Residual plate hoisting hopper

By designing a residual plate hoist with an electrolytic mechanism with drain holes and heat dissipation holes, the problem that the existing lifting hoists cannot meet the requirements of the plate electrolytic environment is solved, and the heat dissipation drainage function is realized, which facilitates electrolysis of the storage material.

CN222947938UActive Publication Date: 2025-06-06CHONGQING YUTAI METAL MATERIAL CO LTD
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Patent Information

Application Number
CN202422283623.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2025-06-06
Estimated Expiration
2034-09-19

AI Technical Summary

Technical Problem

The existing hoisting hopper does not have the function of heat dissipation and drainage, and cannot meet the environmental requirements for electrolysis of the plate.

Method used

A residual plate hoisting hopper including an electrolytic mechanism is designed. The electrolytic mechanism consists of a bottom plate, a side plate, a reinforcement assembly, a shelf frame, a partition frame, a cable block and a hanging assembly. The bottom plate and the side plate are equipped with drain holes and heat dissipation holes to strengthen the assembly and enhance the connection firmness.

Benefits of technology

The heat dissipation and drainage function is realized, which facilitates electrolysis of the storage material and improves the applicability and efficiency of the hoisting hopper.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of residual plate hoisting hoppers, in particular to a residual plate hoisting hopper which comprises an electrolysis mechanism, the electrolysis mechanism comprises a bottom plate, four side plates, a reinforcing assembly and a hoisting assembly, the bottom plate is provided with draining holes, the side plates are all provided with heat dissipation holes, and the reinforcing assembly comprises a first reinforcing frame, a second reinforcing frame and four reinforcing ribs. Before electrolysis of the residual plate, the residual plate is placed in a square groove formed by the bottom plate and the four side plates, the square groove is transported into an electrolytic tank through the bottom plate and the four side plates after being full, electrolyte is injected, the electrolyte enters from the upper portion of the square groove, the heat dissipation holes and the draining holes to electrolyze the residual plate, and after electrolysis is completed, the residual plate is hoisted through the hoisting assembly. Heat in the square groove can be discharged from the top and the heat dissipation holes, residual electrolyte can be drained from the draining holes, the electrolyte can be transported to the next production procedure through the hoisting assembly after a period of time, and the effects of heat dissipation, draining and convenience in electrolysis of containing materials are achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of residual board hoisting hoppers, in particular to a residual board hoisting hopper. Background Art

[0002] When preparing copper powder, the chemical reaction of electrolysis is used to electrolyze the copper-containing raw materials in an electrolytic cell, so that the copper ions are reduced to pure copper in the electrolyte. The copper-containing residual plates need to be hoisted through a hoisting hopper before subsequent processing.

[0003] However, existing lifting hoppers are generally used in the construction industry to hold small-volume materials such as lime, sand, cement, etc., and do not have the function of heat dissipation and drainage, and cannot meet the environmental requirements for plate electrolysis. Utility Model Content

[0004] The utility model aims to provide a residual plate lifting hopper, which solves the problem that the existing lifting hopper is generally used in the construction industry to hold small-volume materials such as lime, sand, cement, etc., does not have the function of heat dissipation and drainage, and cannot meet the environmental requirements for plate electrolysis.

[0005] To achieve the above-mentioned purpose, the utility model provides a residual board lifting hopper, including an electrolysis mechanism, the electrolysis mechanism including a bottom plate, four side plates and a reinforcement assembly, the bottom plate is provided with a drainage hole, the four side plates are fixedly connected to the top of the bottom plate, and form a square groove with the bottom plate, and are all provided with heat dissipation holes, the reinforcement assembly is arranged on the surface of the bottom plate and the four side plates, the reinforcement assembly includes a first reinforcement frame, a second reinforcement frame and four reinforcement ribs, the first reinforcement frame is fixedly connected to the top of the four side plates, the second reinforcement frame is fixedly connected to the connection between the bottom plate and the four sides, the four reinforcement ribs are arranged between the second reinforcement frame and the second reinforcement frame, and are respectively located at the four corners outside the square groove.

[0006] Wherein, the electrolysis mechanism further comprises a shelf frame and a partition frame, wherein the shelf frame is detachably connected to the square groove, and the partition frame is fixedly connected to the shelf frame.

[0007] Wherein, the reinforcing rib includes a left rib and a right rib, the left rib is fixedly connected to the surface of the side plate, and the right rib is fixedly connected to the other side plate and fixedly connected to one side of the left rib.

[0008] The electrolysis mechanism further includes a cable collecting block and four hanging assemblies. The cable collecting block is located above the square slot. The four hanging assemblies are respectively arranged at the four corners of the square slot and are fixedly connected to the cable collecting block by ropes.

[0009] Finally, the hanging assembly includes a hanging ring and a hanging hook, the hanging ring is fixedly connected to the top of the reinforcing rib, the hanging hook is fixedly connected to the rope and can be detachably connected to the hanging ring.

[0010] The utility model discloses a residual plate hoisting hopper. Before electrolyzing the residual plates, the incomplete electrode plates are placed in the square groove formed by the bottom plate and the four side plates. After the groove is filled, the bottom plate and the four side plates are moved to transport the materials to the electrolytic cell. The electrolyte is injected into the electrolytic cell. The electrolyte enters the square groove from the top of the square groove, the heat dissipation holes and the drainage holes to electrolyze the residual plates. After the electrolysis is completed, the bottom plate and the four side plates are hoisted by the hoisting assembly. The heat in the square groove is discharged from the top opening and the heat dissipation holes. , the residual electrolyte will drain out from the drain hole, and at the same time, the first reinforcement frame, the second reinforcement frame and the four reinforcement ribs will strengthen the connection between the bottom plate and the four side plates to improve the firmness. After a period of time, it can be transported to the next production process through the lifting assembly, avoiding the problem that the existing lifting hopper is generally used in the construction industry to hold small-volume materials such as lime, sand, cement, etc., and does not have the function of heat dissipation and drainage, and cannot meet the environmental requirements of the plate for electrolysis. The effect of heat dissipation and drainage is achieved, which is convenient for electrolysis and holding materials. BRIEF DESCRIPTION OF THE DRAWINGS

[0011] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art are briefly introduced below.

[0012] Figure 1 It is an overall structural schematic diagram of the utility model.

[0013] Figure 2 It is a structural schematic diagram of the reinforcement component of the utility model.

[0014] Figure 3 It is a structural schematic diagram of a hanging ring of the utility model.

[0015] Figure 4 It is a structural schematic diagram of the shelf frame of the utility model.

[0016] 101-bottom plate, 102-side plate, 103-reinforcement assembly, 104-drain hole, 105-heat dissipation hole, 106-first reinforcement frame, 107-second reinforcement frame, 108-reinforcement rib, 109-left rib, 110-right rib, 111-shelf frame, 112-partition frame, 113-cable collection block, 114-hanging assembly, 115-rope, 116-hanging ring, 117-hanging hook, 118-square groove. DETAILED DESCRIPTION

[0017] Embodiments of the present invention are described in detail below, and examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present invention, but should not be understood as limiting the present invention.

[0018] See also Figure 1-Figure 4 ,in Figure 1 It is a schematic diagram of the overall structure of the utility model; Figure 2 It is a structural schematic diagram of the reinforcing component of the utility model; Figure 3 It is a structural schematic diagram of the hanging ring of the utility model; Figure 4 It is a structural schematic diagram of the shelf frame of the utility model.

[0019] The utility model provides a residual plate hoisting hopper: comprising an electrolysis mechanism, the electrolysis mechanism comprising a bottom plate 101, four side plates 102, a reinforcement component 103, a shelf frame 111, a partition frame 112, a cable collection block 113 and four hanging components 114, the bottom plate 101 is provided with a drainage hole 104, the four side plates 102 are all provided with a heat dissipation hole 105, the reinforcement component 103 comprises a first reinforcement frame 106, a second reinforcement frame 107 and four reinforcement ribs 108, the reinforcement rib 108 comprises a left rib 109 and a right rib 110, the reinforcement rib 108 comprises a left rib 109 and a right rib 110, the hanging component 114 comprises a hanging ring 116 and a hanging hook 117, and the above-mentioned scheme solves the problem that the existing hoisting hopper is generally used in the construction industry to hold small-volume materials such as lime, sand, cement, etc., does not have the function of heat dissipation and drainage, and cannot meet the environmental requirements for electrolysis of the plate.

[0020] According to the present specific embodiment, the four side plates 102 are fixedly connected to the top of the bottom plate 101, and form a square groove 118 with the bottom plate 101. The reinforcing assembly 103 is arranged on the surface of the bottom plate 101 and the four side plates 102. The first reinforcing frame 106 is fixedly connected to the top of the four side plates 102. The second reinforcing frame 107 is fixedly connected to the connection between the bottom plate 101 and the four side plates 102. The four reinforcing ribs 108 are arranged between the second reinforcing frame 107 and the second reinforcing frame 107, and are respectively located at the four corners outside the square groove 118. Before performing residual plate electrolysis, the incomplete electrode plate is placed in the square groove 118 formed by the bottom plate 101 and the four side plates 102. After it is filled, the incomplete electrode plate is moved. The bottom plate 101 and the four side plates 102 are used to transport the materials into the electrolytic cell, and the electrolyte is injected into the electrolytic cell. The electrolyte will enter the square groove 118 from the top of the square groove 118, the heat dissipation holes 105 and the drain holes 104 to electrolyze the residual plates. After the electrolysis is completed, the bottom plate 101 and the four side plates 102 are lifted by the lifting assembly, and the heat in the square groove 118 will be discharged from the top opening and the heat dissipation holes 105, and the residual electrolyte will be drained from the drain holes 104. At the same time, the first reinforcement frame 106, the second reinforcement frame 107 and the four reinforcement ribs 108 will strengthen the connection between the bottom plate 101 and the four side plates 102 to improve the firmness. After a period of time, it can be transported to the next production process by the lifting assembly.

[0021] Among them, the shelf frame 111 is detachably connected to the square groove 118, and the partition frame 112 is fixedly connected to the shelf frame 111. When placing the residual plates, the partition frame 112 will cooperate with the shelf frame to separate the residual plates in the square groove 118, which can make the residual plates more fully contact with the electrolyte and enhance the electrolysis effect.

[0022] Secondly, the left rib 109 is fixedly connected to the surface of the side panel 102, and the right rib 110 is fixedly connected to the other side panel 102 and fixedly connected to one side of the left rib 109. Since the left rib 109 and the right rib 110 are fixedly connected to each other at an angle of 90 degrees and fixedly connected to the connection between the two side panels 102, it is possible to limit the connection between the two side panels 102 while reinforcing it, so that it is not easy to deform, making the device more secure.

[0023] At the same time, the cable collecting block 113 is located above the square groove 118, and the four hanging components 114 are respectively arranged at the four corners of the square groove 118 and fixedly connected to the cable collecting block through ropes 115. When the hanging components are used, a machine is used to pull the four ropes 115 bundled together above the cable collecting block 113, and the four hanging components 114 are lifted by the four ropes 115, so as to lift the square groove 118 formed by the bottom plate 101 and the four side plates 102 and the remaining plates therein for transportation.

[0024] Finally, the hanging ring 116 is fixedly connected to the top of the reinforcing rib 108, and the hanging hook 117 is fixedly connected to the rope 115 and detachably connected to the hanging ring 116. When the rope 115 is pulled, the hanging hook 117 tightens the hanging ring 116, thereby lifting the hanging ring 116.

[0025] Before electrolysis of residual plates, the residual plates are placed in the square groove 118 formed by the bottom plate 101 and the four side plates 102, and the residual plates are separated in the square groove 118 by the partition frame 112 in cooperation with the shelf frame, so that the residual plates can be more fully contacted with the electrolyte and the electrolysis effect can be enhanced; after filling, the four ropes 115 bundled together above the cable collection block 113 are mechanically pulled, and the four hanging assemblies are lifted by the four ropes 115 114, so that the square groove 118 formed by the bottom plate 101 and the four side plates 102 and the residual plate therein are lifted, the bottom plate 101 and the four side plates 102 are moved, the materials are transported to the electrolytic cell, and the electrolyte is injected into the electrolytic cell. The electrolyte enters the square groove 118 from the top of the square groove 118, the heat dissipation hole 105 and the drain hole 104, and the residual plate is electrolyzed. After the electrolysis is completed, the bottom plate 101 and the four side plates 102 are lifted by the lifting assembly. 02 is lifted up, the heat in the square groove 118 will be discharged from the top opening and the heat dissipation hole 105, and the residual electrolyte will be drained from the drain hole 104. At the same time, the first reinforcement frame 106, the second reinforcement frame 107 and the four reinforcement ribs 108 will strengthen the connection between the bottom plate 101 and the four side plates 102 to improve the firmness. Because the left rib 109 and the right rib 110 are fixedly connected to each other at a 90-degree angle and fixedly connected to the connection between the two side plates 102, it is possible to limit the connection between the two side plates 102 while reinforcing it, so that it is not easy to deform, making the device more firm. After a period of time, it can be transported to the next production process through the lifting assembly, avoiding the problem that the existing lifting hopper is generally used in the construction industry to hold small-volume materials such as lime, sand, cement, etc., does not have the function of heat dissipation and drainage, and cannot meet the environmental requirements of the plate for electrolysis. The effect of heat dissipation and drainage is achieved, which is convenient for electrolysis and holding materials.

[0026] What is disclosed above is only one or more preferred embodiments of the present application, and cannot be used to limit the scope of rights of the present application. Ordinary technicians in this field can understand that all or part of the processes of implementing the above embodiments and equivalent changes made according to the claims of the present application are still within the scope covered by the present application.

Claims

1. A residual board hoisting hopper, characterized in that: Including electrolysis mechanism; The electrolysis mechanism includes a bottom plate, four side plates and a reinforcement component. The bottom plate is provided with a drainage hole. The four side plates are fixedly connected to the top of the bottom plate to form a square groove with the bottom plate and are all provided with heat dissipation holes. The reinforcement component is arranged on the surface of the bottom plate and the four side plates. The reinforcement component includes a first reinforcement frame, a second reinforcement frame and four reinforcement ribs. The first reinforcement frame is fixedly connected to the top of the four side plates, and the second reinforcement frame is fixedly connected to the connection between the bottom plate and the four sides. The four reinforcement ribs are arranged between the second reinforcement frame and the second reinforcement frame, and are respectively located at the four corners outside the square groove.

2. The residual board hoisting hopper according to claim 1, characterized in that: The electrolysis mechanism also includes a shelf frame and a partition frame. The shelf frame is detachably connected to the square groove, and the partition frame is fixedly connected to the shelf frame.

3. The residual board hoisting hopper according to claim 1, characterized in that: The reinforcing rib comprises a left rib and a right rib, wherein the left rib is fixedly connected to the surface of the side plate, and the right rib is fixedly connected to the other side plate and fixedly connected to one side of the left rib.

4. The residual board hoisting hopper according to claim 1, characterized in that: The electrolysis mechanism also includes a cable collection block and four hanging components. The cable collection block is located above the square slot. The four hanging components are respectively arranged at the four corners of the square slot and are fixedly connected to the cable collection block through ropes.

5. The residual board hoisting hopper according to claim 4, characterized in that: The hanging assembly comprises a hanging ring and a hanging hook, wherein the hanging ring is fixedly connected to the top of the reinforcing rib, and the hanging hook is fixedly connected to the rope and detachably connected to the hanging ring.