Electrolytic tank screw moving emptying frame
By designing the electrolytic cell screw auxiliary mobile material discharge frame, the mobile slide rail and limit structure are used to solve the problem of the screw being easily tilted, which improves the placement efficiency and reduces safety hazards, and achieves safe and efficient screw placement.
Patent Information
- Application Number
- CN202422221198.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-10
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-09-10
AI Technical Summary
The existing electrolytic cell screws are prone to tilt on the material discharge rack, occupying a large space, affecting installation efficiency and posing safety hazards.
An electrolytic cell screw auxiliary mobile feeding rack is designed, including a base, a moving slide rail, a screw feeding mechanism, a flip guardrail and a height adjustment block. The horizontal movement is achieved by moving the slider and the slide rail, and the limit fixation is performed using coarse positioning blocks and placement holes. It is equipped with a flip guardrail and a spring post pin to prevent skew and bumps.
It improves the placement efficiency of electrolytic cell screws, reduces space occupied, ensures operational safety, and reduces the risks of staff.
Smart Images

Figure CN223084782U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of electrolytic cell assembly, and particularly to a screw auxiliary moving material rack for an electrolytic cell. Background Art
[0002] A PEM (Polymer Electrolyte Membrane) electrolytic cell is a fuel cell technology that uses a solid polymer electrolyte as an ion transport medium, mainly used in hydrogen fuel cells (PEMFC), also known as proton exchange membrane fuel cells.
[0003] Currently, the material rack for stacking and positioning screws of the electrolytic cell has a single function. The electrolytic cell screws take up a large space. Since the electrolytic cell screws are not fixed on the material rack, they are prone to falling over, which affects the screw installation efficiency. When placing the screws, not only are the screws easy to roll down, but the staff members work among many devices, with a great potential safety hazard in placing the screws and it is also easy to cause personal injury to the on-site staff.
[0004] Therefore, in the process of assembling the electrolytic cell screws, especially in the related processes of the material rack for the electrolytic cell screws, how to reduce the space occupied by screw placement, prevent the screws from falling over while ensuring work safety, and improve the placement efficiency is a crucial issue. Summary of the Invention
[0005] In view of this, the embodiments of this application provide a screw auxiliary moving material rack for an electrolytic cell, which can solve the problems in the prior art that the electrolytic cell screws are prone to falling over during placement, and both the placement efficiency and safety are relatively low. The technical solutions are as follows:
[0006] The embodiments of this application provide a screw auxiliary moving material rack for an electrolytic cell, including:
[0007] A base and a screw material placement mechanism. Moving sliders are respectively and fixedly installed on both sides of the base. A moving slider is arranged on the moving rail, and the screw material placement mechanism is installed on the moving rail through the connected moving slider, so that the screw material placement mechanism horizontally moves on the base;
[0008] The material placement mechanism includes a plurality of fixedly connected screw material placement platforms. Each screw material placement platform includes a placement plate, a bottom plate, a support column, a plurality of rough positioning blocks and a plurality of screw placement holes. A plurality of the rough positioning blocks are arranged on the placement plate. The rough positioning blocks are used to limit the electrolytic cell screws. A support column is fixedly installed at the lower end of the placement plate. The support column is fixedly connected with the bottom plate. A plurality of screw placement holes corresponding to the rough positioning blocks are formed in the bottom plate. The screw placement holes and the rough positioning blocks cooperate with each other to fixedly place the electrolytic cell screws.
[0009] Further, the material rack further includes:
[0010] Flip guardrail, the flip guardrail includes a guardrail main body, an upper flip cover, a connecting hinge and a bolt. The guardrail main body is fixedly connected to the screw feeding mechanism. The upper flip cover is rotatably connected to the guardrail main body through the connecting hinge. The bolt is further provided on the side of the upper flip cover to control the opening and closing of the upper flip cover so that the upper flip cover covers the screw feeding mechanism.
[0011] Furthermore, an accessory placement table is further provided on the flip guardrail. The accessory placement table is fixedly installed on the side wall of the guardrail main body to carry the installation accessories of the electrolytic cell screw.
[0012] Further, spring pins are installed on both sides of the inner wall of the plurality of rough positioning blocks. The spring pins are used to clamp the electrolytic cell screw to prevent the electrolytic cell screw from detaching from the rough positioning block.
[0013] Further, the screw feeding table further includes a height adjustment block. The height adjustment block is installed on the support column of the screw feeding table. The upper part of the height adjustment block is fixedly connected to the placement plate to adjust the installation position of the placement plate on the support column so as to change the distance between the placement plate and the bottom plate.
[0014] Further, the height adjustment block is screwed and installed on the support column of the screw feeding table.
[0015] Further, the rough positioning blocks are equidistantly and symmetrically distributed on both sides of the placement plate. The center lines of each rough positioning block and the corresponding screw placement holes are on the same vertical line, perpendicular to the bottom plate of the screw feeding table.
[0016] Compared with the prior art, the beneficial effects that can be achieved by at least one of the above technical solutions adopted in the embodiments of this specification at least include:
[0017] The electrolytic cell screw mobile feeding rack includes a base and a screw feeding mechanism. Mobile slide rails are respectively fixedly installed on both sides of the base. Mobile sliders are provided on the mobile slide rails. The screw feeding mechanism is installed on the mobile slide rails through the connected mobile sliders, so that the screw feeding mechanism moves horizontally on the base. The staff can pull out the screw feeding mechanism to prevent the screw, away from the working area near the base to ensure operation safety.
[0018] In addition, the feeding mechanism includes a plurality of screw feeding platforms fixedly connected to each other. The screw feeding platform includes a placement plate, a bottom plate, support columns, a plurality of rough positioning blocks, and a plurality of placement holes. The placement plate is provided with a plurality of rough positioning blocks for limiting the screws. Support columns are fixedly installed at the lower end of the placement plate and are fixedly connected to the bottom plate. The bottom plate is provided with a plurality of screw placement holes corresponding to the rough positioning blocks. The upper parts of a plurality of screws are respectively placed in the centers of a plurality of rough positioning blocks, and the bottom ends are inserted into the corresponding screw placement holes. By the mutual cooperation of the screw placement holes and the rough positioning blocks, the electrolytic cell screws can be fixedly placed, enabling the placement of a large number of electrolytic cell screws, improving the screw placement efficiency. Under the combined limitation of the rough positioning blocks and the screw placement holes, the electrolytic cell screws are not easily knocked against each other, and the problem of tipping over is also avoided, reducing the operation risk for the staff. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings required for use in the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0020] Figure 1 Fig. shows a schematic structural diagram of an electrolytic cell screw mobile feeding rack provided by an exemplary embodiment of the present application;
[0021] Figure 2 Fig. shows a schematic structural diagram of a screw feeding mechanism provided by an exemplary embodiment of the present application;
[0022] Figure 3 Fig. shows a schematic structural diagram of an electrolytic cell screw mobile feeding rack provided by another exemplary embodiment of the present application;
[0023] Figure 4 Fig. shows a schematic structural diagram of the bottom plate of a screw feeding platform provided by an exemplary embodiment of the present application;
[0024] Figure 5 Fig. shows a schematic structural diagram of a rough positioning block provided by an exemplary embodiment of the present application;
[0025] Figure 6 Fig. shows a schematic structural diagram of a screw feeding platform provided by an exemplary embodiment of the present application.
[0026] Among them, 1. Screw feeding rack; 10. Base; 11. Moving slide rail; 12. Moving slider; 20. Screw feeding mechanism; 21. Screw feeding table; 210. Placing plate; 220. Bottom plate; 230. Support column; 240. Coarse positioning block; 250. Screw placing hole; 260. Spring pin; 270. Height adjusting block; 30. Flip guardrail; 31. Guardrail main body; 32. Upper flip cover; 33. Connecting hinge; 34. Bolt; 35. Fitting placing table. Detailed implementation manners
[0027] The embodiments of the present application will be described in detail below with reference to the accompanying drawings.
[0028] The following specific examples illustrate the implementation manners of the present application. Those skilled in the art can easily understand other advantages and effects of the present application from the content disclosed in this specification. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. The present application can also be implemented or applied through other different specific implementation manners. Various details in this specification can also be modified or changed based on different viewpoints and applications without departing from the spirit of the present application. It should be noted that, without conflict, the following embodiments and the features in the embodiments can be combined with each other. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in the present application without creative efforts belong to the scope of protection of the present application.
[0029] It should be noted that the terms "first", "second", etc. in the description and claims of the present invention and the accompanying drawings are used to distinguish similar objects, and do not necessarily need to be used to describe a specific order or sequence. It should be understood that such data can be interchanged under appropriate circumstances so that the embodiments of the present invention described here can be implemented in an order different from those illustrated or described here. In addition, the terms "comprising" and "having" and any variations thereof are intended to cover non-exclusive inclusion.
[0030] Adopting an electrolytic cell screw moving feeding rack provided by the embodiments of the present application can be applicable to scenarios where screws need to be placed and positioned in the field of electrolytic cell equipment. As Figure 1 , 2 shown, an electrolytic cell screw moving feeding rack 1 provided by an embodiment of the present invention includes a base 10 and a screw feeding mechanism 20.
[0031] The base 10 includes a moving slide rail 11 and a moving slider 12. The screw feeding table 21 includes a placing plate 210, a bottom plate 220, a support column 230, a plurality of coarse positioning blocks 240 and a plurality of placing holes 250.
[0032] Specifically, moving slide rails 11 are fixedly installed on both sides of the base 10. Moving sliders 12 are arranged on the moving slide rails 11. The screw feeding mechanism 20 is installed on the moving slide rails 11 through the connected moving sliders 12, so that the screw feeding mechanism 20 can horizontally move on the base 10.
[0033] The screw feeding mechanism 20 includes a plurality of fixedly connected screw feeding platforms 21. The screw feeding platform 21 includes a placing plate 210, a bottom plate 220, support columns 230, a plurality of rough positioning blocks 240 and a plurality of placing holes 250. A plurality of rough positioning blocks 240 are arranged on the placing plate 210. The rough positioning blocks 240 are used to limit the electrolytic cell screws. A support column 230 is fixedly installed at the lower end of the placing plate 210. The support column 230 is fixedly connected to the bottom plate 220. A plurality of screw placing holes 250 corresponding to the rough positioning blocks 240 are formed in the bottom plate 220. The screw placing holes 250 and the rough positioning blocks 240 cooperate with each other to fixedly place the electrolytic cell screws.
[0034] In a possible implementation manner, first, the screw feeding mechanism 20 is horizontally moved along the moving slide rail 11, so that the screw feeding mechanism 20 is far away from the base 10 and the working area above the base 10. Then, the electrolytic cell screws are placed into the screw feeding mechanism 20, and the electrolytic cell screws are positioned and placed through the screw feeding platform 21. First, the rough positioning block 15 on the placing plate 210 preliminarily limits the screws, so that the screws initially reach a correct position in the Z-axis (perpendicular to the base 10) direction. Then, the bottom end of the screw is clamped into the screw placing hole 250 formed in the bottom plate 220. In a possible implementation manner, the shape of the screw placing hole 250 is adapted to the shape of the electrolytic cell screw, so as to further limit the electrolytic cell screw. Through the rough positioning block 240 and the corresponding screw placing hole 250, the electrolytic cell screw can be vertically fixed. There are a plurality of rough positioning blocks 240 on the placing plate 210, and a corresponding plurality of screw placing holes 250 are also formed in the bottom plate 220. Therefore, multiple electrolytic cell screws can be placed in batches. The specific numbers of the above-mentioned screw feeding platform 21, rough positioning block 240, and screw placing hole 250 can be set according to actual needs, and the present application does not limit this here.
[0035] After the electrolytic cell screws are placed on the above-mentioned screw feeding platform 21, the screw feeding mechanism 20 and the electrolytic cell screws as a whole are horizontally moved along the moving slide rail 11, and the screw feeding mechanism 20 is pushed back to the base 10, ensuring that the staff is far away from the working area above the base 10 to avoid injury when placing the screws. After the screws are placed, the screw feeding mechanism 20 is pushed back, so that the placed electrolytic cell screws can receive the next operation (such as the feeding process, etc.) in the working area.
[0036] In the above embodiments, moving slide rails are fixedly installed on both sides of the base of the electrolytic cell screw moving and discharging rack. The screw discharging mechanism is installed on the moving slide rails through the connected moving sliders, so that the screw discharging mechanism moves horizontally on the base. The staff can pull out the screw discharging mechanism to prevent the screw from being near the working area near the base, ensuring operation safety. In addition, the discharging mechanism includes a plurality of screw discharging tables fixedly connected. The upper parts of a plurality of screws are respectively placed in the centers of a plurality of rough positioning blocks. The screws are limited by the rough positioning blocks of the screw discharging tables. The bottom end of the electrolytic cell screw is inserted into the corresponding screw placement hole. The screw placement hole and the rough positioning block cooperate with each other to fix and place the screw. On the one hand, it realizes the placement of a large number of electrolytic cell screws, improving the screw placement efficiency. On the other hand, under the cooperation and limitation of the rough positioning block and the screw placement hole, the electrolytic cell screws are not easily knocked against each other, avoiding tipping over and reducing the operation risk of the staff.
[0037] To further optimize the safety of the electrolytic cell screw moving and discharging rack during operation, another embodiment is introduced below. Different from the above embodiments, preferably, as Figure 3 shown, the electrolytic cell screw moving and discharging rack 1 further includes a flip-up protective fence 30. The flip-up protective fence 30 includes a protective fence main body 31, an upper flip 32, a connecting hinge 33 and a bolt 34. The protective fence main body 31 is fixedly connected to the screw discharging mechanism 20. The upper flip 32 is rotatably connected to the protective fence main body 31 through the connecting hinge 33. A bolt 34 is also provided on the side of the upper flip 32 for controlling the opening and closing of the upper flip 32 so that the upper flip 32 covers the screw discharging mechanism 20.
[0038] Preferably, the flip-up protective fence is provided with two connecting hinges 33 rotatably connected to the protective fence main body 31. Bolts 34 are respectively provided on both sides of the upper flip 32. The upper flip 32 is a hollow structure and does not cover the screw placement area near the rough positioning block when it is lowered. During actual use, when the screw discharging mechanism 20 is located on the base 10 and near the working area of the base 10, at this time the bolt 34 is locked and the upper flip 32 of the flip-up protective fence 30 is in the open state; the screw discharging mechanism 20 is horizontally moved along the moving slide rail 11 so that the screw discharging mechanism 20 is far away from the base 10 and the working area above the base 10, then the bolt 34 is opened and the upper flip 32 is lowered so that the upper flip 32 partially covers the screw discharging mechanism 20. Then, the electrolytic cell screws are placed into the screw discharging mechanism 20, reducing the threat to personal safety during the feeding operation and reducing potential safety hazards while not interfering with the screw feeding process; finally, the screw discharging mechanism 20 is pushed back above the base 10. At this time, the upper flip 32 is reopened upward and the bolt 34 is locked so that the upper flip 32 remains in the open state, facilitating further operations on the electrolytic cell screws above the base 10 in the subsequent process.
[0039] Preferably, an accessory placement table 35 is further provided on the flip-up guardrail 30. The accessory placement table 35 is fixedly installed on the side wall of the guardrail main body 31 to carry accessories such as insulating sleeves required for the mounting screws. It is designed to be conveniently accessible beside the screw feeding mechanism 20, eliminating the need for an additional dedicated accessory rack, thus saving costs.
[0040] Preferably, in some embodiments, the rough positioning blocks 240 are symmetrically distributed at equal intervals on both sides of the placement plate 210. The center lines of each rough positioning block 240 and the corresponding screw placement holes 250 are on the same vertical line, perpendicular to the bottom plate 220 of the screw feeding table. Optionally, as Figure 4 shown, the shape and size of the screw placement holes 250 are adapted to those of the electrolytic cell screws to better clamp the electrolytic cell screws.
[0041] Preferably, in some embodiments, as Figure 5 shown, spring pins 260 are installed on both sides of the inner walls of the plurality of rough positioning blocks 240. The spring pins 260 are used to clamp the electrolytic cell screws to prevent the electrolytic cell screws from disengaging from the rough positioning blocks 240.
[0042] To further meet the screw placement requirements at different heights, in an alternative embodiment, as Figure 6 shown, the screw feeding table 21 further includes a height adjustment block 270. The height adjustment block 270 is installed on the support column 230 of the screw feeding table 21. The upper part of the height adjustment block 270 is fixedly connected to the placement plate 210. By changing the position of the height adjustment block 270 on the support column 230, the mounting position of the placement plate 210 on the support column 230 can be adjusted, thereby changing the distance between the placement plate 230 and the bottom plate 220, and thus placing electrolytic cell screws of different heights. Preferably, the height adjustment block 270 is screwed onto the support column of the screw feeding table, facilitating the adjustment of the position of the height adjustment block 270.
[0043] In some embodiments, the number of rough positioning blocks 240 is equal to that of the screw placement holes 250. The rough positioning blocks 240 are symmetrically distributed at equal intervals on both sides of the placement plate 230. The center lines of each rough positioning block 240 and the corresponding screw placement holes 250 are on the same vertical line, perpendicular to the bottom plate of the screw feeding table 21.
[0044] In summary, the electrolytic cell screw moving material rack includes a base and a screw material discharging mechanism. Moving slide rails are fixedly installed on both sides of the base, and moving sliders are arranged on the moving slide rails. The screw material discharging mechanism is installed on the moving slide rails through the connected moving sliders, so that the screw material discharging mechanism moves horizontally on the base. The staff can pull out the screw material discharging mechanism to prevent the screws from being close to the working area near the base, ensuring operation safety. In addition, the material discharging mechanism includes a plurality of screw material discharging platforms fixedly connected. Each screw material discharging platform includes a placing plate, a bottom plate, support columns, a plurality of rough positioning blocks and a plurality of placing holes. The placing plate is provided with a plurality of rough positioning blocks for limiting the screws. Support columns are fixedly installed at the lower end of the placing plate and are fixedly connected to the bottom plate. The bottom plate is provided with a plurality of screw placing holes corresponding to the rough positioning blocks. The upper parts of a plurality of screws are respectively placed in the centers of the plurality of rough positioning blocks, and the bottom ends are inserted into the corresponding screw placing holes. The electrolytic cell screws are fixedly placed through the cooperation of the screw placing holes and the rough positioning blocks. It is possible to place a large number of electrolytic cell screws, improving the screw placing efficiency. Under the cooperation and limitation of the rough positioning blocks and the screw placing holes, the electrolytic cell screws are not likely to bump into each other, and the problem of tipping over is also avoided, reducing the operation risk of the staff.
[0045] In this specification, the same or similar parts among the various embodiments can be referred to each other. Each embodiment focuses on the differences from other embodiments. In particular, for the embodiments described later, the description is relatively simple, and the relevant parts can be referred to the partial description of the foregoing embodiments.
[0046] As described above, only the specific embodiments of the present application are provided, but the protection scope of the present application is not limited thereto. Any changes or substitutions that can be easily thought of by those skilled in the art within the technical scope disclosed in the present application should be covered by the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. An electrolytic cell screw moving and discharging rack, comprising a base and a screw discharging mechanism, characterized in that: Moving slide rails are respectively and fixedly installed on both sides of the base, moving sliders are arranged on the moving slide rails, and the screw discharging mechanism is installed on the moving slide rails through the connected moving sliders, so that the screw discharging mechanism horizontally moves on the base; The discharging mechanism includes a plurality of fixedly connected screw discharging platforms. The screw discharging platform includes a placing plate, a bottom plate, support columns, a plurality of rough positioning blocks and a plurality of screw placing holes. A plurality of the rough positioning blocks are arranged on the placing plate, and the rough positioning blocks are used for limiting the electrolytic cell screws. Support columns are fixedly installed at the lower end of the placing plate, the support columns are fixedly connected with the bottom plate, a plurality of screw placing holes corresponding to the rough positioning blocks are formed in the bottom plate, and the screw placing holes and the rough positioning blocks cooperate with each other to fixedly place the electrolytic cell screws.
2. The electrolytic cell screw moving and discharging rack according to claim 1, characterized in that, The discharging rack further includes: A flip-up guardrail, which includes a guardrail main body, an upper flip, a connecting hinge and a bolt. The guardrail main body is fixedly connected with the screw discharging mechanism, the upper flip is rotatably connected with the guardrail main body through the connecting hinge, and the bolt is further arranged on the side of the upper flip for controlling the opening and closing of the upper flip, so that the upper flip covers the screw discharging mechanism.
3. The electrolytic cell screw moving and discharging rack according to claim 2, characterized in that: An accessory placing table is further arranged on the flip-up guardrail, and the accessory placing table is fixedly installed on the side wall of the guardrail main body to carry the installation accessories of the electrolytic cell screws.
4. The electrolytic cell screw moving and discharging rack according to claim 1, characterized in that: Spring dowels are installed on both sides of the inner wall of a plurality of the rough positioning blocks, and the spring dowels are used for clamping the electrolytic cell screws to prevent the electrolytic cell screws from detaching from the rough positioning blocks.
5. The electrolytic cell screw moving and discharging rack according to claim 1, characterized in that: The screw discharging platform further includes a height adjusting block. The height adjusting block is installed on the support column of the screw discharging platform, and the upper part of the height adjusting block is fixedly connected with the placing plate to adjust the installation position of the placing plate on the support column to change the distance between the placing plate and the bottom plate.
6. The electrolytic cell screw moving and discharging rack according to claim 5, characterized in that: The height adjusting block is screwed and installed on the support column of the screw discharging platform.
7. The electrolytic cell screw moving and discharging rack according to claim 1, characterized in that: The rough positioning blocks are equidistantly and symmetrically distributed on both sides of the placing plate, and the center lines of each rough positioning block and the corresponding screw placing hole are on the same vertical line, perpendicular to the bottom plate of the screw discharging platform.