Glue residue removal regeneration equipment
By adopting a combination structure of positioning copper flats and conductive copper flats in the degumming slag regeneration equipment, the problem of poor copper flat contact was solved, the electrolysis efficiency and equipment life were improved, operational safety was ensured, and stable current transmission and gas control were achieved.
Patent Information
- Application Number
- CN202423112779.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2034-12-16
AI Technical Summary
In existing descaling and regeneration equipment, oxidation and crystallization on the copper flat contact surface can lead to poor contact, increased local resistance, and may cause the screws to turn red or the copper flat temperature to become too high, which could then trigger a hydrogen explosion.
Design a degumming residue regeneration device, which adopts a combination structure of positioning copper flat and conductive copper flat. The positioning copper flat is immersed in the degumming liquid to fix the regenerator, and the conductive copper flat is connected to the frame to form a stable current transmission path. It is also equipped with an air extraction device to control the air pressure and remove harmful gases.
It improves electrolysis efficiency, extends equipment lifespan, prevents localized overheating, ensures operational safety, reduces the accumulation of harmful gases, and enhances current transmission efficiency and treatment consistency.
Smart Images

Figure CN223752947U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a deslagging equipment technical field, especially in a kind of deslagging regeneration equipment. BACKGROUND
[0002] Deslagging regeneration system positive and negative pole connection copper flat is installed above liquid level, copper flat contact surface and screw locking contact surface will be penetrated by deslagging medicine water gas, resulting in copper flat contact surface oxidation, crystallization, to cause copper flat contact bad, copper flat and locking screw local resistance increase to cause screw red or copper flat temperature excessively high, to cause hydrogen explosion in regeneration tank. SUMMARY
[0003] The utility model discloses a kind of deslagging regeneration equipment, to improve electrolytic efficiency and service life and prevent harmful gas accumulation.
[0004] To achieve the above object, the utility model provides a kind of deslagging regeneration equipment, comprising:
[0005] Frame is equipped with regeneration tank, and the regeneration tank is stored with deslagging liquid;
[0006] Cover plate, cover is arranged on the frame, and the cover plate is equipped with air inlet hole, to be communicated with outside by the air inlet hole for the regeneration tank;
[0007] Fixed component, including positioning copper flat and conductive copper flat, one end of the positioning copper flat is connected with the cover plate, the other end of the positioning copper flat is inserted into the deslagging liquid, the conductive copper flat is located in the deslagging liquid, one end of the conductive copper flat is connected with the positioning copper flat, and the other end of the conductive copper flat is connected with the inner wall of the frame;
[0008] Regenerator, located in the deslagging liquid, the regenerator is connected with the conductive copper flat;
[0009] Air extraction piece, which is communicated with the regeneration tank, is used for air extraction to the regeneration tank.
[0010] In an embodiment, the deslagging regeneration equipment further includes first positioning assembly, the positioning assembly is arranged on the frame, and the first positioning assembly includes first positioning piece and second positioning piece oppositely arranged with the first positioning piece, and positioning space is formed between the first positioning piece and the second positioning piece, and the positioning copper flat passes through the positioning space and is inserted into the regeneration tank.
[0011] In an embodiment, the deslag removing and regenerating device further comprises a first fastener and a second fastener, the first positioning member and the second positioning member are correspondingly provided with a first mounting hole, and the first fastener and the second fastener are respectively arranged through the first mounting hole to lock the first positioning member and the second positioning member.
[0012] In an embodiment, the positioning copper flat includes a vertical segment and a horizontal segment, one end of the vertical segment is arranged through the rack via a bayonet, the other end of the vertical segment is connected with the horizontal segment, and the vertical segment and the horizontal segment are in L shape.
[0013] In an embodiment, the regenerator includes an anode mesh basket and a cathode rod, the anode mesh basket is internally provided with a containing cavity, and the cathode rod extends into the containing cavity.
[0014] The conductive copper flat includes a positive conductive copper flat and a negative conductive copper flat, the positive conductive copper flat and the negative conductive copper flat are both connected with the positioning copper flat, the upper end of the cathode rod is fixed on the negative conductive copper flat, and the anode mesh basket is fixed on the positive conductive copper flat.
[0015] In an embodiment, the deslag removing and regenerating device further comprises a third fastener and a fourth fastener, the positioning copper flat and the positive conductive copper flat are correspondingly provided with a second mounting hole, and the third fastener and the fourth fastener are respectively arranged through the second mounting hole to lock the positioning copper flat and the positive conductive copper flat.
[0016] In an embodiment, the deslag removing and regenerating device further comprises a fifth fastener and a sixth fastener, the positioning copper flat and the negative conductive copper flat are correspondingly provided with a third mounting hole, and the fifth fastener and the sixth fastener are respectively arranged through the third mounting hole to lock the positioning copper flat and the negative conductive copper flat.
[0017] In an embodiment, the deslag removing and regenerating device further comprises a seventh fastener and an eighth fastener, the positive conductive copper flat and the anode mesh basket are correspondingly provided with a fourth mounting hole, and the seventh fastener and the eighth fastener are respectively arranged through the fourth mounting hole to lock the positive conductive copper flat and the anode mesh basket.
[0018] In an embodiment, the deslag removing and regenerating device further comprises a ninth fastener and a tenth fastener, the negative conductive copper flat and the cathode rod are correspondingly provided with a fifth mounting hole, and the ninth fastener and the tenth fastener are respectively arranged through the fifth mounting hole to lock the negative conductive copper flat and the cathode rod.
[0019] In an embodiment, the desmear regenerating device further comprises a support pad fixed on the inner wall of the rack, and the other end of the conductive copper flat is in abutment with the support pad.
[0020] In an embodiment, the desmear regenerating device further comprises a stainless steel partition plate fixed on the inner wall of the rack, and the support pad is installed on the stainless steel partition plate.
[0021] The technical scheme of the utility model discloses a rack as the basic structure of the whole device, supports and contains other components. The regeneration tank is located in the rack and is the main space for desmear regeneration treatment. The cover plate covers the rack, protects the internal components and provides a safe operating environment. The air inlet hole is provided on the cover plate, allowing external air or specific gas to enter the regeneration tank, ensuring proper gas exchange and pressure balance. The fixed component includes a positioning copper flat and a conductive copper flat, one end of the positioning copper flat is connected to the cover plate, and the other end extends into the regeneration tank for fixing and guiding the conductive copper flat. The conductive copper flat is connected with the positioning copper flat and is responsible for transmitting power to the regenerator, which is usually divided into positive and negative conductive copper flats. The regenerator is located in the regeneration tank and directly participates in the regeneration process of the desmear. Since the positioning copper flat directly contacts the desmear solution, heat can be more effectively transferred through the liquid medium, preventing local overheating and prolonging the service life of the device while maintaining a stable reaction temperature. The conductive copper flat is directly immersed in the desmear solution, reducing the resistance in the current transmission path and improving the current transmission efficiency, thereby enhancing the effect of electrolysis or other electrochemical treatment. Placing the regenerator directly in the desmear solution can form a more uniform electric field distribution inside the liquid, ensuring that all desmear to be treated can be subjected to consistent electrochemical action, improving the consistency and efficiency of the treatment. Therefore, since the positioning copper flat, the conductive copper flat and the regenerator are all immersed in the liquid, heat can be more effectively transferred through the liquid medium, preventing local overheating and prolonging the service life of the device while maintaining a stable reaction temperature. It can be an electrolytic device, a heating element or other types of treatment units. The air extraction member is in communication with the regeneration tank for extracting internal gas, maintaining appropriate air pressure conditions and removing harmful gases that may be generated during the reaction process. Through precise electrical connection (conductive copper flat) and stable mechanical support (positioning copper flat), the regenerator can work under optimal conditions, thereby improving the efficiency and effect of desmear regeneration. The design of the cover plate provides a closed working environment, reducing the risk of operators coming into contact with harmful substances; at the same time, the combination of the air inlet hole and the air extraction member can effectively control the gas composition in the regeneration tank, preventing the accumulation of harmful gases and ensuring safe operation. The combination of the air inlet hole and the air extraction member can maintain the appropriate air pressure and gas flow in the regeneration tank, ensuring that the chemical reactions during the regeneration process take place in an ideal environment, avoiding problems caused by air pressure changes or unstable gas composition. BRIEF DESCRIPTION OF DRAWINGS
[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or the prior art description. Obviously, the drawings described below are only some of the embodiments of the present application, and for those skilled in the art, other drawings can also be obtained according to the structures shown in these drawings without creative labor.
[0023] Fig. 1 The principle schematic diagram of the embodiment of the deslagging and regenerating equipment provided by the present application is shown in the figure.
[0024] Fig. 2 The principle schematic diagram of the embodiment of the deslagging and regenerating equipment provided by the present application is shown in the figure.
[0025] Explanation of the reference numerals:
[0026] 10, rack; 11, regeneration tank; 20, cover plate; 30, fixing assembly; 31, positioning copper flat; 311, vertical section; 312, horizontal section; 32, conductive copper flat; 321, positive conductive copper flat; 322, negative conductive copper flat; 40, regenerator; 41, anode basket; 42, cathode rod; 50, air extraction member; 60, first positioning assembly; 70, support pad; 80, stainless steel partition.
[0027] The implementation, functional features and advantages of the present application will be further described with reference to the embodiments and the accompanying drawings. DETAILED DESCRIPTION
[0028] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.
[0029] It should be noted that if the embodiments of the present application involve directional indications (such as up, down, left, right, front, back, etc.), the directional indications are only used to explain the relative position relationship, movement condition, etc. between the components in a certain specific posture, and if the specific posture changes, the directional indications will also change accordingly.
[0030] In addition, if the description of "first", "second" and the like is involved in the embodiments of the present application, the description of "first", "second" and the like is only for the purpose of description, and cannot be understood as indicating or implying the relative importance of the indicated technical features or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first", "second" can be explicitly or implicitly included at least one of the features. In addition, if "and / or" or "and / or" appears throughout the text, it means that the three parallel schemes are included, for example, "A and / or B" includes A scheme, or B scheme, or A and B scheme. In addition, the technical solutions of each embodiment can be combined with each other, but it must be based on the realization of ordinary skilled in the art, when the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, and is not within the protection scope required by the present application.
[0031] The utility model provides a kind of glue residue removal regenerative equipment.
[0032] Refer to Figs. 1-2 The utility model discloses a kind of glue residue removal regenerative equipment, comprising:
[0033] Frame 10 is provided with regeneration tank 11, glue removal liquid is stored in the regeneration tank 11;
[0034] Cover plate 20, cover is arranged on the frame 10, the cover plate 20 is provided with air inlet hole, so that the regeneration tank 11 is communicated with outside through the air inlet hole;
[0035] Fixed assembly 30 includes positioning copper flat 31 and conductive copper flat 32, one end of the positioning copper flat 31 is connected with the cover plate 20, the other end of the positioning copper flat 31 is inserted into the glue removal liquid, the conductive copper flat 32 is located in the glue removal liquid, one end of the conductive copper flat 32 is connected with the positioning copper flat 31, and the other end of the conductive copper flat 32 is connected with the inner wall of the frame 10;
[0036] Regenerator 40 is located in the glue removal liquid 11, and the regenerator 40 is connected with the conductive copper flat 32;
[0037] Air extraction piece 50 is communicated with the regeneration tank 11, for air extraction to the regeneration tank 11.
[0038] This scheme describes a device for processing and regenerating waste rubber residue. The device includes a rack 10 as the basic support structure of the entire device, on which a regeneration tank 11 is provided, which is the main space for chemical reaction or physical treatment. A cover plate 20 is placed on the rack 10 to ensure the safe closure of the regeneration tank 11, while communicating with the outside through the air inlet hole, which may be for the purpose of balancing pressure, discharging exhaust gas or introducing fresh air, etc. The fixed component 30 is composed of a positioning copper flat 31 and a conductive copper flat 32, which not only fixes the regenerator 40, but also participates in current conduction. The regenerator 40 is placed inside the regeneration tank 11 and is directly responsible for the regeneration treatment of the rubber residue, and it is connected with the conductive copper flat 32. The positioning copper flat 31 is directly immersed in the degreasing solution, reducing the resistance in the current transmission path and ensuring efficient transmission of current from the power supply to the regenerator 40, which helps to improve the efficiency of electrochemical reaction. In the degreasing solution, the positioning copper flat 31 can help form a more uniform electric field distribution, ensuring that all the rubber residue to be treated can be subjected to consistent electrochemical action, improving the consistency and efficiency of the treatment. Since the positioning copper flat 31 directly contacts the degreasing solution, heat can be more effectively transferred through the liquid medium, preventing local overheating, prolonging the service life of the device, and maintaining a stable reaction temperature. The conductive copper flat 32 is directly immersed in the degreasing solution, reducing the resistance in the current transmission path and improving the efficiency of current transmission, thereby enhancing the effect of electrolysis or other electrochemical treatment. Placing the regenerator 40 directly in the degreasing solution can form a more uniform electric field distribution inside the liquid, ensuring that all the rubber residue to be treated can be subjected to consistent electrochemical action, improving the consistency and efficiency of the treatment. Since the positioning copper flat 31, the conductive copper flat 32 and the regenerator 40 are all immersed in the liquid, heat can be more effectively transferred through the liquid medium, preventing local overheating, prolonging the service life of the device, and maintaining a stable reaction temperature. Long-term immersion in the degreasing solution may cause corrosion of metal parts, so corrosion-resistant materials (such as nickel-plated copper or stainless steel) are chosen. Harmful gases may be produced during electrolysis, so an air extraction member 50 is provided to protect the health of operating personnel and the environment. Specifically, the air extraction member 50 is used to extract the gas in the regeneration tank 11 and the air entering through the air inlet hole on the cover plate 20, so that the air extraction forms a convection, maintaining the stability of the tank environment, in order to remove harmful gases generated by the reaction or control the gas pressure conditions during the regeneration process. Specifically, the waste rubber residue to be treated is placed in the regeneration tank 11. Note that the capacity limit should not be exceeded. Close and lock the cover plate 20 to ensure sealing. The air inlet hole should be properly opened to maintain the necessary ventilation conditions. Turn on the regenerator 40, which can receive power supply through the conductive copper flat 32 to heat or other forms of treatment (such as electrolysis, chemical reaction, etc.) of the rubber residue. At this time, the positioning copper flat 31 ensures the stable position of the regenerator.The air extraction member (which can be an air extractor or similar device) is activated to begin extracting air from the regeneration tank 11 and the generated exhaust gas and the air entering through the air inlet holes on the cover plate 20, causing the air extraction to form a convection, ensuring that the internal pressure is moderate and preventing the accumulation of harmful gases. It will be appreciated that the air extraction member 50 can be an air extractor or a vacuum pump.
[0039] With reference to Figs. 1-2 In the embodiments of the present application, the deslagging and regenerating device further comprises a first positioning assembly 60, the positioning assembly 50 is arranged on the rack 10, the first positioning assembly 60 comprises a first positioning member and a second positioning member arranged opposite to the first positioning member, a positioning space is formed between the first positioning member and the second positioning member, and the positioning copper flat 31 penetrates through the positioning space and extends into the regeneration tank 11.
[0040] The first positioning assembly 60 is used to more accurately fix and position the conductive copper flat 32 and other key components in the regeneration tank 11. Specifically, the first positioning assembly 60 comprises two oppositely arranged first and second positioning members, which form a positioning space between them, ensuring that the positioning copper flat 31 can accurately penetrate and extend into the regeneration tank 11. This design helps to improve the operating precision, stability and safety of the device. Specifically, the first positioning assembly 60 is arranged on the rack 10 to provide more stable positioning support. The first and second positioning members are oppositely arranged to form a positioning space for guiding and fixing the position of the positioning copper flat 31. It ensures that the positioning copper flat 31 can pass straight through and maintain the correct position during the regeneration process without being disturbed or displaced by external factors. It will be appreciated that the first and second positioning members can be selected as clamp-type positioning members, which can quickly lock or release the positioning copper flat 31 for easy operation. It can also be a slide rail type positioning member, which uses a slide rail system to allow the positioning copper flat 31 to move freely within a certain range while always maintaining the correct direction. It can also be a hole type positioning member, which is designed with accurately sized through holes, and the positioning copper flat 31 penetrates through these holes to achieve positioning, which is suitable for fixed position applications. It can also be a combination type positioning member, which combines the advantages of the above-mentioned ways.
[0041] With reference to Figs. 1-2 In the embodiments of the present application, the deslagging and regenerating device further comprises a first fastener and a second fastener, the first positioning member and the second positioning member are provided with a first mounting hole in correspondence, and the first fastener and the second fastener are respectively arranged through the first mounting hole to lock the first positioning member and the second positioning member.
[0042] The scheme further enhances the structural stability of the deslag recycling equipment. The first fastener and the second fastener are introduced to ensure the firm connection between the first positioning member and the second positioning member. This design not only improves the accuracy and reliability of the positioning assembly, but also facilitates installation and disassembly, making maintenance and adjustment more convenient. Specifically, the first fastener and the second fastener are used to lock the first positioning member and the second positioning member together, ensuring that their relative positions remain fixed. The first mounting hole is provided on the first positioning member and the second positioning member, respectively, and is used in conjunction with the fastener to achieve the connection of the two. It can be understood that the first fastener and the second fastener can be a combination of a bolt and a nut, with the bolt passing through the first mounting hole and being tightened by the nut on the other side. It can also be a hexagonal head screw, with the screw directly screwed into the pre-drilled hole, or used in conjunction with a nut. It can also be a self-tapping screw, which can be directly screwed into the material without pre-drilling, forming its own thread. It can also be a T-shaped bolt, with one end of the bolt being T-shaped, which can be slid into a T-shaped slot and then fixed by a nut. It can also be a quick-release pin, with a spring-loaded button or other locking mechanism that allows quick insertion and removal.
[0043] With reference to Figs. 1-2 In the embodiment of the utility model, the positioning copper flat 31 includes a vertical section 311 and a horizontal section 312. One end of the vertical section 311 passes through the rack 10 through a bayonet, and the other end of the vertical section 311 is connected to the horizontal section 312, and the vertical section 311 and the horizontal section 312 are in an L shape.
[0044] The specific structural design of the positioning copper flat 31 includes a vertical section 311 and a horizontal section 312, and the two parts are connected in an L shape. This design helps to ensure the correct position of the positioning copper flat 31 in the regeneration tank 11, while providing good electrical conductivity and mechanical stability. One end of the vertical section 311 passes through the bayonet on the rack 10, and the other end is connected to the horizontal section 312. The vertical section 311 is mainly responsible for fixing the positioning copper flat 31 on the rack 10 and achieving preliminary positioning through the bayonet. The horizontal section 312 is connected to the vertical section 311 in an L shape and extends into the regeneration tank 11. The horizontal section 312 is used to directly contact or approach the deslag that needs to be treated and participates in the power transmission or other functions (such as heating elements) in the regeneration process. The L-shaped design allows the positioning copper flat 31 to be effectively arranged in a limited space, without affecting the operation of other components, while ensuring sufficient working range. Through the combination of the vertical section 311 and the horizontal section 312, the influence of external vibration and internal reaction force can be better resisted, and a stable position can be maintained. Due to the segmented design, the positioning copper flat 31 is more convenient to install and disassemble, facilitating daily maintenance and inspection.
[0045] With reference to Figs. 1-2The regenerator 40 includes an anode basket 41 and a cathode rod 42. The anode basket 41 has an accommodating cavity inside. The cathode rod 42 extends into the accommodating cavity.
[0046] The conductive copper flat 32 includes a positive conductive copper flat 321 and a negative conductive copper flat 322. Both the positive conductive copper flat 321 and the negative conductive copper flat 322 are connected to the positioning copper flat 31. The upper end of the cathode rod 42 is fixed on the negative conductive copper flat 322. The anode basket 41 is fixed on the positive conductive copper flat 321.
[0047] The regenerator 40 adopts the design of an anode basket 41 and a cathode rod 42 for processing sludge through an electrolysis process. This design combines a positive conductive copper flat 321 and a negative conductive copper flat 322 to ensure that the current can be correctly transmitted to the anode and cathode, thereby achieving efficient electrolysis. The anode basket 41 has an accommodating cavity inside for placing the sludge or other materials that need to be processed. It serves as the anode in the electrolysis reaction, usually connected to the positive pole of the power supply. The cathode rod 42 extends into the accommodating cavity of the anode basket 41 and serves as the cathode in the electrolysis reaction, usually connected to the negative pole of the power supply. The conductive copper flat 32 includes a positive conductive copper flat 321 and a negative conductive copper flat 322, which are respectively connected to the positioning copper flat 31 for conducting current to the anode basket 41 and the cathode rod 42. The positive conductive copper flat 321 is connected to the anode basket 41 and ultimately to the positive pole of the power supply. The negative conductive copper flat 322 is connected to the cathode rod 42 and ultimately to the negative pole of the power supply. By directly immersing the anode and cathode into the solution containing the sludge, efficient electrolysis can be achieved, promoting the decomposition or conversion of the sludge. The design of the anode basket 41 and the cathode rod 42 makes the device structure more compact, reducing space occupation. The separate design of the anode basket 41 and the cathode rod 42 facilitates replacement and cleaning, simplifying the maintenance process. Specifically, adjust the solution in the regeneration tank 11 to the appropriate concentration and temperature to ensure suitability for electrolysis. Turn on the power supply to make the current flow through the positive conductive copper flat 321 to the anode basket 41 and through the negative conductive copper flat 322 to the cathode rod 42, starting the electrolysis reaction. During the electrolysis process, the sludge in the anode basket 41 undergoes chemical changes, decomposing or converting into a more easily handled form; the cathode rod 42 participates in the reception of electrons, completing the entire electrolysis circuit.
[0048] Referring to Figs. 1-2 In the embodiment of the present application, the sludge removal and regeneration device further comprises a third fastener and a fourth fastener. The positioning copper flat 31 and the positive conductive copper flat 321 are provided with a second mounting hole correspondingly. The third fastener and the fourth fastener are respectively arranged through the second mounting hole to lock the positioning copper flat 31 and the positive conductive copper flat 321.
[0049] The firm connection between the positioning copper flat 31 and the positive electrode conductive copper flat 321 is ensured by introducing the third fastener and the fourth fastener. The second mounting hole is respectively arranged on the positioning copper flat 31 and the positive electrode conductive copper flat 321, which is matched with the fastener to realize the connection of the two. Through the fixation of the two fasteners, the contact area is increased, the good electrical contact between the positioning copper flat 31 and the positive electrode conductive copper flat 321 can be ensured, the resistance is reduced, and the current transmission efficiency is improved. The design of the fastener makes the two components not easy to loosen or displace during operation, and the overall stability of the system is increased. When it is necessary to check or replace the components, the fasteners can be loosened to quickly disassemble and reinstall, which simplifies the maintenance process. It can be understood that the third fastener and the fourth fastener can be a bolt and nut combination, the bolt passes through the second mounting hole, and the nut is tightened on the other side. It can also be a hexagonal head screw, a screw with a hexagonal head is directly screwed into a pre-drilled hole, or used with a nut. It can also be a self-tapping screw, which can be directly screwed into the material without pre-drilling, and form its own thread. It can also be a T-shaped bolt, one end of the bolt is T-shaped, which can slide into the T-shaped slot, and then be fixed by the nut. It can also be a quick release pin, with a spring-loaded button or other locking mechanism, allowing quick insertion and removal.
[0050] With reference to Figs. 1-2 In the embodiment of the utility model, the deslagging and regenerating equipment further comprises a fifth fastener and a sixth fastener, the positioning copper flat 31 and the negative electrode conductive copper flat 322 are correspondingly provided with a third mounting hole, and the fifth fastener and the sixth fastener are respectively arranged in the third mounting hole to lock the positioning copper flat 31 and the negative electrode conductive copper flat 322.
[0051] The firm connection between the positioning copper flat 31 and the negative electrode conductive copper flat 322 is ensured by introducing the fifth fastener and the sixth fastener. The third mounting hole is respectively arranged on the positioning copper flat 31 and the negative electrode conductive copper flat 322, and is matched with the fastener to realize the connection of the two. Through the fixation of the two fasteners, the contact area is increased, the good electrical contact between the positioning copper flat 31 and the negative electrode conductive copper flat 322 can be ensured, the resistance is reduced, and the current transmission efficiency is improved. The design of the fastener makes the two components not easy to loosen or displace during operation, and the overall stability of the system is increased. When it is necessary to check or replace the components, the fasteners can be loosened to quickly disassemble and reinstall, and the maintenance process is simplified. It can be understood that the fifth fastener and the sixth fastener can be a bolt and nut combination, the bolt passes through the third mounting hole, and the nut is tightened on the other side. It can also be a hexagonal head screw, a screw with a hexagonal head is directly screwed into a pre-drilled hole, or is used in combination with a nut. It can also be a self-tapping screw, which can be directly screwed into the material without pre-drilling, and form its own thread. It can also be a T-shaped bolt, one end of the bolt is T-shaped, which can be slid into a T-shaped slot, and then fixed by a nut. It can also be a quick release pin, with a spring-loaded button or other locking mechanism, allowing quick insertion and removal.
[0052] With reference to Figs. 1-2 In the embodiment of the utility model, the deslagging and regenerating device further comprises a seventh fastener and an eighth fastener, the positive electrode conductive copper flat 321 and the anode basket 41 are provided with a fourth mounting hole correspondingly, and the seventh fastener and the eighth fastener pass through the fourth mounting hole to lock the positive electrode conductive copper flat 321 and the anode basket 41.
[0053] The firm connection between the positive conductive copper flat 321 and the anode basket 41 is ensured by introducing the seventh fastener and the eighth fastener. The fourth mounting hole is respectively arranged on the positive conductive copper flat 321 and the anode basket 41, which is used in cooperation with the fastener to realize the connection of the two. Through the fixation of the two fasteners, the contact area is increased, and the good electrical contact between the positive conductive copper flat 321 and the anode basket 41 can be ensured, the resistance is reduced, and the current transmission efficiency is improved. The design of the fastener makes the two components not easy to loosen or displace during operation, which increases the overall stability of the system. When it is necessary to check or replace the components, the fasteners can be loosened to quickly disassemble and reinstall, which simplifies the maintenance process. It can be understood that the seventh fastener and the eighth fastener can be a bolt and nut combination, the bolt passes through the fourth mounting hole, and the nut is tightened on the other side. It can also be a hexagonal head screw, a screw with a hexagonal head is directly screwed into a pre-drilled hole, or used in cooperation with a nut. It can also be a self-tapping screw, which can be directly screwed into the material without pre-drilling, and form its own thread. It can also be a T-shaped bolt, one end of the bolt is T-shaped, which can be slid into a T-shaped slot, and then fixed by a nut. It can also be a quick release pin, with a spring-loaded button or other locking mechanism, allowing quick insertion and removal.
[0054] With reference to Figs. 1-2 In the embodiment of the utility model, the deslagging and regenerating equipment further comprises a ninth fastener and a tenth fastener, the negative conductive copper flat 322 and the cathode rod 42 are correspondingly provided with a fifth mounting hole, and the ninth fastener and the tenth fastener pass through the fifth mounting hole to lock the negative conductive copper flat 322 and the cathode rod 42.
[0055] The firm connection between the negative conductive copper flat 322 and the cathode rod 42 is ensured by introducing the ninth and tenth fasteners. The fifth mounting holes are respectively provided on the negative conductive copper flat 322 and the cathode rod 42, which are used in cooperation with the fasteners to realize the connection of the two. Through the fixation of the two fasteners, the contact area is increased, which can ensure the good electrical contact between the negative conductive copper flat 322 and the cathode rod 42, reduce the resistance, and improve the current transmission efficiency. The design of the fasteners makes the two components not easy to loosen or displace during operation, increasing the overall stability of the system. When it is necessary to check or replace the components, they can be quickly disassembled and reinstalled by loosening the fasteners, simplifying the maintenance process. It can be understood that the ninth and tenth fasteners can be a bolt and nut combination, the bolt passes through the fifth mounting hole, and the nut is tightened on the other side. It can also be a hexagonal head screw, a screw with a hexagonal head directly screwed into a pre-drilled hole, or used in cooperation with a nut. It can also be a self-tapping screw, which can be directly screwed into the material without pre-drilling, forming its own thread. It can also be a T-shaped bolt, one end of which is T-shaped and can slide into a T-shaped slot, and then be fixed by a nut. It can also be a quick release pin with a spring-loaded button or other locking mechanism that allows quick insertion and removal.
[0056] With reference to Figs. 1-2 In the embodiments of the present application, the deslagging and regenerating device further comprises a support pad 70, which is fixed on the inner wall of the rack 10, and the other end of the conductive copper flat 31 abuts against the support pad 70.
[0057] The support pad 70 is installed on the inner wall of the rack 10 as a support point for the conductive copper flat 31. The support pad 70 can provide mechanical support to prevent the conductive copper flat 31 from being displaced or deformed due to gravity or vibration; at the same time, it can also play the role of insulation and protection, avoiding the direct contact of the conductive copper flat 31 with the inner wall of the rack 10, preventing short circuit or other electrical faults. The main purpose of this design is to provide additional support for the conductive copper flat 31 to ensure its stability and reliability during operation and reduce the impact of mechanical stress on the conductive copper flat 31. It can be understood that the support pad 70 can be a flat support pad, which is simple in shape and easy to process and install. The support pad with grooves or protrusions or the surface with specific grooves or protrusions can better fit the shape of the conductive copper flat 31, increase the contact area, and improve the stability. It can also be an elastic support pad made of a material with a certain elasticity, which can absorb vibration to some extent and reduce mechanical stress.
[0058] With reference to Figs. 1-2 Figs. 1-2 In the embodiments of the present application, the deslagging and regenerating device further comprises a stainless steel partition plate 80, which is fixed on the inner wall of the rack 10, and the support pad 70 is installed on the stainless steel partition plate 80.
[0059] The stainless steel partition plate 80 is fixed to the inner wall of the rack 10 as a mounting base for the support pad plate 70. Additional mechanical support can be provided to increase the rigidity of the system; at the same time, due to the good corrosion resistance of stainless steel, it can protect the internal components from the chemical environment. The support pad plate 70 is installed on the stainless steel partition plate 80, which continues to provide support and insulation for the conductive copper flat 31. Ensure the stability of the conductive copper flat 31, prevent it from displacement or deformation due to gravity or vibration; at the same time, it plays the role of insulation and protection, avoids the direct contact of the conductive copper flat 31 with the inner wall of the rack 10, prevents short circuit or other electrical faults. It can be understood that the stainless steel partition plate 80 is fixed to the inner wall of the rack 10, and appropriate fasteners (such as bolts, nuts) are used to ensure its firmness and reliability. The stainless steel partition plate 80 increases the overall rigidity of the system, reduces the structural deformation caused by external impact or internal vibration. The stainless steel material has excellent corrosion resistance, especially suitable for use in environments that may be chemically eroded, prolonging the service life of the equipment. The stainless steel partition plate 80 provides a fixed mounting position for the support pad plate 70, making the assembly of the entire system more convenient, and also facilitating subsequent inspection and maintenance. The stainless steel partition plate 80 made of metal material helps heat conduction, thereby improving the heat dissipation effect inside the equipment and maintaining the appropriate working temperature.
[0060] The above is only an exemplary embodiment of the present application, and does not limit the patent scope of the present application. Any equivalent structural transformation or direct / indirect application in other related technical fields within the technical concept of the present application is included in the patent protection scope of the present application.
Claims
1. A desmear regeneration apparatus characterized by comprising: The device comprises a rack, a cover plate, a fixing assembly, a regenerator and an air extractor. The rack is provided with a regeneration tank in which a degumming solution is stored. The cover plate is arranged on the rack and is provided with an air inlet hole for the regeneration tank to communicate with the outside through the air inlet hole. The fixing assembly comprises a positioning copper flat and a conductive copper flat. One end of the positioning copper flat is connected with the cover plate, and the other end of the positioning copper flat extends into the degumming solution. The conductive copper flat is located in the degumming solution.
2. The desmearing regeneration apparatus according to claim 1, characterized by, One end of the conductive copper flat is connected with the positioning copper flat, and the other end of the conductive copper flat is connected with the inner wall of the rack.
3. The desmearing regeneration apparatus according to claim 2, characterized by, The regenerator is located in the degumming solution and is connected with the conductive copper flat.
4. The desmearing regeneration apparatus according to claim 1, characterized by The air extractor is connected with the regeneration tank and is used for air extraction of the regeneration tank.
5. The desmearing regeneration apparatus according to claim 4, wherein The degumming residue regeneration device further comprises a first positioning assembly arranged on the rack. The first positioning assembly comprises a first positioning member and a second positioning member arranged opposite to the first positioning member.
6. The desmearing regeneration apparatus according to claim 5, wherein A positioning space is formed between the first positioning member and the second positioning member.
7. The desmearing regeneration apparatus as claimed in claim 5, wherein The positioning copper flat extends into the regeneration tank through the positioning space.
8. The desmearing regeneration apparatus as claimed in claim 5, wherein The first positioning member and the second positioning member are provided with a first mounting hole in correspondence. The first fastener and the second fastener are respectively arranged in the first mounting hole to lock the first positioning member and the second positioning member. The positioning copper flat comprises a vertical section and a horizontal section. One end of the vertical section passes through the rack through a bayonet. The other end of the vertical section is connected with the horizontal section, and the vertical section and the horizontal section form an L shape. The regenerator comprises an anode basket and a cathode rod. The anode basket is internally provided with a receiving cavity. The cathode rod extends into the receiving cavity. The conductive copper flat comprises a positive conductive copper flat and a negative conductive copper flat. The positive conductive copper flat and the negative conductive copper flat are connected with the positioning copper flat. The upper end of the cathode rod is fixed on the negative conductive copper flat. The anode basket is fixed on the positive conductive copper flat. The degumming residue regeneration device further comprises a third fastener and a fourth fastener. The positioning copper flat and the positive conductive copper flat are provided with a second mounting hole in correspondence. The third fastener and the fourth fastener are respectively arranged in the second mounting hole to lock the positioning copper flat and the positive conductive copper flat. The degumming residue regeneration device further comprises a fifth fastener and a sixth fastener. The positioning copper flat and the negative conductive copper flat are provided with a third mounting hole in correspondence. The fifth fastener and the sixth fastener are respectively arranged in the third mounting hole to lock the positioning copper flat and the negative conductive copper flat. The degumming residue regeneration device further comprises a seventh fastener and an eighth fastener. The positive conductive copper flat and the anode basket are provided with a fourth mounting hole in correspondence. The seventh fastener and the eighth fastener are respectively arranged in the fourth mounting hole to lock the positive conductive copper flat and the anode basket.
9. The desmearing regeneration apparatus as claimed in claim 5, wherein The deslagging and regenerating device further comprises a ninth fastener and a tenth fastener, the negative electrode conductive copper flat and the cathode rod correspondingly have a fifth installation hole, and the ninth fastener and the tenth fastener are respectively arranged through the fifth installation hole to lock the negative electrode conductive copper flat and the cathode rod.
10. The desmearing regeneration apparatus according to claim 9, wherein The deslagging and regenerating device further comprises a support pad plate, the support pad plate is fixed on the inner wall of the rack, and the other end of the conductive copper flat abuts against the support pad plate; and / or, The deslagging and regenerating device further comprises a stainless steel partition plate, the stainless steel partition plate is fixed on the inner wall of the rack, and the support pad plate is installed on the stainless steel partition plate.