A cleaning box and steel wire surface cleaning mechanism

CN119838955BActive Publication Date: 2026-09-29ZHANGJIAKOU YUANSHI ADVANCED MATERIALS CO LTD
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Patent Information

Application Number
CN202311338675.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-10-16
Publication Date
2026-09-29
Estimated Expiration
2043-10-16

AI Technical Summary

Technical Problem

[0004]发明目的:本申请提供一种清洗箱,用于解决现有技术中各独立槽之间距离较大,导致设备占用空间大,钢线清洗效率低的问题;本申请还提供一种钢线表面清洗机构

Benefits of technology

[0041]有益效果:与现有技术相比,本申请实施例提供的一种清洗箱,包括:第一箱体,第一箱体具有容纳空间;盖板,盖板与第一箱体连接并盖封容纳空间;第二箱体,第二箱体放置于容纳空间,第二箱体包括第一底板、沿第一方向相对设置的两个端板、沿第二方向相对设置的两个第一侧板,第一底板、两个端板和两个第一侧板围合形成清洗区域;第二箱体还包括多个第一隔离板,多个第一隔离板沿第二方向排列设置于清洗区域内,第一隔离板沿第一方向连接两个端板,以将清洗区域分割为多个第一子区域;多个电极片,电极片放置于第一子区域内,且电极片的两端伸出端板;其中,第一方向与第二方向相交。如此,每条钢线进入一个第一子区域进行清洗,通过将多个第一子区域集成于同一清洗区域内,缩短多个第一子区域之间的距离,缩小设备占用空间,提高钢线清洗效率。

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Abstract

The application discloses a cleaning box and a steel wire surface cleaning mechanism and belongs to the technical field of steel wire production mechanical equipment. The cleaning box comprises a first box body with a containing space; a cover plate is connected with the first box body and covers and seals the containing space; a second box body is placed in the containing space, and the second box body comprises a first bottom plate, two end plates oppositely arranged along a first direction, and two first side plates oppositely arranged along a second direction; the first bottom plate, the two end plates and the two first side plates enclose a cleaning area; the second box body further comprises a plurality of first partition plates; the first partition plates are connected with the two end plates along the first direction to divide the cleaning area into a plurality of first sub-areas; a plurality of electrode sheets are placed in the first sub-areas, and two ends of the electrode sheets extend out of the end plates. In this way, each steel wire enters a first sub-area for cleaning; by integrating the plurality of first sub-areas in the same cleaning area, the distance between the plurality of first sub-areas is shortened, the occupied space of the equipment is reduced, and the steel wire cleaning efficiency is improved.
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Description

Technical Field

[0001] This application belongs to the technical field of steel wire production machinery and equipment, specifically relating to a cleaning box and a steel wire surface cleaning mechanism. Background Technology

[0002] During the steel wire production process, contaminants such as impurities, grease, and oxides can appear on the surface of the steel wire due to raw material contamination, processing residues, oxidation corrosion, and environmental pollution, thus affecting the quality and performance of the steel wire. Therefore, cleaning of the steel wire is necessary.

[0003] However, most existing cleaning equipment adopts a structure of multiple independent tanks arranged in parallel. This structure results in a large distance between the independent tanks, which leads to a large space occupation and low steel wire cleaning efficiency. Summary of the Invention

[0004] Purpose of the invention: This application provides a cleaning tank to solve the problem that the distance between each independent tank in the prior art is large, resulting in a large space occupation of the equipment and low cleaning efficiency of steel wire; this application also provides a steel wire surface cleaning mechanism.

[0005] Technical solution: This application provides a cleaning box, including:

[0006] The first housing has a storage space;

[0007] A cover plate, which is connected to the first housing and seals the accommodating space;

[0008] The second box is placed in the accommodating space. The second box includes a first bottom plate, two end plates arranged opposite each other along a first direction, and two first side plates arranged opposite each other along a second direction. The first bottom plate, the two end plates, and the two first side plates enclose a cleaning area.

[0009] The second housing also includes a plurality of first partition plates, which are arranged along the second direction in the cleaning area. The first partition plates are connected to two end plates along the first direction to divide the cleaning area into a plurality of first sub-areas.

[0010] Multiple electrode plates are placed in the first sub-region, and both ends of the electrode plates extend out of the end plate;

[0011] Wherein, the first direction intersects with the second direction.

[0012] In some embodiments, the second housing further includes:

[0013] Multiple second isolation plates are arranged along the first direction within the cleaning area. The second isolation plates are connected to two first side plates along the second direction to divide the first sub-area into multiple second sub-areas.

[0014] The electrode sheet passes through multiple second sub-regions sequentially along the first direction.

[0015] In some embodiments, the electrode sheet includes:

[0016] A first conductive portion is placed between the two end plates along the first direction;

[0017] Multiple second conductive portions are connected to the first conductive portion, and the second conductive portions extend into the second sub-region.

[0018] In some embodiments, the end plate is provided with a first steel wire limiting portion, which corresponds to the first sub-region; along the second direction, at least one electrode sheet is placed on each side of the first steel wire limiting portion; the second conductive portions of the plurality of electrode sheets are alternately arranged, such that only one second conductive portion extends into each second sub-region.

[0019] In some embodiments, the second housing further includes:

[0020] A second base plate is disposed on the side of the first base plate opposite to the electrode sheet. The second base plate, the first base plate, the two end plates, and the two first side plates enclose a liquid loading area. The first base plate is provided with multiple first liquid loading channels, and the liquid loading area is connected to the first sub-area through the first liquid loading channels. The second base plate is provided with multiple second liquid loading channels, and the liquid loading area is connected to the accommodating space through the second liquid loading channels.

[0021] The first liquid discharge channel includes an inlet end and an outlet end. The inlet end is located near the side of the first isolation plate away from the first bottom plate, and the outlet end is connected to the accommodating space.

[0022] In some embodiments, the second housing further includes:

[0023] Multiple third partition plates are arranged along the second direction within the liquid loading area. The third partition plates connect the first base plate and the second base plate along the first direction to divide the liquid loading area into multiple third sub-areas. The third sub-areas are connected to the first sub-area through the first liquid loading channel.

[0024] In some embodiments, the first housing includes:

[0025] Third base plate;

[0026] Multiple second side plates and the third bottom plate enclose the receiving space;

[0027] The third base plate is provided with a second liquid discharge channel, and the accommodating space is connected to the second liquid discharge channel. The third base plate is provided with multiple third liquid discharge channels, and the third liquid discharge channels are connected to the second liquid discharge channels.

[0028] In some embodiments, the third base plate has a base plate surface facing the second housing, the base plate surface being configured to guide cleaning fluid to the periphery of the second drain channel.

[0029] In some embodiments, the base plate surface is an inclined plane that is tilted relative to a third direction, and the third direction intersects both the first direction and the second direction;

[0030] The bottom plate surface has a first end away from the second liquid channel and a second end close to the second liquid channel in the first direction. The first end and the second bottom plate have a first dimension D1 mm in the third direction, and the second end and the second bottom plate have a second dimension D2 mm in the third direction. The cleaning tank satisfies: D2 > D1.

[0031] In some embodiments, the first housing is provided with a plurality of second steel wire limiting parts, the second steel wire limiting parts corresponding to the first steel wire limiting parts.

[0032] This application also provides a steel wire surface cleaning mechanism, comprising:

[0033] The cleaning tank as described in any of the above embodiments;

[0034] A guide wheel assembly, comprising a plurality of guide wheels, each guide wheel corresponding to a first sub-area in the cleaning tank, for guiding the steel wire into the first sub-area;

[0035] A storage tank is used to deliver electrolyte into the cleaning tank;

[0036] The pipeline system connects the liquid storage tank to the second liquid supply channel.

[0037] In some embodiments, the guide wheel assembly further includes:

[0038] A wheel seat, the wheel seat including a first connecting part and a second connecting part connected to each other, the first connecting part being connected to the guide wheel, and the second connecting part having a first waist hole;

[0039] The upright plate includes a third connecting part and a fourth connecting part connected to each other. The second connecting part and the third connecting part are connected through the first waist hole so that the wheel seat and the upright plate can be adjusted to move in a second direction. The fourth connecting part is provided with a second waist hole.

[0040] The base includes a fifth connecting part and a sixth connecting part connected to each other. The fifth connecting part and the fourth connecting part are connected through the second waist hole so that the upright plate and the base can be adjusted to move in the third direction. The sixth connecting part is used to fix the base to the mounting plane where the cleaning tank is located.

[0041] Beneficial Effects: Compared with the prior art, the cleaning box provided in this application includes: a first box body having a receiving space; a cover plate connected to the first box body and covering the receiving space; a second box body placed in the receiving space, the second box body including a first bottom plate, two end plates arranged opposite each other along a first direction, and two first side plates arranged opposite each other along a second direction, the first bottom plate, the two end plates, and the two first side plates enclosing a cleaning area; the second box body also includes multiple first partition plates, the multiple first partition plates arranged along the second direction within the cleaning area, the first partition plates connecting the two end plates along the first direction to divide the cleaning area into multiple first sub-areas; and multiple electrode plates placed within the first sub-areas, with both ends of the electrode plates extending beyond the end plates; wherein the first direction intersects the second direction. Thus, each steel wire enters a first sub-area for cleaning, and by integrating multiple first sub-areas into the same cleaning area, the distance between the multiple first sub-areas is shortened, the space occupied by the equipment is reduced, and the steel wire cleaning efficiency is improved.

[0042] Compared with the prior art, the steel wire surface cleaning mechanism provided in this application includes all the features and beneficial effects of the cleaning box in the above embodiments, which will not be repeated here. Attached Figure Description

[0043] The technical solution and other beneficial effects of this application will become apparent from the following detailed description of specific embodiments in conjunction with the accompanying drawings.

[0044] Figure 1 This is a schematic diagram of the structure of the cleaning tank provided in an embodiment of this application;

[0045] Figure 2 This is a schematic diagram of the structure of the first chamber in the cleaning box provided in the embodiment of this application;

[0046] Figure 3 for Figure 2 Schematic diagram of the cross section of AA;

[0047] Figure 4 This is a schematic diagram of the structure of the second chamber in the cleaning box provided in the embodiments of this application;

[0048] Figure 5 This is a top view of the second chamber in the cleaning box provided in the embodiments of this application;

[0049] Figure 6 for Figure 5 A schematic diagram of the cross-section of BB;

[0050] Figure 7 This is a schematic diagram of the structure of the cleaning tank with the cover removed, provided in an embodiment of this application.

[0051] Figure 8 for Figure 7 A cross-sectional schematic diagram of CC;

[0052] Figure 9 This is a schematic diagram of the steel wire surface cleaning mechanism provided in the embodiments of this application;

[0053] Figure 10 This is a schematic diagram of the guide wheel assembly in the steel wire surface cleaning mechanism provided in the embodiments of this application.

[0054] Reference numerals in the attached drawings: 100 - Cleaning tank; 110 - First tank body; 111 - Third bottom plate; 1111 - Second lower liquid channel; 1112 - Third upper liquid channel; 1113 - Bottom plate surface; 1114 - First end; 1115 - Second end; 112 - Second side plate; 113 - Second steel wire limiting part; 120 - Cover plate; 130 - Accommodation space; 140 - Second tank body; 141 - First bottom plate; 1411 - First upper liquid channel; 142 - End plate; 1421 - First steel wire limiting part; 143 - First side plate; 144 - First isolation plate; 145 - Second isolation plate; 146 - Second bottom plate; 1461 - Second upper liquid channel; 147 - First lower liquid channel; 1471 - Liquid inlet end; 1472 - Liquid outlet; 148-Third isolation plate; 150-Electrode plate; 151-First conductive part; 152-Second conductive part; 160-Cleaning area; 161-First sub-area; 162-Second sub-area; 170-Liquid loading area; 171-Third sub-area; 200-Guide wheel assembly; 210-Guide wheel; 220-Wheel seat; 221-First connecting part; 222-Second connecting part; 223-First waist hole; 230-Upright plate; 231-Third connecting part; 232-Fourth connecting part; 233-Second waist hole; 240-Base; 241-Fifth connecting part; 242-Sixth connecting part; 300-Reservoir tank; 400-Pipeline system; X-First direction; Y-Second direction; Z-Third direction. Detailed Implementation

[0055] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.

[0056] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection, an electrical connection, or a connection that allows for mutual communication; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two elements or the interaction between two elements. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances. In the description of this application, "multiple" means two or more, unless otherwise expressly and specifically limited. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more features.

[0057] The following disclosure provides many different implementations or examples for carrying out different structures of this application. To simplify the disclosure of this application, the components and arrangements of specific examples are described below. Of course, these are merely examples and are not intended to limit this application.

[0058] During steel wire production, contaminants such as impurities, grease, and oxides can accumulate on the surface of the steel wire due to raw material pollution, processing residues, oxidation corrosion, and environmental pollution, thus affecting the quality and performance of the steel wire. Therefore, cleaning is necessary. However, existing cleaning equipment often uses a structure of multiple independent cleaning tanks arranged in parallel. This structure results in a large distance between the independent tanks, leading to a large equipment footprint and low cleaning efficiency. Furthermore, the high operating temperature during steel wire cleaning, coupled with the poor heat dissipation performance of existing structures, negatively impacts steel wire quality. The disassembly and assembly of independent tanks and electrode plates are inconvenient, consuming significant manpower and time, resulting in low production efficiency. Additionally, the assembly and adjustment of independent tanks are difficult.

[0059] In view of this, this application provides a cleaning tank, which can be referred to in conjunction with the embodiments. Figure 1 , Figure 2 and Figure 4 , Figure 1 This illustration shows a structural diagram of the cleaning tank provided in an embodiment of this application; Figure 2 This illustration shows a structural diagram of the first chamber in the cleaning box provided in an embodiment of this application; Figure 4 This illustration shows the structure of the second chamber in the cleaning box provided in an embodiment of this application. The cleaning box 100 in this embodiment includes a first chamber 110, a cover plate 120, a second chamber 140, and multiple electrode plates 150.

[0060] Specifically, the first housing 110 has a receiving space 130, and the cover plate 120 is connected to the first housing 110 and covers the receiving space 130; the second housing 140 is placed in the receiving space 130, and the second housing 140 includes a first bottom plate 141, two end plates 142 arranged opposite each other along the first direction X, and two first side plates 143 arranged opposite each other along the second direction Y. The first bottom plate 141, the two end plates 142 and the two first side plates 143 enclose a cleaning area 160; the second housing 140 also includes a plurality of first isolation plates 144, which are arranged along the second direction Y in the cleaning area 160. The first isolation plates 144 connect the two end plates 142 along the first direction X to divide the cleaning area 160 into a plurality of first sub-areas 161; the electrode sheet 150 is placed in the first sub-area 161, and both ends of the electrode sheet 150 extend out of the end plates 142, wherein the first direction X intersects the second direction Y. Thus, the cleaning area 160 is divided into a first sub-area 161 by the first partition plate 144. Electrolyte for cleaning the steel wire is placed in the first sub-area 161, and electrode plates 150 are placed within it. When energized, the electrode plates 150, electrolyte, and steel wire form an electrolytic circuit, enabling the cleaning of one steel wire within the first sub-area 161. Simultaneously, this method significantly reduces the distance between the first sub-areas 161, and each steel wire's corresponding first sub-area 161 is independent, greatly reducing the distance between steel wires and thus reducing the space occupied by the entire cleaning tank 100. The same space can accommodate more cleaning tanks 100, cleaning more steel wires and improving steel wire cleaning efficiency.

[0061] Please see Figure 5 and Figure 6 , Figure 5 It indicated Figure 5 This is a top view of the second chamber in the cleaning box provided in the embodiments of this application; Figure 6 It indicated Figure 5A cross-sectional schematic diagram of BB is shown. In some embodiments, the second housing 140 further includes a plurality of second isolation plates 145, which are arranged along a first direction X within the cleaning area 160. The second isolation plates 145 are connected to two first side plates 143 along a second direction Y to divide the first sub-area 161 into a plurality of second sub-areas 162. The electrode sheet 150 passes sequentially through the plurality of second sub-areas 162 along the first direction X. It is understood that the second sub-areas 162 are isolated from each other, and the electrode sheet 150, electrolyte, and steel wire in each second sub-area 162 form a separate electrolytic circuit, enabling cleaning within each second sub-area 162. Due to the smaller space in the second sub-area 162, the electrolytic reaction occurs more rapidly, further improving the steel wire cleaning rate. Furthermore, the electrode sheet 150 arrangement method in this application allows for quick installation and removal of the electrode sheet 150, facilitating cleaning or replacement of the electrode sheet 150.

[0062] To further improve the cleaning effect of the steel wire, please refer to Figure 7 and Figure 8 , Figure 7 This illustration shows a structural diagram of the cleaning tank with the cover removed, provided in an embodiment of this application. Figure 8 It indicated Figure 7 A cross-sectional schematic diagram of the C-axis. In some embodiments, the electrode sheet 150 includes a first conductive portion 151 and a plurality of second conductive portions 152. The first conductive portion 151 is positioned between two end plates 142 along a first direction X; the second conductive portions 152 are connected to the first conductive portion 151 and extend into a second sub-region 162. Thus, by providing the second conductive portions 152, the contact area between the electrode sheet 150 and the electrolyte is increased, improving the cleaning efficiency of the steel wire. Simultaneously, the second conductive portions 152 can reach dead corners and hard-to-reach areas within the second sub-region 162, improving the efficiency of the electrolytic reaction and enhancing the cleaning effect.

[0063] Please refer to it again. Figure 7 and Figure 8In some embodiments, the end plate 142 is provided with a first steel wire limiting part 1421, which corresponds to the first sub-region 161. Along the second direction Y, at least one electrode plate 150 is placed on each side of the first steel wire limiting part 1421. The second conductive parts 152 of the multiple electrode plates 150 are alternately arranged, such that only one second conductive part 152 extends into each second sub-region 162. Thus, after the steel wire enters the cleaning tank 100 along the first direction X, there will be a second conductive part 152 on both sides of the steel wire along the second direction Y. For example, in the first second sub-region 162, the second conductive part 152 is located on one side of the steel wire, and in the second second sub-region 162, the second conductive part 152 is located on the other side of the steel wire, alternating in this way, so that both sides of the steel wire can be thoroughly cleaned, further improving the cleaning effect of the steel wire.

[0064] Please refer to it again. Figure 6 and Figure 8In one embodiment, the second housing 140 further includes a second base plate 146 and a first liquid discharge channel 147. The second base plate 146 is disposed on the side of the first base plate 141 opposite to the electrode sheet 150. The second base plate 146, the first base plate 141, two end plates 142, and two first side plates 143 enclose a liquid loading area 170. The first base plate 141 has multiple first liquid loading channels 1411, and the liquid loading area 170 is connected to a first sub-area 161 through the first liquid loading channels 1411. The second base plate 146 has multiple second liquid loading channels 1461, and the liquid loading area 170 is connected to the receiving space 130 through the second liquid loading channels 1461. The first liquid discharge channel 147 includes an inlet end 1471 and an outlet end 1472. The inlet end 1471 is located near the first isolation plate 144 and away from the first base plate 141, and the outlet end 1472 is connected to the receiving space 130. Thus, the electrolyte enters the liquid-filling area 170 through the second liquid-filling channel 1461, then enters the first sub-area 161 through the first liquid-filling channel 1411, and finally drains into the receiving space 130 through the first liquid-discharging channel 147. It should be noted that the first liquid-filling channel 1411 allows the electrolyte to enter the first sub-area 161 evenly, preventing electrolyte overflow due to sudden liquid filling. Simultaneously, the side of the inlet 1471 closest to the first isolation plate 144 and furthest from the first bottom plate 141 ensures a stable electrolyte level within the first sub-area 161, preventing electrolyte overflow into the second tank 140. It can be understood that when second sub-areas 162 are provided, each second sub-area 162 has one first liquid-filling channel 1411 and one first liquid-discharging channel 147, thereby ensuring even liquid filling in each second sub-area 162 while maintaining a stable electrolyte level within each second sub-area 162. In addition, the first electrolyte channel 147 can accelerate electrolyte turnover, effectively reduce the temperature in the first sub-region 161 or the second sub-region 162, and prevent the electrolyte temperature from becoming too high due to the increased current passing through the electrode plate 150.

[0065] Furthermore, the second housing 140 also includes multiple third partition plates 148. These third partition plates 148 are arranged along the second direction Y within the liquid-filling area 170. The third partition plates 148 connect the first base plate 141 and the second base plate 146 along the first direction X, thereby dividing the liquid-filling area 170 into multiple third sub-areas 171. The third sub-areas 171 are connected to the first sub-areas 161 via a first liquid-filling channel 1411. Thus, the arrangement of the third sub-areas 171 further ensures uniform liquid filling to each first sub-area 161.

[0066] Please refer to it again. Figure 2 Please refer to the following: Figure 3 , Figure 3 It indicated Figure 2A cross-sectional schematic diagram of AA is shown. In some embodiments, the first housing 110 includes a third bottom plate 111 and a plurality of second side plates 112. The plurality of second side plates 112 and the third bottom plate 111 enclose a receiving space 130. The third bottom plate 111 is provided with a second liquid discharge channel 1111, which communicates with the receiving space 130. The third bottom plate 111 is also provided with a plurality of third liquid supply channels 1112, which communicate with a second liquid supply channel 1461. Thus, electrolyte is supplied uniformly through the third liquid supply channels 1112, and the number of third liquid supply channels 1112 can be set according to the actual size of the cleaning tank 100. The second liquid discharge channels 1111 are used to recycle used electrolyte.

[0067] To further achieve electrolyte recovery, please refer to [link / reference needed]. Figure 8 In one embodiment, the third base plate 111 has a base plate surface 1113 facing the second housing 140. The base plate surface 1113 is configured to guide the cleaning fluid to the periphery of the second drain channel 1111, so that the electrolyte can automatically flow into the second drain channel 1111, avoiding excessive accumulation of electrolyte in the housing space 130 and keeping the housing space 130 clean and hygienic.

[0068] Furthermore, the base plate surface 1113 is an inclined surface set relative to the third direction Z, which intersects both the first direction X and the second direction Y; wherein, the third direction Z is the thickness direction of the third base plate 111. The base plate surface 1113 has a first end 1114 away from the second liquid discharge channel 1111 in the first direction X, and a second end 1115 close to the second liquid discharge channel 1111. The first end 1114 and the second base plate 146 have a first dimension D1 mm in the third direction Z, and the second end 1115 and the second base plate 146 have a second dimension D2 mm in the third direction Z. The cleaning tank 100 satisfies: D2 > D1. In this way, the used electrolyte can automatically flow from the first end 1114 to the second end 1115, and finally enter the second liquid discharge channel 1111. It is understandable that the base plate surface 1113 can also be other shapes that enable the electrolyte to flow from the first end 1114 to the second end 1115, such as a curved surface protruding into the second liquid channel 1111.

[0069] To ensure relative stability of the steel wire, in some embodiments, the first housing 110 is provided with multiple second steel wire limiting portions 113, which correspond to the first steel wire limiting portions 1421. Specifically, the steel wire sequentially passes through the second steel wire limiting portions 113 and the first steel wire limiting portions 1421 into the cleaning tank 100, and then sequentially passes through the first steel wire limiting portions 1421 and the second steel wire limiting portions 113 to exit the cleaning tank 100. During this process, the first steel wire limiting portion 1421 has a first contact point with the steel wire, and the second steel wire limiting portion 113 has a second contact point with the steel wire. The first contact point and the second contact point are collinear in the first direction X, thereby ensuring that the shape and position of the steel wire remain relatively stable when passing through the cleaning tank 100. It is understood that, in order to maintain the relative stability of the electrode sheet 150, corresponding electrode sheet limiting portions can also be provided on the first housing 110 and the second housing 140. In addition, the electrode plate limiting part provided for the electrode plate 150 can further realize the quick installation and disassembly of the electrode plate 150, and facilitate the cleaning or replacement of the electrode plate 150.

[0070] Compared with existing technologies, in this embodiment, each steel wire enters a first sub-region 161 for cleaning. By integrating multiple first sub-regions 161 into the same cleaning area 160, the distance between the multiple first sub-regions 161 is shortened, the space occupied by the equipment is reduced, and the steel wire cleaning efficiency is improved. In addition, the distance between the steel wires is determined during the manufacturing of the cleaning box 100, eliminating the need for readjustment of the steel wires during use and improving safety when cleaning multiple wires simultaneously.

[0071] This application also provides a steel wire surface cleaning mechanism; please refer to [link / reference]. Figure 9 , Figure 9 This illustration shows a structural diagram of the steel wire surface cleaning mechanism provided in an embodiment of this application. The steel wire surface cleaning mechanism of this embodiment includes a cleaning tank 100, a guide wheel assembly 200, a liquid storage tank 300, and a piping system 400. The guide wheel assembly 200 includes multiple guide wheels 210, each guide wheel 210 corresponding to a first sub-region 161 within the cleaning tank 100, used to guide the steel wire into the first sub-region 161. The liquid storage tank 300 is connected to a second liquid inlet channel 1461 via the piping system 400, and is used to supply electrolyte to the cleaning tank 100. Thus, the guide wheels 210 guide the steel wire into the corresponding first sub-region 161, and the liquid storage tank 300 and piping system 400 provide power and a path for the electrolyte to enter and exit the cleaning tank 100. It is understood that, to ensure the stability of the steel wire surface cleaning mechanism, a bracket can also be provided to mount the cleaning tank 100, guide wheel assembly 200, liquid storage tank 300, and piping system 400 onto the bracket.

[0072] Please see Figure 10 , Figure 10 This illustration shows a schematic diagram of the guide wheel assembly in the steel wire surface cleaning mechanism provided in an embodiment of this application. In one embodiment, the guide wheel assembly 200 further includes a wheel seat 220, a vertical plate 230, and a base 240. The wheel seat 220 includes a first connecting portion 221 and a second connecting portion 222 connected to each other. The first connecting portion 221 is connected to the guide wheel 210, and the second connecting portion 222 has a first waist hole 223. The vertical plate 230 includes a third connecting portion 231 and a fourth connecting portion 232 connected to each other. The second connecting portion 222 and the third connecting portion 231 are connected through the first waist hole 223, allowing the wheel seat 220 and the vertical plate 230 to move and adjust in the second direction Y. The fourth connecting portion 232 has a second waist hole 233. The base 240 includes a fifth connecting part 241 and a sixth connecting part 242 connected together. The fifth connecting part 241 and the fourth connecting part 232 are connected through a second waist hole 233, so that the upright plate 230 and the base 240 can be adjusted in the third direction Z. The sixth connecting part 242 is used to fix the base 240 to the mounting plane of the cleaning tank 100. The mounting plane can be the plane on which the bracket is used to install the cleaning tank 100 and the guide wheel assembly. In this way, by setting the first waist hole 223 and the second waist hole 233, the guide wheel 210 has a certain degree of adjustment freedom in the second direction Y and the third direction Z, making it easier for the guide wheel 210 to align with the first sub-region 161.

[0073] The above provides a detailed description of a cleaning box and a steel wire surface cleaning mechanism provided in the embodiments of this application. Specific examples have been used in this application to illustrate the principles and implementation methods of this application. The description of the above embodiments is only for the purpose of helping to understand the technical solutions and core ideas of this application. Those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. These modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A cleaning box, characterized in that, include: The first housing (110) has an accommodating space (130); the first housing (110) is provided with a plurality of second steel wire limiting parts (113). A cover plate (120) is connected to the first housing (110) and covers the accommodating space (130). The second box (140) is placed in the accommodating space (130). The second box (140) includes a first bottom plate (141), two end plates (142) arranged opposite each other along a first direction (X), and two first side plates (143) arranged opposite each other along a second direction (Y). The first bottom plate (141), the two end plates (142) and the two first side plates (143) enclose a cleaning area (160). The second housing (140) further includes a plurality of first partition plates (144) and a plurality of second partition plates (145). The plurality of first partition plates (144) are arranged along the second direction (Y) within the cleaning area (160). The first partition plates (144) are connected to two end plates (142) along the first direction (X) to divide the cleaning area (160) into a plurality of first sub-areas (161). The end plates (142) are provided with first steel wire limiting parts (1421), which correspond to the first sub-areas (161), and second steel wire limiting parts (113) correspond to the first steel wire limiting parts (1421). The plurality of second partition plates (145) are arranged along the first direction (X) within the cleaning area (160). The second partition plates (145) are connected to two first side plates (143) along the second direction (Y) to divide the first sub-areas (161) into a plurality of second sub-areas (162). Multiple electrode plates (150) are placed in the first sub-region (161), and both ends of the electrode plates (150) extend out of the end plate (142); the electrode plates (150) pass through multiple second sub-regions (162) sequentially along the first direction (X). Wherein, the first direction (X) intersects with the second direction (Y); The steel wire passes through the second steel wire limiting part (113) and the first steel wire limiting part (1421) in sequence to enter the cleaning tank (100), and then passes through the first steel wire limiting part (1421) and the second steel wire limiting part (113) in sequence to leave the cleaning tank (100).

2. The cleaning tank according to claim 1, characterized in that, The electrode sheet (150) includes: A first conductive part (151) is placed between the two end plates (142) along the first direction (X); A plurality of second conductive portions (152) are connected to the first conductive portion (151), and the second conductive portions (152) extend into the second sub-region (162).

3. The cleaning tank according to claim 2, characterized in that, Along the second direction (Y), at least one of the electrode plates (150) is placed on each side of the first steel wire limiting part (1421). The second conductive portions (152) of the plurality of electrode sheets (150) are alternately arranged such that only one second conductive portion (152) extends into each second sub-region (162).

4. The cleaning tank according to claim 1, characterized in that, The second housing (140) also includes: The second base plate (146) is disposed on the side of the first base plate (141) away from the electrode sheet (150). The second base plate (146), the first base plate (141), the two end plates (142), and the two first side plates (143) enclose a liquid loading area (170). The first base plate (141) is provided with a plurality of first liquid loading channels (1411), and the liquid loading area (170) is connected to the first sub-area (161) through the first liquid loading channels (1411). The second base plate (146) is provided with a plurality of second liquid loading channels (1461), and the liquid loading area (170) is connected to the accommodating space (130) through the second liquid loading channels (1461). The first liquid discharge channel (147) includes an inlet end (1471) and an outlet end (1472). The inlet end (1471) is located near the side of the first isolation plate (144) away from the first bottom plate (141), and the outlet end (1472) is connected to the accommodating space (130).

5. The cleaning tank according to claim 4, characterized in that, The second housing (140) also includes: Multiple third partition plates (148) are arranged along the second direction (Y) within the liquid loading area (170). The third partition plates (148) connect the first base plate (141) and the second base plate (146) along the first direction (X) to divide the liquid loading area (170) into multiple third sub-areas (171). The third sub-areas (171) are connected to the first sub-area (161) through the first liquid loading channel (1411).

6. The cleaning tank according to claim 4, characterized in that, The first housing (110) includes: Third base plate (111); A plurality of second side plates (112) and the third bottom plate (111) enclose the receiving space (130). The third base plate (111) is provided with a second liquid discharge channel (1111), the accommodating space (130) is connected to the second liquid discharge channel (1111), and the third base plate (111) is provided with a plurality of third liquid discharge channels (1112), the third liquid discharge channels (1112) are connected to the second liquid discharge channel (1461).

7. The cleaning tank according to claim 6, characterized in that, The third base plate (111) has a base plate surface (1113) facing the second housing (140), the base plate surface (1113) being configured to guide the cleaning fluid to the periphery of the second drain channel (1111).

8. The cleaning tank according to claim 7, characterized in that, The base plate surface (1113) is an inclined surface that is tilted relative to a third direction (Z), and the third direction (Z) intersects with both the first direction (X) and the second direction (Y); The bottom plate surface (1113) has a first end (1114) away from the second liquid channel (1111) and a second end (1115) close to the second liquid channel (1111) in the first direction (X); the first end (1114) and the second bottom plate (146) have a first dimension D1 mm in the third direction (Z), and the second end (1115) and the second bottom plate (146) have a second dimension D2 mm in the third direction (Z), and the cleaning tank satisfies: D2 > D1.

9. A steel wire surface cleaning mechanism, characterized in that, include: The cleaning tank as described in any one of claims 1-8; A guide wheel assembly (200) includes a plurality of guide wheels (210), each guide wheel (210) corresponding to a first sub-region (161) in the cleaning tank, for guiding the steel wire into the first sub-region (161). A storage tank (300) is used to deliver electrolyte into the cleaning tank; The pipeline system (400) is connected to the second liquid supply channel (1461) through the liquid storage tank (300).

10. The steel wire surface cleaning mechanism according to claim 9, characterized in that, The guide wheel assembly (200) also includes: Wheel seat (220), the wheel seat (220) includes a first connecting part (221) and a second connecting part (222) connected to each other, the first connecting part (221) is connected to the guide wheel (210), and the second connecting part (222) is provided with a first waist hole (223). The upright plate (230) includes a third connecting part (231) and a fourth connecting part (232) connected to each other. The second connecting part (222) and the third connecting part (231) are connected through the first waist hole (223) so that the wheel seat (220) and the upright plate (230) can be adjusted to move in the second direction (Y). The fourth connecting part (232) is provided with a second waist hole (233). The base (240) includes a fifth connecting part (241) and a sixth connecting part (242) connected to each other. The fifth connecting part (241) and the fourth connecting part (232) are connected through the second waist hole (233) so that the upright plate (230) and the base (240) can be adjusted in a third direction (Z). The sixth connecting part (242) is used to fix the base (240) to the mounting plane where the cleaning tank is located.

Citation Information

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