A production device and method of high-performance stainless steel clad slab
By designing a high-performance stainless steel composite slab production device and method, the problems of automatic feeding and efficient cleaning of stainless steel slabs in the existing technology that have not been effectively solved are solved, thus realizing automated production and efficient cleaning.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JIANGSU SHATONG METAL COMPOSITE TECH CO LTD
- Filing Date
- 2023-12-25
- Publication Date
- 2026-05-05
AI Technical Summary
In the existing technology, there are difficulties in the automatic feeding and efficient cleaning of stainless steel slabs. Multiple manual operations are required, and the cleaning is not thorough, requiring further processing later.
A production device for high-performance stainless steel composite slabs was designed, including a feeding mechanism, a clamping and pushing mechanism, a spraying system and a shielding mechanism. The device automatically feeds the slabs via a conveyor belt, and the combination of clamping plates and scrapers enables automatic cleaning. The combination of spray heads and drain tanks enables efficient cleaning and water recycling.
It has achieved automated feeding and efficient cleaning of stainless steel composite slabs, reduced manual operation time, improved work efficiency, reduced the environmental impact of water flow, and enabled water recycling.
Smart Images

Figure CN117600148B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of stainless steel composite slab production technology, and in particular to a production apparatus and method for high-performance stainless steel composite slabs. Background Technology
[0002] During the production process, stainless steel composite slabs need to be cleaned to remove impurities adhering to their surface, which is beneficial for subsequent production and processing operations.
[0003] A cleaning device for welded bimetallic stainless steel slabs, disclosed in CN115780337A, relates to the field of cleaning devices. It includes a main body with guide rails on its left and right sides. A synchronous wheel B is located at the front end of the guide screw, and the two synchronous wheels B are connected by a synchronous belt. A synchronous wheel C is located on the outer circumference of the guide screw. A synchronous wheel E is located on the output shaft of the cleaning motor. This invention can simultaneously remove rust residue during cleaning, eliminating the need for separate rust removal later. Simultaneously, it can also tap the welded bimetallic stainless steel slab during cleaning, causing the rust layer on the slab to fall off due to the impact. This solves the problem that rust residue often remains on the surface of the stainless steel slab after cleaning, requiring further removal later. While the existing technology can achieve cleaning of stainless steel slabs, it requires multiple loading and unloading operations, which is time-consuming and labor-intensive, leaving room for optimization. Therefore, corresponding improvements can be made.
[0004] A stainless steel plate cleaning device, disclosed in CN107350211A, relates to the technical field of equipment for stainless steel plates. The device includes a filter screen frame inside a housing, with support plates mounted at both ends. The support plates are mounted on a right-angle limiting frame, which is installed on the telescopic rod of an electric telescopic device. The electric telescopic device is mounted on the outer wall of the housing. The filter screen frame contains several partitions. Spray pipes are installed on the left, right, upper, and lower side walls of the housing, and these spray pipes are connected to the outlet of a water pump. A liquid collection plate is installed at an angle at the bottom of the tank, and a drain valve is set at the lowest point of the liquid collection plate. A drive motor is installed at the bottom of the tank, and the shaft of the drive motor passes through the inside of the tank. An agitator is installed on the shaft of the drive motor. This invention facilitates rapid cleaning and liquid / dirt collection, is convenient to use, easy to operate, and efficient. In contrast, the existing technology, which only uses a single rinsing operation, is not convenient for cleaning impurities such as rust that remain on the stainless steel slab, and still requires subsequent operations. There is room for optimization, so corresponding improvements can be made. Summary of the Invention
[0005] The purpose of this invention is to provide a production apparatus and method for high-performance stainless steel composite slabs, so as to solve the problems mentioned in the background art, which make it inconvenient to automatically feed and efficiently clean stainless steel slabs.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a production apparatus and method for high-performance stainless steel composite slabs, comprising a cleaning table, a top frame installed at the top of the cleaning table, a spray pipe installed at the bottom of the top frame, spray heads evenly installed at the bottom of the spray pipe, mounting seats installed on both sides of the top of the cleaning table, and a shielding mechanism provided at the top of each mounting seat, a water outlet pipe installed on one side of the cleaning table, a base installed on the side of the cleaning table away from the water outlet pipe, and a feeding mechanism provided at the top of the base, the feeding mechanism comprising a feeding box installed on the top of the base, and the bottom of the feeding box... The feeding box is equipped with a discharge chute. The main body of the stainless steel composite slab is evenly installed inside the feeding box. A conveyor seat is installed at the top of the base on one side of the feeding box. Conveyor rollers are evenly installed inside the conveyor seat. Conveyor belts are installed on the outer sides of the conveyor rollers. Friction ridges are evenly installed on the outer sides of the conveyor belts. A first motor is installed at one end of the conveyor seat and is connected to the conveyor rollers. A collection box is installed at the bottom inside the conveyor seat. A rotating shaft is installed inside the collection box. The rotating shaft is connected to the first motor through a pulley. A cleaning roller is installed on the outer side of the rotating shaft. A collection drawer is installed inside the collection box.
[0007] Preferably, the spray heads are all flared in cross-section, and the spray heads are arranged at equal intervals at the bottom end of the spray pipe.
[0008] Preferably, the shielding mechanism includes transparent shielding plates, all of which are installed on the top of the mounting base. Connecting blocks are installed on both sides of the transparent shielding plates, and transparent shielding plates are provided inside the connecting blocks. Threaded connecting posts are uniformly installed on the top of the mounting base, and each threaded connecting post is connected to a connecting groove. Threaded caps are installed on the top of each threaded connecting post.
[0009] Preferably, each of the threaded caps has a gasket installed at its bottom end, and the bottom end of each gasket has an anti-slip texture.
[0010] Preferably, positioning blocks are evenly installed at the bottom of the transparent shield, and positioning grooves are evenly provided at the top of the mounting base, with each positioning groove connected to a positioning block.
[0011] Preferably, each of the mounting bases is provided with a clamping and pushing mechanism, and the clamping and pushing mechanism includes a receiving groove. The receiving groove is located inside the mounting base. A threaded rod is installed inside the receiving groove, and a threaded sleeve is installed on the outer side of the threaded rod. A first electric push rod is installed on the inner side of the threaded sleeve, and a clamping plate is installed on the inner side of the first electric push rod. A second motor is installed on the side of the mounting base away from the receiving groove.
[0012] Preferably, a second electric push rod is installed inside the mounting base above the receiving groove, and a connecting plate is installed at one end of the second electric push rod, and a scraper is installed at the bottom end of the connecting plate.
[0013] Preferably, the scraper has an arc-shaped cross-section, and the bottom end of the scraper is connected to the top end of the stainless steel composite slab body.
[0014] Preferably, a filter screen is installed inside the washing platform, and a drain plate is installed at the top inside the washing platform, with drain grooves evenly arranged inside the drain plate.
[0015] Another technical solution provided by the present invention is to provide a production apparatus and method for high-performance stainless steel composite slabs, comprising the following steps:
[0016] S1: Place the stainless steel composite slab to be processed in the feeding box and stack it from bottom to top;
[0017] S2: Start the first motor to drive the conveyor roller. Under the conveying action of the conveyor belt and the friction action of the friction convex strip, the bottom stainless steel composite slab body can be conveyed from the inside of the feeding box to the conveyor belt. The stacked stainless steel composite slab bodies automatically descend to achieve automatic feeding. At the same time, when the current stainless steel composite slab body is conveyed to the front side of the conveyor seat, the rear stainless steel composite slab body automatically follows and prepares to continuously convey the stainless steel composite slab body after feeding.
[0018] S3: Start the first electric push rod to move the clamping plate to the gap between the adjacent stainless steel composite slab blanks and clamp the front stainless steel composite slab blank. Start the second motor to drive the threaded rod to rotate, so as to push the front stainless steel composite slab blank to the top of the drain plate through the threaded connection.
[0019] S4: Connect the external water source so that the water can be sprayed downward through the spray pipe and spray head. Start the second electric push rod to drive the scraper to further clean the surface of the stainless steel composite slab. The transparent baffles on both sides can prevent water from splashing. The water after use flows into the cleaning table through the drain tank for filtration and collection.
[0020] S5: After the current stainless steel composite slab body is processed, the clamping plate continues to move to achieve automatic unloading operation, and the stainless steel composite slab body behind repeats the above operation to achieve automatic feeding and replenishment.
[0021] Compared with the prior art, the beneficial effects of the present invention are: the production device for high-performance stainless steel composite slabs can continuously convey the main body of stainless steel composite slabs by setting a feeding mechanism, and simultaneously keep the conveyor belt clean. By setting a shielding mechanism, it can block the water flow splashing after the spray contact, reducing the impact of the water flow on the surrounding environment.
[0022] 1. The device is equipped with a feeding mechanism. During use, the stainless steel composite slab blanks to be processed are placed in the feeding box in sequence. The first motor is started to drive the conveyor belt. Multiple sets of friction convex strips on the outside of the conveyor belt contact the bottom of the stainless steel composite slab blank and push the bottom stainless steel composite slab blank to move inward. The stainless steel composite slab blanks in the feeding box automatically descend to achieve automatic feeding. When the current stainless steel composite slab blank is conveyed to the front side of the conveyor seat, the stainless steel composite slab blank behind it automatically follows and prepares. Thus, the automatic feeding operation effectively reduces the time and labor of manual operation and improves work efficiency. In addition, during the feeding process, the cleaning roller rotates synchronously through the action of the pulley so that the cleaning roller can maintain the cleanliness of the conveyor belt.
[0023] Based on the aforementioned feeding mechanism, a clamping and pushing mechanism is added. During use, the first electric push rod is activated to move the clamping plate inward and insert it between adjacent stainless steel composite slab blanks, thereby clamping the stainless steel composite slab blank in front and improving its stability during subsequent cleaning. The second motor is activated to rotate the threaded rod, and under the action of the threaded connection, the threaded sleeve moves inward to move the current stainless steel composite slab blank to the drain plate in the cleaning table. After cleaning, it can continue to move to unload the stainless steel composite slab blank.
[0024] Based on the above-mentioned clamping and pushing mechanism, a second electric push rod and scraper are set up. During the cleaning process, the second electric push rod is activated to drive the scraper to scrape the surface of the stainless steel composite slab blank, so as to effectively improve the treatment effect of impurities and improve work efficiency.
[0025] 2. A shielding mechanism is installed on the top of the mounting base. During use, the transparent shields on both sides can block the water splashing after the spray comes into contact, so as to reduce the impact of the water flow on the surrounding environment and reduce the effort of subsequent cleaning operations.
[0026] Based on the above-mentioned shielding mechanism, the transparent shielding plate can be quickly replaced by the threaded connecting column and connecting groove. The operation is simple and convenient. Furthermore, the transparent shielding plate can be fixed after installation by the cooperation of the threaded cap and gasket.
[0027] Based on the aforementioned shielding mechanism, by incorporating a filter screen, a drain plate, and a drain trough, water can be prevented from accumulating on the washing platform, reducing the amount of water adhering to the stainless steel composite slab body and achieving the draining function. Furthermore, the water after washing can be filtered through the filter screen for subsequent recycling, thus improving environmental protection. Attached Figure Description
[0028] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0029] Figure 1 This is a front view structural diagram of the present invention;
[0030] Figure 2 This is a top view cross-sectional structural diagram of the clamping and pushing mechanism of the present invention;
[0031] Figure 3 This is a three-dimensional structural diagram of the mounting base of the present invention;
[0032] Figure 4 This is a three-dimensional structural diagram of the conveyor belt of the present invention;
[0033] Figure 5 This is a schematic diagram of the internal structure of the collection box of the present invention;
[0034] Figure 6 This is a schematic diagram of the internal three-dimensional structure of the feeding box of the present invention;
[0035] Figure 7 This is a front view cross-sectional structural diagram of the shielding mechanism of the present invention;
[0036] Figure 8 This is a front view cross-sectional structural diagram of the cleaning station of the present invention.
[0037] The reference numerals in the diagram are as follows: 1. Top frame; 2. Blinding mechanism; 201. Connecting block; 202. Threaded connecting column; 203. Connecting groove; 204. Threaded cover; 205. Transparent baffle plate; 206. Gasket; 3. Mounting base; 4. Cleaning table; 5. Water outlet pipe; 6. Base; 7. Feeding mechanism; 701. Feeding box; 702. Discharge chute; 703. Conveyor seat; 704. Collection box; 705. Conveyor belt; 706. Friction ridge; 707. Conveyor roller; 708. First motor; 709. Pulley; 7 10. Rotating shaft; 711. Cleaning roller; 8. Stainless steel composite slab body; 9. Spray pipe; 10. Spray head; 11. Clamping and pushing mechanism; 1101. Second motor; 1102. Receiving groove; 1103. Threaded rod; 1104. Threaded sleeve; 1105. Clamping plate; 1106. First electric push rod; 1107. Connecting plate; 1108. Scraper; 1109. Second electric push rod; 12. Collection drawer; 13. Positioning groove; 14. Positioning block; 15. Filter screen; 16. Draining board; 17. Draining trough. Detailed Implementation
[0038] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0039] Please see Figures 1-8 The present invention provides the following technical solution:
[0040] Example 1
[0041] To address the inconvenience of cleaning impurities such as rust from stainless steel slabs in existing technologies, which require subsequent processing, the following solution is disclosed, as follows: Figure 1 , Figure 7 and Figure 8As shown, the system includes a washing table 4, with a filter screen 15 installed inside. A drain plate 16 is installed at the top of the washing table 4, and drain grooves 17 are evenly distributed inside the drain plate 16. A top frame 1 is installed at the top of the washing table 4, and a spray pipe 9 is installed at the bottom of the top frame 1. Spray heads 10 are evenly distributed at the bottom of the spray pipe 9, each spray head 10 having a trumpet-shaped cross-section and being evenly spaced at the bottom of the spray pipe 9. Mounting seats 3 are installed on both sides of the top of the washing table 4, and a shielding mechanism 2 is installed at the top of each mounting seat 3. The shielding mechanism 2 includes a transparent shielding plate 205, and the transparent shielding plate 205 is... A connecting block 201 is installed on both sides of the transparent shield 205 mounted on the top of the mounting base 3, and the transparent shield 205 is provided inside the connecting block 201. Threaded connecting posts 202 are evenly installed on the top of the mounting base 3, and the threaded connecting posts 202 are all connected to the connecting groove 203. Threaded caps 204 are installed on the top of the threaded connecting posts 202, and gaskets 206 are installed at the bottom of the threaded caps 204. The bottom of the gaskets 206 are provided with anti-slip textures. Positioning blocks 14 are evenly installed at the bottom of the transparent shield 205. Positioning grooves 13 are evenly provided on the top of the mounting base 3, and the positioning grooves 13 are all connected to the positioning blocks 14.
[0042] In this embodiment, the transparent baffles 205 on both sides can block the water splashing after the spray comes into contact with the water, thereby reducing the impact of the water flow on the surrounding environment and reducing the effort required for subsequent cleaning operations. At the same time, the transparent baffles 205 can be quickly replaced through the threaded connecting post 202 and the connecting groove 203. The operation is simple and convenient. Furthermore, the transparent baffles 205 can be fixed after installation through the cooperation of the threaded cover 204 and the gasket 206.
[0043] Example 2
[0044] This embodiment differs from Embodiment 1 in that it uses a feeding mechanism 7 to automatically feed the stainless steel composite slab blank. Specifically, as follows... Figure 1 , Figure 4 , Figure 5 and Figure 6As shown, a water outlet pipe 5 is installed on one side of the cleaning table 4, and a base 6 is installed on the side of the cleaning table 4 away from the water outlet pipe 5. A feeding mechanism 7 is provided at the top of the base 6. The feeding mechanism 7 includes a feeding box 701, which is installed at the top of the base 6. A discharge chute 702 is provided at the bottom of the feeding box 701. Stainless steel composite slab blanks 8 are evenly installed inside the feeding box 701. A conveyor seat 703 is installed at the top of the base 6 on one side of the feeding box 701, and conveyor rollers 707 are evenly installed inside the conveyor seat 703. A conveyor belt 705 is installed on the outer side of the conveyor belt 707, and friction ridges 706 are evenly installed on the outer side of the conveyor belt 705. A first motor 708 is installed at one end of the conveyor seat 703, and the first motor 708 is connected to the conveyor roller 707. A collection box 704 is installed at the bottom inside the conveyor seat 703, and a rotating shaft 710 is installed inside the collection box 704. The rotating shaft 710 is connected to the first motor 708 through a pulley 709. A cleaning roller 711 is installed on the outer side of the rotating shaft 710, and a collection drawer 12 is installed inside the collection box 704.
[0045] In this embodiment, during use, the stainless steel composite slab blanks 8 to be processed are placed sequentially in the feeding box 701. The first motor 708 is started to drive the conveyor belt 705 to operate. Multiple sets of friction ridges 706 on the outer side of the conveyor belt 705 contact the bottom of the stainless steel composite slab blanks 8 and push the bottom stainless steel composite slab blanks 8 inward. The stainless steel composite slab blanks 8 in the feeding box 701 automatically descend to achieve automatic feeding. When the current stainless steel composite slab blanks 8 are conveyed to the front side of the conveyor seat 703, the rear stainless steel composite slab blanks 8 automatically follow and prepare. Thus, the automatic feeding operation effectively reduces the time and labor of manual operation and improves work efficiency. During the feeding process, the cleaning roller 711 rotates synchronously through the action of the pulley 709 so that the cleaning roller 711 can synchronously maintain the cleanliness of the conveyor belt 705.
[0046] Example 3
[0047] This embodiment differs from Embodiments 1 and 2 primarily by incorporating a clamping and pushing mechanism 11 to facilitate clamping, fixing, and continuous pushing operations. Specifically, as follows... Figure 2 and Figure 3As shown, each mounting base 3 is equipped with a clamping and pushing mechanism 11, and the clamping and pushing mechanism 11 includes a receiving groove 1102. The receiving groove 1102 is located inside the mounting base 3. Each receiving groove 1102 is equipped with a threaded rod 1103. Each threaded rod 1103 is equipped with a threaded sleeve 1104 on its outer side. Each threaded sleeve 1104 is equipped with a first electric push rod 1106 on its inner side. Each first electric push rod 1106 is equipped with a clamping plate 1105 on its inner side. A second motor 1101 is installed on the side of the mounting base 3 away from the receiving groove 1102. A second electric push rod 1109 is installed inside the mounting base 3 above the receiving groove 1102. One end of the second electric push rod 1109 is equipped with a connecting plate 1107. A scraper 1108 is installed at the bottom end of the connecting plate 1107. The cross-section of the scraper 1108 is arc-shaped. The bottom end of the scraper 1108 is connected to the top end of the stainless steel composite slab blank body 8.
[0048] In this embodiment, during use, the first electric push rod 1106 is activated to move the clamping plate 1105 inward and insert it between adjacent stainless steel composite slab blanks 8, thereby clamping the stainless steel composite slab blank 8 in front and improving its stability during subsequent cleaning. The second motor 1101 is activated to rotate the threaded rod 1103, and under the action of the threaded connection, the threaded sleeve 1104 moves inward to move the current stainless steel composite slab blank 8 onto the drain plate 16 in the cleaning table 4. After cleaning, it can continue to move to unload the stainless steel composite slab blank 8. During the cleaning process, the second electric push rod 1109 is activated to drive the scraper 1108 to scrape the surface of the stainless steel composite slab blank 8, thereby effectively improving the treatment effect of impurities and increasing work efficiency.
[0049] To better demonstrate the production apparatus and method for high-performance stainless steel composite slabs, this embodiment describes a production apparatus and method for high-performance stainless steel composite slabs, including the following steps:
[0050] Step 1: Place the stainless steel composite slab body 8 to be processed in the feeding box 701 and stack them from bottom to top;
[0051] Step 2: Start the first motor 708 to drive the conveyor roller 707 to run. Under the conveying action of the conveyor belt 705 and the friction action of the friction convex strip 706, the bottom stainless steel composite slab body 8 can be conveyed from the inside of the feeding box 701 to the conveyor belt 705. The stacked stainless steel composite slab body 8 automatically descends to achieve automatic feeding. At the same time, when the current stainless steel composite slab body 8 is conveyed to the front side of the conveyor seat 703, the rear stainless steel composite slab body 8 automatically follows and prepares to continuously convey the stainless steel composite slab body 8 after feeding.
[0052] Step 3: Start the first electric push rod 1106 to move the clamping plate 1105 to the gap between the adjacent stainless steel composite slab blanks 8 and clamp the front stainless steel composite slab blanks 8. Start the second motor 1101 to drive the threaded rod 1103 to rotate, so as to push the front stainless steel composite slab blanks 8 to the top of the drain plate 16 through the threaded connection.
[0053] Step 4: Connect the external water source so that the water flows downward through the spray pipe 9 and the spray head 10. Start the second electric push rod 1109 to drive the scraper 1108 to further clean the surface of the stainless steel composite slab body 8. The transparent baffles 205 on both sides can prevent water from splashing. The water after use flows into the cleaning table 4 through the drain trough 17 for internal filtration and collection.
[0054] Step 5: After the current stainless steel composite slab body 8 is processed, the clamping plate 1105 moves continuously to achieve automatic feeding. The stainless steel composite slab body 8 behind repeats the above operation to achieve automatic feeding and replenishment.
[0055] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A production apparatus for high-performance stainless steel composite slabs, comprising a cleaning table (4), characterized in that: The top of the cleaning table (4) is equipped with a top frame (1), and the bottom of the top frame (1) is equipped with a spray pipe (9). The bottom of the spray pipe (9) is evenly equipped with spray heads (10). The top of the cleaning table (4) is equipped with mounting bases (3) on both sides, and the top of the mounting bases (3) is equipped with shielding mechanisms (2). The cleaning table (4) is equipped with a water outlet pipe (5) on one side. The cleaning table (4) is equipped with a base (6) on the side away from the water outlet pipe (5). The top of the base (6) is equipped with a feeding mechanism (7). The feeding mechanism (7) includes a feeding box (701), and the feeding box (701) is installed on the top of the base (6). The bottom of the feeding box (701) is equipped with a discharge trough (702). The inside of the feeding box (701) is evenly equipped with stainless steel composite slab blanks (8). 1) A conveyor seat (703) is installed at the top of the base (6) on one side, and conveyor rollers (707) are evenly installed inside the conveyor seat (703). Conveyor belts (705) are installed on the outer side of the conveyor rollers (707), and friction ridges (706) are evenly installed on the outer side of the conveyor belts (705). A first motor (708) is installed at one end of the conveyor seat (703), and the first motor (708) is connected to the conveyor rollers (707). A collection box (704) is installed at the bottom inside the conveyor seat (703), and a rotating shaft (710) is installed inside the collection box (704). The rotating shaft (710) is connected to the first motor (708) through a pulley (709). A cleaning roller (711) is installed on the outer side of the rotating shaft (710). A collection drawer (12) is installed inside the collection box (704). Each of the mounting bases (3) is provided with a clamping and pushing mechanism (11), and the clamping and pushing mechanism (11) includes a receiving groove (1102). The receiving groove (1102) is located inside the mounting base (3). A threaded rod (1103) is installed inside the receiving groove (1102). A threaded sleeve (1104) is installed on the outside of the threaded rod (1103). A first electric push rod (1106) is installed on the inside of the threaded sleeve (1104). A clamping plate (1105) is installed on the inside of the first electric push rod (1106). A second motor (1101) is installed on the side of the mounting base (3) away from the receiving groove (1102). The second electric push rod (1109) is installed inside the mounting base (3) above the receiving groove (1102), and a connecting plate (1107) is installed at one end of the second electric push rod (1109), and a scraper (1108) is installed at the bottom end of the connecting plate (1107). The scraper (1108) has an arc-shaped cross section, and the bottom end of the scraper (1108) is connected to the top end of the stainless steel composite slab body (8). The cleaning station (4) is equipped with a filter screen (15) and a drain plate (16) is installed at the top inside the cleaning station (4). The drain plate (16) is evenly provided with drain grooves (17) inside.
2. The production apparatus for high-performance stainless steel composite slabs according to claim 1, characterized in that: The spray heads (10) are all horn-shaped in cross-section, and the spray heads (10) are arranged at equal intervals at the bottom end of the spray pipe (9).
3. The production apparatus for high-performance stainless steel composite slabs according to claim 1, characterized in that: The shielding mechanism (2) includes a transparent shielding plate (205), and the transparent shielding plates (205) are all installed on the top of the mounting base (3). Connecting blocks (201) are installed on both sides of the transparent shielding plate (205), and the transparent shielding plate (205) is provided inside the connecting blocks (201). Threaded connecting columns (202) are evenly installed on the top of the mounting base (3), and the threaded connecting columns (202) are all connected to the connecting groove (203). Threaded caps (204) are installed on the top of the threaded connecting columns (202).
4. The production apparatus for high-performance stainless steel composite slabs according to claim 3, characterized in that: Each threaded cap (204) has a gasket (206) installed at its bottom end, and the bottom end of each gasket (206) is provided with anti-slip texture.
5. The production apparatus for high-performance stainless steel composite slabs according to claim 3, characterized in that: The bottom end of the transparent shield (205) is uniformly equipped with positioning blocks (14), and the top end of the mounting base (3) is uniformly provided with positioning grooves (13), and the positioning grooves (13) are all connected to the positioning blocks (14).
6. The method of using the production apparatus for high-performance stainless steel composite slabs according to claim 1, characterized in that, Includes the following steps: S1: Place the stainless steel composite slab body (8) to be processed in the feeding box (701) and stack it from bottom to top; S2: Start the first motor (708) to drive the conveyor roller (707) to run. Under the conveying action of the conveyor belt (705) and the friction action of the friction convex strip (706), the bottom stainless steel composite slab body (8) can be conveyed from the inside of the feeding box (701) to the conveyor belt (705). The stacked stainless steel composite slab bodies (8) automatically descend to achieve automatic feeding. At the same time, when the current stainless steel composite slab body (8) is conveyed to the front side of the conveyor seat (703), the rear stainless steel composite slab body (8) automatically follows and prepares to continuously convey the stainless steel composite slab body (8) after feeding. S3: Start the first electric push rod (1106) to move the clamping plate (1105) to the gap between the adjacent stainless steel composite slab blank body (8) and clamp the front stainless steel composite slab blank body (8). Start the second motor (1101) to drive the threaded rod (1103) to rotate, so as to push the front stainless steel composite slab blank body (8) above the drain plate (16) through the threaded connection. S4: Connect the external water source so that the water flows downward through the spray pipe (9) and spray head (10). Start the second electric push rod (1109) to drive the scraper (1108) to further clean the surface of the stainless steel composite slab body (8). The transparent baffles (205) on both sides can prevent water from splashing. The water after use flows into the internal filter of the cleaning table (4) through the drain trough (17). S5: After the current stainless steel composite slab body (8) is processed, the clamping plate (1105) continues to move to realize automatic feeding operation. The stainless steel composite slab body (8) behind repeats the above operation to realize automatic feeding and replenishment.
Citation Information
Patent Citations
Washing device for stainless steel plate
CN107350211A
Cleaning device for welding bimetal stainless steel plate blank
CN115780337A
Cleaning device for glass processing
CN214391265U
Stainless steel product spraying and cleaning production line equipment
CN217774949U