A balloon suspension structure
The balloon suspension structure, composed of clamping and rotating parts, utilizes the sliding of the locking block in the locking groove to achieve the winding and unwinding of the balloon tether, solving the problem of cumbersome balloon suspension height adjustment in the prior art and providing a convenient suspension height adjustment method.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 陈湘中
- Filing Date
- 2025-08-01
- Publication Date
- 2026-07-03
AI Technical Summary
The existing balloon suspension method is cumbersome to adjust when adjusting the suspension height, requiring repeated untying and tightening of the rope, which makes it inconvenient to use.
The balloon suspension structure consists of a clamping component and a rotating component. The balloon tether is wound up or unwound by the locking block of the axially sliding rotating part inserting or disengaging from the locking groove, thereby adjusting the suspension height. The rotating part is fixed in length after the locking block is inserted into the locking groove.
It enables convenient adjustment of the balloon's levitation height, eliminating the need to repeatedly untie and tighten the rope, making operation simple and stable, and improving the user experience.
Smart Images

Figure CN224442135U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of balloon accessories, and specifically to a balloon suspension structure. Background Technology
[0002] Currently, after balloons are inflated, ribbons or other types of ropes are usually tied to the balloon's nozzle to prevent air leakage. The other end of the ribbon or other type of rope is tied to a pole or other carrier to suspend the balloon, allowing it to float in the air for decorative or other purposes to meet usage needs.
[0003] When it is necessary to adjust the levitation height of the balloon, the other end of the ribbon or other type of rope needs to be untied from the pole or other carrier, the length of the ribbon or other type of rope is adjusted, and then the other end of the ribbon or other type of rope is tied back to the pole or other carrier to adjust the levitation height of the balloon. However, this operation is quite cumbersome and causes great inconvenience to users.
[0004] In view of the above, the inventors propose the following technical solution. Utility Model Content
[0005] The purpose of this invention is to overcome the shortcomings of the existing technology and provide an intelligent overlock machine.
[0006] To solve the above-mentioned technical problems, the present invention adopts the following technical solution: The balloon suspension structure includes: a clamping member having a shaft hole and a locking groove; a rotating member for connecting with the balloon tether, which includes a rotating part mounted in the shaft hole in a manner that allows axial sliding and circumferential rotation, a locking block disposed on the rotating part, and a winding part for winding the balloon tether; the rotating member is detachably assembled with the shaft hole of the clamping member through the rotating part; when the locking block on the rotating part is not inserted into the locking groove, the rotating part can rotate circumferentially relative to the shaft hole; when the rotating part slides axially and the locking block on the rotating part is inserted into the locking groove, the rotating part cannot rotate circumferentially relative to the shaft hole.
[0007] Furthermore, in the above technical solution, the locking groove is provided on the inner wall of the shaft hole.
[0008] Furthermore, in the above technical solution, the rotating part includes a first arc-shaped piece and a second arc-shaped piece that are spaced apart and capable of elastic deformation. The first arc-shaped piece and the second arc-shaped piece are provided with a first undercut and a second undercut at their slightly later ends, and the locking block is provided at the root of both the first arc-shaped piece and the second arc-shaped piece. The distance between the outer surfaces of the first undercut and the second undercut is greater than the inner diameter of the shaft hole. The axial distance between the first undercut or the second undercut and the locking block is greater than or equal to the depth of the shaft hole.
[0009] Furthermore, in the above technical solution, the clamping component is a clip.
[0010] Furthermore, in the above technical solution, a hook is provided at the upper end of the rotating component.
[0011] Furthermore, in the above technical solution, the upper end of the rotating component is provided with a clamp for holding and positioning between it and the lower end of the hook.
[0012] Furthermore, in the above technical solution, the winding part and the rotating part are located on both sides of the rotating component.
[0013] Furthermore, in the above technical solution, the winding part has a winding groove for winding up the balloon tether, and the outer side of the winding part is also provided with a through hole that connects to the winding groove and allows the balloon tether to be threaded and bound.
[0014] After adopting the above technical solution, this utility model has the following beneficial effects compared with the prior art: In specific use, one end of the balloon tether is connected to the rotating part, and the other end of the balloon tether is connected to the balloon. The clamping part is fixed to the carrier such as the rod, so that the balloon is suspended in the air. At this time, when it is necessary to adjust the suspension height of the balloon, the locking block on the rotating part is disengaged from the locking groove by axially sliding the rotating part. That is, when the locking block on the rotating part is not inserted into the locking groove, the rotating part can rotate circumferentially relative to the shaft hole, thereby winding up the balloon tether to shorten the balloon tether or unwinding the balloon tether to lengthen the balloon tether, so as to achieve the purpose of adjusting the suspension height of the balloon. After completion, the rotating part is axially slidable, and after the locking block on the rotating part is inserted into the locking groove, the rotating part can no longer rotate circumferentially relative to the shaft hole, so that the length of the balloon tether is fixed, thus completing the adjustment. The whole process does not require repeated untying and tightening of the balloon tether, which is very convenient to operate, making this utility model highly competitive in the market. Attached Figure Description
[0015] Figure 1 This is a perspective view of the present invention;
[0016] Figure 2 This is a perspective view of the present invention from another angle;
[0017] Figure 3 This is an exploded perspective view of the present invention;
[0018] Figure 4 This is a perspective view of the rotating component in this utility model;
[0019] Figure 5 This is a perspective view of the rotating component in this utility model. Detailed Implementation
[0020] The present invention will be further described below with reference to specific embodiments and accompanying drawings.
[0021] See Figure 1-5 The diagram shows a balloon suspension structure, which includes a clamping member 1 and a rotating member 2. The clamping member 1 is fixed to a carrier such as a rod, while the rotating member 2 is used to connect to the balloon's tether.
[0022] The clamping member 1 is provided with a shaft hole 11 and a locking groove 12; the rotating member 2 includes a rotating part 21 that is axially slidable and circumferentially rotatable in the shaft hole 11, a locking block 22 provided on the rotating part 21, and a winding part 23 for winding up the balloon tether; the rotating member 2 is detachably assembled with the shaft hole 11 of the clamping member 1 through the rotating part 21; when the locking block 22 on the rotating part 21 is not inserted into the locking groove 12, the rotating part 21 can rotate circumferentially relative to the shaft hole 11; when the rotating part 21 slides axially and the locking block 22 on the rotating part 21 is inserted into the locking groove 12, the rotating part 21 cannot rotate circumferentially relative to the shaft hole 11. In other words, in practical use, one end of the balloon tether is connected to the rotating part 2, and the other end of the balloon tether is connected to the balloon. The clamping part 1 is fixed to the carrier such as the rod, so that the balloon is suspended in the air. At this time, when it is necessary to adjust the suspension height of the balloon, the axial sliding rotating part 21 is used to make the locking block 22 on the rotating part 21 disengage from the locking groove 12. That is, when the locking block 22 on the rotating part 21 is not inserted into the locking groove 12, the rotating part 21 can rotate circumferentially relative to the shaft hole 11, thereby winding up the balloon tether to shorten the balloon tether or unwinding the balloon tether to lengthen the balloon tether, so as to achieve the purpose of adjusting the suspension height of the balloon. After completion, the axial sliding rotating part 21 is axially slid, and after the locking block 22 on the rotating part 21 is inserted into the locking groove 12, the rotating part 21 can no longer rotate circumferentially relative to the shaft hole 11, so that the length of the balloon tether is fixed, thus completing the adjustment. The whole process does not require repeatedly untying and tightening the balloon tether, which is very convenient to operate and makes the present invention highly competitive in the market.
[0023] The locking groove 12 is provided on the inner wall of the shaft hole 11, which makes it easier for the rotating part 21 of the axial sliding member 2 to be inserted into or disengaged from the locking groove 12 when it is axially sliding. This facilitates operation.
[0024] To achieve a more stable assembly of the rotating part 21, the following configuration is also made: the rotating part 21 includes a first arc-shaped piece 211 and a second arc-shaped piece 212 that are spaced apart and capable of elastic deformation. A first undercut 213 and a second undercut 214 are provided at the slightly later ends of the first arc-shaped piece 211 and the second arc-shaped piece 212, and the locking block 22 is provided at the root of both the first arc-shaped piece 211 and the second arc-shaped piece 212; the distance between the outer surfaces of the first undercut 213 and the second undercut 214 is greater than the inner diameter of the shaft hole 11; the axial distance between the first undercut 213 or the second undercut 214 and the locking block 22 is greater than or equal to the depth of the shaft hole 11. When the rotating part 21 is inserted into the shaft hole 11, the ends of the first buckle 213 and the second buckle 214 first contact the inner wall of the shaft hole 11 to compress the first arc-shaped piece 211 and the second arc-shaped piece 212. This causes the first arc-shaped piece 211 and the second arc-shaped piece 212 to be compressed inward by an inward force, so that the first buckle 213 and the second buckle 214 can pass smoothly through the shaft hole 11. After the first buckle 213 and the second buckle 214 have completely passed through the shaft hole 11, the first arc-shaped piece 211 and the second arc-shaped piece 212 are reset to form an inward force, causing the first buckle 213 and the second buckle 214 to be stuck around the opening of the shaft hole 11. Since the distance between the outer surfaces of the first buckle 213 and the second buckle 214 is greater than the inner diameter of the shaft hole 11, it can effectively prevent the rotating part 21 from accidentally dislodging from the shaft hole 11.
[0025] The clamping component 1 is a clamp with a very simple structure, which is convenient for clamping and fixing rods or other objects.
[0026] The upper end of the rotating component 2 is provided with a hook 24. After the rotating component 2 is removed from the clamping component 1, it is hung on the frame by the hook 24 to meet different usage requirements.
[0027] The upper end of the rotating component 2 is provided with a clamp 25 for holding and positioning between the upper end and the lower end of the hook 24. When the length of the balloon string is adjusted, the balloon string can be partially wrapped and clamped in the clamp 25 to achieve the purpose of positioning the balloon string and preventing the balloon string from becoming loose.
[0028] The winding part 23 and the rotating part 21 are located on both sides of the rotating part 2, which facilitates assembly with the clamping part 1 and also facilitates winding up the balloon rope.
[0029] The winding section 23 has a winding groove 231 for winding up the balloon tether, and the outer side of the winding section 23 is also provided with a through hole 232 that connects to the winding groove 231 and allows the balloon tether to be threaded and bound.
[0030] In summary, in practical use, one end of the balloon tether is connected to the rotating part 2, and the other end of the tether is connected to the balloon. The clamping part 1 is used to hold and fix the balloon to the carrier such as the rod, thus suspending the balloon in the air. When it is necessary to adjust the levitation height of the balloon, the axial sliding rotating part 21 causes the locking block 22 on the rotating part 21 to disengage from the locking groove 12. That is, when the locking block 22 on the rotating part 21 is not inserted into the locking groove 12, the rotating part 21 can rotate circumferentially relative to the shaft hole 11, thereby winding up the balloon tether to shorten the balloon tether or unwinding the balloon tether to lengthen the balloon tether, thereby achieving the purpose of adjusting the levitation height of the balloon. After completion, the axial sliding rotating part 21 is axially slid, and after the locking block 22 on the rotating part 21 is inserted into the locking groove 12, the rotating part 21 can no longer rotate circumferentially relative to the shaft hole 11, thus fixing the length of the balloon tether and completing the adjustment. The whole process does not require repeatedly untying and tightening the balloon tether, making it very convenient to operate and giving this utility model a strong market competitiveness.
[0031] Of course, the above description is only a specific embodiment of the present utility model and is not intended to limit the scope of the present utility model. All equivalent changes or modifications made to the structure, features and principles described in the claims of the present utility model should be included in the scope of the claims of the present utility model.
Claims
1. A balloon suspension structure, characterized by, It includes: The clamping member (1) is provided with a shaft hole (11) and a locking groove (12); The rotating part (2) for connecting to the balloon tether includes a rotating part (21) mounted in the shaft hole (11) in a manner that allows for axial sliding and circumferential rotation, a locking block (22) provided on the rotating part (21), and a winding part (23) for winding up the balloon tether. The rotating part (2) is detachably assembled with the shaft hole (11) of the clamping part (1) through the rotating part (21); when the locking block (22) on the rotating part (21) is not inserted into the locking groove (12), the rotating part (21) can rotate circumferentially relative to the shaft hole (11); when the rotating part (21) slides axially and the locking block (22) on the rotating part (21) is inserted into the locking groove (12), the rotating part (21) cannot rotate circumferentially relative to the shaft hole (11).
2. The balloon suspension structure according to claim 1, characterized in that: The locking groove (12) is provided on the inner wall of the shaft hole (11).
3. The balloon suspension structure according to claim 1, characterized in that: The rotating part (21) includes a first arc-shaped piece (211) and a second arc-shaped piece (212) that are spaced apart and capable of elastic deformation. The first arc-shaped piece (211) and the second arc-shaped piece (212) are provided with a first buckle (213) and a second buckle (214) at their later ends. The root of the first arc-shaped piece (211) and the second arc-shaped piece (212) is provided with the locking block (22). The distance between the outer surfaces of the first buckle (213) and the second buckle (214) is greater than the inner diameter of the shaft hole (11). The axial distance between the first buckle (213) or the second buckle (214) and the locking block (22) is greater than or equal to the depth of the shaft hole (11).
4. The balloon suspension structure according to claim 1, characterized in that: The clamping element (1) is a clamp.
5. A balloon suspension structure according to any one of claims 1-4, characterized in that: The upper end of the rotating part (2) is provided with a hook (24).
6. A balloon suspension structure according to claim 5, characterized in that: The upper end of the rotating part (2) is provided with a clamp (25) for holding and positioning between the upper end and the lower end of the hook (24).
7. A balloon suspension structure according to claim 5, characterized in that: The winding section (23) and the rotating section (21) are located on both sides of the rotating member (2).
8. A balloon suspension structure according to claim 7, characterized in that: The winding section (23) has a winding groove (231) for winding up the balloon tether, and the outer side of the winding section (23) is also provided with a through hole (232) that connects to the winding groove (231) and allows the balloon tether to be threaded and bound.