Support structure for radiator

By designing the support structure for radiator, and using the coordination of components such as longitudinal beams, cross beams, drive rods and universal wheels, the smooth movement of the shelf is achieved, solving the problem of heavy shelves increasing labor intensity, and improving production efficiency and safety.

CN223138459UActive Publication Date: 2025-07-22SHANGHAI JUFENG HOT GALVANIZING CO LTD
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Patent Information

Application Number
CN202422383573.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-27
Publication Date
2025-07-22
Estimated Expiration
2034-09-27

AI Technical Summary

Technical Problem

The heavy shelves increase workers' labor intensity and reduce radiator production efficiency.

Method used

A support structure for radiator is designed, including components such as symmetrically arranged longitudinal beams, transverse beams, driving rods, transmission blocks and universal wheels. Through the use of guidance components and locking components, the smooth movement and fixation of the longitudinal beams are achieved, reducing labor intensity and improving production efficiency.

Benefits of technology

It effectively reduces the labor intensity of staff, improves the production efficiency and safety of the radiator production line, and reduces the risk of wear and tilt collapse when the shelves move.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a supporting structure for a radiator, and relates to the technical field of radiator machining. The bottoms of the longitudinal beams are symmetrically and fixedly connected with cross beams, the bottoms of the cross beams are symmetrically and fixedly connected with cushion blocks, the bottoms of the cross beams are rotationally connected with driving rods, one ends of the driving rods are symmetrically provided with threads with opposite rotating directions, one ends of the driving rods are symmetrically in threaded connection with transmission blocks, and transmission rods are hinged to the bottoms of the transmission blocks. The driving rod is rotated to drive the two transmission blocks to move close to each other, the two transmission rods are pushed to eject the mounting block around the hinge shaft, meanwhile, the mounting block drives the universal wheels and the guide sliding plate to move towards the ground in the length direction of the guide sliding groove, and the universal wheels abut against the ground; and therefore, the universal wheels are conveniently driven to roll along the ground by pushing the longitudinal beam, the longitudinal beam is conveniently driven to move, the labor intensity of workers is effectively reduced, and the production efficiency of the device is improved.
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Description

Technical Field

[0001] This application relates to the technical field of radiator processing, and particularly to a support structure for radiators. Background Art

[0002] The hot-dip galvanizing process of radiators is mainly reflected in the anti-corrosion treatment of metal radiators. A radiator, as a device or instrument that transfers the heat generated during the operation of machinery or other appliances in a timely manner, is mostly made of metals such as steel and copper. These metals are prone to corrosion in a continuous high-temperature or humid environment, affecting their heat dissipation effect and service life.

[0003] Hot-dip galvanizing technology, as an efficient metal anti-corrosion method, immerses the metal in a high-temperature molten zinc bath to form a dense zinc layer on the metal surface, thereby isolating the external environment and preventing the corrosion of the metal. This technology is widely used in the anti-corrosion treatment of steel materials and has advantages such as strong covering ability, dense coating, and good anti-corrosion effect.

[0004] After the radiator is hot-dip galvanized, it needs to be statically removed of the excess plating solution. The existing technology usually places the radiator on a shelf for static settlement. Most of the existing shelves are made of metals such as steel or stainless steel. These metal materials not only have a large density, but also after the hot-dip galvanizing treatment, the coating increases their weight. In the radiator production line, the frequent movement of the shelf is essential. Whether it is to take out the radiator from the hot-dip galvanizing equipment or transfer the radiator to the next process, the movement of the shelf is indispensable. Therefore, the heavy shelf increases the labor intensity of workers and reduces the production efficiency. Summary of the Utility Model

[0005] The purpose of this application is to provide a support structure for radiators to solve the problem that the heavy shelf increases the labor intensity of workers and reduces the production efficiency.

[0006] This application specifically adopts the following technical solutions to achieve the above purpose:

[0007] The support structure for radiators includes symmetrically arranged longitudinal beams. Symmetrically fixed to the bottom of the longitudinal beams are cross beams. Symmetrically fixed to the bottom of the cross beams are pads. Rotatably connected to the bottom of the cross beams are driving rods. At one end of the driving rod, threads with opposite helix directions are symmetrically arranged. Symmetrically threadedly connected to one end of the driving rod are transmission blocks. Hinged to the bottom of the transmission block is a transmission rod. Hinged between the two transmission rods is a mounting block. Fixed to the bottom of the mounting block is a universal wheel. One end of the driving rod passes through the cross beam and is fixedly connected to a handle. At one end of the cross beam, a guiding assembly is installed for guiding the universal wheel to perform a lifting motion along a direction perpendicular to the length direction of the driving rod.

[0008] By adopting the above technical solution, through the combined use of the guiding component with the driving rod, the transmission block, and the transmission rod, it is convenient to drive the two transmission blocks to move closer to each other by rotating the driving rod, and push the two transmission rods to eject the mounting block around the hinge shaft. At the same time, the mounting block drives the universal wheel and the guiding slide plate to move along the length direction of the guiding chute towards the ground, and makes the universal wheel contact the ground, so as to facilitate driving the longitudinal beam to roll along the ground by pushing the longitudinal beam, which effectively reduces the labor intensity of the staff and improves the production efficiency of the device.

[0009] Furthermore, the guiding component includes guiding chutes symmetrically opened at one end of the cross beam. A guiding slide plate is slidably connected inside the guiding chute, and one end of the guiding slide plate is fixedly connected to the mounting block.

[0010] By adopting the above technical solution, through the combined use of the guiding chute and the guiding slide plate, when driving the transmission block to push the transmission rod to eject the mounting block and the universal wheel around the hinge shaft, it is convenient for the mounting block to guide the universal wheel to move along the length direction of the guiding chute through the guiding slide plate, effectively reducing the situation of the universal wheel deviating and improving the practicability of the device.

[0011] Furthermore, a fixing screw groove is opened at one end of the handle, and a fixing nut is threadedly connected to one end of the handle through the fixing screw groove.

[0012] By adopting the above technical solution, through the combined use of the fixing screw groove and the fixing nut, tightening the fixing nut can drive the fixing nut to form a tight fit with the cross beam along the length direction of the fixing screw groove, thereby realizing the fixation of the handle and the driving rod and improving the stability of the universal wheel.

[0013] Furthermore, a synchronous parallel rod is hinged at one end of the bottom of the longitudinal beam, and a follow-up chute is opened at the other end of the bottom of the longitudinal beam. A follow-up slider is slidably connected inside the follow-up chute. The middle sections of the two synchronous parallel rods are hinged, and the other ends of the two synchronous parallel rods are respectively hinged to the two follow-up sliders. A locking component for fixing the synchronous parallel rod is installed on one side of the follow-up chute.

[0014] By adopting the above technical solution, through the combined use of the locking component with the synchronous parallel rod and the follow-up slider, when pushing the two longitudinal beams to move away from each other, one end of the synchronous parallel rod drives the follow-up slider to move along the length direction of the follow-up chute, and at the same time, the two follow-up sliders push the two longitudinal beams to be unfolded in parallel around the mutual hinge shaft of the synchronous parallel rod. Then, by tightening the locking component, the unfolding angle of the synchronous parallel rod is fixed, thereby reducing the problem that the radiator erected on the top of the longitudinal beam tilts and collapses due to the non-parallel placement of the two longitudinal beams, effectively improving the safety of the device.

[0015] Further, the locking assembly includes a locking chute opened on one side of the follower chute. One end of the follower slider is fixedly connected with a locking screw rod. One end of the locking screw rod passes through the locking chute and is threadedly connected with a locking nut.

[0016] By adopting the above technical solution, by tightening the locking nut to form a tight fit with the longitudinal beam along the length direction of the locking screw rod, it is convenient to fix the follower slider and the synchronous parallel rod.

[0017] Further, a rubber pad is fixedly connected to the bottom of the cushion block.

[0018] By adopting the above technical solution, by arranging the rubber pad, the wear between the cushion block and the ground is effectively reduced.

[0019] Further, a wooden cushion plate is installed on the top of the longitudinal beam.

[0020] By adopting the above technical solution, by arranging the wooden cushion plate, the wear caused by the longitudinal beam to the galvanized surface of the radiator is effectively reduced, and the production quality of the radiator is improved.

[0021] Further, clamping strips are symmetrically and fixedly connected to both ends of the longitudinal beam. An arched cover plate is symmetrically covered at one end of the wooden cushion plate. Claw slots are symmetrically opened on the inner side of the arched cover plate. One end of the clamping strip is inserted into the claw slot, and the wooden cushion plate is installed between the arched cover plate and the longitudinal beam.

[0022] By adopting the above technical solution, by arranging the clamping strip and the claw slot to cooperate with each other, it is convenient to push the arched cover plate along the length direction of the clamping strip to wrap one end of the wooden cushion plate, and at the same time drive the clamping strip to be embedded into the claw slot, thereby improving the stability of the wooden cushion plate on the top of the longitudinal beam.

[0023] To sum up, the present application includes at least one of the following beneficial effects:

[0024] 1. By arranging the guiding assembly to cooperate with the driving rod, the transmission block and the transmission rod, it is convenient to drive the two transmission blocks to move closer to each other by rotating the driving rod, and push the two transmission rods to eject the mounting block around the hinge shaft. At the same time, the mounting block drives the universal wheel and the guiding slide plate to move towards the ground along the length direction of the guiding chute, and the universal wheel abuts against the ground, so that it is convenient to drive the longitudinal beam to drive the universal wheel to roll along the ground, so as to facilitate driving the longitudinal beam to move, effectively reducing the labor intensity of the staff and improving the production efficiency of the device.

[0025] 2. By setting the locking component to cooperate with the synchronous parallel rod and the follower slider, when the two longitudinal beams are pushed to move away from each other, one end of the synchronous parallel rod drives the follower slider to move along the length direction of the follower chute. At the same time, the two follower sliders push the two longitudinal beams to expand parallelly around the hinge axis of the synchronous parallel rod. Then, by tightening the locking component, the expansion angle of the synchronous parallel rod is fixed, thus reducing the problem that the radiator erected on the top of the longitudinal beam tilts and collapses due to the non-parallel placement of the two longitudinal beams, and effectively improving the safety of the device. Brief Description of the Drawings

[0026] Figure 1 is a three-dimensional structural schematic diagram of the device main body in the present application.

[0027] Figure 2 is a side sectional view of the device main body in the present application.

[0028] Figure 3 is an internal structural schematic diagram of the follower chute in the present application.

[0029] Figure 4 is a schematic diagram of the connection relationship between the card strip and the card slot in the present application.

[0030] Description of the Reference Numerals:

[0031] 1. Longitudinal beam; 2. Cross beam; 3. Spacer block; 4. Driving rod; 5. Transmission block; 6. Transmission rod; 7. Mounting block; 8. Universal wheel; 9. Handle; 10. Guide chute; 11. Guide slide plate; 12. Fixed screw groove; 13. Fixed nut; 14. Synchronous parallel rod; 15. Follower chute; 16. Follower slider; 17. Locking chute; 18. Locking screw; 19. Locking nut; 20. Rubber pad; 21. Wooden backing plate; 22. Card strip; 23. Arch-shaped cover plate; 24. Card slot. Detailed Description of the Embodiment

[0032] The following is a further detailed description of the present application in conjunction with the attached Figures 1-4 drawings.

[0033] The embodiment of the present application discloses a support structure for a radiator.

[0034] Refer to Figure 1 and Figure 2, A support structure for a radiator, including symmetrically arranged longitudinal beams 1. At the bottom of the longitudinal beams 1, there are symmetrically and fixedly connected cross beams 2. At the bottom of the cross beams 2, there are symmetrically and fixedly connected cushion blocks 3. At the bottom of the cross beams 2, there is a rotatably connected driving rod 4. At one end of the driving rod 4, there are symmetrically arranged threads with opposite helix directions. At one end of the driving rod 4, there are symmetrically thread - connected transmission blocks 5. At the bottom of the transmission blocks 5, there is a hinged transmission rod 6. Between the two transmission rods 6, there is a hinged mounting block 7. At the bottom of the mounting block 7, there is a fixedly connected universal wheel 8. One end of the driving rod 4 passes through the cross beam 2 and is fixedly connected with a handle 9. At one end of the cross beam 2, there is a guiding component for guiding the universal wheel 8 to move up and down along the direction perpendicular to the length direction of the driving rod 4;

[0035] Among them, the guiding component includes symmetrically arranged guiding chutes 10 at one end of the cross beam 2. Inside the guiding chutes 10, there is a slidably connected guiding slide plate 11. One end of the guiding slide plate 11 is fixedly connected with the mounting block 7;

[0036] Moreover, at one end of the handle 9, there is a fixed screw groove 12, and at one end of the handle 9, there is a thread - connected fixed nut 13 through the fixed screw groove 12.

[0037] When in use, first, by loosening the fixed nut 13, it disengages from the fit with the cross beam 2 along the length direction of the fixed screw groove 12. Then, by rotating the handle 9, the driving rod 4 is driven to drive the two transmission blocks 5 to move closer to each other. At the same time, the two transmission blocks 5 push the two transmission rods 6 to rotate around the hinge axis, and push the mounting block 7 to drive the guiding slide plate 11 to move downward along the length direction of the guiding chute 10. At the same time, the mounting block 7 pushes the universal wheel 8 to form a contact with the ground along the length direction of the guiding chute 10, and jacks up the cushion block 3, so that the cushion block 3 disengages from the contact with the ground. Then, tighten the fixed nut 13 so that the fixed nut 13 forms a tight fit with the cross beam 2 along the length direction of the fixed screw groove 12 to fix the driving rod 4. In this way, it is convenient to drive the universal wheel 8 to jack up the cross beam 2 along the length direction of the guiding chute 10, so as to facilitate driving the longitudinal beam 1 to move by pushing the longitudinal beam 1 and making the universal wheel 8 roll along the ground, effectively reducing the labor intensity of the staff and improving the production efficiency of the device.

[0038] Refer to Figure 1 and Figure 3 , at one end of the bottom of the longitudinal beam 1, there is a hinged synchronous parallel rod 14. And at the other end of the bottom of the longitudinal beam 1, there is a follow - up chute 15. Inside the follow - up chute 15, there is a slidably connected follow - up slider 16. The middle sections of the two synchronous parallel rods 14 are hinged, and the other ends of the two synchronous parallel rods 14 are respectively hinged with the two follow - up sliders 16. On one side of the follow - up chute 15, there is a locking component for fixing the synchronous parallel rod 14;

[0039] Among them, the locking assembly includes a locking chute 17 opened on one side of the follower chute 15. One end of the follower slider 16 is fixedly connected to a locking screw 18. One end of the locking screw 18 passes through the locking chute 17 and is threadedly connected to a locking nut 19.

[0040] During use, when the driving universal wheel 8 abuts against the ground, by pushing the two longitudinal beams 1 to move away from each other, at the same time, the longitudinal beams 1 drive the two synchronous parallel rods 14 to rotate around the hinge axis to expand relative to each other, and one end of the synchronous parallel rod 14 drives the follower slider 16 to move along the length direction of the follower chute 15. At the same time, the two follower sliders 16 push the two longitudinal beams 1 to expand in parallel around the hinge axis of the synchronous parallel rod 14. Then, by tightening the locking nut 19, the locking nut 19 is tightly attached to one side of the longitudinal beam 1 along the length direction of the locking screw 18 to fix the follower slider 16, thereby fixing the expansion angle of the synchronous parallel rod 14 and simultaneously fixing the distance between the two longitudinal beams 1, so as to facilitate the parallel expansion of the two longitudinal beams 1, thereby reducing the problem that the radiator erected on the top of the longitudinal beam 1 tilts and collapses due to the non-parallel placement of the two longitudinal beams 1, effectively improving the safety of the device.

[0041] Refer to Figure 1 and Figure 2 A rubber pad 20 is fixedly connected to the bottom of the cushion block 3.

[0042] During use, by providing the rubber pad 20, a flexible contact is achieved between the cushion block 3 and the ground, thereby effectively reducing the wear of the cushion block 3 on the ground and improving the practicality of the device.

[0043] Refer to Figure 1 and Figure 4 A wooden cushion plate 21 is installed on the top of the longitudinal beam 1;

[0044] Among them, clamping strips 22 are symmetrically and fixedly connected to both ends of the longitudinal beam 1. An arched cover plate 23 is symmetrically sleeved on one end of the wooden cushion plate 21. Card slots 24 are symmetrically opened on the inner side of the arched cover plate 23. One end of the clamping strip 22 is inserted into the card slot 24, and the wooden cushion plate 21 is installed between the arched cover plate 23 and the longitudinal beam 1.

[0045] During use, first place the wooden cushion plate 21 on the top of the longitudinal beam 1 to reduce the wear of the longitudinal beam 1 on the surface of the radiator. Then, manually pull the arched cover plate 23 to drive the card slot 24 to sleeve on one end of the clamping strip 22, and push the arched cover plate 23 along the length direction of the clamping strip 22 to form a fixed wrap on one end of the wooden cushion plate 21, effectively improving the stability of the wooden cushion plate 21 on the top of the longitudinal beam 1, and at the same time facilitating the replacement of the wooden cushion plate 21, improving the practicality of the device.

[0046] The implementation principle of the support structure for the radiator in this embodiment is as follows: First, loosen the fixing nut 13 to disengage from the fitting with the cross beam 2 along the length direction of the fixing screw groove 12. Then, rotate the handle 9 to drive the driving rod 4 to drive the two transmission blocks 5 to move closer to each other. At the same time, the two transmission blocks 5 push the two transmission rods 6 to rotate around the hinge shaft, and push the mounting block 7 to drive the guiding slide plate 11 to move downward along the length direction of the guiding chute 10. At the same time, the mounting block 7 pushes the universal wheel 8 to form a contact with the ground along the length direction of the guiding chute 10, and jacks up the cushion block 3, so that the cushion block 3 disengages from the contact with the ground. Then, tighten the fixing nut 13 so that the fixing nut 13 forms a tight fit with the cross beam 2 along the length direction of the fixing screw groove 12 to realize the fixation of the driving rod 4;

[0047] Then, push the two longitudinal beams 1 to move away from each other. At the same time, the longitudinal beams 1 drive the two synchronous parallel rods 14 to perform an unfolding movement around the hinge shaft, and one end of the synchronous parallel rod 14 drives the follower slider 16 to move along the length direction of the follower chute 15. At the same time, the two follower sliders 16 push the two longitudinal beams 1 to perform a parallel unfolding around the mutual hinge shaft of the synchronous parallel rods 14. Then, by tightening the locking nut 19, the locking nut 19 forms a tight fit with one side of the longitudinal beam 1 along the length direction of the locking screw rod 18 to realize the fixation of the follower slider 16, thereby realizing the fixation of the unfolding angle of the synchronous parallel rod 14 and at the same time realizing the fixation of the distance between the two longitudinal beams 1, so as to facilitate the parallel unfolding of the two longitudinal beams 1.

Claims

1. Support structure for a radiator, comprising longitudinals (1) arranged symmetrically, characterized in that: The bottom of the longitudinal beam (1) is symmetrically and fixedly connected with a cross beam (2). The bottom of the cross beam (2) is symmetrically and fixedly connected with cushion blocks (3). The bottom of the cross beam (2) is rotatably connected with a driving rod (4). One end of the driving rod (4) is symmetrically provided with threads with opposite rotation directions. One end of the driving rod (4) is symmetrically threadedly connected with transmission blocks (5). The bottom of the transmission block (5) is hinged with a transmission rod (6). An installation block (7) is hinged between the two transmission rods (6). The bottom of the installation block (7) is fixedly connected with a universal wheel (8). One end of the driving rod (4) passes through the cross beam (2) and is fixedly connected with a handle (9). One end of the cross beam (2) is provided with a guiding assembly for guiding the universal wheel (8) to move up and down along a direction perpendicular to the length direction of the driving rod (4).

2. The support structure for a radiator according to claim 1, characterized in that: The guiding assembly includes guiding chutes (10) symmetrically opened at one end of the cross beam (2). A guiding slide plate (11) is slidably connected inside the guiding chutes (10). One end of the guiding slide plate (11) is fixedly connected with the installation block (7).

3. The support structure for a radiator according to claim 1, characterized in that: One end of the handle (9) is provided with a fixing screw groove (12), and one end of the handle (9) is threadedly connected with a fixing nut (13) through the fixing screw groove (12).

4. The support structure for a radiator according to claim 1, wherein: One end of the bottom of the longitudinal beam (1) is hinged with a synchronous parallel rod (14). A follow-up chute (15) is opened at the other end of the bottom of the longitudinal beam (1). A follow-up slider (16) is slidably connected inside the follow-up chute (15). The middle sections of the two synchronous parallel rods (14) are hinged, and the other ends of the two synchronous parallel rods (14) are respectively hinged with the two follow-up sliders (16). A locking assembly for fixing the synchronous parallel rod (14) is installed on one side of the follow-up chute (15).

5. The support structure for a radiator according to claim 4, characterized in that: The locking assembly includes a locking chute (17) opened on one side of the follow-up chute (15). One end of the follow-up slider (16) is fixedly connected with a locking screw (18). One end of the locking screw (18) passes through the locking chute (17) and is threadedly connected with a locking nut (19).

6. The support structure for a radiator according to claim 1, wherein: The bottom of the cushion block (3) is fixedly connected with a rubber pad (20).

7. The support structure for a radiator according to claim 1, characterized in that: A wooden cushion plate (21) is installed on the top of the longitudinal beam (1).

8. The support structure for a radiator according to claim 7, characterized in that: Both ends of the longitudinal beam (1) are symmetrically and fixedly connected with clamping strips (22). One end of the wooden cushion plate (21) is symmetrically covered with an arched cover plate (23). Card slots (24) are symmetrically opened inside the arched cover plate (23). One end of the clamping strip (22) is inserted into the card slot (24). The wooden cushion plate (21) is installed between the arched cover plate (23) and the longitudinal beam (1).