connected to both ends of one side of the T-shaped plate 37. A horizontally arranged plate 39 is fixedly installed at one end of the two fixing rods 38. A support member 310 is fixedly installed at one end of the horizontally arranged plate 39. A micro motor 311 is fixedly installed on one side of the support member 310.
[0021] In one embodiment, when the guide block 36 drives the T-shaped plate 37 to move, it further drives the fixed rod 38 and the transverse arrangement plate 39 to move forward to one end of the conveying mechanism 4.
[0022] Furthermore, the output shaft of the micro motor 311 is rotatably sleeved inside the support member 310 at the upper part. The output shaft of the micro motor 311 is connected to a second lead screw 314. The end of the second lead screw 314 away from the support member 310 is rotatably sleeved on one end of the transverse arrangement plate 39. Four movable sleeve blocks 315 are rotatably connected to the outer side of the second lead screw 314 in an equidistant arrangement. The four movable sleeve blocks 315 are located at the upper end of the transverse arrangement plate 39 in an equidistant arrangement. A sliding groove 312 is opened inside one side of the transverse arrangement plate 39.
[0023] In a specific embodiment, when the horizontally arranged plate 39 moves to one end of the conveying mechanism 4, the micro motor 311 drives the second lead screw 314 to rotate, and the second lead screw 314 drives the four movable sleeve blocks 315 to move horizontally in the same direction, thereby driving the four movable clamping blocks 318 to move, and further the four sliding blocks 316 move inside the four sliding grooves 312.
[0024] Furthermore, each of the four movable sleeve blocks 315 is fixedly connected to a movable clamping block 318 at one side of its lower end. Each of the four movable clamping blocks 318 is fixedly connected to a sliding block 316 at one end. The four sliding blocks 316 are slidably connected inside the four sliding grooves 312. The horizontally arranged plates 39 are fixedly connected to fixed clamping blocks 313 at equal intervals on one side of the sliding grooves 312. The four fixed clamping blocks 313 are located on one side of the four movable clamping blocks 318 and are opposed to each other with a gap.
[0025] In a specific embodiment, during the movement of the four movable clamping blocks 318, the four movable clamping blocks 318 move closer to one side of the four fixed clamping blocks 313, and the four movable clamping blocks 318 and the four fixed clamping blocks 313 move closer together, thereby clamping and holding multiple arranged radar precision components from the conveying mechanism 4.
[0026] In use, after the radar precision parts are processed, the arranged radar precision parts are conveyed by the conveying mechanism 4. Then, the multiple arranged radar precision parts are clamped by the arrangement and placement assembly 3. When the conveying mechanism 4 conveys the arranged radar precision parts to one end of the arrangement and placement assembly 3, the conveying mechanism 4 stops conveying. The servo motor 34 drives the first lead screw 35 to rotate, which in turn drives the guide block 36 to move back and forth inside the guide groove 33. When the guide block 36 drives the T-shaped plate 37 to move, it further drives the fixed rod 38 and the transverse arrangement plate 39 to move. The transverse arrangement plate 39 is moved forward to one end of the conveying mechanism 4. When the transverse arrangement plate 39 moves to one end of the conveying mechanism 4, the micro motor 311 drives the second lead screw 3... 14 rotates, and the second lead screw 314 drives the four movable sleeve blocks 315 to move horizontally in the same direction, thereby driving the four movable clamping blocks 318 to move. Furthermore, the four sliding blocks 316 move inside the four sliding grooves 312. During the movement of the four movable clamping blocks 318, the four movable clamping blocks 318 move closer to the four fixed clamping blocks 313. Through the close proximity between the four movable clamping blocks 318 and the four fixed clamping blocks 313, multiple radar precision components are clamped and clamped from the conveying mechanism 4. Then, the rotating mechanism 2 drives the arrangement and placement assembly 3 to rotate 90 degrees, rotating the arrangement and placement assembly 3 to align with the position of the placement box 7. Finally, the arrangement and placement assembly 3 arranges and places multiple radar precision components in the placement box 7.
[0027] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model.
Claims
1. A device for arranging and placing precision radar components, characterized in that: The system includes a workbench (1), a connecting plate (11) fixedly installed on the upper end of the workbench (1), a rotating mechanism (2) fixedly installed near the center of the upper end of the connecting plate (11), a rotating disk (21) provided on the inner wall of the rotating mechanism (2), an arrangement assembly (3) for clamping and placing radar precision parts provided on the upper end of the rotating disk (21), a conveying mechanism (4) for arranging and conveying processed radar precision parts provided on one end of the workbench (1) and the arrangement assembly (3), a support frame (5) provided on one side of the workbench (1) and the arrangement assembly (3), a fixed platform (6) fixedly connected to the upper end of multiple support frames (5), and a placement box plate (7) provided on the upper end of the fixed platform (6).
2. The radar precision component arrangement and placement device according to claim 1, characterized in that: The arrangement component (3) includes a guide plate (31). Both sides of the guide plate (31) are bolted to the upper end of the rotating disk (21) through connectors. A guide groove (33) is provided in the center of the guide plate (31). A mounting plate (32) is fixedly installed at one end of the guide groove (33). A servo motor (34) is fixedly installed on one side of the mounting plate (32). The output shaft of the servo motor (34) is rotatably sleeved inside the mounting plate (32). The output shaft of the servo motor (34) is connected to a first lead screw (35).
3. The radar precision component arrangement and placement device according to claim 2, characterized in that: The first lead screw (35) is rotatably sleeved inside the guide groove (33) of the guide plate (31). The guide block (36) is slidably connected inside the guide groove (33). The first lead screw (35) is rotatably connected inside the guide block (36) near the center. The upper end of the guide block (36) is fixedly connected to a T-shaped plate (37).
4. The radar precision component arrangement and placement device according to claim 3, characterized in that: One side of the T-shaped plate (37) is fixedly connected to two ends of a fixing rod (38). A horizontally arranged plate (39) is fixedly installed at one end of the two fixing rods (38). A support member (310) is fixedly installed at one end of the horizontally arranged plate (39). A micro motor (311) is fixedly installed on one side of the support member (310).
5. The radar precision component arrangement and placement device according to claim 4, characterized in that: The output shaft of the micro motor (311) is rotatably sleeved inside the support member (310) at the upper part. The output shaft of the micro motor (311) is connected to a second lead screw (314). The end of the second lead screw (314) away from the support member (310) is rotatably sleeved on one end of the horizontal arrangement plate (39). Four movable sleeve blocks (315) are rotatably connected to the outer side of the second lead screw (314) in an equidistant arrangement. The four movable sleeve blocks (315) are located at the upper end of the horizontal arrangement plate (39) in an equidistant arrangement. A sliding groove (312) is opened inside one side of the horizontal arrangement plate (39).
6. The radar precision component arrangement and placement device according to claim 5, characterized in that: Each of the four movable sleeve blocks (315) has a movable clamping block (318) fixedly connected to one side of its lower end. Each of the four movable clamping blocks (318) has a sliding block (316) fixedly connected to one end. The four sliding blocks (316) are slidably connected inside the four sliding grooves (312).
7. The radar precision component arrangement and placement device according to claim 4, characterized in that: The horizontally arranged plates (39) are equidistantly arranged on the side near the sliding groove (312) and each is fixedly connected to a fixed clamping block (313). The four fixed clamping blocks (313) are located on one side of the four movable clamping blocks (318) and are opposite to each other with a gap.