Arbor supporting and fixing structure

By designing a tree support structure, using a clamping ring, insert rod, and sliding installation components, and utilizing a drive component to drive the winding shaft to rotate, the problem of manual cutting of slack traction ropes in existing technologies has been solved, enabling convenient tightening of traction ropes and improving the support effect.

CN223885859UActive Publication Date: 2026-02-10GUANGZHOU HENGSHENG CONSTR ENG
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Patent Information

Application Number
CN202520522659.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2026-02-10
Estimated Expiration
2035-03-24

AI Technical Summary

Technical Problem

In existing tree support structures, the length of the traction ropes causes slackness, requiring operators to manually cut them to tighten the connection, which is inconvenient.

Method used

A tree support structure is designed, which uses a clamping ring, a plug, and a sliding mounting component. The winding shaft is driven by a drive component to rotate, thereby winding up the traction rope. Combined with screws and bolts as fixing components, the winding shaft is driven by the drive component to rotate, thereby tightening the traction rope and preventing it from loosening.

Benefits of technology

The driving structure achieved by the driving component in the embodiment realizes the tightening of the traction rope, solving the problem of inconvenient operation in the prior art, and also realizes the loosening of the traction rope, thus achieving better operation convenience and traction rope tension.

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Abstract

The utility model relates to the technical field of supporting and fixing structures, and discloses an arbor supporting and fixing structure which comprises an embracing ring and a plurality of inserting rods, the embracing ring is arranged on a trunk in a butt joint and embracing mode, the inserting rods are connected to the ground in an inserted mode, the inserting rods are connected to the embracing ring through traction ropes, a plurality of installation assemblies are arranged on the embracing ring and comprise installation blocks, and through holes are formed in the installation blocks. A fixing piece used for fixing the mounting block is arranged in the mounting block, a rolling cavity is further formed in the mounting block, a rotatable rolling shaft is arranged in the rolling cavity, one end of the traction rope is connected to the corresponding rolling shaft, the rolling shaft rotates to be used for rolling the traction rope, and a driving piece is arranged in the mounting block. The winding shaft can be driven to rotate through the driving part, then the traction rope can be wound, the traction rope is tightened, the situation that the traction rope is loosened, and the supporting effect of the supporting and fixing structure is affected is avoided, and compared with an existing mode of cutting the traction rope, the supporting and fixing structure can better tension the traction rope, and operation is convenient and fast.
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Description

Technical Field

[0001] This utility model relates to the field of tree support structure technology, specifically, to a tree support structure. Background Technology

[0002] When transplanting saplings or trees, the root system is not yet fully developed and they are often affected by natural disasters such as strong winds and rainstorms. Therefore, in order to ensure their survival rate, the saplings or trees are often protected by stabilization methods after planting.

[0003] Currently, stabilization structures are commonly used to stabilize saplings or trees. A typical stabilization structure includes a plastic ring, several traction ropes, and several ground stakes. The plastic ring is placed on the trunk, the ground stakes are buried in the soil, and one end of each traction rope is connected to the ground stake, while the other end is connected to the plastic ring, thus stabilizing the tree. However, in actual use, due to the length of the traction ropes, the connection between the ground stakes and the plastic rings may become loose due to excessive length. Operators need to cut the traction ropes to achieve tension and secure the connection between the ground stakes and the plastic rings. Cutting the traction ropes is inconvenient and therefore requires improvement. Utility Model Content

[0004] The purpose of this invention is to provide a tree support structure to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] A tree support structure includes a support ring attached to the tree trunk and several poles inserted into the ground. The poles are connected to the support ring via traction ropes. The support ring has several slidable mounting components, each including a mounting block with a through hole for the support ring to pass through. The mounting block contains a fixing element for securing the mounting block and a winding cavity with a rotatable winding shaft. One end of the traction rope is connected to the corresponding winding shaft, and the rotation of the winding shaft winds up the traction rope. The mounting block also contains a driving element for rotating the winding shaft.

[0007] Furthermore, the mounting block is provided with a sliding cavity with an opening facing the through hole;

[0008] The fixing component includes a sliding block that is slidably disposed in the sliding cavity, and a rotatable screw is provided on the sliding block, with the screw threaded through the mounting block and extending out.

[0009] Furthermore, the mounting block has a mounting cavity located on one side of the winding cavity, one end of the winding shaft extends into the mounting cavity, and a sliding groove is provided along its axial direction on the side wall of the winding shaft extending into the mounting cavity;

[0010] The driving component includes a driving cylinder extending through the mounting cavity, which is sleeved outside the take-up shaft. The driving cylinder has a slider that slides in a groove inside the driving cylinder. The end of the driving cylinder located in the mounting cavity is provided with a mounting ring. A needle is provided on one side of the mounting ring. A spring is sleeved on the driving cylinder located in the mounting cavity. The spring is used to push the mounting ring to move so that the needle penetrates into the side wall of the mounting cavity, thereby fixing the take-up shaft.

[0011] Furthermore, a handle is provided at the protruding end of the drive cylinder.

[0012] Furthermore, the other end of the winding shaft extends through the mounting block, and the through end of the winding shaft is threaded with a locking nut for pressing against the side wall of the mounting block.

[0013] Furthermore, the mounting block has protrusions arranged on its side facing the inner side of the mounting ring.

[0014] Furthermore, the two ends of the clamping ring are provided with overlapping tongues that overlap each other, and the overlapping tongues are connected by bolts.

[0015] Compared with the prior art, the beneficial effects of this utility model are:

[0016] 1. This utility model can drive the winding shaft to rotate through the driving component, thereby winding up the traction rope and tightening it to prevent it from loosening and affecting the stabilizing effect of the stabilizing structure. Compared with the existing method of cutting the traction rope, this utility model can better tension the traction rope and is more convenient to operate.

[0017] 2. In this utility model, the mounting block can be installed on the mounting ring by passing the mounting ring through the through hole, and the mounting ring can be attached to the tree trunk by connecting the overlapping tongue with bolts, making the installation of the mounting components on the tree trunk more convenient; the setting of the fixing part can fix the mounting block to the mounting ring to prevent the mounting block from sliding and affecting the effect of the traction rope pulling the mounting ring. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of a tree support structure according to the present invention.

[0019] Figure 2 This is a schematic diagram of the installation components on the mounting ring in this utility model.

[0020] Figure 3 This is a schematic diagram of the installation components in this utility model.

[0021] Figure 4 This is one of the cross-sectional schematic diagrams of the mounting components in this utility model.

[0022] Figure 5This is the second cross-sectional view of the mounting components in this utility model.

[0023] Figure 6 This is a schematic diagram of the drive component in this utility model.

[0024] Figure 7 This is a schematic diagram of the structure of the clamping ring in this utility model.

[0025] The meanings of the labels in the diagram are as follows:

[0026] 100. Clamping ring; 110. Traction rope; 120. Insert rod; 210. Mounting block; 211. Rewinding chamber; 220. Rewinding shaft; 221. Locking nut; 230. Screw; 301. Through hole; 302. Protrusion; 310. Drive cylinder; 311. Handle; 401. Sliding chamber; 410. Sliding block; 501. Mounting chamber; 511. Slider; 512. Mounting ring; 520. Spring; 601. Needle; 710. Bolt; 711. Overlapping tongue. Detailed Implementation

[0027] To further understand the content of this utility model, a detailed description of this utility model will be provided in conjunction with the accompanying drawings and embodiments. It should be understood that the embodiments are merely illustrative of this utility model and are not intended to limit it.

[0028] The following is in conjunction with the appendix Figures 1-7 This embodiment will be described in further detail.

[0029] like Figure 1 As shown, a tree support structure in this embodiment includes a support ring 100 that is attached to the trunk of a tree and several poles 120 inserted into the ground. The poles 120 are connected to the support ring 100 by a traction rope 110. In actual use, the poles 120 are evenly inserted into the ground along the circumference of the tree. The upper end of each pole 120 is connected to the support ring 100 attached to the trunk of the tree by a traction rope 110. Thus, the support structure can better support the tree and improve its wind resistance.

[0030] Combination Figure 2 As shown, in this embodiment, the clamping ring 100 is provided with several slidable mounting components. The mounting components include mounting blocks 210, which are provided with through holes 301 for the clamping ring 100 to pass through. The mounting blocks 210 are provided with fixing members for fixing the mounting blocks 210. The mounting blocks 210 are also provided with winding chambers 211, which are provided with rotatable winding shafts 220. One end of the traction rope 110 is connected to the corresponding winding shaft 220. The winding shaft 220 rotates to wind up the traction rope 110. The mounting blocks 210 are provided with driving members for driving the winding shaft 220 to rotate.

[0031] In this embodiment, the number of installation components is adapted to the number of traction ropes 110 and insertion rods 120, which enables the traction ropes 110 to be connected on the carrying ring 100.

[0032] In this embodiment, combined with Figure 7 As shown, the wrapping ring 100 is made of plastic material, which gives it a certain deformation ability so that it can be wrapped around the tree trunk. The two ends of the wrapping ring 100 are provided with overlapping tongues 711, which are connected by bolts 710. Thus, the wrapping ring 100 is spliced ​​and wrapped around the tree trunk.

[0033] Among them, combined Figure 3 As shown, when the clamping ring 100 is not spliced, it can be passed through the through hole 301 to achieve sliding installation of several mounting blocks 210 on the clamping ring 100. When the clamping ring 100 is clamped to the tree trunk, the mounting blocks 210 can be fixed to the clamping ring 100 by the setting of the fastener, so as to avoid the sliding of the mounting blocks 210 and affect the effect of the traction rope 110 to pull the clamping ring 100.

[0034] The driving component enables the winding shaft 220 to rotate during actual use, thereby winding up the traction rope 110, tightening the traction rope 110, and preventing it from becoming loose and affecting the stabilizing effect of the stabilizing structure.

[0035] Combination Figure 4 As shown, in this embodiment, the mounting block 210 is provided with a sliding cavity 401 with an opening facing the through hole 301;

[0036] The fixing component includes a sliding block 410 that is slidably disposed in the sliding cavity 401. The sliding block 410 is provided with a rotatable screw 230, which extends out through the mounting block 210.

[0037] In actual use, the screw 230 is a hand-tightened bolt with its thread passing through the mounting block 210 and rotatably mounted on the sliding block 410 via a bearing, thereby realizing the rotatable mounting of the screw 230 on the sliding block 410.

[0038] The sidewall of the sliding block 410 slides against the sidewall of the sliding cavity 401 to restrict the sliding block 410, so that the sliding block 410 can slide in the sliding cavity 401 by turning the screw 230. When the sliding block 410 extends into the through hole 301, it squeezes the clamping ring 100 to fix the mounting block 210.

[0039] Specifically, a recessed groove is provided on the side wall where the sliding block 410 and the clamping ring 100 are pressed together, so as to increase the friction between the two and thus improve the fixing effect of the sliding block 410 on the mounting block 210 when it presses the clamping ring 100.

[0040] Combination Figures 5-6 As shown, in this embodiment, the mounting block 210 is provided with a mounting cavity 501 located on one side of the winding cavity 211, one end of the winding shaft 220 extends into the mounting cavity 501, and a sliding groove is provided along its axial direction on the side wall of the winding shaft 220 extending into the mounting cavity 501.

[0041] The driving component includes a driving cylinder 310 extending through the mounting cavity 501. The driving cylinder 310 is sleeved around the take-up shaft 220. A slider 511 that slides in a groove is provided inside the driving cylinder 310. A mounting ring 512 is provided at the end of the driving cylinder 310 located inside the mounting cavity 501. A needle 601 is arranged on one side of the mounting ring 512. A spring 520 is sleeved on the driving cylinder 310 located inside the mounting cavity 501. The spring 520 is used to push the mounting ring 512 to move so that the needle 601 pierces into the side wall of the mounting cavity 501, thereby fixing the take-up shaft 220.

[0042] In actual use, the take-up shaft 220 is rotatably mounted in the take-up cavity 211 via bearings. One end of the shaft extends through into the mounting cavity 501, and the other end extends through the mounting block 210. The opening of the mounting cavity 501 faces outward from the mounting block 210. A removable plug is provided at the opening of the mounting cavity 501 by screws, thereby enabling the installation and removal of the drive component within the mounting cavity 501.

[0043] The drive cylinder 310 extends through the end plate, and one end of the spring 520 abuts against the end plate and the other end abuts against the mounting ring 512, so that the spring 520 can push the needle 601 to insert into the side wall of the mounting cavity 501, thereby fixing the drive cylinder 310. Due to the cooperation between the slider 511 and the groove, the winding shaft 220 can be fixed at this time, that is, the tightened traction rope 110 is fixed, preventing it from loosening again due to the rotation of the winding shaft 220.

[0044] When the winding shaft 220 needs to be rotated to wind up and unwind the traction rope 110, the drive cylinder 310 is pulled up to make the needle 601 disengage from the side wall of the mounting cavity 501, thereby releasing the fixation of the winding shaft 220. At this time, rotating the drive cylinder 310 can drive the winding shaft 220 to rotate, so as to realize the winding of the winding shaft 220.

[0045] In actual use, in order to facilitate the operator to lift and rotate the drive cylinder 310, in this embodiment, the extended end of the drive cylinder 310 is provided with a handle 311.

[0046] Specifically, in order to facilitate the insertion of the needle 601 into the side wall of the mounting cavity 501 so as to fix the winding shaft 220, a rubber pad is fixed on the side wall of the mounting cavity 501 in this embodiment. In order to improve the stability of the fixation between the side wall of the mounting block 210 and the tree trunk, in this embodiment, the side of the mounting block 210 facing the inside of the clamping ring 100 is provided with protrusions 302. The protrusions 302 contact the tree trunk to increase the friction between the mounting block 210 and the outer wall of the tree trunk, so as to prevent the mounting block 210 from sliding relative to the corresponding tree trunk and affecting the stabilization effect of the stabilization structure on the tree.

[0047] In actual use, in order to further improve the fixation of the take-up shaft 220, the through end of the take-up shaft 220 is threaded with a locking nut 221 for pressing against the side wall of the mounting block 210.

[0048] In this embodiment, when the drive unit fixes the take-up shaft 220, the operator holds the handle 311 to fix the take-up shaft 220. At this time, by turning the locking nut 221 to press the side wall of the mounting block 210, the locking nut 221 can further fix the take-up shaft 220 on the basis of the drive unit fixing the take-up shaft 220, thereby making the tightening effect of the traction rope 110 better.

[0049] In practical use, this embodiment designs a corresponding number of mounting blocks 210, traction ropes 110, and insert rods 120 according to actual needs. First, the clamping ring 100 is passed through the through hole 301, allowing the mounting block 210 to slide onto the clamping ring 100. Then, the clamping rings 100 are connected using bolts 710, thus achieving clamping of the clamping ring 100 onto the tree trunk. Next, the insert rod 120 is inserted into the ground, and the two ends of the traction rope 110 are respectively connected to the corresponding insert rod 120 and the winding shaft 220. Then, the drive cylinder 3 is pulled... 10 is rotated to rotate the winding shaft 220, tightening the traction rope 110. Then the drive cylinder 310 is released, allowing the needle 601 to pierce the side wall of the mounting cavity 501 under the action of the spring 520, thus fixing the winding shaft 220. Next, the drive cylinder 310 is supported to fix the winding shaft 220, and the locking nut 221 is pressed against the side wall of the mounting block 210 to further fix the winding shaft 220, thereby fixing the traction rope 110 and making the fixing structure more effective for fixing trees.

[0050] In summary, the above description is only a preferred embodiment of the present utility model. All equivalent changes and modifications made within the scope of the patent application of the present utility model shall fall within the scope of the patent of the present utility model.

Claims

1. A tree support structure, comprising a support ring (100) attached to the trunk and a plurality of poles (120) inserted into the ground, the poles (120) being connected to the support ring (100) via traction ropes (110), characterized in that: The clamping ring (100) is provided with several slidable mounting components, including a mounting block (210). The mounting block (210) is provided with a through hole (301) through which the clamping ring (100) passes. The mounting block (210) is provided with a fixing member for fixing the mounting block (210). The mounting block (210) is also provided with a winding cavity (211). The winding cavity (211) is provided with a rotatable winding shaft (220). One end of the traction rope (110) is connected to the corresponding winding shaft (220). The winding shaft (220) rotates to wind up the traction rope (110). The mounting block (210) is provided with a driving member for driving the winding shaft (220) to rotate.

2. The tree support structure according to claim 1, characterized in that: The mounting block (210) has a sliding cavity (401) with an opening facing the through hole (301); The fixing component includes a sliding block (410) that is slidably disposed in the sliding cavity (401), and a rotatable screw (230) is provided on the sliding block (410). The screw (230) is threaded through the mounting block (210) and extends out.

3. The tree support structure according to claim 1, characterized in that: The mounting block (210) has a mounting cavity (501) located on one side of the winding cavity (211). One end of the winding shaft (220) extends into the mounting cavity (501). A sliding groove is provided along the axial direction on the side wall of the winding shaft (220) extending into the mounting cavity (501). The driving component includes a driving cylinder (310) extending through the mounting cavity (501). The driving cylinder (310) is sleeved around the take-up shaft (220). The driving cylinder (310) is provided with a slider (511) that slides in a groove. The end of the driving cylinder (310) located in the mounting cavity (501) is provided with a mounting ring (512). A needle (601) is provided on one side of the mounting ring (512). A spring (520) is sleeved on the driving cylinder (310) located in the mounting cavity (501). The spring (520) is used to push the mounting ring (512) to move so that the needle (601) pierces into the side wall of the mounting cavity (501) to fix the take-up shaft (220).

4. The tree support structure according to claim 3, characterized in that: A handle (311) is provided opposite to the extended end of the drive cylinder (310).

5. A tree support structure according to claim 3, characterized in that: The other end of the winding shaft (220) extends through the mounting block (210), and the through end of the winding shaft (220) is threaded with a locking nut (221) for pressing against the side wall of the mounting block (210).

6. The tree support structure according to claim 1, characterized in that: The mounting block (210) has protrusions (302) arranged on the side facing the inside of the mounting ring (100).

7. The tree support structure according to claim 1, characterized in that: The two ends of the mounting ring (100) are provided with overlapping tongues (711) that overlap each other, and the overlapping tongues (711) are connected by bolts (710).