Manual tower control structure

By incorporating baffles, slide rails, sliding parts, and curved windbreaks into the manual tower control structure, the problem of items slipping due to wind was solved, enabling flexible height adjustment and improved overall stability of the tower control structure.

CN223511774UActive Publication Date: 2025-11-04BEIJING HUANDA AUTOMOBILE ASSEMBLY CO LTD
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Patent Information

Application Number
CN202422650463.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-31
Publication Date
2025-11-04
Estimated Expiration
2034-10-31

AI Technical Summary

Technical Problem

Common manual tower control structures are susceptible to wind damage, which can cause items placed on the platform to slip, resulting in property damage or personal injury, and affecting work efficiency and progress.

Method used

A manual tower control structure was designed, including baffles, slide rails, sliding parts, locking screws, clamps, connecting rods, and wind deflectors. Through multi-level adjustment and curved surface design, the safety and stability of the platform are increased, preventing items from slipping and reducing the impact of wind.

Benefits of technology

Through multi-level adjustment and curved surface design, the overall stability of the tower control structure is improved, preventing items from slipping, enhancing the platform's safety, adapting to different usage needs, and reducing the impact of wind on items.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of manual tower control structures, in particular to a manual tower control structure which comprises a supporting rod. The device comprises four supporting rods and further comprises a baffle, a sliding rail, a sliding piece, a locking screw, a clamping plate, a connecting rod and a wind shield, the number of the supporting rods is four, first adjusting rods are slidably connected into the supporting rods, second adjusting rods are slidably connected into the first adjusting rods, a containing table is welded to the upper end faces of the four second adjusting rods, and the baffle is welded to the upper end face of the containing table; the outer side surfaces of the baffles are connected with sliding rails through connecting rods. Through the arrangement of the baffles, the safety of the platform is improved, articles are prevented from sliding off accidentally, the sliding pieces can slide on the surfaces of the sliding rails and are fixed by rotating the locking screws after sliding to the needed positions, the positions of the wind shields can be adjusted at will through the mechanism, the surfaces of the wind shields are designed to be curved surfaces, and the safety of the platform is improved. The influence of wind power on the tower structure is reduced, meanwhile, the influence of the wind power on objects is reduced, and therefore the overall stability is improved.
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Description

Technical Field

[0001] This utility model relates to the field of manual tower control structure technology, and in particular to a manual tower control structure. Background Technology

[0002] The manual tower control structure is a multifunctional and portable support device that can be used to build temporary work platforms, place tools and materials, improve construction efficiency, and provide a stable support platform for outdoor activities such as exhibitions, displays, and installation of temporary equipment. It can also provide stable support on filming sites for installing equipment such as cameras, lights, and sound systems.

[0003] Common manual tower control structures are susceptible to wind, which can cause items placed on the platform to slip, resulting in property damage or personal injury. Slipping items may also cause work to be suspended, requiring rearrangement and inspection, thus affecting work efficiency and progress.

[0004] Therefore, to address the issue that items placed on the platform may slip due to wind in the aforementioned manual tower control structure, a new manual tower control structure can be designed. The baffle increases the platform's safety and prevents items from accidentally slipping. The sliding component can slide on the rail surface and is fixed by rotating the locking screw after sliding to the desired position. This mechanism allows the position of the wind baffle to be adjusted arbitrarily. The curved surface of the wind baffle helps reduce the impact of wind on the tower structure and the items, thereby improving overall stability and solving the aforementioned problem. Utility Model Content

[0005] To overcome the problem that common manual tower control structures may cause items placed on the platform to slip due to wind.

[0006] The technical solution of this utility model is as follows: a manual tower control structure, including support rods; it also includes baffles, slide rails, sliding parts, locking screws, clamps, connecting rods, and wind deflectors. Four support rods are provided. An adjusting rod 1 is slidably connected inside the support rod, and an adjusting rod 2 is slidably connected inside the adjusting rod 1. A placement platform is welded to the upper end face of each of the four adjusting rods 2. A baffle is welded to the upper end face of the placement platform. A slide rail is connected to the outer surface of the baffle via a connecting rod. Two sliding parts are slidably connected to the surface of the slide rail. A locking screw is threaded into the screw hole of each sliding part. A handle is welded to one end of the locking screw, and a clamp is rotatably connected to the other end of the locking screw. One end of a connecting rod is welded to the outer surface of each sliding part, and a wind deflector is welded to the other end of the connecting rod.

[0007] Preferably, this mechanism allows for multi-level adjustment, enabling flexible height adjustment of the entire tower control structure to adapt to different usage needs. Objects for exhibitions or temporary equipment installations are placed on the platform. The baffle design increases platform safety, preventing items from accidentally slipping. The sliding component can slide on the slide rail surface and is fixed by rotating the locking screw after sliding to the desired position. This mechanism allows for arbitrary adjustment of the position of the wind deflector. The curved surface of the wind deflector helps reduce the impact of wind on the tower structure and the objects, thereby improving overall stability.

[0008] Preferably, the surfaces of the four support rods are welded with fixing rings, and a second fixing plate is welded between the front and rear fixing rings. A counterweight hook is installed on the side of the second fixing plate that is far apart from each other.

[0009] Preferably, a fixing plate is welded between the two fixing rings on the left and right sides, and a fixing block is welded to the surface of the fixing plate on the side that is far apart from each other. A screw is threaded into the screw hole of the fixing block, and an anti-slip pad is rotatably connected to the lower end of the screw.

[0010] Preferably, a slide rod is slidably connected in each of the two slide grooves of the fixed block, and an anti-slip pad is connected to the lower end of the two slide rods.

[0011] Preferably, a locking component is installed on the outer surface of each of the four support rods. A locking ring is connected to the upper end of the locking component. A locking rod is rotatably installed between the mounting plates of the front and rear locking rings. A locking rod is threadedly connected between the connecting plates of the front and rear locking rings. A knob is installed on the surface of the locking rod.

[0012] Preferably, a locking element 2 is installed on the outer surface of each of the four adjusting rods 1. A locking ring 2 is connected to the upper end of the locking element 2. A locking rod 2 is rotatably installed between the mounting plates of the front and rear locking rings 2. A locking rod 2 is threadedly connected between the connecting plates of the front and rear locking rings 2. A knob 2 is installed on the surface of the locking rod 2.

[0013] Preferably, a rubber pad is installed at the lower end of each of the four support rods, and the surface of the wind deflector is curved.

[0014] The beneficial effects of this utility model are:

[0015] 1. This mechanism allows for flexible height adjustment of the entire tower control structure through multi-level adjustment to adapt to different usage needs. Objects for exhibitions or temporary equipment installations can be placed on the platform. The baffle design increases the platform's safety and prevents items from accidentally slipping. The sliding parts can slide on the slide rail surface and are fixed by rotating the locking screws after sliding to the desired position. This mechanism allows the position of the wind deflector to be adjusted arbitrarily. The curved surface design of the wind deflector helps reduce the impact of wind on the tower structure and the items, thereby improving overall stability. Attached Figure Description

[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of a manual tower control structure according to this utility model.

[0017] Figure 2 The diagram shown is a three-dimensional representation of the unfolded structure of a manual tower control structure according to this utility model.

[0018] Figure 3 The diagram shown is a three-dimensional structural schematic of the location of the screw in a manual tower control structure according to this utility model.

[0019] Figure 4 The diagram shown is a three-dimensional structural schematic of a manual tower control structure locking component of this utility model.

[0020] Figure 5 The diagram shown is a three-dimensional structural schematic of the location of the sliding component of a manual tower control structure according to this utility model.

[0021] Explanation of reference numerals in the attached diagram: 1. Support rod; 2. Rubber pad; 3. Fixing ring; 4. Fixing plate one; 5. Fixing block; 6. Screw; 7. Slide rod; 8. Anti-slip pad; 9. Adjusting rod one; 10. Adjusting rod two; 11. Placement platform; 12. Baffle; 13. Slide rail; 14. Sliding component; 15. Locking screw; 16. Handle; 17. Clamping plate; 18. Connecting rod; 19. Wind deflector; 201. Locking component one; 202. Locking ring one; 203. Locking rod one; 204. Knob one; 211. Locking component two; 212. Locking ring two; 213. Locking rod two; 214. Knob two; 22. Fixing plate two; 23. Counterweight hook. Detailed Implementation

[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0023] Please see Figures 1-5This utility model provides an embodiment of a manual tower control structure, including a support rod 1; it also includes a baffle 12, a slide rail 13, a sliding member 14, a locking screw 15, a clamping plate 17, a connecting rod 18, and a wind deflector 19. Four support rods 1 are provided. An adjusting rod 10 is slidably connected inside the support rod 1, and an adjusting rod 20 is slidably connected inside the adjusting rod 10. A placement platform 11 is welded to the upper end face of the four adjusting rods 20. A baffle 12 is welded to the upper end face of the placement platform 11. A slide rail 13 is connected to the outer surface of the baffle 12 via a connecting rod. Two sliding members 14 are slidably connected to the surface of the slide rail 13. A locking screw 15 is threaded into the screw hole of the sliding member 14. A handle 16 is welded to one end of the locking screw 15, and a clamping plate 17 is rotatably connected to the other end of the locking screw 15. One end of a connecting rod 18 is welded to the outer surface of the sliding member 14, and a wind deflector 19 is welded to the other end of the connecting rod 18.

[0024] Please see Figures 1-4 In this embodiment, fixing rings 3 are welded to the surfaces of the four support rods 1, and fixing plates 22 are welded between the front and rear fixing rings 3. A counterweight hook 23 is installed on the side of the fixing plates 22 that is far apart from each other. The fixing plates 22 further enhance the longitudinal stability of the tower control structure, preventing the tower from swaying back and forth under stress. The counterweight hook 23 is used to hang counterweights, increasing the weight at the bottom to improve the stability of the entire tower control structure, especially in situations with strong winds or where additional stability is required. A fixing plate 4 is welded between the left and right fixing rings 3, and a fixing block 5 is welded to the side of the fixing plate 4 that is far apart from each other. A screw rod 6 is threaded into the screw hole of the fixing block 5. The lower end of the screw 6 is rotatably connected to an anti-slip pad 8. The fixing plate 4 further enhances the lateral stability of the tower control structure. The fixing block 5 provides an installation point for the subsequent anti-slip components, enhancing the rigidity of the structure. By rotating the screw 6, its extension length can be adjusted, thereby adjusting the position of the anti-slip pad 8 to make it close to the ground and increase friction. The anti-slip pad 8 directly contacts the ground, increasing friction and preventing the tower control structure from sliding during use, thus improving overall stability. A sliding rod 7 is slidably connected in each of the two sliding grooves of the fixing block 5. The lower ends of the two sliding rods 7 are connected to the anti-slip pad 8. The setting of the sliding rods 7 can limit the anti-slip pad 8 and improve the stability of sliding.

[0025] Please see Figures 1-4In this embodiment, a locking element 201 is installed on the outer surface of each of the four support rods 1. A locking ring 202 is connected to the upper end of the locking element 201. A locking rod 203 is rotatably installed between the mounting plates of the front and rear locking rings 202. The locking rod 203 is threadedly connected between the connecting plates of the front and rear locking rings 202. A knob 204 is installed on the surface of the locking rod 203. An adjusting rod 9 slides within the support rod 1 to adjust the height. When adjusting rod 19 is pulled out from support rod 1, locking rod 203 is rotated by knob 204, causing locking ring 202 to press against adjusting rod 19, thereby fixing adjusting rod 19. A locking element 211 is installed on the outer surface of each of the four adjusting rods 19. Locking ring 212 is connected to the upper end of locking element 211. Locking rod 213 is rotatably installed between the mounting plates of the front and rear locking rings 212. A locking rod 213 is threaded between the connecting plates of 2. A knob 214 is installed on the surface of the locking rod 213. The adjusting rod 10 slides inside the adjusting rod 9. When further height adjustment is needed, the adjusting rod 10 is pulled out from the adjusting rod 9. By rotating the knob 214, the locking rod 213 is rotated, causing the locking ring 212 to press the adjusting rod 10, thereby fixing the adjusting rod 9. A rubber pad 2 is installed at the lower end of each of the four support rods 1. The surface of the wind baffle 19 is curved. The rubber pad 2 increases the friction between the support rod 1 and the ground, preventing the tower control structure from sliding during use. At the same time, the rubber pad 2 can also absorb some vibration and improve the overall stability. The curved design of the wind baffle 19 helps to reduce the impact of wind on the tower control structure, reduce wind resistance, and improve the stability of the tower control structure in the wind. At the same time, it can also reduce the impact of wind on items placed on the platform and protect the safety of the items.

[0026] During operation, this mechanism allows for multi-level adjustment of the entire tower control structure's height to adapt to different usage needs. Objects intended for exhibitions or temporary equipment installation are placed on the platform 11. The baffle 12 enhances platform safety, preventing items from accidentally slipping. The sliding member 14 can slide on the surface of the slide rail 13 and is secured by rotating the locking screw 15 after sliding to the desired position. This mechanism allows for arbitrary adjustment of the position of the wind deflector 19. The curved surface of the wind deflector 19 helps reduce the impact of wind on the tower structure and also reduces the wind's influence on... The impact of the items improves the overall stability. Fixing plate 22 further enhances the longitudinal stability of the tower control structure, preventing the tower from swaying back and forth under stress. Counterweight hook 23 is used to hang counterweights, increasing the weight at the bottom to improve the stability of the entire tower control structure, especially in windy conditions or where additional stability is required. Fixing plate 4 further enhances the lateral stability of the tower control structure. Fixing block 5 provides mounting points for subsequent anti-slip components, enhancing the rigidity of the structure. By rotating screw 6, its extension length can be adjusted, thereby adjusting the position of anti-slip pad 8 to ensure it fits snugly. The anti-slip pad 8 directly contacts the ground, increasing friction and preventing the tower control structure from sliding during use, thus improving overall stability. The sliding rod 7 limits the anti-slip pad 8 and also improves sliding stability. When height adjustment is needed, the adjusting rod 19 is pulled out from the support rod 1, and the locking rod 203 is rotated via the knob 204, causing the locking ring 202 to press against the adjusting rod 19, thereby fixing it in place. The adjusting rod 20 slides within the adjusting rod 19. For further height adjustment, the adjusting rod 20 is pulled out from the adjusting rod 19. The inner part is pulled out, and by rotating the knob 214, the locking rod 213 is rotated, which causes the locking ring 212 to press the adjusting rod 10, thereby fixing the adjusting rod 9. The rubber pad 2 increases the friction between the support rod 1 and the ground, preventing the tower control structure from sliding during use. At the same time, the rubber pad 2 can also absorb some vibration and improve the overall stability. The curved surface of the wind baffle 19 helps to reduce the impact of wind on the tower control structure, reduce wind resistance, and improve the stability of the tower control structure in the wind. At the same time, it can also reduce the impact of wind on items placed on the platform and protect the safety of the items.

[0027] Through the above steps, the mechanism allows for multi-level adjustment of the height of the entire tower control structure to adapt to different usage needs. Objects for exhibition or temporary equipment installation can be placed on the platform 11. The baffle 12 increases the platform's safety and prevents items from accidentally slipping. The slider 14 can slide on the surface of the slide rail 13 and is fixed by rotating the locking screw 15 after sliding to the desired position. This mechanism allows the position of the wind deflector 19 to be adjusted arbitrarily. The surface of the wind deflector 19 is designed with a curved surface, which helps to reduce the impact of wind on the tower structure and the items, thereby improving overall stability and solving the problem that common manual tower control structures may cause items placed on the platform to slip due to wind.

Claims

1. A manually operated tower control structure, comprising a support rod (1); characterized in that: It also includes a baffle (12), a slide rail (13), a sliding component (14), a locking screw (15), a clamp (17), a connecting rod (18), and a wind deflector (19). Four support rods (1) are provided. An adjusting rod one (9) is slidably connected inside the support rod (1). An adjusting rod two (10) is slidably connected inside the adjusting rod one (9). A placement platform (11) is welded to the upper surface of each of the four adjusting rod twos (10). A baffle (12) is welded to the upper surface of the placement platform (11). (12) has a slide rail (13) connected to its outer surface by a connecting rod. Two sliding parts (14) are slidably connected to the surface of the slide rail (13). A locking screw (15) is threaded into the screw hole of the sliding part (14). A handle (16) is welded to one end of the locking screw (15). A clamp (17) is rotatably connected to the other end of the locking screw (15). One end of a connecting rod (18) is welded to the outer surface of the sliding part (14). A wind deflector (19) is welded to the other end of the connecting rod (18).

2. The manual tower control structure according to claim 1, characterized in that: The surfaces of the four support rods (1) are welded with fixing rings (3), and fixing plates (22) are welded between the front and rear fixing rings (3). A counterweight hook (23) is installed on the side of the fixing plates (22) that are far apart from each other.

3. The manual tower control structure according to claim 2, characterized in that: A fixing plate (4) is welded between the two fixing rings (3) on the left and right sides. A fixing block (5) is welded to the surface of the fixing plate (4) on the side that is far apart from each other. A screw (6) is connected to the screw hole of the fixing block (5) by a thread. An anti-slip pad (8) is rotatably connected to the lower end of the screw (6).

4. The manual tower control structure according to claim 3, characterized in that: A slide rod (7) is slidably connected in each of the two slide grooves of the fixed block (5), and an anti-slip pad (8) is connected to the lower end of the two slide rods (7).

5. A manual tower control structure according to claim 2, characterized in that: A locking element (201) is installed on the outer surface of each of the four support rods (1). A locking ring (202) is connected to the upper end of the locking element (201). A locking rod (203) is rotatably installed between the mounting plates of the front and rear locking rings (202). A locking rod (203) is threadedly connected between the connecting plates of the front and rear locking rings (202). A knob (204) is installed on the surface of the locking rod (203).

6. A manual tower control structure according to claim 5, characterized in that: A locking element 2 (211) is installed on the outer surface of each of the four adjusting rods 1 (9). A locking ring 2 (212) is connected to the upper end of the locking element 2 (211). A locking rod 2 (213) is rotatably installed between the mounting plates of the front and rear locking rings 2 (212). A locking rod 2 (213) is threadedly connected between the connecting plates of the front and rear locking rings 2 (212). A knob 2 (214) is installed on the surface of the locking rod 2 (213).

7. A manual tower control structure according to claim 5, characterized in that: A rubber pad (2) is installed at the lower end of each of the four support rods (1), and the surface of the wind deflector (19) is curved.