Drying device for production and processing of non-ferrous metal rolled materials
By setting up the Shanghai sponge and the lower sponge water absorption components and corresponding water-squeezing components in the drying box, the problem of repeatedly taking out the plates when the sponge squeezes water is solved, and an efficient drying process is achieved, improving production efficiency and drying quality are improved.
Patent Information
- Application Number
- CN202422287726.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-19
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2034-09-19
AI Technical Summary
The existing non-ferrous metal calendered material drying device needs to repeatedly remove the metal sheet when the sponge is squeezed, resulting in complex operation and reduced production efficiency.
The Shanghai sponge water absorption assembly and the lower sponge water absorption assembly are arranged in the drying box. Combined with the Shanghai sponge water extrusion assembly and the lower sponge water extrusion assembly, the sponge is driven to move up and down and translate back and forth through an electric push rod to achieve moisture extrusion from the sponge and flow into the bottom of the box without taking out the metal sheet.
The operation of repeatedly taking out metal sheets when sponges squeeze water is avoided, which reduces the complexity of operation, improves production efficiency, and ensures drying quality through purge, sucking and drying steps.
Smart Images

Figure CN223192028U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of nonferrous metal processing devices, and in particular relates to a drying device for producing and processing nonferrous metal rolled materials. Background Art
[0002] Non-ferrous metal rolling, leveraging its ductile nature, involves applying pressure to the metal to stretch it into a specific shape. Non-ferrous metal substrates must be cleaned before rolling to ensure they are free of dust and other impurities. After cleaning, they need to be dried. However, current drying equipment simply uses hot air. When water droplets adhere to the substrate surface, a significant amount of energy is consumed to achieve complete drying, and drying efficiency is also affected.
[0003] In response to the above problems, patent CN202022370863.1 discloses a non-ferrous metal rolled material drying device, which specifically discloses: by moving the substrate to be dried between two water-absorbing sponges, and then winding the substrate through a winding roller, the top water-absorbing sponge is adjusted by controlling the extension and contraction of the first electric push rod output shaft so that both water-absorbing sponges can contact the substrate, so that water droplets adhering to the surface of the substrate are absorbed by the water-absorbing sponge during the winding process, and then enter the right side of the partition plate, and hot air is blown by the drying device to further dry the substrate, which can not only improve the drying efficiency but also reduce the consumption of drying energy. By arranging side plates, a second electric push rod, an extrusion plate and a water receiving box, when the water-absorbing sponge is used for a period of time, the base material is taken out of the drying box, and then the second electric push rod output shaft is extended and contracted to drive the extrusion plate to squeeze the water-absorbing sponge, so that the water in the water-absorbing sponge is discharged and falls into the water receiving box along the drainage hole for collection, thereby achieving the purpose of high drying efficiency and low energy consumption.
[0004] However, a problem with the drying device structured as described above is that after using the absorbent sponge for a period of time, the substrate must be removed from the drying chamber to drain the water from the sponge. Otherwise, the water squeezed out of the upper sponge will fall onto the substrate. This operation method requires repeated removal and insertion of the substrate, which is inconvenient, increases operational complexity, and reduces production efficiency. Therefore, improvements are necessary. Utility Model Content
[0005] The technical problem solved by the utility model is to provide a drying device for the production and processing of non-ferrous metal rolled materials. The purpose of the utility model is to avoid the operation of repeatedly taking out metal plates when squeezing water from the sponge in the drying device for non-ferrous metal rolled materials, reduce the complexity of the operation, and improve production efficiency.
[0006] In order to achieve the above-mentioned purpose, the technical solution adopted by this utility model is:
[0007] A drying device for producing and processing nonferrous metal rolled materials comprises a drying box, wherein the interior of the drying box is divided into a moisture purge chamber, a sponge water absorption chamber and a drying chamber;
[0008] Two upper and lower water blowers are provided on one side wall of the moisture blowing chamber, and the openings of the upper and lower water blowers are tilted from one side toward the upper and lower surfaces of the passing metal plate and are used to blow moisture off the surface of the metal plate;
[0009] The upper part of the sponge water absorption chamber is provided with an upper sponge water absorption component and an upper sponge water squeezing component. The upper sponge in the upper sponge water absorption component faces downward and is used to absorb moisture on the upper surface of the metal plate. The upper sponge water squeezing component squeezes water from the upper sponge from the bottom by moving forward and backward and lifting up and down, so that the water flows down from the left and right sides of the upper sponge water squeezing component.
[0010] The lower part of the sponge water absorption chamber is provided with a lower sponge water absorption component and a lower sponge water squeezing component. The lower sponge in the lower sponge water absorption component faces upward and is used to absorb moisture from the lower surface of the metal plate. The lower sponge water squeezing component squeezes water from the lower sponge from the top and makes the water flow down by moving back and forth and up and down.
[0011] To further define the above scheme, the interior of the drying box is divided into a moisture purge chamber, a sponge water absorption chamber, and a drying chamber by two vertical partitions I and II. The moisture purge chamber, sponge water absorption chamber, and drying chamber are arranged in sequence from front to back, and guide holes for the entry of metal sheets are provided on the front and rear walls of the drying box and in the middle of partitions I and II.
[0012] A further limitation of the above scheme is that the upper and lower water blowers in the moisture blowing chamber include an upper blower and a lower blower, and the upper and lower blowers are both fixed on the same side wall of the moisture blowing chamber and are respectively distributed on the upper and lower sides of the guide through hole, and the blowing ports of the upper and lower blowers are respectively inclined toward the upper and lower surfaces of the passing metal plate.
[0013] Further limiting the above solution, the upper sponge water absorption component is integrally fixed to the upper position of the guide through hole on the partition II;
[0014] The upper sponge water absorption assembly includes an upper sponge mounting frame, which is horizontally arranged and fixedly connected to the partition II at the rear. An upper sponge lifting electric push rod is vertically fixed to the upper sponge mounting frame. An upper sponge fixing plate is fixedly connected to the lower output end of the upper sponge lifting electric push rod. An upper sponge is fixed to the lower part of the upper sponge fixing plate. The upper sponge is fixed to the lower part of the upper sponge fixing plate. The upper sponge lifting electric push rod drives the upper sponge to move up and down so that it contacts the upper surface of the passing metal plate;
[0015] The upper sponge water squeezing assembly includes an upper water squeezing plate, an upper water squeezing plate lifting electric push rod and an upper water squeezing plate translation electric push rod. The upper water squeezing plate translation electric push rod is horizontally arranged and the rear end is fixedly connected to the upper part of the partition II. An upper slide is provided on the top wall of the sponge water absorption chamber, and an upper slider is slidably connected to the upper slide. The lower part of the upper slider is vertically fixedly connected to the upper water squeezing plate lifting electric push rod. The front end of the upper water squeezing plate translation electric push rod is fixedly connected to the side wall of the upper slider. Upper water retaining platforms are provided on the front and rear sides of the upper water squeezing plate. The upper water retaining platform at the front of the upper water squeezing plate is fixedly connected to the output end of the lower part of the upper water squeezing plate lifting electric push rod. The left and right sides of the upper water squeezing plate are open to facilitate water to flow down from both sides. The length and width of the upper water squeezing plate are both larger than the length and width of the upper sponge.
[0016] Further limiting the above solution, the lower sponge water absorption component is integrally fixed to the lower position of the guide through hole on the partition II;
[0017] The lower sponge water absorption assembly includes a lower sponge mounting frame, which is horizontally arranged and fixedly connected to the partition II at the rear. A lower sponge lifting electric push rod is vertically fixed on the lower sponge mounting frame. A lower sponge fixing plate is fixedly connected to the upper output end of the lower sponge lifting electric push rod. A lower sponge fixing plate is fixed to the upper part of the lower sponge fixing plate. The lower sponge lifting electric push rod drives the lower sponge to move up and down so that it contacts the lower surface of the passing metal plate.
[0018] The lower sponge water squeezing assembly includes a lower water squeezing plate, a lower water squeezing plate lifting electric push rod and a lower water squeezing plate translation electric push rod. The lower water squeezing plate translation electric push rod is horizontally arranged and the rear end is fixedly connected to the lower part of the partition II. A lower slide is provided on the bottom wall of the sponge water absorption chamber, and a lower slider is slidably connected to the lower slide. The upper part of the lower slider is vertically fixedly connected to the lower water squeezing plate lifting electric push rod. The front end of the lower water squeezing plate translation electric push rod is fixedly connected to the side wall of the lower slider, and the front of the lower water squeezing plate is fixedly connected to the output end of the upper part of the lower water squeezing plate lifting electric push rod. The length and width of the lower water squeezing plate are larger than the length and width of the lower sponge.
[0019] As a further limitation of the above solution, drainage holes are provided at the bottom of the moisture blowing chamber and the sponge water absorption chamber, and the drainage holes are connected to the moisture collection box through a drainage pipe.
[0020] As a further limitation of the above solution, a drying device is provided inside the drying chamber.
[0021] The advantages of this utility model compared with the prior art are:
[0022] 1. In this solution, an upper sponge water absorption component and a lower sponge water absorption component are arranged in the sponge water absorption chamber, so as to absorb moisture from the upper and lower surfaces of the metal plate. In addition, an upper sponge water squeezing component and a lower sponge water squeezing component are arranged in the sponge water absorption chamber. The upper sponge water squeezing component can squeeze water from the upper sponge from the bottom by moving back and forth and up and down, so that the water flows down from the left and right sides of the upper sponge water squeezing component. When the metal plate is not removed, the water squeezed out by the upper sponge will flow down from the left and right sides of the upper sponge water squeezing component and fall to the bottom of the box instead of falling on the metal plate, thereby avoiding the need to repeatedly take out the metal plate when squeezing the sponge, reducing the complexity of the operation and improving the production efficiency.
[0023] 2. In this solution, the drying box is divided into a moisture blowing chamber, a sponge water absorption chamber and a drying chamber, so that the metal plate needs to be dried in three steps: blowing, absorbing and drying, which can effectively ensure the drying effect of the metal material and the drying quality. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0025] Figure 2 For this utility model Figure 1 AA section view in the figure;
[0026] Figure 3 For this utility model Figure 1 BB section view in. DETAILED DESCRIPTION
[0027] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0028] It should be noted that, in this document, the terms "comprises," "includes," or any other variations thereof are intended to encompass non-exclusive inclusion, such that a process, method, article, or apparatus comprising a series of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus. In the absence of further limitations, an element defined by the phrase "comprising a..." does not exclude the presence of additional identical elements in the process, method, article, or apparatus comprising the element.
[0029] See also Figure 1-3 , describe in detail the embodiments of the present utility model.
[0030] Example: See Figure 1 As shown, a drying device for producing and processing non-ferrous metal rolled materials includes a drying box 1, wherein the interior of the drying box 1 is divided into a moisture purge chamber 4, a sponge water absorption chamber 5 and a drying chamber 6;
[0031] Two upper and lower water blowers are provided on one side wall of the moisture blowing chamber 4. The openings of the upper and lower water blowers are tilted from one side toward the upper and lower surfaces of the passing metal sheet and are used to blow moisture off the surface of the metal sheet.
[0032] The upper part of the sponge water absorption chamber 5 is provided with an upper sponge water absorption component 10 and an upper sponge water squeezing component 11. The upper sponge 10-4 in the upper sponge water absorption component 10 faces downward and is used to absorb moisture from the upper surface of the metal plate. The upper sponge water squeezing component 11 squeezes water from the upper sponge 10-4 from the bottom by moving back and forth and up and down, so that the water flows down from the left and right sides of the upper sponge water squeezing component 11.
[0033] The lower part of the sponge water absorption chamber 5 is provided with a lower sponge water absorption component 12 and a lower sponge water squeezing component 13. The lower sponge 12-4 in the lower sponge water absorption component 12 faces upward and is used to absorb moisture from the lower surface of the metal plate. The lower sponge water squeezing component 13 squeezes water from the lower sponge 12-4 from the top and allows the water to flow down by moving back and forth and up and down.
[0034] In this embodiment, by arranging an upper sponge water absorption component and a lower sponge water absorption component in the sponge water absorption chamber, the moisture on the upper and lower surfaces of the metal plate can be absorbed, and an upper sponge water squeezing component and a lower sponge water squeezing component are arranged in the sponge water absorption chamber. The upper sponge water squeezing component can squeeze water from the upper sponge from the bottom by moving back and forth and up and down, and make the water flow down from the left and right sides of the upper sponge water squeezing component. Without removing the metal plate, the water squeezed out of the upper sponge will flow down from the left and right sides of the upper sponge water squeezing component and fall to the bottom of the box, and will not fall on the metal plate, thereby avoiding the operation of repeatedly taking out the metal plate when squeezing the sponge, reducing the complexity of the operation and reducing work efficiency.
[0035] In one embodiment: See Figure 1 As shown, the interior of the drying box 1 is divided into a moisture purge chamber 4, a sponge water absorption chamber 5, and a drying chamber 6 by two vertical partitions I2 and II3. The moisture purge chamber 4, the sponge water absorption chamber 5, and the drying chamber 6 are arranged in sequence from front to back. Guide holes 7 for the entry of metal sheets are provided on the front and rear walls of the drying box 1 and in the middle of the partitions I2 and II3.
[0036] In this embodiment, by dividing the interior of the drying box into a moisture purge chamber, a sponge absorption chamber, and a drying chamber, the metal sheet undergoes three steps during drying: blowing, absorption, and drying. This effectively ensures the drying effect and quality of the metal material. Furthermore, the three chambers are separated, allowing their respective functions to complement each other, achieving excellent drying results.
[0037] In one embodiment: See Figure 2 As shown, the upper and lower water blowers in the moisture blowing chamber 4 include an upper blower 8 and a lower blower 9. The upper blower 8 and the lower blower 9 are both fixed on the same side wall of the moisture blowing chamber 4 and are respectively distributed on the upper and lower sides of the guide through hole 7. The air outlets of the upper blower 8 and the lower blower 9 are respectively inclined toward the upper and lower surfaces of the passing metal plate.
[0038] By adopting the above structure and setting the angle of the blower, the moisture on the surface of the metal plate can be blown from one side to the other and flowed away, achieving preliminary treatment of the moisture on the surface of the metal plate, reducing the surface moisture and preparing for the next step of sponge absorption. Moreover, before using the sponge to absorb water, the blower is used to blow the moisture on the surface of the metal plate to remove a considerable amount of moisture, thereby extending the subsequent use time of the sponge, reducing the number of times the sponge is squeezed, and improving work efficiency.
[0039] In one embodiment: See Figure 3 As shown, the upper sponge water absorption assembly 10 is integrally fixed to the upper portion of the guide through hole 7 on the partition II 3. The upper sponge water absorption assembly 10 includes an upper sponge bar mounting frame 10-1, which is horizontally arranged and fixedly connected to the partition II 3 at its rear end. An upper sponge lifting electric push rod 10-2 is vertically fixed to the upper sponge mounting frame 10-1. An upper sponge fixing plate 10-3 is fixedly connected to the lower output end of the upper sponge lifting electric push rod 10-2. An upper sponge 10-4 is fixed to the lower portion of the upper sponge fixing plate 10-3. The upper sponge 10-4 is fixed to the lower portion of the upper sponge fixing plate 10-3. The upper sponge lifting electric push rod 10-2 drives the upper sponge 10-4 to move up and down so that it contacts the upper surface of the passing metal plate.
[0040] When the upper sponge water absorption component is in use, the upper sponge 10-4 is driven up and down by the extension and contraction of the upper sponge lifting electric push rod 10-2, so that the upper sponge 10-4 can contact the upper surface of the metal plate, achieving a good water absorption effect on the surface of the metal plate.
[0041] In one embodiment: See Figure 3As shown, the upper sponge squeezing assembly 11 includes an upper squeezing plate 11-1, an upper squeezing plate lifting electric push rod 11-3 and an upper squeezing plate translation electric push rod 11-4. The upper squeezing plate translation electric push rod 11-4 is horizontally arranged and the rear end is fixedly connected to the upper part of the partition II 3. An upper slide 11-5 is provided on the top wall of the sponge water absorption chamber 5. An upper slider 11-6 is slidably connected to the upper slide 11-5. The lower part of the upper slider 11-6 is vertically fixedly connected to the upper squeezing plate lifting electric push rod 1 1-3, the front end of the upper water squeezing plate translation electric push rod 11-4 is fixedly connected to the side wall of the upper slider 11-6. The upper water retaining platform 11-2 is provided on the front and rear sides of the upper water squeezing plate 11-1. The upper water retaining platform 11-2 at the front of the upper water squeezing plate 11-1 is fixedly connected to the output end of the lower part of the upper water squeezing plate lifting electric push rod 11-3. The left and right sides of the upper water squeezing plate 11-1 are open to facilitate water flow from both sides. The length and width of the upper water squeezing plate 11-1 are larger than the length and width of the upper sponge 10-4. The left and right length of the upper water squeezing plate 11-1 is larger than the width of the metal plate, so that water flowing from both sides will not drip onto the metal plate.
[0042] When the upper sponge squeezing assembly is used to squeeze water from the upper sponge, the upper water squeezing plate lifting electric push rod 11-3 is extended first, driving the upper water squeezing plate 11-1 to a position lower than the upper sponge 10-4, and then the upper water squeezing plate translation electric push rod 11-4 drives the upper water squeezing plate lifting electric push rod 11-3 to slide along the upper slide 11-5, so that the upper water squeezing plate 11-1 is translated to just below the upper sponge 10-4, and then the upper water squeezing plate lifting electric push rod 11-3 is retracted to make the upper water squeezing plate 11-1 move up and squeeze the upper sponge 10-4. During the squeezing process, due to the blocking effect of the front and rear upper water retaining platforms 11-2, the water squeezed out of the upper sponge 10-4 flows down from the left and right sides of the upper water squeezing plate 11-1 to the bottom of the sponge water absorption chamber. Since the width of the upper water squeezing plate is wider than the metal plate, the water will not fall on the metal plate, thereby avoiding affecting the drying of the metal plate. After squeezing the water, the upper squeezing plate 11-1 is driven by the upper squeezing plate lifting electric push rod 11-3 and the upper squeezing plate translation electric push rod 11-4 to return to its original position, and the upper sponge 10-4 can be used again.
[0043] In one embodiment: See Figure 3As shown, the lower sponge water absorption assembly 12 is integrally fixed to the lower portion of the guide through hole 7 on the partition II 3. The lower sponge water absorption assembly 12 includes a lower sponge bar mounting frame 12-1, which is horizontally arranged and fixedly connected to the partition II 3 at its rear end. A lower sponge lifting electric push rod 12-2 is vertically fixed to the lower sponge mounting frame 12-1. A lower sponge fixing plate 12-3 is fixedly connected to the upper output end of the lower sponge lifting electric push rod 12-2. A lower sponge 12-4 is fixed to the upper portion of the lower sponge fixing plate 12-3. The lower sponge 12-4 is fixed to the upper portion of the lower sponge fixing plate 12-3. The lower sponge lifting electric push rod 12-2 drives the lower sponge 12-4 to move up and down so that it contacts the lower surface of the passing metal plate.
[0044] When the lower sponge water absorption component is in use, the lower sponge 12-4 is driven up and down by the extension and contraction of the lower sponge lifting electric push rod 12-2, so that the lower sponge 12-4 can contact the lower surface of the metal plate, achieving a good water absorption effect on the surface of the metal plate.
[0045] In one embodiment: See Figure 3 As shown, the lower sponge water squeezing assembly 13 includes a lower water squeezing plate 13-1, a lower water squeezing plate lifting electric push rod 13-3 and a lower water squeezing plate translation electric push rod 13-4. The lower water squeezing plate translation electric push rod 13-4 is horizontally arranged and the rear end is fixedly connected to the lower part of the partition II3. A lower slide 13-5 is provided on the bottom wall of the sponge water absorption chamber 5. A lower slider 13-6 is slidably connected to the lower slide 13-5. The upper part of the lower slider 13-6 is vertically fixedly connected to the lower water squeezing plate lifting electric push rod 13-3. The front end of the lower water squeezing plate translation electric push rod 13-4 is fixedly connected to the side wall of the lower slider 13-6. The front part of the lower water squeezing plate 13-1 is fixedly connected to the output end of the upper part of the lower water squeezing plate lifting electric push rod 13-3. The length and width of the lower water squeezing plate 13-1 are larger than the length and width of the lower sponge 12-4.
[0046] In the above structure, since the lower sponge squeezing assembly 13 is placed at the lower part of the metal plate, the squeezed water will not pass through the metal plate, so the lower water retaining platform 13-2 can be set on the front and rear sides of the lower squeezing plate 13-1, or it can be not set; and whether the left and right sides of the lower squeezing plate 13-1 are open or not does not affect the flow of water.
[0047] When the lower sponge squeezing assembly is used to squeeze water from the lower sponge, the lower water squeezing plate lifting electric push rod 13-3 is extended first, driving the lower water squeezing plate 13-1 to a position higher than the lower sponge 12-4, and then the lower water squeezing plate translation electric push rod 13-4 drives the lower water squeezing plate lifting electric push rod 13-3 to slide along the lower slide 13-5, so that the lower water squeezing plate 13-1 is translated to just above the lower sponge 12-4, and then the lower water squeezing plate lifting electric push rod 13-3 is retracted to move the lower water squeezing plate 13-1 downward to squeeze the lower sponge 12-4. During the squeezing process, the water squeezed out of the upper sponge 10-4 flows down from the four sides of the lower sponge fixing plate 12-3 to the bottom of the sponge water absorption chamber. The squeezed water will not fall through the metal plate, and therefore will not affect the metal plate. After squeezing the water, the lower squeezing plate 13-1 is driven by the lower squeezing plate lifting electric push rod 13-3 and the lower squeezing plate translation electric push rod 13-4 to return to its original position, and the lower sponge 12-4 can be used again.
[0048] In one embodiment: See Figure 1 As shown, the bottom of the moisture blowing chamber 4 and the sponge water absorption chamber 5 are both provided with drainage holes 15, and the drainage holes 15 are connected to the moisture collection box through a drainage pipe 16, so that the water inside the box is discharged into the moisture collection box.
[0049] In one embodiment: See Figure 1 As shown, a drying device 14 is provided inside the drying chamber 6, which is a common component in current drying devices.
[0050] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the present invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the present invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be encompassed within the present invention. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
[0051] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.
Claims
1. A drying device for producing and processing nonferrous metal rolled materials, comprising a drying box (1), characterized in that: The interior of the drying box (1) is divided into a moisture purge chamber (4), a sponge water absorption chamber (5) and a drying chamber (6); A side wall of the moisture blowing chamber (4) is provided with two upper and lower water blowers, the openings of the upper and lower water blowers are tilted from one side toward the upper and lower surfaces of the passing metal plate and are used to blow moisture off the surface of the metal plate; An upper sponge water absorption component (10) and an upper sponge water squeezing component (11) are provided at the upper portion of the sponge water absorption chamber (5); the upper sponge (10-4) in the upper sponge water absorption component (10) faces downward and is used to absorb water from the upper surface of the metal plate; the upper sponge water squeezing component (11) squeezes water from the upper sponge (10-4) from the lower portion by moving back and forth and lifting up and down, and causes the water to flow down from the left and right sides of the upper sponge water squeezing component (11); The lower part of the sponge water absorption chamber (5) is provided with a lower sponge water absorption component (12) and a lower sponge water squeezing component (13); the lower sponge (12-4) in the lower sponge water absorption component (12) faces upward and is used to absorb water from the lower surface of the metal plate; the lower sponge water squeezing component (13) squeezes water from the lower sponge (12-4) from the top and causes the water to flow down by moving forward and backward and lifting up and down.
2. The drying device for producing and processing non-ferrous metal rolled materials according to claim 1, characterized in that: The interior of the drying box (1) is divided into a moisture purge chamber (4), a sponge water absorption chamber (5), and a drying chamber (6) by two vertically erected partitions I (2) and II (3). The moisture purge chamber (4), the sponge water absorption chamber (5), and the drying chamber (6) are arranged in sequence from front to back. Guide holes (7) for metal plates to enter are provided on the front and rear walls of the drying box (1) and in the middle of the partitions I (2) and II (3).
3. The drying device for producing and processing non-ferrous metal rolled materials according to claim 2, characterized in that: The upper and lower water blowers in the moisture blowing chamber (4) include an upper blower (8) and a lower blower (9). The upper blower (8) and the lower blower (9) are both fixed on the same side wall of the moisture blowing chamber (4) and are respectively distributed on the upper and lower sides of the guide through hole (7). The blowing ports of the upper blower (8) and the lower blower (9) are respectively inclined toward the upper and lower surfaces of the passing metal plate.
4. The drying device for producing and processing non-ferrous metal rolled materials according to claim 2, characterized in that: The upper sponge water absorption component (10) is integrally fixed to the upper position of the guide through hole (7) on the partition plate II (3); The upper sponge water absorption component (10) comprises an upper sponge mounting frame (10-1), the upper sponge mounting frame (10-1) is horizontally arranged and fixedly connected to the partition plate II (3) at the rear, an upper sponge lifting electric push rod (10-2) is vertically fixed on the upper sponge mounting frame (10-1), an upper sponge fixing plate (10-3) is fixedly connected to the lower output end of the upper sponge lifting electric push rod (10-2), an upper sponge (10-4) is fixed to the lower part of the upper sponge fixing plate (10-3), and the upper sponge (10-4) is driven by the upper sponge lifting electric push rod (10-2) to move up and down so that the upper sponge (10-4) contacts the upper surface of the passing metal plate; The upper sponge squeezing assembly (11) comprises an upper squeezing plate (11-1), an upper squeezing plate lifting electric push rod (11-3) and an upper squeezing plate translation electric push rod (11-4), wherein the upper squeezing plate translation electric push rod (11-4) is arranged horizontally and its rear end is fixedly connected to the upper part of the partition II (3), an upper slideway (11-5) is provided on the top wall of the sponge water absorption chamber (5), an upper slider (11-6) is slidably connected to the upper slideway (11-5), and the lower part of the upper slider (11-6) is vertically fixedly connected to the upper squeezing plate lifting electric push rod (11 -3), the front end of the upper water squeezing plate translation electric push rod (11-4) is fixedly connected to the side wall of the upper slider (11-6), upper water retaining platforms (11-2) are provided on the front and rear sides of the upper water squeezing plate (11-1), the upper water retaining platform (11-2) at the front of the upper water squeezing plate (11-1) is fixedly connected to the output end of the lower part of the upper water squeezing plate lifting electric push rod (11-3), the left and right sides of the upper water squeezing plate (11-1) are open to facilitate water to flow down from both sides, and the length and width of the upper water squeezing plate (11-1) are both larger than the length and width of the upper sponge (10-4).
5. The drying device for producing and processing non-ferrous metal rolled materials according to claim 4, characterized in that: The lower sponge water absorption component (12) is integrally fixed to the lower position of the guide through hole (7) on the partition plate II (3); The lower sponge water absorption component (12) includes a lower sponge mounting frame (12-1), the lower sponge mounting frame (12-1) is horizontally arranged and fixedly connected to the partition plate II (3) at the rear, a lower sponge lifting electric push rod (12-2) is vertically fixed on the lower sponge mounting frame (12-1), a lower sponge fixing plate (12-3) is fixedly connected to the upper output end of the lower sponge lifting electric push rod (12-2), a lower sponge (12-4) is fixed on the upper part of the lower sponge fixing plate (12-3), and the lower sponge (12-4) is driven by the lower sponge lifting electric push rod (12-2) to move up and down so that the lower sponge (12-4) contacts the lower surface of the passing metal plate; The lower sponge squeezing assembly (13) comprises a lower squeezing plate (13-1), a lower squeezing plate lifting electric push rod (13-3) and a lower squeezing plate translation electric push rod (13-4). The lower squeezing plate translation electric push rod (13-4) is horizontally arranged and its rear end is fixedly connected to the lower part of the partition II (3). A lower slide (13-5) is provided on the bottom wall of the sponge water absorption chamber (5). A lower slider (13-6) is slidably connected to the lower slide (13-5). ), the upper part of the lower slider (13-6) is vertically fixedly connected to the lower water squeezing plate lifting electric push rod (13-3), the front end of the lower water squeezing plate translation electric push rod (13-4) is fixedly connected to the side wall of the lower slider (13-6), the front edge of the lower water squeezing plate (13-1) is fixedly connected to the output end of the upper part of the lower water squeezing plate lifting electric push rod (13-3), and the length and width of the lower water squeezing plate (13-1) are larger than the length and width of the lower sponge (12-4).
6. The drying device for producing and processing non-ferrous metal rolled materials according to claim 1, characterized in that: The bottoms of the moisture sweeping chamber (4) and the sponge water absorbing chamber (5) are both provided with drainage holes (15), and the drainage holes (15) are connected to the moisture collection box via a drainage pipe (16).
7. The drying device for producing and processing non-ferrous metal rolled materials according to claim 1, characterized in that: A drying device (14) is provided inside the drying chamber (6).
Citation Information
Patent Citations
Drying device for non-ferrous metal rolled material production and processing
CN213363220U