Multifunctional bracket for cylindrical products
By designing a multi-functional bracket, the problems of the traditional cylindrical product's single-function support structure and cumbersome loading and unloading were solved, enabling rapid deployment and efficient protection, simplifying the operation process and reducing costs.
Patent Information
- Application Number
- CN202520640715.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2026-03-03
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional cylindrical products have a single supporting structure, are cumbersome to load and unload, are difficult to deploy quickly, have poor adaptability to mechanical environments, and offer inadequate protection.
A multifunctional bracket was designed, including a support base, an arc-shaped lower support plate, and an upper clamp. It adopts a quick-release locking structure, has a pre-set sling groove and a buffer pad inside, and incorporates a crumple zone and a foam interlayer in the support structure. It also has a lifting ring structure to achieve rapid lifting, placement, and vibration reduction protection.
It enables rapid loading, unloading, and deployment of products, improves mechanical environmental adaptability, enhances protection, simplifies operating procedures, and reduces implementation costs.
Smart Images

Figure CN223962554U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of storage and transportation tools, and specifically relates to a multifunctional bracket for cylindrical products. Background Technology
[0002] Traditional cylindrical product support structures, such as the patent with patent number "CN117006359A" entitled "Adjustable Cylindrical Equipment Bracket," mainly use curved plates to support the product. The applicant found in the research that the current structure has a relatively simple function, the product loading and unloading process is cumbersome and time-consuming, and it does not have a deployment function, requiring transfer to a special carrier for deployment, which makes it difficult to meet the needs of rapid product deployment; it also has poor adaptability to mechanical environments and provides inadequate protection for the product. Utility Model Content
[0003] In view of this, the present invention provides a multifunctional bracket for cylindrical products to solve the problems of cumbersome product loading and unloading process, lack of rapid placement function, and poor adaptability to mechanical environment in the prior art.
[0004] The technical solution is as follows:
[0005] A multifunctional bracket for cylindrical products, the key feature of which is that it includes:
[0006] Support base;
[0007] The lower support plate has an arc-shaped structure and is fixedly supported on the support base;
[0008] The upper clamp has an arc-shaped plate structure and can be closed with the lower support plate to form a restricted space that is compatible with cylindrical products;
[0009] The upper clamp and the lower support plate have a quick-release locking structure that cooperates with each other, and the edges of the upper clamp and the lower support plate that are close to each other have straight edges.
[0010] Using the above solution, the cylindrical product is hoisted and placed on the lower support plate, then the upper clamp is fastened and locked using the quick-release locking structure. The straight-edge structure can effectively prevent the lower support plate and upper clamp from gripping the product for a long time, thus reducing the risk of the product getting stuck, which is beneficial for long-term storage and avoids the product getting stuck with the bracket and causing damage to the product.
[0011] Preferably, the lower support plate has a pre-set sling groove on its inner side, and a sling is pre-installed in the sling groove. With this design, the sling can be adjusted for fit, such as lifting position and extension length on both sides, within the pre-set groove during actual use. This eliminates the need for lifting equipment installation, facilitating rapid product lifting, and is particularly suitable for products without lifting interfaces. Furthermore, the depth of the sling groove being greater than the sling thickness will not affect the stable placement of the product.
[0012] Preferably, the support base has a sling storage structure at the position corresponding to the sling's pre-set slot. This design reduces sling space requirements and minimizes sling tangling during idle periods, resulting in better adaptability.
[0013] As a preferred option, the inner sides of both the lower support plate and the upper clamp are fitted with cushioning pads. The pads, using the above-mentioned solution, can provide better vibration reduction and cushioning for the product, reduce the vibration and impact on the product during transportation, and ensure the safety of the product during lifting and transportation.
[0014] Preferably, the surface of the cushioning pad is covered with an isolation layer. Using the above method, the cushioning pad is made of rubber, which has strong adhesive compatibility, while the isolation layer can be made of felt, cotton or linen fabric, etc., which can effectively prevent the product from sticking to the cushioning pad.
[0015] Preferably, the support base includes at least two single brackets with radial cross-sections distributed relative to the center of the lower support plate, and two adjacent single brackets are connected as one unit by an axial connecting rod, and there is a height difference between the axial connecting rod and the bottom of the single bracket;
[0016] The single support includes a bottom crossbeam and a vertical support fixed to the bottom crossbeam. The vertical support has an arc surface that fits against the bottom surface of the lower support plate. With this design, the axial connecting rod can be used as a forklift beam during use, facilitating short-distance forklift transport. Furthermore, the single support structure provides better support strength for the lower support plate.
[0017] Preferably, the bottom crossbeam is a square tube structure with open ends and has sling dividers arranged along its length. This design facilitates independent storage of both ends of the slings, reduces space occupation, effectively prevents tangling, and allows for quick and easy deployment.
[0018] Preferably, the bottom crossbeam, vertical support, and axial connecting rod are all equipped with crumple grooves. By adopting this scheme, in the event of a drop, the reinforcing bars and beams of the support structure reliably crumple according to the crumple guide grooves to complete energy absorption protection, achieving reliable crumple under the condition of a large impact from an accidental drop, ensuring the stability and reliability of the overall structure.
[0019] Preferably, the vertical support column is filled with a foam interlayer. This approach increases the contact area with the lower support plate, reducing localized support pressure. Furthermore, different types and densities of foam can be selected based on the protection conditions, allowing the vertical support column to collapse and absorb energy during a fall, further improving overall vibration reduction and impact resistance.
[0020] Preferably, a lifting ring A is installed at the top of the vertical support column, and a lifting ring B is provided on one side of the bottom of the support base, with at least two lifting rings B symmetrically arranged relative to the center of gravity of the lower support plate. Using this solution, both overall lifting and single-sided placement functions can be achieved, and this placement method eliminates the need for traditional placement accessories, ensuring the product retains its original functionality after placement.
[0021] Preferably, the lower support plate has baffles at both axial ends, and the top of the upper clamp and the support base are equipped with limiting structures. With this design, when the product-carrying bracket is loaded into the packaging carrier for transportation, the baffles limit the axial position of the product, and the limiting structures limit the position of the product bracket assembly, preventing the product from shifting within the bracket or the product bracket assembly within the packaging carrier during transportation, thus improving product stability during transport.
[0022] Compared with the prior art, the beneficial effects of this utility model are:
[0023] The multi-functional integrated cylindrical product bracket provided by this utility model has good adaptability and is easy to disassemble and use quickly. Secondly, it integrates storage, transportation and delivery functions, which can realize convenient operation of products from storage to delivery.
[0024] The overall structure, from the storage state in the packaging carrier to the deployment to the predetermined location and entry into service, reduces the number of implementation steps, simplifies the operation, saves process time, and enables a rapid transition from the storage state to the service state compared to traditional deployment methods.
[0025] The tray in this application offers high ease of operation and excellent product protection, whether used for storage, short-distance transport, or placement. Its overall structure is simple and its implementation cost is low. Attached Figure Description
[0026] Figure 1 This is a schematic diagram of the structure of this utility model;
[0027] Figure 2 for Figure 1 Enlarged view of a portion of point A in the middle;
[0028] Figure 3 for Figure 1 Enlarged view of a section at point B in the middle;
[0029] Figure 4 A schematic diagram of the supporting base structure;
[0030] Figure 5 for Figure 5 Side view;
[0031] Figure 6 for Figure 5 Front view;
[0032] Figure 7 This is a sectional view of a single support frame.
[0033] Figure 8 This is a schematic diagram of the usage state of this utility model (the sling is in the storage state);
[0034] Figure 9 This is a schematic diagram of the usage state of this utility model (slings unfolded in preparation for lifting);
[0035] Figure 10 for Figure 8 Sectional view;
[0036] Figure 11 for Figure 10 Partial sectional view at point C;
[0037] Figure 12 A schematic diagram illustrating the state of the product before its launch, in preparation for the application of this utility model;
[0038] Figure 13 for Figure 12 Axonometric drawing;
[0039] Figure 14 This is a diagram illustrating the product launch status. Detailed Implementation
[0040] The present invention will now be described in further detail with reference to the accompanying drawings.
[0041] refer to Figures 1 to 14 The multifunctional bracket shown for cylindrical products mainly includes a support base 100, a lower support plate 200, and an upper clamp 300. Both the lower support plate 200 and the upper clamp 300 are arc-shaped, and their corresponding inner diameters are the same. The lower support plate 200 can be fixedly supported on the support base 100. The upper clamp 300 is a movable part, but it can form a cylindrical restrictive space with the lower support plate 200. When a cylindrical product is placed in it, its circumferential freedom can be restricted.
[0042] Based on this, both ends of the lower support plate 200 have baffles 240. When the cylindrical product 400 is placed in, the baffles 240 restrict its axial freedom. With the clamp 300, the cylindrical product 400 can be fixed in all directions. Furthermore, the top of the upper clamp 300 is provided with a limiting structure. Specifically, the limiting structure includes two sets of four limiting blocks 310. The four limiting blocks 310 are arranged in pairs and located at both ends of the upper clamp 300. When the cylindrical product 400 is placed into the packaging carrier along with the bracket, it is positioned between each set of limiting blocks 310 by the fixed positioning structure, which can effectively prevent it from moving in any direction during transportation.
[0043] To improve the ease of use of the bracket, a quick-release locking structure is provided between the lower support plate 200 and the upper clamp 300, preferably an anti-loosening latch structure. The latch plate and the lock are located on the lower support plate 200 and the upper clamp 300, respectively, as shown in the figure. The lower support plate 200 has at least two lower support plates 250 symmetrically arranged with respect to their length direction. The lower support plates 250 are close to the upper edge of the lower support plate 200. The upper clamp 300 has an upper support plate 320 directly opposite the lower support plates 250. The lock and the latch plate are respectively mounted on the upper support plate 320 and the lower support plate 250.
[0044] In this embodiment, to facilitate manual movement of the upper clamp 300, the design length of the upper clamp 300 is less than the length of the lower support plate 200, and a handle 330 is provided on the upper support plate 320.
[0045] In order to improve the overall adaptability, the lower support plate 200 has a sling pre-positioned groove 210, and a sling 220 is pre-positioned in the sling pre-positioned groove 210. This can avoid the situation where the sling protrudes in the lower support plate 200, which would prevent the product from fully contacting the lower support plate 200 and causing uneven force distribution.
[0046] The lifting slings can be adjusted within the pre-set grooves to accommodate various applications, including lifting position and extension length on both sides. This solution eliminates the need for lifting equipment installation, facilitating rapid product lifting. It is particularly suitable for products without lifting interfaces, and the depth of the pre-set grooves exceeding the sling thickness will not affect the stable placement of the product.
[0047] In practical implementation, buffer pads 230 are attached to the inner sides of both the lower support plate 200 and the upper clamp 300. Typically, the buffer pads 230 are rubber sheets; in this embodiment, the thickness of the rubber sheet is greater than the thickness of the sling 220. (See key reference) Figure 2The buffer pad 230 on the lower support plate 200 has a three-section structure. The middle buffer pad 230 is symmetrically arranged with respect to the center of gravity of the product. The other two buffer pads 230 are spaced apart from the middle buffer pad 230. In this embodiment, the distance and the thickness of the buffer pad 230 form the sling pre-positioning groove 210. The width of the sling pre-positioning groove 210 is greater than the width of the sling 220, which makes it easier to adjust the axial position of the sling.
[0048] The sling pre-set groove 210 is made of a buffer pad 230, which can relatively reduce the thickness of the lower support plate 200, thereby making the overall structure lighter. Without considering the weight of the lower support plate 200, it can be formed by directly slotting on the lower support plate 200.
[0049] Considering that the cushioning pad is made of rubber and has strong adhesive compatibility, an isolation layer 231 is attached to the surface of the cushioning pad 230. The isolation layer 231 is made of non-adhesive flexible materials such as felt or cotton and linen fabrics. The main purpose is to prevent the cushioning pad 230 from being compatible with the product and thus causing adhesion.
[0050] In addition to using cushioning pad 230 for vibration damping protection, this application innovatively proposes an anti-lock design and also offers numerous optimizations in cushioning protection. Specifically:
[0051] Firstly, the main references Figure 3 and Figure 11 The upper clamp 300 and the lower support plate 200 both have straight edges L on their opposite edges. In other words, in this embodiment, the upper clamp 300 and the lower support plate 200 are both formed by bending metal plates. During the bending process, the parts near the edges are not bent, thus forming straight edges L. This effectively prevents the edges from contacting the product surface when the product is saturated, thus avoiding the situation where the product gets stuck inside.
[0052] Secondly, refer to Figures 4 to 10 In this application, the support base 100 includes at least two single brackets 110 with radial cross sections distributed at the center of the lower support plate 200. Adjacent single brackets 110 are connected as one unit by an axial connecting rod 120, and there is a height difference between the axial connecting rod 120 and the bottom of the single bracket 110. The actual horizontal height of the axial connecting rod 120 is higher than that of the single bracket 110. This height difference allows the forklift forks to extend into the forklift, thereby enabling the entire unit to be forked and transported.
[0053] In this embodiment, the single support 110 includes a bottom crossbeam 111 and a vertical support column 112 fixed to the bottom crossbeam 111. The bottom crossbeam 111 is arranged tangentially along the lower support plate 200, and the vertical support column 112 has an arc surface that fits against the bottom surface of the lower support plate 200. Figure 11As shown, the arc surface can be composed of two vertical support columns 112, which are symmetrically arranged on the bottom crossbeam 112.
[0054] This embodiment includes two single supports 110, which are symmetrically arranged with respect to the center of mass of the lower support plate 200. The lower support plate 200 is directly welded and fixed to two vertical pillars 112. The two single supports 110 are connected as a whole by two axial connecting rods 120, as shown in the figure. The two ends of the axial connecting rods 120 are respectively fixed to two opposite vertical pillars 112, and their positions are higher than the bottom crossbeam 111.
[0055] In specific implementation, the bottom crossbeam 111 and the axial connecting rod 120 are both square tube structures, and the bottom crossbeam 111, the vertical support 112 and the axial connecting rod 120 are all equipped with a collapse groove 130. In addition, the vertical support 112 is a hollow steel section filled with a foam interlayer 114.
[0056] In this application, the support base 100 has a sling storage structure corresponding to the sling pre-positioned groove 210. Specifically, as shown in the figure, the bottom crossbeam 111 has open ends and sling partitions 113 arranged along its length. In this embodiment, the sling partitions 113 are horizontally arranged along the length of the bottom crossbeam 111, so that both ends of the sling 220 can be stored in the upper and lower cavities, ensuring the flatness of the sling 220 and preventing tangling. When the cylindrical product 400 needs to be lifted, such as... Figure 9 As shown, simply pull out both ends of the sling 220 to use it.
[0057] During implementation, each bottom crossbeam 111 is equipped with a positioning pin hole 160, such as Figure 4 As shown, each of the two bottom crossbeams 111 in this application is provided with a positioning pin hole 160, and they are arranged symmetrically with respect to the center of the support base 100. In this way, when the whole is placed into the packaging carrier, the support base 100 can be fixed through the positioning pin hole 160. With the limiting structure on the clamp 300, its stability in the packaging carrier can be further guaranteed.
[0058] Furthermore, to further improve the overall lifting and placement performance, a lifting ring A140 is installed at the top of the vertical support column 112, and a lifting ring B150 is provided on one side of the bottom of the support base 100. At least two lifting rings B150 are symmetrically arranged relative to the center of mass of the lower support plate 200. As shown in the figure, in this embodiment, both lifting rings A140 and B150 are universal lifting rings. The bracket carrying the product can be lifted as a whole by using four lifting rings A140. At the same time, when the sling 220 is stored, its end passes through the lifting rings A140 and then into the bottom crossbeam 111, which can play a certain limiting role for the sling 220.
[0059] In this embodiment, the product can be deployed using the lifting rings B150 and A140. Specifically, lifting ring B150 is located on one side of the bottom crossbeam 111, near the center of the bottom crossbeam 111, and is symmetrically positioned relative to the center of gravity of the lower support plate 200. During use, the upper clamp 300 is first removed, and the two ends of the lifting rope A500 are attached to the two lifting rings A140 on the same side. Then, the two ends of the lifting rope B600 are attached to the two lifting rings B150. The lifting rope A500 and the lifting rope B600 are located on opposite sides of the cylindrical product 400. The lifting rope A500 is connected to the lifting hook through the release mechanism 700, and the lifting rope B600 is directly hung on the lifting hook. When the target area is reached, the lifting rope A500 can be detached through the release mechanism 700, the support base 100 will deflect, the lower support plate 200 will face downward, and the cylindrical product 400 can be relatively detached for deployment. There is no need to add a deployment structure or deployment accessories to the product.
[0060] refer to Figures 1 to 14 The multi-functional bracket shown is for cylindrical products. In practice, the lower support plate 200 is made of thick steel plate bent into shape, while the upper clamp 300 is made of aluminum alloy plate bent into shape. This ensures good load-bearing performance while avoiding excessive overall weight.
[0061] The overall structure is streamlined and compact, with a small usable volume, which reduces the risk of interference when loading and unloading packaging carriers and speeds up the loading and unloading process. Combined with a quick-release locking mechanism and pre-installed lifting straps, it further improves product loading and unloading efficiency.
[0062] In addition, the combination of the cushioning pad 230 and the special support base 100 structure greatly improves the protective performance of the product. On the one hand, it reduces the vibration impact on the product during transportation and turnover by damping absorption and elastic dispersion, thus achieving vibration reduction protection. On the other hand, in the event of a drop, the cushioning pad 230, the crumple groove 130 and the foam interlayer 114 can be used for crumple or breakage to absorb energy, which also reduces the impact on the product.
[0063] Finally, it should be noted that the above description is merely a preferred embodiment of the present utility model. Those skilled in the art, under the guidance of the present utility model, can make various similar representations without departing from the spirit and claims of the present utility model, and such modifications all fall within the protection scope of the present utility model.
Claims
1. A multifunctional bracket for cylindrical products, characterized in that, include: Support base (100); The lower support plate (200) has an arc-shaped plate structure and is fixedly supported on the support base (100); The upper clamp (300) has an arc-shaped plate structure and can be closed with the lower support plate (200) to form a restricted space adapted to cylindrical products; The upper clamp (300) and the lower support plate (200) have a quick-release locking structure that cooperates with each other, and the edges of the upper clamp (300) and the lower support plate (200) that are close to each other both have straight edges (L).
2. The multifunctional bracket for cylindrical products according to claim 1, characterized in that: The lower support plate (200) has a sling pre-positioned groove (210) on its inner side, and a sling (220) is pre-positioned in the sling pre-positioned groove (210).
3. The multifunctional bracket for cylindrical products according to claim 2, characterized in that: The support base (100) has a sling storage structure at the position corresponding to the sling pre-positioned slot (210).
4. The multifunctional bracket for cylindrical products according to claim 2 or 3, characterized in that: The inner sides of the lower support plate (200) and the upper clamp (300) are both attached with cushioning pads (230), and the thickness of the cushioning pads (230) is greater than the thickness of the sling (220).
5. The multifunctional bracket for cylindrical products according to claim 4, characterized in that: The surface of the cushioning pad (230) is covered with an isolation layer (231).
6. The multifunctional bracket for cylindrical products according to claim 2 or 3, characterized in that: The support base (100) includes at least two single supports (110) with radial cross sections distributed at the center of the lower support plate (200). Two adjacent single supports (110) are connected as one unit by an axial connecting rod (120), and there is a height difference between the axial connecting rod (120) and the bottom of the single support (110). The single support (110) includes a bottom crossbeam (111) and a vertical support (112) fixed to the bottom crossbeam (111), the vertical support (112) having an arc surface that fits against the bottom surface of the lower support plate (200).
7. The multifunctional bracket for cylindrical products according to claim 6, characterized in that: The bottom crossbeam (111) is a square tube structure with open ends and has a sling partition (113) arranged along its length.
8. The multifunctional bracket for cylindrical products according to claim 6, characterized in that: The bottom crossbeam (111), vertical support (112), and axial connecting rod (120) all have crumple grooves (130).
9. The multifunctional bracket for cylindrical products according to claim 6, characterized in that: The vertical support (112) is filled with a foam interlayer (114).
10. The multifunctional bracket for cylindrical products according to claim 6, characterized in that: The top of the vertical support column (112) is equipped with a lifting ring A (140), and a lifting ring B (150) is provided on one side of the bottom of the support base (100). At least two lifting rings B (150) are symmetrically arranged relative to the center of mass of the lower support plate (200).
11. The multifunctional bracket for cylindrical products according to any one of claims 1 to 3, characterized in that: Both ends of the lower support plate (200) have baffles (240), and the top of the upper clamp (300) and the support base (100) are provided with limiting structures.
Citation Information
Patent Citations
Adjustable cylindrical equipment bracket
CN117006359A