Anti-collapse curing frame

By adopting a combined structure of support frame, load-bearing frame and mobile support strip in the curing frame, the precise positioning of the mobile support strip is achieved, and the problems of plate collapse and safety accidents in traditional curing frames are solved, and the stability and applicability of the curing frame are improved.

CN222984839UActive Publication Date: 2025-06-17ANHUI LEOCH POWER SUPPLY
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Patent Information

Application Number
CN202421713859.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-19
Publication Date
2025-06-17
Estimated Expiration
2034-07-19

AI Technical Summary

Technical Problem

When the traditional curing frame is not running smoothly, the moving support strips and the plates are displaced relative to the curing frame, causing the plates to collapse and may cause safety accidents.

Method used

An anti-collapse curing frame is designed, and a combined structure of a support frame, a load-bearing frame and a movable support strip is adopted. By setting a limit hole on the load-bearing frame and setting corresponding limit protrusions on the movable support strip, the precise positioning of the movable support strip is achieved, and the stability and applicability of the structure is enhanced.

Benefits of technology

Effectively prevent the plate from collapse during curing, storage and transportation, reduce the occurrence of safety accidents, and improve the applicability and flexibility of the curing frame.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an anti-collapse curing frame which comprises a supporting frame, a fixing frame is fixed to the lower end of the supporting frame, a bearing frame is fixed to the upper end of the supporting frame, a fixed supporting strip is fixed to the bearing frame, movable supporting strips are arranged on the two sides of the fixed supporting strip respectively, and a limiting hole is formed in the bearing frame. Limiting protrusions are fixed to the ends of the movable supporting strips and connected with the limiting holes in a matched and clamped mode. Limiting holes are formed in the bearing frame, and corresponding limiting protrusions are arranged on the movable supporting strips. The movable supporting strip is placed on the upper portion of the supporting frame, the pole plate is lapped between the fixed supporting strip and the movable supporting strip after being pasted, the limiting holes with the proper distance from the fixed supporting strip can be selected on the bearing frame to place the movable supporting strip according to the size of the pole plate, and the storage battery pole plate curing device is suitable for curing, storing and transferring of the gravity pouring pole plate of a storage battery. The pole plates are prevented from collapsing, and safety accidents are reduced.
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Description

Technical Field

[0001] The utility model belongs to the technical field of battery production, and particularly relates to an anti-collapse curing rack. Background Art

[0002] At present, for valve-regulated sealed lead-acid / colloidal batteries, hereinafter referred to as batteries, the batteries are generally made by gravity-casting plates as battery active substances; during the plate production process, after applying lead paste on the grid surface, the plates need to be stacked on a curing rack for curing operations; in a traditional curing rack, there is a fixed support bar in the middle and two movable support bars on both sides, and the plates are stored on both sides of the curing rack.

[0003] The above-mentioned prior art solutions have the following defects: when the curing rack together with the plates is transported, due to unstable operation, the movable support bar together with the plates is displaced relative to the curing rack, resulting in plate collapse and causing safety accidents. Summary of the Utility Model

[0004] In view of the problem of unstable operation in the prior art and the displacement of the movable support bar together with the plates relative to the curing rack, the utility model proposes the following technical solutions:

[0005] An anti-collapse curing rack, comprising: a support frame, a fixed frame is fixed at the lower end of the support frame, a load-bearing frame is fixed at the upper end of the support frame, a fixed support bar is fixed on the load-bearing frame, movable support bars are respectively arranged on both sides of the fixed support bar, the movable support bars are arranged parallel to the fixed support bar, the load-bearing frame is provided with limiting holes, limiting protrusions are fixed at the ends of the movable support bars, the limiting protrusions are in fit connection with the limiting holes, and a plurality of the limiting holes are arranged at equal intervals perpendicular to the length direction of the movable support bar.

[0006] The load-bearing frame includes a fixed support bar and movable support bars. Movable support bars are respectively arranged on both sides of the fixed support bar, and the movable support bars are arranged parallel to the fixed support bar to ensure the structural stability of the plate placement. Limiting holes are formed inside the load-bearing frame, and limiting protrusions are fixed at the ends of the movable support bars. Through the fit connection between the limiting protrusions and the limiting holes, the precise positioning of the movable support bars in the load-bearing frame is realized, enhancing the bearing capacity and stability of the load-bearing frame. In addition, a plurality of the limiting holes are arranged at equal intervals perpendicular to the length direction of the movable support bar, and the position of the movable support bar can be flexibly adjusted according to actual use requirements to adapt to plates of different sizes, improving the applicability and flexibility of the load-bearing frame.

[0007] In a preferred embodiment of the utility model, there are two movable support bars, and the two movable support bars are symmetrically arranged on both sides of the fixed support bar.

[0008] There are two movable support bars, which are symmetrically installed on both sides of the fixed support bar. This design not only ensures the stability of the structure, but also optimizes the space utilization, enabling the electrode plates to be distributed on both sides, allowing for flexible adjustment of positions, ensuring the stability of the overall center of gravity, and preventing tipping. The fixed support bar serves as the basic framework, providing a firm support point for the electrode plates, making the device safer and more reliable when bearing weight and pressure. The design of the movable support bar allows it to be easily adjusted when needed to adapt to different usage requirements, improving the adaptability and flexibility of the device. In addition, the symmetrical arrangement is not only aesthetically pleasing but also enhances the balance of the overall structure, ensuring stability and durability during long-term use.

[0009] In a preferred embodiment of the present utility model, a limit projection is respectively fixed at both ends of the movable support bar, and the limit holes are correspondingly opened at both ends of the load-bearing frame.

[0010] The movable support bar plays a role in limiting and supporting, and is used in cooperation with the load-bearing frame. A limit projection respectively fixed at both ends of the movable support bar is used to cooperate with the limit holes on the load-bearing frame correspondingly. In this way, the movable support bar can be stably installed on the load-bearing frame, ensuring its stability and reliability during use. This design not only improves the stability of the support structure, but also facilitates the quick installation and disassembly of the movable support bar, thereby improving the overall convenience of use. In addition, the combination of the movable support bar and the load-bearing frame can be adapted to load electrode plates of different sizes.

[0011] In a preferred embodiment of the present utility model, the support frame includes an upper column and a lower column. The upper end of the upper column is fixedly connected to the load-bearing frame, the lower end of the lower column is fixedly connected to the fixed frame, and the lower end of the upper column is slidably inserted into the upper end of the lower column.

[0012] The support frame is designed to provide a stable structural support. Its core components include an upper column and a lower column. The upper end of the upper column is connected to the load-bearing frame through a fixed connection, ensuring that the support frame can bear the weight in the vertical direction. The lower end of the lower column is fixedly connected to the fixed frame, providing a stable bottom support for the support frame. In addition, the upper column and the lower column are connected by a slidable insertion method, allowing relative movement between the two within a certain range to adapt to different size loading requirements, improving the flexibility and applicability of the support frame.

[0013] In a preferred embodiment of the present utility model, a limit slide bar is slidably inserted into the lower column, and the upper end of the limit slide bar is fixedly connected to the lower end of the upper column.

[0014] The inner part of the lower column is designed with a limiting slide bar that is slidably inserted. The upper end of the limiting slide bar is fixedly connected to the lower end of the upper column, forming a structure that can slide relative to each other. This design allows relative movement between the upper column and the lower column. At the same time, through the limitation of the limiting slide bar, it ensures that this movement is limited, prevents excessive displacement, and only allows sliding along the length direction of the limiting slide bar. The vertical distance can be adjusted, improving the use width and efficiency of the device.

[0015] In a preferred embodiment of the present utility model, a support tube is fixed to the fixed frame, and a support rod is fixed at the center of gravity position of the fixed support bar. The lower end of the support rod is slidably inserted into the upper end of the support tube.

[0016] A through hole is provided on the side wall of the upper end of the support tube, and a nut is coaxially fixed on the outer surface of the through hole. The nut is threadedly connected to a stud, and one end of the stud movably penetrates through the through hole.

[0017] The fixed frame is made of high-strength materials, has a stable structure, and can withstand external loads. A support tube is fixed to the fixed frame. The support tube is made of a lightweight but high-strength alloy material to ensure the support effect while reducing the overall weight. A through hole is provided on the side wall of the upper end of the support tube, which is beneficial for the subsequent installation and fixation of the nut and the stud. The lower end of the support rod is designed to be slidably inserted into the upper end of the support tube. The nut and the stud are threadedly connected, and one end of the stud abuts against the surface of the support rod to lock the position of the support rod sliding in the support tube. It is convenient for the quick sliding and positioning of the support rod, and can adapt to different length requirements, improving the flexibility and application range of the device.

[0018] In a preferred embodiment of the present utility model, adjustable feet are installed at the bottom of the fixed frame, and the adjustable feet are respectively arranged at the corners of the fixed frame.

[0019] Adjustable feet are installed at the bottom of the fixed frame, and the adjustable feet are respectively arranged at the corners of the fixed frame. Each adjustable foot includes a base, a support rod is provided on the base, the upper end of the support rod is connected to the bottom of the fixed frame, and the lower end is provided with an adjustable height adjustment disc.

[0020] The beneficial effects of the present utility model are as follows:

[0021] The curing rack is formed into an integral whole by a support rack, a load-bearing rack and a movable support bar connected by a fixed rack. The movable support bar is placed on the load-bearing rack. There are limiting holes made on the load-bearing rack, and corresponding limiting protrusions on the movable support bar. The movable support bar is placed on the upper part of the support rack. After the electrode plate is pasted, it is placed between the fixed support bar and the movable support bar. According to the size of the electrode plate, the movable support bar can be placed by selecting a limiting hole at an appropriate distance from the fixed support bar on the load-bearing rack. The anti-slip process is designed, which is applicable to the curing, storage and transportation of the electrode plates of the storage battery by gravity casting, preventing the collapse of the electrode plates and reducing the occurrence of safety accidents. Description of the Drawings

[0022] Figure 1 Fig. shows the three-dimensional structural schematic diagram of the anti-collapse curing rack in the embodiment;

[0023] Figure 2 Fig. shows the three-dimensional structural schematic diagram of the load-bearing rack in the embodiment;

[0024] Figure 3 Fig. shows the three-dimensional structural schematic diagram of part A in the embodiment Figure 2 in the;

[0025] Figure 4 Fig. shows the three-dimensional structural schematic diagram of the movable support bar in the embodiment;

[0026] Figure 5 Fig. shows the side view structural schematic diagram of the support rack in the embodiment.

[0027] Reference Numerals: 100, support rack; 101, upper upright column; 103, lower upright column; 105, limiting slide bar; 110, fixed rack; 111, support pipe; 113, stud; 115, nut; 117, adjustable support foot; 130, load-bearing rack; 131, limiting hole; 150, fixed support bar; 151, support rod; 170, movable support bar; 171, limiting protrusion. Detailed Embodiment

[0028] To make the objectives, technical solutions and advantages of the embodiments of the present utility model clearer, the technical solutions of the present utility model will be clearly and completely described below in conjunction with the embodiments.

[0029] Embodiment

[0030] As Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5As shown in the figure, an anti-collapse curing rack includes: a support frame 100, a fixed frame 110 is fixed at the lower end of the support frame 100, a load-bearing frame 130 is fixed at the upper end of the support frame 100, a fixed support bar 150 is fixed on the load-bearing frame 130, movable support bars 170 are respectively arranged on both sides of the fixed support bar 150, the movable support bars 170 are arranged parallel to the fixed support bar 150, a limiting hole 131 is opened on the load-bearing frame 130, a limiting protrusion 171 is fixed at the end of the movable support bar 170, the limiting protrusion 171 is engaged with the limiting hole 131, and a plurality of limiting holes 131 are arranged at equal intervals perpendicular to the length direction of the movable support bar 170.

[0031] Movable support bars 170 are respectively arranged on both sides of the fixed support bar 150, and the movable support bars 170 are arranged parallel to the fixed support bar 150 to ensure the structural stability of the placed electrode plates. A limiting hole 131 is opened inside the load-bearing frame 130, and a limiting protrusion 171 is fixed at the end of the movable support bar 170. Through the engagement of the limiting protrusion 171 and the limiting hole 131, the precise positioning of the movable support bar 170 inside the load-bearing frame 130 is realized, enhancing the load-bearing capacity and stability of the load-bearing frame 130. In addition, a plurality of limiting holes 131 are arranged at equal intervals perpendicular to the length direction of the movable support bar 170, and the position of the movable support bar 170 can be flexibly adjusted according to actual use requirements to adapt to electrode plates of different sizes, improving the applicability and flexibility of the load-bearing frame 130.

[0032] As Figure 1 、 Figure 2 shown, in a preferred embodiment of the present utility model, there are two movable support bars 170, and the two movable support bars 170 are symmetrically arranged on both sides of the fixed support bar 150.

[0033] There are two movable support bars 170, which are symmetrically installed on both sides of the fixed support bar 150. This design not only ensures the structural stability, but also optimizes the space utilization, enabling the electrode plates to be distributed on both sides, where their positions can be flexibly adjusted, and also ensuring the overall center of gravity stability to prevent tipping. The fixed support bar 150 serves as the basic framework, providing a stable support point for the electrode plates, making the device safer and more reliable when bearing weight and pressure. The design of the movable support bar 170 allows it to be easily adjusted in position when needed to adapt to different usage requirements, improving the adaptability and flexibility of the device. In addition, the symmetrical arrangement is not only aesthetically pleasing but also improves the overall structural balance, ensuring stability and durability during long-term use.

[0034] As Figure 1 、 Figure 2 、 Figure 3 、 Figure 4As shown, in a preferred embodiment of the present utility model, a limiting protrusion 171 is fixed at each end of the movable support bar 170, and the limiting holes 131 are correspondingly opened at both ends of the load-bearing frame 130.

[0035] The movable support bar 170 functions as a limiting and supporting member and is used in cooperation with the load-bearing frame 130. A limiting protrusion 171 fixed at each end of the movable support bar 170 is used to cooperate with the limiting holes 131 on the load-bearing frame 130 correspondingly. In this way, the movable support bar 170 can be stably installed on the load-bearing frame 130, ensuring its stability and reliability during use. This design not only improves the stability of the support structure but also facilitates the quick installation and disassembly of the movable support bar 170, thereby enhancing the overall convenience of use. In addition, the combination of the movable support bar 170 and the load-bearing frame 130 can be adapted to load plates of different sizes.

[0036] As Figure 1 、 Figure 2 As shown, in a preferred embodiment of the present utility model, the support frame 100 includes an upper column 101 and a lower column 103. The upper end of the upper column 101 is fixedly connected to the load-bearing frame 130, the lower end of the lower column 103 is fixedly connected to the fixed frame 110, and the lower end of the upper column 101 is slidably inserted into the upper end of the lower column 103.

[0037] The support frame 100 is designed to provide stable structural support, and its core components include the upper column 101 and the lower column 103. The upper end of the upper column 101 is connected to the load-bearing frame 130 by a fixed connection, ensuring that the support frame 100 can bear the weight in the vertical direction. The lower end of the lower column 103 is fixed to the fixed frame 110, providing a stable bottom support for the support frame 100. In addition, the upper column 101 and the lower column 103 are connected by a slidable insertion method, allowing relative movement between the two within a certain range to adapt to different size loading requirements. This improves the flexibility and applicability of the support frame 100.

[0038] As Figure 2 As shown, in a preferred embodiment of the present utility model, a limiting slide bar 105 is slidably inserted into the lower column 103, and the upper end of the limiting slide bar 105 is fixedly connected to the lower end of the upper column 101.

[0039] A limiting slide bar 105 is designed to be slidably inserted inside the lower column 103, and the upper end of the limiting slide bar 105 is fixedly connected to the lower end of the upper column 101, forming a relatively slidable structure. This design allows relative movement between the upper column 101 and the lower column 103. At the same time, through the limitation of the limiting slide bar 105, it is ensured that this movement is limited, preventing excessive displacement and only allowing sliding along the length direction of the limiting slide bar 105. The vertical distance can be adjusted, improving the use width and efficiency of the device.

[0040] As Figure 1 、 Figure 5 shown, in a preferred embodiment of the present utility model, a support tube 111 is fixed to the fixing frame 110, and a support rod 151 is fixed at the center of gravity position of the fixed support bar 150. The lower end of the support rod 151 is slidably inserted into the upper end of the support tube 111;

[0041] A through hole is formed in the side wall of the upper end of the support tube 111, and a nut 115 is coaxially fixed to the outer surface of the through hole. The nut 115 is threadedly connected to a stud 113, and one end of the stud 113 movably passes through the through hole.

[0042] The fixing frame 110 is made of high-strength material and has a stable structure capable of withstanding external loads. The support tube 111 is fixed to the fixing frame 110 and is made of a lightweight but high-strength alloy material to ensure the support effect while reducing the overall weight. The through hole is formed in the side wall of the upper end of the support tube 111, which is beneficial to the subsequent installation and fixation of the nut 115 and the stud 113. The lower end of the support rod 151 is designed to be slidably inserted into the upper end of the support tube 111. The nut 115 and the stud 113 are threadedly connected, and one end of the stud 113 abuts against the surface of the support rod 151 to lock the sliding position of the support rod 151 in the support tube 111. This facilitates the quick sliding and positioning of the support rod 151, and can adapt to different length requirements, improving the flexibility and application range of the device.

[0043] As Figure 1 、 Figure 5 shown, in a preferred embodiment of the present utility model, adjustable feet 117 are installed at the bottom of the fixing frame 110, and the adjustable feet 117 are respectively arranged at the corners of the fixing frame 110;

[0044] The adjustable feet 117 are installed at the bottom of the fixing frame 110 and are respectively arranged at the corners of the fixing frame 110. Each adjustable foot 117 includes a base, a support rod is provided on the base, the upper end of the support rod is connected to the bottom of the fixing frame 110, and an adjustable height adjustment disk is provided at the lower end. By rotating the adjustment disk, the height of the support rod can be adjusted, so that the bottom of the fixing frame 110 is kept at an appropriate distance from the horizontal plane, ensuring that the fixing frame 110 is stably supported on various ground surfaces. This design not only enables the fixing frame 110 to adapt to the flatness of different ground surfaces, but also effectively prevents damage caused by uneven ground, improving the stability and service life of the fixing frame 110.

[0045] Working principle: The curing rack is connected as a whole by a support frame 110, a load-bearing frame 130, and a movable support bar 170 connected by a fixed frame 100. The movable support bar 170 is placed on the load-bearing frame 130. There are production limiting holes 131 on the load-bearing frame 130, and corresponding limiting protrusions 171 on the movable support bar 170. The movable support bar 170 is placed on the upper part of the support frame 100. After the electrode plate is pasted, it is placed between the fixed support bar 150 and the movable support bar 170. According to the size of the electrode plate, the movable support bar 170 can be placed by selecting a limiting hole 131 at an appropriate distance from the fixed support bar 150 on the load-bearing frame 130. The anti-slip process is designed to be applicable to the curing, storage, and transportation of the electrode plates of the storage battery by gravity casting, prevent the collapse of the electrode plates, and reduce the occurrence of safety accidents.

[0046] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it.

Claims

1. An anti-collapse curing frame, characterized in that: include: A support frame (100), wherein a fixed frame (110) is fixed at the lower end of the support frame (100), and a load-bearing frame (130) is fixed at the upper end of the support frame (100), and a fixed support bar (150) is fixed to the load-bearing frame (130), and movable support bars (170) are respectively arranged on both sides of the fixed support bar (150), and the movable support bar (170) is arranged parallel to the fixed support bar (150), and the load-bearing frame (130) is provided with a limiting hole (131), and a limiting protrusion (171) is fixed at the end of the movable support bar (170), and the limiting protrusion (171) is engaged with the limiting hole (131), and a plurality of limiting holes (131) are arranged at equal intervals perpendicular to the length direction of the movable support bar (170).

2. The anti-collapse curing frame according to claim 1, characterized in that: Two movable support bars (170) are provided, and the two movable support bars (170) are symmetrically arranged on both sides of the fixed support bar (150).

3. The anti-collapse curing frame according to claim 2, characterized in that: A limiting protrusion (171) is fixed to each of the two ends of the movable support bar (170), and the limiting holes (131) are correspondingly opened at the two ends of the load-bearing frame (130).

4. The anti-collapse curing frame according to claim 2, characterized in that: The support frame (100) comprises an upper column (101) and a lower column (103); the upper end of the upper column (101) is fixedly connected to the load-bearing frame (130); the lower end of the lower column (103) is fixedly connected to the fixed frame (110); and the lower end of the upper column (101) is slidably plugged into the upper end of the lower column (103).

5. The anti-collapse curing frame according to claim 4, characterized in that: A limit slide bar (105) is slidably inserted in the lower column (103), and the upper end of the limit slide bar (105) is fixedly connected to the lower end of the upper column (101).

6. The anti-collapse curing frame according to claim 2, characterized in that: The fixing frame (110) is fixed with a support tube (111), the center of gravity of the fixed support bar (150) is fixed with a support rod (151), and the lower end of the support rod (151) is slidably inserted into the upper end of the support tube (111); A through hole is formed on the side wall of the upper end of the support tube (111), a nut (115) is coaxially fixed on the outer surface of the through hole, a stud (113) is threadedly connected to the nut (115), and one end of the stud (113) movably passes through the through hole.

7. The anti-collapse curing frame according to claim 1, characterized in that: Adjustable feet (117) are installed at the bottom of the fixing frame (110), and the adjustable feet (117) are respectively arranged at each corner of the fixing frame (110).