Debugging supporting leg assembly for photoelectric rotary table
By designing an automatic unfolding and retracting cable management mechanism and a positioning mechanism, the problem of messy cables in the photoelectric turntable was solved, achieving efficient cable management and stable positioning of the photoelectric turntable, thus improving debugging efficiency and ease of assembly.
Patent Information
- Application Number
- CN202511567097.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-30
- Publication Date
- 2026-01-09
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When there are many wires in the existing optoelectronic turntable debugging leg assembly, the messy wiring leads to low wiring efficiency, increases assembly difficulty, and does not take into account the space for wire management, which affects assembly efficiency.
An experimental support leg assembly was designed, comprising an experimental base, an unfolding mechanism, a cable management mechanism, and a positioning mechanism. The cable management mechanism automatically unfolds and retracts to organize the optical turntable cables and fixes them with magnetic blocks to achieve orderly cable arrangement. A cylinder is used to push the cable management box to lift and rotate the screw to bundle the cables. The optical turntable is then fixed in place by the positioning groove and the screw.
It achieves efficient organization and stable positioning of the optoelectronic turntable wires, improves debugging efficiency, avoids wire clutter, and ensures that the optoelectronic turntable maintains a stable posture on a fixed or moving platform, meeting the line-of-sight accuracy requirements of the optoelectronic load.
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Figure CN121296840A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of photoelectric detection technology, specifically a debugging support leg assembly for a photoelectric turntable. Background Technology
[0002] In fields such as optical detection, precision measurement, and remote sensing monitoring, the photoelectric turntable is the core equipment that carries photoelectric loads. Its installation posture accuracy and support stability directly determine the load's working performance. The debugging support leg assembly is a key auxiliary structure for the installation, debugging, and maintenance of the turntable. It needs to undertake the functions of turntable support, horizontal calibration, and scene adaptation to ensure that the turntable can maintain a stable posture on fixed or mobile platforms and meet the line-of-sight accuracy requirements of the photoelectric load. However, its support design does not consider the space for cable management, which increases the assembly difficulty.
[0003] CN113124284B discloses a debugging leg assembly for an optoelectronic turntable and the optoelectronic turntable itself. The debugging leg assembly includes a fixed base, a leg, and a locking assembly. The fixed base is located on the turntable orientation seat of the optoelectronic turntable. The leg is pivotally connected to the fixed base to switch between an extended state and a retracted state. The locking assembly is located on the turntable orientation seat and is adjacent to the fixed base. The locking assembly has a locked state and an open state. When the locking assembly is in the open state, the leg can rotate relative to the fixed base. When the locking assembly is in the locked state, the locking assembly and the leg engage in a stop engagement, and the leg is fixed in the extended or retracted state. Thus, the leg can be fixed in the extended state by the locking assembly, and the leg can support the pitch component of the optoelectronic turntable to facilitate debugging and maintenance of the optoelectronic turntable. After debugging or maintenance is completed, the leg can be switched to the retracted state and fixed by the locking assembly. The structure is simple and the operation is convenient.
[0004] When the device is in use, after debugging or maintenance, the legs can be switched to the storage state and fixed by the locking component. The structure is simple and the operation is convenient. However, when the device is in use, the U-shaped frame and load are supported by the unfolded legs for wiring. When there are many lines, the wiring efficiency is too low due to the messy wires. Therefore, a debugging leg component for photoelectric turntable is proposed. It can automatically pop out the wire management mechanism after the photoelectric turntable is put down and use the wire management mechanism to organize and store the wires of the photoelectric turntable. Summary of the Invention
[0005] To address the problems mentioned in the background section, the present invention provides a debugging support leg assembly for an optoelectronic turntable.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a debugging support leg assembly for an optoelectronic turntable, comprising a debugging base, a debugging bracket at the top of the debugging base, an unfolding mechanism installed inside the debugging base, a cable management mechanism installed at one end of the unfolding mechanism, a cable management groove opened at the top of the debugging bracket, and a positioning mechanism installed at the top of the debugging bracket. The unfolding mechanism includes a first positioning rod, a return spring, and a compression cylinder. The first positioning rod is fixed to the bottom end of the debugging bracket, and a return spring is sleeved on the outside of the first positioning rod. The compression cylinder is fixed to the bottom end of the debugging bracket, and a storage box is movably connected inside the debugging base. The cable management mechanism includes a cylinder, a cable management box, and a mounting groove. The cylinder is fixed to the bottom of the storage box, and the cable management box is fixed to the top of the cylinder. The top of the cable management box has a mounting groove.
[0007] Preferably, an extrusion rod is fixed inside the extrusion cylinder, a spiral cylinder is rotatably connected inside the debugging base, a gear is fixed at the bottom end of the spiral cylinder, a rack is movably connected inside the debugging base, an anti-clogging groove is provided at one end of the rack, and two sets of the first positioning rods are provided, which are symmetrically distributed about the central axis of the debugging bracket.
[0008] Preferably, two sets of return springs are provided. The return springs are used to compress the adjustment bracket and keep it moving upward. The outer wall of the first positioning rod is in contact with the inner wall of the adjustment base. The compression cylinder is a hollow cylinder.
[0009] Preferably, there are two sets of extrusion rods, which are symmetrically distributed about the central axis of the extrusion cylinder. The diameter of the extrusion rod is equal to the width of the thread groove of the spiral cylinder. The gear has several sets of teeth on its outer side, and the rack has several sets of teeth on its outer side. The gear and the rack are meshed together.
[0010] Preferably, there are two sets of rack and storage box, which are symmetrically distributed about the central axis of the gear. The outer wall of the storage box fits the inner wall of the adjustment base, and the anti-blocking groove has a larger opening than the diameter of the first positioning rod.
[0011] Preferably, a first screw is rotatably connected inside the cable management box, a knob is fixed to the outside of the first screw, a pressing block is threadedly connected to the outside of the first screw, a second positioning rod is fixed inside the cable management box, a cable organizer is movably connected inside the cable management box, a partition is fixed to the outside of the cable organizer, two sets of cable organizing arms are rotatably connected to the top of the cable organizer, and a magnetic block is fixed to the outside of the cable organizing arms.
[0012] Preferably, there are four sets of cylinders, which are symmetrically distributed about the central axis of the cable management box. The outer diameter of the mounting groove is equal to the outer diameter of the cable organizer. The first screw is rotatably connected inside the cable management box.
[0013] Preferably, the inner wall of the pressing block is attached to the outer wall of the second positioning rod, the outer wall of the pressing block is attached to the inner wall of the cable management box, several sets of cable organizers are provided, the cable organizers are arranged at equal intervals, two sets of partitions are provided, the partitions are symmetrically distributed about the central axis of the cable organizers, and two sets of cable management arms are provided, the cable management arms are symmetrically distributed about the central axis of the cable organizers.
[0014] Preferably, the positioning mechanism includes a positioning groove, a second screw, and a third positioning rod. The positioning groove is formed at the top of the debugging bracket, the second screw is threadedly connected to the top of the debugging bracket, and the third positioning rod is rotatably connected to the outside of the second screw. Two sets of the second screw and the third positioning rod are provided, and the second screw and the third positioning rod are symmetrically distributed about the central axis of the positioning groove.
[0015] Preferably, the cable management channels are provided in two sets, and the cable management channels are symmetrically distributed about the central axis of the debugging bracket.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: This invention, through the coordinated use of a first positioning rod, a return spring, and a compression cylinder, enables the device to automatically unfold and retract the cable management mechanism. It is suitable for photoelectric turntable debugging scenarios. When the photoelectric turntable is placed on the debugging bracket, its weight causes the bracket to move downwards. The first positioning rod guides the device along the inner wall of the debugging base, and the compression cylinder drives the compression rod downwards. The compression rod engages with the screw cylinder, driving the screw cylinder and gears to rotate. Through gear meshing, the rack and storage box extend, and the cable management mechanism unfolds with the storage box. After debugging, the turntable is removed, the return spring pushes the debugging bracket back to its original position, causing the compression rod to move upwards, reversing the screw cylinder, and retracting the storage box and cable management mechanism. No manual operation is required, improving debugging efficiency.
[0017] This invention, through the coordinated use of a cylinder, cable management box, and mounting slot, enables the device to efficiently organize the cables of the photoelectric turntable, preventing them from becoming tangled. After the storage box is unfolded, the cylinder pushes the cable management box to lift the cable management slot to the surface of the adjustment bracket. The cables can then be placed into the cable management arm of the cable organizer. The cable management arm is fixed by magnetic blocks to complete the initial storage. When there are many cables, a cable organizer can be added through the mounting slot. Turning the knob drives the first screw to rotate, and the pressure block moves along the second positioning rod to squeeze the cable organizer, thereby bundling and organizing the cables and ensuring that the cables are arranged in an orderly manner.
[0018] This invention, through the coordinated use of a positioning groove, a second screw, and a third positioning rod, enables the device to precisely position the photoelectric turntable, ensuring stability during debugging and cable management. After the photoelectric turntable is placed in the positioning groove, rotating the two sets of second screws causes the third positioning rod to move symmetrically along the central axis of the positioning groove. The third positioning rod presses against the outer wall of the turntable, fixing the turntable in the center of the positioning groove, preventing the turntable from shifting during debugging or cable management, and providing a stable foundation for subsequent precise debugging and cable arrangement. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the overall compressed state structure of the present invention; Figure 3 This is a schematic diagram of the overall thread arrangement structure of the present invention; Figure 4 This is a schematic diagram of the overall left-side structure of the present invention; Figure 5 This is a schematic diagram of the unfolding mechanism of the present invention; Figure 6 For the present invention Figure 5 Enlarged cross-sectional view of a portion of point A in the middle section; Figure 7 This is a schematic diagram of the wire management mechanism of the present invention; Figure 8 This is an exploded view of the wire management mechanism of the present invention; Figure 9 For the present invention Figure 8 Enlarged cross-sectional view of section B in the middle section; Figure 10 This is a schematic diagram of the wire management mechanism of the present invention. Figure 11 This is a schematic diagram of the positioning mechanism of the present invention.
[0020] In the diagram: 1. Debugging base; 2. Debugging bracket; 3. Unfolding mechanism; 301. First positioning rod; 302. Return spring; 303. Extrusion cylinder; 304. Extrusion rod; 305. Spiral cylinder; 306. Gear; 307. Rack; 308. Storage box; 309. Anti-clogging groove; 4. Cable management mechanism; 401. Cylinder; 402. Cable management box; 403. Mounting groove; 404. Knob; 405. First screw; 406. Pressing block; 407. Second positioning rod; 408. Cable manager; 409. Partition; 410. Cable management arm; 411. Magnetic block; 5. Cable management groove; 6. Positioning mechanism; 601. Positioning groove; 602. Second screw; 603. Third positioning rod. Detailed Implementation
[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0022] like Figures 1 to 11 As shown, the present invention provides a debugging support leg assembly for an optoelectronic turntable, including a debugging base 1, a debugging bracket 2 at the top of the debugging base 1, an unfolding mechanism 3 installed inside the debugging base 1, a cable management mechanism 4 installed at one end of the unfolding mechanism 3, a cable management groove 5 at the top of the debugging bracket 2, a positioning mechanism 6 at the top of the debugging bracket 2, and two sets of cable management grooves 5, which are symmetrically distributed about the central axis of the debugging bracket 2.
[0023] like Figures 1 to 6 As shown, the unfolding mechanism 3 includes a first positioning rod 301, a return spring 302, and a compression cylinder 303. The first positioning rod 301 is fixed to the bottom end of the debugging bracket 2. The return spring 302 is sleeved on the outside of the first positioning rod 301. The compression cylinder 303 is fixed to the bottom end of the debugging bracket 2. Two sets of return springs 302 are provided. The return springs 302 are used to compress the debugging bracket 2 and keep it moving upward. The outer wall of the first positioning rod 301 is attached to the inner wall of the debugging base 1. The compression cylinder 303 is a hollow cylinder.
[0024] like Figures 1 to 6As shown, a storage box 308 is movably connected inside the debugging base 1. An extrusion rod 304 is fixed inside the extrusion cylinder 303. A spiral cylinder 305 is rotatably connected inside the debugging base 1. A gear 306 is fixed to the bottom end of the spiral cylinder 305. A rack 307 is movably connected inside the debugging base 1. Two sets of extrusion rods 304 are provided, symmetrically distributed about the central axis of the extrusion cylinder 303. The diameter of the extrusion rod 304 is equal to the width of the threaded groove of the spiral cylinder 305. Several sets of teeth are provided on the outside of the gear 306. The rack... The exterior of 307 is provided with several sets of teeth, and gear 306 and rack 307 are meshed and connected. One end of rack 307 is provided with anti-clogging groove 309. Two sets of first positioning rods 301 are provided. The first positioning rods 301 are symmetrically distributed about the central axis of the debugging bracket 2. Two sets of rack 307 and storage box 308 are provided. The rack 307 and storage box 308 are symmetrically distributed about the central axis of gear 306. The outer wall of storage box 308 is attached to the inner wall of debugging base 1. The groove of anti-clogging groove 309 is larger than the diameter of first positioning rod 301.
[0025] The above solution involves placing the photoelectric turntable inside the positioning slot 601 on the debugging bracket 2. The weight of the photoelectric turntable causes the debugging bracket 2 to move downwards, which in turn causes the first positioning rod 301 and the extrusion cylinder 303 to move downwards. This causes the extrusion cylinder 303 to drive the extrusion rod 304 downwards. Through the contact between the extrusion rod 304 and the thread of the spiral cylinder 305, the spiral cylinder 305 and the gear 306 rotate. As the gear 306 rotates, it drives the rack 307 to move through its external thread, thereby moving the storage box 308 from the adjustment slot 601. The test base 1 protrudes inside, aligning the cable management box 402 with the cable management groove 5. After cable management is completed, the photoelectric turntable is removed. At this time, the debugging bracket 2 is no longer compressed. The restoring force of the reset spring 302 lifts the debugging bracket 2 and the compression cylinder 303. Then, the lifting of the compression rod 304 drives the spiral cylinder 305 and the gear 306 to reverse, thereby pulling the storage box 308 back for storage. This allows it to continue to protrude when debugging the next set of photoelectric turntables, and the sealed space improves the protection of the cable management box 402 when stored.
[0026] like Figures 1 to 10As shown, the cable management mechanism 4 includes a cylinder 401, a cable management box 402, and a mounting groove 403. The cylinder 401 is fixed to the bottom of the storage box 308. The cable management box 402 is fixed to the top of the cylinder 401. The top of the cable management box 402 has a mounting groove 403. A first screw 405 is rotatably connected inside the cable management box 402. A knob 404 is fixed to the outside of the first screw 405. A pressing block 406 is threadedly connected to the outside of the first screw 405. A second positioning rod 407 is fixed inside the cable management box 402. A cable organizer 408 is movably connected inside the cable management box 402. Four sets of cylinders 401 are provided. The cylinders 401 are symmetrically distributed about the central axis of the cable management box 402. The mounting groove 403 is located outside the cable management box 402. The diameter is equal to the outer diameter of the cable organizer 408. The first screw 405 is rotatably connected to the inside of the cable box 402. The outside of the cable organizer 408 is fixed with a partition 409. The top of the cable organizer 408 is rotatably connected with two sets of cable arms 410. The outside of the cable arms 410 is fixed with a magnetic block 411. The inner wall of the pressing block 406 is attached to the outer wall of the second positioning rod 407. The outer wall of the pressing block 406 is attached to the inner wall of the cable box 402. Several sets of cable organizers 408 are provided. The cable organizers 408 are arranged at equal intervals. Two sets of partitions 409 are provided. The partitions 409 are symmetrically distributed about the central axis of the cable organizer 408. Two sets of cable arms 410 are provided. The cable arms 410 are symmetrically distributed about the central axis of the cable organizer 408.
[0027] The above solution involves aligning the cable management box 402 with the cable management channel 5, then activating the cylinder 401 to lift the cable management box 402. This exposes the cable management box 402 on the surface of the adjustment bracket 2 via the cable management channel 5. Cables can then be placed into the two sets of cable management arms 410 via the unfolding cylinder 401. The two sets of magnetic blocks 411 then assemble the cable management arms 410, thus storing the cables. When the number of cable organizers 408 provided with the cable management box 402 is insufficient, new cable organizers 408 are removed from the storage box 308 and installed... The slot 403 places the cable organizer 408 into the cable management box 402. After all the cables are placed in, the knob 404 is turned to rotate the first screw 405, which in turn moves the pressure block 406 to squeeze the multiple sets of cable organizers 408, causing the cables to come together and thus bundle and organize the multiple sets of cables. After the cable management is completed, the cable management arm 410 is opened and the cable management box 402 is put back into the storage box 308. At this time, the photoelectric turntable for debugging, maintenance and cable management is removed, and the entire device is reset by the reset spring 302.
[0028] like Figures 1 to 11As shown, the positioning mechanism 6 includes a positioning groove 601, a second screw 602, and a third positioning rod 603. The positioning groove 601 is formed at the top of the debugging bracket 2. The second screw 602 is threadedly connected to the top of the debugging bracket 2. The third positioning rod 603 is rotatably connected to the outside of the second screw 602. There are two sets of the second screw 602 and the third positioning rod 603. The second screw 602 and the third positioning rod 603 are symmetrically distributed about the central axis of the positioning groove 601.
[0029] The above solution involves placing the photoelectric turntable inside the positioning slot 601 and then rotating the two sets of second screws 602 to move the position of the third positioning rod 603. This causes the third positioning rod 603 to press against the photoelectric turntable located between the positioning slots 601, thereby limiting the position of the photoelectric turntable and enabling it to be stably debugged and managed.
[0030] The working principle and usage process of this invention are as follows: First, the photoelectric turntable is placed inside the positioning slot 601 on the debugging bracket 2. The weight of the photoelectric turntable causes the debugging bracket 2 to move downward, which in turn causes the first positioning rod 301 and the extrusion cylinder 303 to move downward. This causes the extrusion cylinder 303 to drive the extrusion rod 304 downward, and through the contact between the extrusion rod 304 and the thread of the spiral cylinder 305, the spiral cylinder 305 and the gear 306 are driven to rotate. As the gear 306 rotates, it drives the rack 307 to move through its external thread, thereby causing the storage box 308 to protrude from the inside of the debugging base 1, so that the cable management box 402 is aligned with the cable management slot 5. After the cable management is completed, the photoelectric turntable is removed. At this time, the debugging bracket 2 is no longer... When compressed, the restoring force of the return spring 302 lifts the debugging bracket 2 and the compression cylinder 303. Then, the lifting of the compression rod 304 drives the spiral cylinder 305 and the gear 306 to reverse, thereby pulling the storage box 308 back for storage. This allows it to continue to extend when debugging the next set of photoelectric turntables. When stored, the sealed space improves the protection of the cable management box 402. After the photoelectric turntable is placed inside the positioning groove 601, the two sets of second screws 602 are rotated to move the position of the third positioning rod 603. The third positioning rod 603 then compresses the photoelectric turntable between the positioning grooves 601, thereby limiting the position of the photoelectric turntable and enabling stable debugging and cable management.
[0031] Finally, after aligning the cable management box 402 with the cable management groove 5, the cylinder 401 is activated to lift the cable management box 402, exposing its position on the surface of the adjustment bracket 2 through the cable management groove 5. At this point, cables can be placed into the two sets of cable management arms 410 by extending the cylinder 401. The cable management arms 410 are then joined together by two sets of magnetic blocks 411, thus storing the cables. When the number of cable organizers 408 provided with the cable management box 402 is insufficient, new cable organizers 408 are taken out from inside the storage box 308 and installed through the mounting slot 40. 3. Place the cable organizer 408 into the cable management box 402. After placing all the cables, turn the knob 404 to rotate the first screw 405, which in turn moves the pressure block 406 to squeeze the multiple cable organizers 408, causing the cables to come together and thus bundle and organize the multiple cables. After the cable management is completed, open the cable management arm 410 and put the cable management box 402 back into the storage box 308. At this time, remove the photoelectric turntable that has been adjusted, maintained and the cable management completed, and reset the entire device by using the reset spring 302.
[0032] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0033] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A debugging support leg assembly for an optoelectronic turntable, comprising a debugging base (1), characterized in that: The top of the debugging base (1) is provided with a debugging bracket (2), the inside of the debugging base (1) is equipped with an unfolding mechanism (3), one end of the unfolding mechanism (3) is equipped with a cable management mechanism (4), the top of the debugging bracket (2) is provided with a cable management groove (5), and the top of the debugging bracket (2) is equipped with a positioning mechanism (6). The unfolding mechanism (3) includes a first positioning rod (301), a return spring (302) and a compression cylinder (303). The first positioning rod (301) is fixed to the bottom end of the debugging bracket (2). The return spring (302) is sleeved on the outside of the first positioning rod (301). The compression cylinder (303) is fixed to the bottom end of the debugging bracket (2). The storage box (308) is movably connected inside the debugging base (1). The cable management mechanism (4) includes a cylinder (401), a cable management box (402), and a mounting groove (403). The cylinder (401) is fixed at the bottom inside the storage box (308), and the cable management box (402) is fixed at the top of the cylinder (401). The mounting groove (403) is opened at the top of the cable management box (402).
2. The debugging support leg assembly for an optoelectronic turntable according to claim 1, characterized in that: The extrusion cylinder (303) has an extrusion rod (304) fixed inside. The debugging base (1) has a spiral cylinder (305) rotatably connected inside. The bottom end of the spiral cylinder (305) has a gear (306) fixed. The debugging base (1) has a rack (307) movably connected inside. One end of the rack (307) has an anti-blocking groove (309). The first positioning rod (301) is provided in two sets. The first positioning rod (301) is symmetrically distributed about the central axis of the debugging bracket (2).
3. The debugging support leg assembly for an optoelectronic turntable according to claim 1, characterized in that: Two sets of reset springs (302) are provided. The reset springs (302) are used to squeeze the debugging bracket (2) and keep it moving upward. The outer wall of the first positioning rod (301) is attached to the inner wall of the debugging base (1). The squeezing cylinder (303) is a hollow cylindrical shape.
4. The debugging support leg assembly for an optoelectronic turntable according to claim 2, characterized in that: Two sets of extrusion rods (304) are provided. The extrusion rods (304) are symmetrically distributed about the central axis of the extrusion cylinder (303). The diameter of the extrusion rods (304) is equal to the width of the thread groove of the spiral cylinder (305). The gear (306) has several sets of teeth on its outside. The rack (307) has several sets of teeth on its outside. The gear (306) and the rack (307) are meshed and connected.
5. The debugging support leg assembly for an optoelectronic turntable according to claim 2, characterized in that: The rack (307) and storage box (308) are provided in two sets. The rack (307) and storage box (308) are symmetrically distributed about the central axis of the gear (306). The outer wall of the storage box (308) is attached to the inner wall of the debugging base (1). The groove of the anti-blocking groove (309) is larger than the diameter of the first positioning rod (301).
6. The debugging support leg assembly for an optoelectronic turntable according to claim 1, characterized in that: The cable management box (402) is rotatably connected to a first screw (405), and a knob (404) is fixed to the outside of the first screw (405). A pressing block (406) is threadedly connected to the outside of the first screw (405). A second positioning rod (407) is fixed inside the cable management box (402). A cable organizer (408) is movably connected inside the cable management box (402). A partition block (409) is fixed to the outside of the cable organizer (408). Two sets of cable arms (410) are rotatably connected to the top of the cable organizer (408). A magnetic block (411) is fixed to the outside of the cable arms (410).
7. The debugging support leg assembly for an optoelectronic turntable according to claim 6, characterized in that: The cylinder (401) is provided in four sets. The cylinder (401) is symmetrically distributed about the central axis of the cable management box (402). The outer diameter of the mounting groove (403) is equal to the outer diameter of the cable organizer (408). The first screw (405) is rotatably connected inside the cable management box (402).
8. The debugging support leg assembly for an optoelectronic turntable according to claim 6, characterized in that: The inner wall of the pressing block (406) is attached to the outer wall of the second positioning rod (407), and the outer wall of the pressing block (406) is attached to the inner wall of the cable management box (402). Several sets of cable management devices (408) are provided, and the cable management devices (408) are arranged at equal intervals. Two sets of partitions (409) are provided, and the partitions (409) are symmetrically distributed about the central axis of the cable management devices (408). Two sets of cable management arms (410) are provided, and the cable management arms (410) are symmetrically distributed about the central axis of the cable management devices (408).
9. The debugging support leg assembly for an optoelectronic turntable according to claim 1, characterized in that: The positioning mechanism (6) includes a positioning groove (601), a second screw (602), and a third positioning rod (603). The positioning groove (601) is located at the top of the debugging bracket (2). The second screw (602) is threadedly connected to the top of the debugging bracket (2). The third positioning rod (603) is rotatably connected to the outside of the second screw (602). There are two sets of the second screw (602) and the third positioning rod (603). The second screw (602) and the third positioning rod (603) are symmetrically distributed about the central axis of the positioning groove (601).
10. The debugging support leg assembly for an optoelectronic turntable according to claim 1, characterized in that: The cable management groove (5) is provided in two sets, and the cable management groove (5) is symmetrically distributed about the central axis of the debugging bracket (2).
Citation Information
Patent Citations
Debugging leg assembly for photoelectric turntable and photoelectric turntable
CN113124284B