Damage-proof storage device for high-pressure rubber hose

By designing a stable splicing of high-pressure hose storage device, the problem of large storage area of high-pressure hose and difficulty in mechanizing loading and unloading is solved, efficient storage and loading and unloading is achieved, safety hazards are reduced, and emergency rescue efficiency is improved.

CN223200548UActive Publication Date: 2025-08-08SHENHUA SHENDONG COAL GRP +1
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Patent Information

Application Number
CN202422081809.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Priority Date
2024-07-09
Filing Date
2024-08-26
Publication Date
2025-08-08
Estimated Expiration
2034-08-26

AI Technical Summary

Technical Problem

The existing emergency rescue high-pressure hose storage occupies a large number of warehouses and storage sites, is difficult to load and unload in mechanized manner, is time-consuming and labor-intensive, and has safety hazards.

Method used

A high-pressure hose anti-damage storage device consisting of three single-layer hose frames is designed. By welding and fixedly installed assembly sleeves, support frames, beam channel steel and hose lugs, the stable splicing and mechanized loading and unloading of the hose frame is realized, and the hose angle is supported and adjusted through buffer components.

Benefits of technology

Save storage area, improve site utilization, reduce labor intensity for workers, improve loading and unloading efficiency, eliminate safety hazards, meet mechanized loading and unloading needs, and save emergency rescue time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of storage equipment, in particular to a high-pressure rubber hose damage-proof storage device which is formed by assembling three single-layer rubber hose frames. The single-layer rubber pipe frame comprises a stacking panel, assembling sleeves are fixedly mounted at the corners of the periphery of the end face of the stacking panel through welding, a supporting frame is fixedly mounted in the center of the top end face of each assembling sleeve, and a plurality of first cross beam steel channels are fixedly mounted at the front end and the rear end of the bottom of the stacking panel; a plurality of second cross beam steel channels are fixedly mounted on the two sides and the central position of the bottom end of the stacking panel through welding; the anti-damage storage device for the high-pressure rubber hose is simple in structure, convenient to splice and stable in overall structure supporting; rubber tubes can be conveniently stored, stacked, loaded, unloaded and transported, the storage area is saved, the site utilization rate is improved, the labor intensity of workers is relieved, the loading and unloading efficiency is improved, potential safety hazards are eliminated, and therefore emergency rescue time is saved.
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Description

Technical Field

[0001] The utility model relates to the technical field of storage equipment, in particular to a damage-proof storage device for high-pressure hoses. Background Art

[0002] At present, the storage method of emergency rescue high-pressure hoses is generally to coil and stack them on the warehouse floor or lay them flat in the hose storage area, which requires a lot of warehouse and storage area, and the utilization rate of warehouse and storage area is low; moreover, high-pressure hoses are difficult to stack neatly, and the length of high-pressure hoses is long, up to 10 meters.

[0003] When an emergency rescue is urgently needed during an accident, it is difficult to use mechanized equipment to load and unload high-pressure hoses that are coiled, stacked, or laid flat. Generally, multiple people are required to lift and carry them on their shoulders, which is time-consuming and labor-intensive. The loading and unloading efficiency is low, delaying the best time for emergency rescue and seriously affecting the efficiency of emergency rescue. Moreover, the traditional coiled and stacked height of hoses should not exceed 1m. Excessive height will cause the high-pressure hoses to be compressed and deformed, posing a safety hazard to their normal use during emergency rescue. Therefore, to address the above problems, a damage-resistant storage device for high-pressure hoses is proposed. Utility Model Content

[0004] The problem solved by the utility model is to provide a damage-proof storage device for high-pressure hoses, which can facilitate the storage, stacking, loading and unloading and transportation of hoses, save storage area, improve site utilization, reduce the labor intensity of workers, improve loading and unloading efficiency and eliminate safety hazards, thereby helping to save emergency rescue time.

[0005] In order to achieve the above purpose, the present invention adopts the following technical solutions:

[0006] A high-pressure hose damage-proof storage device is assembled from three single-layer hose racks; the single-layer hose rack includes a stacking panel, and assembly sleeves are fixedly installed at the corner positions around the end face of the stacking panel by welding, and a support frame is fixedly installed at the center of the top end face of the assembly sleeve, and a number of first crossbeam channel steels are fixedly installed at the front and rear ends of the bottom of the stacking panel, and a number of second crossbeam channel steels are fixedly installed at both sides and the center position of the bottom end of the stacking panel by welding, and the two ends of the second crossbeam channel steel in the center of the bottom end of the stacking panel are fixedly connected to the inner walls of the two first crossbeam channel steels, and the inner walls on both sides of the four assembly sleeves are fixedly connected to the two ends of the two first crossbeam channel steels and the two ends of the second crossbeam channel steels on both sides of the bottom end of the stacking panel respectively, and two assembly ears are fixedly installed at the edge positions of the top two ends of the stacking panel by welding.

[0007] Furthermore, a support groove is provided in the center of the bottom end face of the assembly sleeve, and the top end of the support frame is plugged into the inside of the support groove at the corresponding position; by inserting the top end of the support frame into the inside of the support groove at the bottom of another assembly sleeve, it is convenient to splice multiple single-layer hose racks, the splicing is simple, the installation is convenient, and the convenience of use is improved.

[0008] Furthermore, reinforcing rods are fixedly installed at the centers of both ends of the top of the stacking panel by welding, and the top end of the reinforcing rod is fitly connected to the bottom end face of the first crossbeam channel steel at the corresponding position; by setting the reinforcing rod to fit with the end face of the first crossbeam channel steel at the bottom of another stacking panel, the central position of the first crossbeam channel steel can be supported, making the overall structure more solid and stable.

[0009] Furthermore, a semicircular rectangular groove structure is provided at one end of the top of the assembly lifting ear. The provision of the semicircular rectangular groove structure facilitates installation of lifting equipment of different sizes, thereby facilitating suspension use.

[0010] Furthermore, buffer components are provided on both sides of the top end surface of the stacking panel at the inner position of the assembly lifting ears, and the buffer component includes a material frame, which is fixedly installed on the top end surface of the stacking panel, and the material frame is a hollow structure, a mounting pad is provided above the top of the material frame, and a buffer rubber seat is fixedly installed on the top end surface of the mounting pad, and a rotating seat is fixedly installed on both ends of the bottom of the mounting pad, and a follow-up swivel is installed on the internal sleeve of the rotating seat, and the bottom end surface of the stacking panel is located at a position below the bottom of the material frame and is fixedly installed with a threaded fastening seat, and a mounting screw is installed at the center of the end surface of the threaded fastening seat through a threaded connection, and the top end of the mounting screw passes through the threaded fastening seat, the stacking panel, the material frame and the follow-up swivel inside the rotating seat for fixed connection.

[0011] Furthermore, a rotation groove is provided inside the rotating seat, and the outer wall of the follower rotating ring is fitted and connected to the inner wall of the rotation groove; this facilitates the rotation of the follower rotating ring inside the rotation groove, thereby facilitating the installation of the screw rod for stroke adjustment.

[0012] The beneficial effects of the utility model are as follows: the damage-proof storage device for high-pressure hoses has a firm and stable structure and is simple and convenient to splice; when in use, multiple single-layer hose racks can be stacked in sequence as needed, thereby saving storage space and improving site utilization; and through layered stacking, the bearing weight of the high-pressure hoses at the bottom of each layer and the overall stacking height of each layer of high-pressure hoses are effectively reduced, thereby effectively reducing the material costs caused by flattening and damage, and eliminating the safety hazards caused by irregular storage of high-pressure hoses, and the stacking angle of the high-pressure hoses can be adjusted as needed to meet the stacking requirements of different high-pressure hoses; and each single-layer hose rack is provided with its own independent assembly sleeve and assembly lifting lug, which is convenient for loading and unloading and transportation of mechanized equipment such as forklifts and cranes, greatly improving the efficiency of loading and unloading and transportation of high-pressure hoses, saving human resources, and gaining time for emergency rescue. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 It is a schematic diagram of the overall structure of the utility model;

[0014] Figure 2 This is a schematic diagram of a single-layer structure of the present utility model;

[0015] Figure 3 This is a front view of the single-layer structure of the utility model;

[0016] Figure 4 It is a top view of the single-layer structure of the utility model;

[0017] Figure 5 for Figure 4 Schematic cross-sectional view of AA.

[0018] Legend:

[0019] 1. Stacking panel, 2. Assembly sleeve, 3. First beam channel steel, 4. Second beam channel steel, 5. Support frame, 6. Support trough, 7. Buffer assembly, 8. Reinforcement rod, 9. Assembly lifting lug, 71. Material frame, 72. Installation pad, 73. Buffer rubber seat, 74. Rotating seat, 75. Threaded fastening seat, 76. Installation screw, 77. Follow-up swivel. DETAILED DESCRIPTION

[0020] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0021] Specific examples are given below.

[0022] See also Figures 1 to 5 , a high-pressure hose damage prevention storage device, which is assembled from three single-layer hose racks; the single-layer hose rack includes a stacking panel 1, and the corner positions of the end face of the stacking panel 1 are fixedly installed with a mounting sleeve 2 by welding, and the top end face center of the mounting sleeve 2 is fixedly installed with a support frame 5, and the front and rear ends of the bottom of the stacking panel 1 are fixedly installed with a plurality of first cross beam channel steels 3, and the bottom sides and central positions of the stacking panel 1 are fixedly installed with a plurality of second cross beam channel steels 4 by welding, and the two ends of the second cross beam channel steel 4 in the center of the bottom end of the stacking panel 1 are fixedly connected to the inner walls of the two first cross beam channel steels 3, and the inner walls of the two sides of the four mounting sleeves 2 are respectively connected to the two first cross beam channel steels The two ends of 3 and the two ends of the second cross beam channel steel 4 on both sides of the bottom end of the stacking panel 1 are fixedly connected, and two assembly ears 9 are fixedly installed at the edge positions of the top two ends of the stacking panel 1 by welding; a support groove 6 is opened in the center of the bottom end face of the assembly sleeve 2, and the top end of the support frame 5 is inserted into the inside of the support groove 6 at the corresponding position; it is convenient to splice multiple single-layer hose racks, the splicing is simple, and the installation is convenient; a reinforcing rod 8 is fixedly installed in the center of the top two ends of the stacking panel 1 by welding, and the top end of the reinforcing rod 8 is fitted with the bottom end face of the first cross beam channel steel 3 at the corresponding position; making the overall structure more firm and stable; the top end of the assembly ear 9 is opened The semicircular rectangular groove structure is convenient for hanging with sling equipment of different sizes; the first crossbeam channel steel 3, the second crossbeam channel steel 4 and the four assembly sleeves 2 have a stable supporting effect on the stacking panel 1, so that the stacking panel 1 has good load-bearing performance; multiple single-layer hose racks can be stacked and used, and a single-layer hose rack is hoisted on top of another single-layer hose rack, so that the four support frames 5 on the end face of the bottom stacking panel 1 are inserted into the bottom support groove 6 of the upper assembly sleeve 2, and the assembly sleeves 2 around the top stacking panel 1 are supported, and the reinforcing rods 8 on the end face of the bottom stacking panel 1 can contact and support the first crossbeam channel steel 3 on the end face of the top stacking panel 1. Thereby, the stacking structure stability of the two single-layer hose racks is effectively improved; multiple single-layer hose racks can be stacked and used in sequence as needed, thereby saving storage space and improving site utilization; and through layered stacking, the bearing weight of the high-pressure hoses at the bottom of each layer and the overall stacking height of each layer of high-pressure hoses are effectively reduced, thereby effectively reducing the material costs caused by flattening and damage, and eliminating the safety hazards caused by improper storage of high-pressure hoses; and each single-layer hose rack is provided with its own independent assembly sleeve 2 and assembly lifting lug 9, which facilitates the loading, unloading and transportation of mechanized equipment such as forklifts and cranes, greatly improving the efficiency of loading, unloading and transportation of high-pressure hoses, saving human resources, and gaining time for emergency rescue.

[0023] Buffer components 7 are provided on both sides of the top end surface of the stacking panel 1 at the inner side of the assembly lugs 9; the buffer components 7 can provide support and buffer for the stacked high-pressure hoses, thereby improving the convenience of stacking;

[0024] The buffer assembly 7 includes a material frame 71, which is fixedly mounted on the top end surface of the stacking panel 1, and the material frame 71 is a hollow structure. A mounting pad 72 is provided above the top of the material frame 71, and a buffer rubber seat 73 is fixedly mounted on the top end surface of the mounting pad 72. Both ends of the bottom of the mounting pad 72 are fixedly mounted with a rotating seat 74, and a follower swivel 77 is mounted on the inner sleeve of the rotating seat 74. The bottom end surface of the stacking panel 1 is located below the bottom of the material frame 71 and is fixedly mounted with a threaded fastening seat 75. The center of the end surface of the threaded fastening seat 75 is threadedly connected to a mounting screw 76, and the top end of the mounting screw 76 passes through the threaded fastening seat 75, the stacking panel 1, the material frame 71 and the rotating seat 74. The follower swivel 77 is fixedly connected; a rotating groove is provided inside the rotating seat 74, and the outer wall of the follower swivel 77 is fitly connected to the inner wall of the rotating groove; the high-pressure hose is prevented from colliding with the top end face of the stacking panel 1 so that the bottom of the outer wall of the high-pressure hose contacts the buffer rubber seat 73 on the top of the mounting pad 72, thereby supporting and protecting the high-pressure hose. When it is necessary to change the stacking height of the high-pressure hose, the mounting screw 76 on the end face of the threaded fastening seat 75 can be rotated so that the mounting screw 76 drives the follower swivel 77 to rotate inside the rotating seat 74, thereby adjusting the stroke of the mounting screw 76 at the top of the material frame 71, so that the height of the mounting pad 72 and the buffer rubber seat 73 can be adjusted accordingly, which facilitates the adjustment of the bending angle of the high-pressure hose to meet the stacking requirements of different high-pressure hoses.

[0025] The above is only a preferred specific implementation method of the present invention, but the protection scope of the present invention is not limited to this. Any technician familiar with the technical field within the technical scope disclosed by the present invention can make equivalent replacements or changes based on the technical solution and utility model concept of the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A high-pressure hose anti-damage storage device, characterized in that: Assembled from three single-layer hose racks; A single-layer hose rack comprises a stacking panel (1), wherein mounting sleeves (2) are fixedly mounted at corner positions around the end surface of the stacking panel (1) by welding, and a support frame (5) is fixedly mounted at the center of the top end surface of the mounting sleeve (2); First crossbeam channel steels (3), a plurality of first crossbeam channel steels (3) are fixedly mounted on both the front and rear ends of the bottom of the stacking panel (1); Second cross beam channel steel (4), a plurality of second cross beam channel steels (4) are fixedly installed by welding at both sides of the bottom end and the center of the stacking panel (1), and both ends of the second cross beam channel steel (4) at the center of the bottom end of the stacking panel (1) are fixedly connected to the inner walls of the two first cross beam channel steels (3); The inner walls of the four assembly sleeves (2) are respectively fixedly connected to the two ends of the two first crossbeam channel steels (3) and the two ends of the second crossbeam channel steels (4) on both sides of the bottom end of the stacking panel (1). Two assembly lugs (9) are fixedly installed at the edge positions of both ends of the top of the stacking panel (1) by welding; Buffer components (7) are provided on both sides of the top end surface of the stacking panel (1) at positions inside the assembly lugs (9).

2. A high-pressure hose damage-proof storage device according to claim 1, characterized in that: A support groove (6) is provided in the center of the bottom end surface of the assembly sleeve (2), and one end of the top of the support frame (5) is plugged and installed inside the support groove (6) at a corresponding position.

3. The anti-damage storage device for high-pressure hoses according to claim 2, characterized in that: Reinforcement rods (8) are fixedly installed at the centers of both ends of the top of the stacking panel (1) by welding, and one end of the top of the reinforcement rod (8) is fitted and connected to the bottom end surface of the first beam channel steel (3) at the corresponding position.

4. The anti-damage storage device for high-pressure hoses according to claim 3, characterized in that: A semicircular rectangular groove structure is provided at one end of the top of the assembly lifting ear (9).

5. The damage-proof storage device for high-pressure hoses according to claim 4, characterized in that: The buffer assembly (7) includes a material frame (71), the material frame (71) is fixedly mounted on the top end face of the stacking panel (1), and the material frame (71) is a hollow structure, a mounting pad (72) is provided above the top of the material frame (71), and a buffer rubber seat (73) is fixedly mounted on the top end face of the mounting pad (72), a rotating seat (74) is fixedly mounted on both ends of the bottom of the mounting pad (72), and a follower rotating ring (77) is sleeved and mounted inside the rotating seat (74), the bottom end face of the stacking panel (1) is located below the bottom of the material frame (71) and is fixedly mounted with a threaded fastening seat (75), the end face of the threaded fastening seat (75) is fixedly mounted with a mounting screw (76) through a threaded connection, and the top end of the mounting screw (76) passes through the threaded fastening seat (75), the stacking panel (1), the material frame (71) and is fixedly connected to the follower rotating ring (77) inside the rotating seat (74).

6. The damage-proof storage device for high-pressure hoses according to claim 5, characterized in that: A rotating groove is provided inside the rotating seat (74), and the outer wall of the follower rotating ring (77) is closely connected to the inner wall of the rotating groove.