A mica sheet batch production lamination device
By designing a stacking device for support column assemblies and combined column assemblies, the problem of low processing efficiency of mica boards was solved, achieving flexibility and stability in batch processing and simplifying the operation process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- PINGJIANG COUNTY YUEFENG MICA NEW MATERIAL CO LTD
- Filing Date
- 2025-06-13
- Publication Date
- 2026-06-12
AI Technical Summary
Conventional stacking devices are inefficient in mica plate processing, difficult to achieve batch processing, have complicated structural adjustments, and are time-consuming and labor-intensive to operate.
A mica plate mass production stacking device was designed, which adopts support column assembly and combined column assembly, and uses damping hinges and threaded connections to achieve structural flexibility and stability, supports the disassembly and assembly of stacked components, and ensures processing stability and quality.
It improves the efficiency and stability of mica board processing, realizes the flexibility of batch processing and the stability of structure, and simplifies the operation process.
Smart Images

Figure CN224349319U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mica board production technology, specifically to a mica board batch production stacking device. Background Technology
[0002] Mica board is a high-performance insulating and heat-insulating material, made by bonding mica paper with silicone rubber, heating, and pressing. It contains approximately 90% mica and 10% silicone rubber. Depending on the material and manufacturing process, it can be divided into rigid, flexible, and ultra-thick mica boards, and comes in gold (phlogopite) and white (white mica) colors. It is widely used in home appliances, metallurgy, chemicals, industrial electronics, and new energy fields.
[0003] Conventional stacking devices have relatively limited efficiency in processing mica sheets, making it difficult to process batches of materials simultaneously. Furthermore, their structural adjustments are quite complex, resulting in time-consuming and labor-intensive operations. Utility Model Content
[0004] The purpose of this invention is to provide a mica board mass production stacking device to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a mica board mass production stacking device, comprising a base assembly and a support column assembly. The support column assembly is vertically installed on the left and right sides of the base assembly, and a combined column assembly is vertically connected to the upper end of the support column assembly. Stacking components are connected to the surface of the combined column assembly. The support column assembly includes a column body, a fixed seat, a double-segment damping hinge, and a connecting seat. The fixed seat is provided at the bottom of the column body, and a double-segment damping hinge is installed on the upper end of the column body near the vertical central axis of the base assembly. A connecting seat is installed at the end of the double-segment damping hinge away from the column body.
[0006] Furthermore, the base assembly includes a base body, fixing angle plates, a voltage stabilizer, a voltage stabilizer groove, and a fixing interface. Fixing angle plates are installed on both the left and right sides of the base body, and a voltage stabilizer is installed in the middle of the top of the base body. A voltage stabilizer groove is opened on the middle surface of the top of the voltage stabilizer, and fixing interfaces are vertically opened at both the left and right ends of the top of the voltage stabilizer.
[0007] Furthermore, the fixing angle plate is symmetrically installed on the side of the base body, and the voltage stabilizer is fitted into the middle of the base body, and the fixing interface is set at the front and rear ends of one top end of the voltage stabilizer.
[0008] Furthermore, the fixed seat is movably installed on the surface of the top left and right ends of the base body, and the column body and the fixed seat are welded together. The double-section damping hinge is movably connected to the column body, and the connecting seat and the double-section damping hinge are fixedly connected.
[0009] Furthermore, the combined column assembly includes a docking seat, an assembly seat, and a combined column body. The bottom of the docking seat is provided with an assembly seat, and the bottom of the assembly seat is vertically mounted on the combined column body.
[0010] Furthermore, the docking seat and the assembly seat are integrally structured, and the top end of the combined column body is threadedly connected to the assembly seat, and the bottom end of the combined column body is threadedly connected to the fixing interface.
[0011] Furthermore, the stacking component includes a stacking plate, a stacking groove, an anti-stick coating, a sliding seat, and a stacking pressure plate. The top surface of the stacking plate is provided with a stacking groove, and the inner surface of the stacking groove is coated with an anti-stick coating. Sliding seats are symmetrically arranged on the left and right sides of the stacking plate, and a stacking pressure plate is provided at the bottom of the stacking plate.
[0012] Furthermore, the stacked plate, the sliding seat, and the stacked pressure plate are integrated into one structure, and the inner surface structure of the pressure stabilizing groove matches the bottom surface structure of the stacked plate. The main body of the combined column vertically penetrates one end of the sliding seat.
[0013] This utility model provides a mica board batch production stacking device, which has the following beneficial effects:
[0014] 1. In this utility model, support column assemblies are vertically installed on the top of both the left and right ends of the base assembly. The movable connection between the connecting seat and the docking seat allows the support column assembly and the combined column assembly to be structurally disassembled. The structural mobility of the double-segment damping hinge allows the docking seat and assembly seat connected to the connecting seat to be adjusted up and down within a certain angle range to facilitate structural adjustment and avoidance. This allows for the combination or disassembly of the laminated components and the combined column assembly. The above-mentioned structural design ensures the flexibility of the device structure and facilitates the adjustment and operation by the operator. On the other hand, the overall structure of the support column assembly can also provide good structural support for the combined column assembly, thereby ensuring the stability of the structure of the laminated components during the processing of mica plates.
[0015] 2. This utility model achieves both good structural disassembly and structural stability by using threaded connections between the upper and lower ends of the main body of the composite column and the mounting base and the fixing interface, respectively. After the top of the main body of the composite column is structurally separated from the mounting base, the entire stacked component is structurally connected to the main body of the composite column using sliding seats on both sides. In this way, a number of stacked components can be connected and combined with the composite column assembly within a certain range. By utilizing the structural characteristics, several stacked components can be vertically superimposed, thereby ensuring the structural stability between the superimposed stacked components. The above-mentioned structural design can achieve good batch processing of mica plates within a certain range, and at the same time, ensure the processing stability of the device structure, thereby ensuring the quality and grade of mica plate processing. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the main body of a mica board mass production stacking device according to the present invention;
[0017] Figure 2 This is a schematic diagram of the base assembly structure of a mica board mass production stacking device according to the present invention;
[0018] Figure 3 This is a three-dimensional structural diagram of the support column assembly of a mica board mass production stacking device according to the present invention;
[0019] Figure 4 This is a three-dimensional structural diagram of a combined column assembly for a mica board mass production stacking device according to the present invention.
[0020] Figure 5 This is a three-dimensional structural diagram of the stacking component of a mica board mass production stacking device according to the present invention.
[0021] In the diagram: 1. Base assembly; 101. Base body; 102. Fixed corner plate; 103. Pressure stabilizing seat; 104. Pressure stabilizing groove; 105. Fixed interface; 2. Support column assembly; 201. Column body; 202. Fixed seat; 203. Double-section damping hinge; 204. Connecting seat; 3. Combined column assembly; 301. Docking seat; 302. Assembly seat; 303. Combined column body; 4. Laminated component; 401. Laminated plate; 402. Laminated pressing groove; 403. Anti-stick coating; 404. Sliding seat; 405. Laminated pressing plate. Detailed Implementation
[0022] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.
[0023] like Figures 1 to 5 As shown, a mica board mass production stacking device includes a base assembly 1 and a support column assembly 2. Support column assemblies 2 are vertically mounted on the left and right sides of the base assembly 1, and a combined column assembly 3 is vertically connected to the upper end of the support column assembly 2. Stacking components 4 are connected to the surface of the combined column assembly 3. The support column assembly 2 includes a column body 201, a fixing seat 202, a double-segment damping hinge 203, and a connecting seat 204. The fixing seat 202 is provided at the bottom of the column body 201. A double-segment damping hinge 203 is installed on the upper end of the base assembly 1 near the vertical central axis of the base assembly 1, and a connecting seat 204 is installed on the end of the double-segment damping hinge 203 away from the column body 201. The base assembly 1 includes a base body 101, a fixing angle plate 102, a voltage stabilizing seat 103, a voltage stabilizing groove 104, and a fixing interface 105. Fixing angle plates 102 are installed on both the left and right sides of the base body 101, and a voltage stabilizing seat 103 is installed in the middle of the top of the base body 101. The middle surface of the top of the voltage stabilizing seat 103 is... The base 103 has a voltage stabilizing groove 104, and the top left and right ends of the voltage stabilizing base 103 are vertically provided with fixing interfaces 105. Fixing angle plates 102 are symmetrically installed on the sides of the base body 101, and the voltage stabilizing base 103 is fitted into the middle of the base body 101. The fixing interfaces 105 are located at the front and rear ends of one top end of the voltage stabilizing base 103. Fixing seats 202 are movably installed on the top left and right ends of the base body 101. The column body 201 and the fixing seats 202 are welded together. The segment damping hinge 203 is movably connected to the column body 201, and the connecting seat 204 and the double-segment damping hinge 203 are fixedly connected. The movable docking between the connecting seat 204 and the docking seat 301 allows the support column assembly 2 and the combined column assembly 3 to be structurally disassembled. The structural mobility of the double-segment damping hinge 203 allows the docking seat 301 and the assembly seat 302 connected to it via the connecting seat 204 to be adjusted up and down within a certain angle range.
[0024] like Figures 1 to 5As shown, the combined column assembly 3 includes a docking seat 301, an assembly seat 302, and a combined column body 303. The assembly seat 302 is provided at the bottom of the docking seat 301, and the combined column body 303 is vertically mounted on the bottom of the assembly seat 302. The docking seat 301 and the assembly seat 302 are integrally formed. The top end of the combined column body 303 is threadedly connected to the assembly seat 302, and the bottom end of the combined column body 303 is threadedly connected to the fixing interface 105. The stacked component 4 includes a stacked plate 401, a stacked pressing groove 402, an anti-stick coating 403, a sliding seat 404, and a stacked pressing plate 405. The top surface of the stacked plate 401 is provided with a stacked pressing groove 402, and the stacked pressing groove 402 is provided with a sliding seat 404. The inner surface of 2 is coated with an anti-stick coating 403, and sliding seats 404 are symmetrically arranged on the left and right sides of the stacked plate 401. A stacked pressure plate 405 is provided at the bottom of the stacked plate 401. The stacked plate 401, sliding seats 404 and stacked pressure plate 405 are integrated into one structure. The inner surface structure of the pressure stabilizing groove 104 matches the bottom surface structure of the stacked plate 401. The main body of the combined column 303 vertically penetrates one end of the sliding seat 404. By using threaded connections between the upper and lower ends of the main body of the combined column 303 and the mounting base 302 and the fixing interface 105 respectively, the structure has both good structural disassembly and stability of structural connection and assembly.
[0025] In summary, as Figures 1 to 5 As shown, the mica plate mass production stacking device is used by first fixing the entire base assembly 1 to the mounting structure surface using the fixing angle plates 102 on both sides of the base body 101 and bolts. At the same time, the column body 201 is vertically fixed to the top two ends of the base body 101 using the fixing seat 202 at the bottom. The lower end of the combined column body 303 is connected to the fixing interface 105 by screwing.
[0026] Then, one section of the double-segment damping hinge 203 is connected and combined with the connecting seat 204 and the docking seat 301. At the same time, an appropriate number of stacked components 4 are combined by using the sliding seats 404 on both sides of the stacked plate 401 and the main body of the combined column 303. In this way, several stacked components 4 are stacked and combined one by one on the surface of the combined column assembly 3, and it is convenient to align the stacked pressure plate 405 at the bottom of one set of stacked plates 401 with the stacked pressure groove 402 at the top of another set of stacked plates 401.
[0027] Subsequently, the top of the main column 303 and the bottom of the docking seat 301 are connected by screwing. At the same time, the bottommost stacked component 4 is connected to the pressure stabilizing groove 104 on the top surface of the pressure stabilizing seat 103 by the stacked pressure plate 405 at the bottom of the stacked plate 401 to ensure the stability of the structure.
[0028] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.
Claims
1. A mica board mass production stacking device, comprising a base assembly (1) and a support column assembly (2), characterized in that: The base assembly (1) is vertically mounted with support column assemblies (2) on the left and right sides, and the upper end of the support column assembly (2) is vertically connected with a combined column assembly (3), and the surface of the combined column assembly (3) is connected with a stacked member (4). The support column assembly (2) includes a column body (201), a fixed seat (202), a double-segment damping hinge (203) and a connecting seat (204). The bottom of the column body (201) is provided with a fixed seat (202), and the upper end of the column body (201) is equipped with a double-segment damping hinge (203) on the side close to the vertical central axis of the base assembly (1), and the end of the double-segment damping hinge (203) away from the column body (201) is equipped with a connecting seat (204).
2. The mica board batch production stacking device according to claim 1, characterized in that, The base assembly (1) includes a base body (101), a fixing angle plate (102), a voltage stabilizer (103), a voltage stabilizer groove (104), and a fixing interface (105). The fixing angle plates (102) are installed on both the left and right sides of the base body (101), and the voltage stabilizer (103) is installed in the middle of the top of the base body (101). The voltage stabilizer groove (104) is opened on the middle surface of the top of the voltage stabilizer (103), and the fixing interface (105) is vertically opened at both the left and right ends of the top of the voltage stabilizer (103).
3. The mica board batch production stacking device according to claim 2, characterized in that, The fixed angle plate (102) is symmetrically installed on the side of the base body (101), and the voltage stabilizer (103) is fitted in the middle of the base body (101). The fixed interface (105) is set at the front and rear ends of the top end of the voltage stabilizer (103).
4. The mica board batch production stacking device according to claim 2, characterized in that, The fixed seat (202) is movably installed on the surface of the top left and right ends of the base body (101), and the column body (201) and the fixed seat (202) are welded together. The double-section damping hinge (203) is movably connected to the column body (201), and the connecting seat (204) and the double-section damping hinge (203) are fixedly connected.
5. A mica board batch production stacking device according to claim 2, characterized in that, The combined column assembly (3) includes a docking seat (301), an assembly seat (302) and a combined column body (303). The bottom of the docking seat (301) is provided with the assembly seat (302), and the bottom of the assembly seat (302) is vertically mounted with the combined column body (303).
6. The mica board batch production stacking device according to claim 5, characterized in that, The docking seat (301) and the assembly seat (302) are integrated into one structure, and the top of the combined column body (303) is threadedly connected to the assembly seat (302), and the bottom of the combined column body (303) is threadedly connected to the fixed interface (105).
7. A mica board batch production stacking device according to claim 5, characterized in that, The stacked component (4) includes a stacked plate (401), a stacked pressing groove (402), an anti-stick coating (403), a sliding seat (404), and a stacked pressing plate (405). The stacked plate (401) has a stacked pressing groove (402) on its top surface, and the inner surface of the stacked pressing groove (402) is coated with an anti-stick coating (403). Sliding seats (404) are symmetrically arranged on the left and right sides of the stacked plate (401), and a stacked pressing plate (405) is arranged at the bottom of the stacked plate (401).
8. A mica board batch production stacking device according to claim 7, characterized in that, The stacked plate (401), the sliding seat (404) and the stacked pressure plate (405) are integrated into one structure, and the inner surface structure of the pressure stabilizing groove (104) matches the bottom surface structure of the stacked plate (401). The main body of the combined column (303) penetrates vertically through one end of the sliding seat (404).