Heat-resistant fiber sheet with stable pressure string
By incorporating connecting seats, abutment ring seats, and supporting columns into the fiber sheet body, the problem of cumbersome assembly and disassembly of fiber sheets and fiber rollers is solved, enabling convenient assembly and disassembly and improving compressive strength and heat dissipation. This method is suitable for connecting fiber sheets to fiber rollers.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-29
- Publication Date
- 2026-04-03
AI Technical Summary
The existing connection structure between fiber sheets and fiber rollers is cumbersome to disassemble and assemble, resulting in low disassembly and assembly efficiency and increased labor intensity for operators.
The design employs a heat-resistant fiber sheet with stable pressure resistance. By incorporating structures such as connecting seats, abutment ring seats, holding columns, and splicing sliders within the fiber sheet body, the fiber sheet and fiber roller can be easily assembled and disassembled. The fiber composite layer enhances the compressive strength and heat dissipation.
It enables convenient assembly and disassembly of fiber sheets and fiber rollers, improves assembly and disassembly efficiency, reduces the labor intensity of operators, and improves compressive strength and heat dissipation through the composite layer of heat-resistant fiber and high-stability resin.
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Figure CN224075195U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of fiber sheet technology, and specifically relates to a heat-resistant fiber sheet with stable voltage transmission. Background Technology
[0002] Fiber sheets are processing tools used in conjunction with fiber rollers during production. The fiber rollers provide support and facilitate rotation, while the fiber sheets come into direct contact with external objects. Therefore, the fiber sheets experience wear and tear, necessitating periodic maintenance and replacement. This involves the disassembly and reassembly of the fiber sheets at the fiber roller. A common connection structure between the fiber sheet and the fiber roller is a sleeve joint, where the fiber sheet is fitted onto the fiber roller shaft. Disassembly and reassembly require completely removing the connection structure at one end of the fiber roller, then removing the fiber sheet to replace it, and then reassembling the fiber sheet and fiber roller in the reverse order. This entire disassembly and reassembly process is quite cumbersome, reducing efficiency and increasing the workload for operators.
[0003] In summary, the inconvenient assembly and disassembly of fiber sheets present some problems in use. Therefore, it is hoped that a new structure can be proposed to solve the above-mentioned technical problems. Utility Model Content
[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a heat-resistant fiber sheet with stable voltage transmission, thereby solving the problems mentioned in the background art.
[0005] This utility model is achieved through the following technical solution: a heat-resistant fiber sheet with stable pressure, comprising: a fiber sheet body, wherein a connecting seat for connection and installation is provided in the fiber sheet body, an abutment ring seat is fixedly connected to the left side of the connecting seat near the center of the fiber sheet body, an abutment ring groove is opened at the left side of the connecting seat away from the center of the fiber sheet body, a set of supporting columns are fixedly connected to both the front and rear ends of the right side of the connecting seat, a fiber sheet inner seat one is connected to the fiber sheet body near the center of the fiber sheet body, a fiber roller is provided at the end of the fiber sheet inner seat one near the center of the fiber sheet body, a fiber sheet inner seat two is provided on the other side of the fiber roller, a set of splicing sliders is fixedly connected to both the front and rear sides of the side of the fiber sheet inner seat one near the fiber roller, and a splicing groove is opened on the side of the fiber sheet inner seat two near the fiber roller.
[0006] In a preferred embodiment, a first holding hole is provided on the left side of the connecting seat at the center of the same circle as the holding column, and an outer ring groove is provided on the outer periphery of the right side of the first fiber sheet inner seat and the second fiber sheet inner seat.
[0007] In a preferred embodiment, the right side of the fiber sheet inner seat 1 and the fiber sheet inner seat 2 is provided with an inner ring groove for abutting the outer ring groove. A set of holding holes 2 are formed by vertical penetration on both the front and rear sides of the right side of the inner ring groove for abutting the outer ring groove.
[0008] In a preferred embodiment, the abutting ring seat and the abutting inner ring groove are fitted together, and the abutting ring groove and the abutting outer ring groove are fitted together. The holding post passes through the holding hole one and the holding hole two. In the connection between the fiber sheet body and the fiber sheet inner seat one or the fiber sheet inner seat two, the holding post is fitted together with the holding hole one and the holding hole two, and the relative circumferential position is positioned.
[0009] In a preferred embodiment, the splicing slider and the splicing groove are movably engaged with each other, and the fiber sheet body, the first fiber sheet inner seat, and the second fiber sheet inner seat are all semi-circular ring structures, so that the splicing slider and the splicing groove are engaged with each other to complete the splicing of the first fiber sheet inner seat and the second fiber sheet inner seat.
[0010] In a preferred embodiment, both ends of the fiber sheet inner seat 1 and the fiber sheet inner seat 2 are interconnected and have annular through holes for auxiliary heat dissipation. The outer sides of the fiber sheet inner seat 1 and the fiber sheet inner seat 2 are provided with a number of sets of external heat dissipation holes that are evenly distributed in a circle.
[0011] In a preferred embodiment, the outer heat dissipation holes are formed by vertically penetrating the outer periphery of the left side of the fiber sheet inner seat 1 and the fiber sheet inner seat 2, forming a plurality of circumferentially distributed side heat dissipation holes 1. The outer heat dissipation holes and the side heat dissipation holes 1 are all interconnected with the annular through hole.
[0012] In a preferred embodiment, the right side of the connector is vertically formed with several sets of side heat dissipation holes II at the abutment ring groove position. The side heat dissipation holes II and the side heat dissipation holes I are at the same center position. A fiber sheet outer ring is fixedly connected to the outside of the connector. The side heat dissipation holes I and II are connected and extend to both ends to form a heat dissipation channel, and are connected to the outer heat dissipation hole through the annular through hole to assist in heat dissipation during use.
[0013] In a preferred embodiment, a fiber composite layer for achieving voltage stabilization is provided in the outer ring of the fiber sheet. The fiber composite layer is made of heat-resistant fiber and high-stability resin, and an inner stabilizing layer is fixedly connected to the inner side of the fiber composite layer.
[0014] The inner stabilizing layer is made of nano-calcium carbonate material, and a ceramic fiber layer is fixedly connected to the inner side of the inner stabilizing layer. A carbon fiber layer is fixedly connected to the inner side of the ceramic fiber layer. The fiber composite layer is made of heat-resistant fiber and high-stability resin, which improves the compressive strength and voltage stability during use.
[0015] After adopting the above technical solution, the beneficial effects of this utility model are:
[0016] 1. By adding a fiber sheet body, a fiber sheet inner seat one, and a fiber sheet inner seat two, the fiber sheet body one abuts against the outside of the fiber sheet inner seat one or the fiber sheet inner seat two, so that the splicing slider and the splicing groove splice the fiber sheet inner seat one and the fiber sheet inner seat two into a ring structure and fit it onto the outside of the fiber roller. The holding column completes the relative positioning of the fiber sheet body and the fiber sheet inner seat one and the fiber sheet inner seat two. During disassembly and assembly, it is not necessary to remove the entire fiber sheet body, thus achieving the effect of convenient disassembly and assembly.
[0017] 2. By adding the fiber sheet body, fiber sheet inner seat one, and fiber sheet inner seat two, the performance can be improved. Attached Figure Description
[0018] To more clearly illustrate the technical solutions in the embodiments of this utility model 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 only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0019] Figure 1 This is a schematic diagram of the overall structure of a heat-resistant fiber sheet with stable voltage transmission according to this utility model.
[0020] Figure 2 This is a schematic diagram of the left side structure of the fiber sheet body in the heat-resistant fiber sheet with stable voltage according to this utility model.
[0021] Figure 3 This is a schematic diagram of the right side of the fiber sheet body in the heat-resistant fiber sheet with stable voltage transmission according to this utility model.
[0022] Figure 4 This is a cross-sectional schematic diagram of the fiber sheet body in the heat-resistant fiber sheet with stable voltage according to this utility model.
[0023] Figure 5 This is a schematic diagram of the structure of the inner seat of the fiber sheet in the heat-resistant fiber sheet with stable voltage transmission according to this utility model.
[0024] Figure 6 This is a schematic diagram of the structure of the inner seat of the fiber sheet in the heat-resistant fiber sheet with stable voltage transmission according to this utility model.
[0025] In the figure, 100-fiber sheet body, 101-fiber sheet outer ring, 102-connecting seat, 103-abutting ring groove, 104-abutting ring seat, 105-side heat dissipation hole two, 106-supporting hole one, 107-supporting post;
[0026] 200-Fiber sheet inner seat one, 201-Splicing slider, 202-Abutting outer ring groove, 203-Abutting inner ring groove, 204-Annular through hole, 205-Side heat dissipation hole one, 206-Outer heat dissipation hole, 207-Holding hole two;
[0027] 300-Fiber sheet inner seat II; 301-Splicing slide groove;
[0028] 400-fiber roller;
[0029] 101a - Fiber composite layer, 101b - Internal stabilizing layer, 101c - Ceramic fiber layer, 101d - Carbon fiber layer. Detailed Implementation
[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0031] Please see Figures 1 to 6 This utility model provides a technical solution: a heat-resistant fiber sheet with stable voltage, comprising: a fiber sheet body 100, a connecting seat 102 for connection and installation in the fiber sheet body 100, and an abutment ring seat 104 fixedly connected to one end of the left side of the connecting seat 102 near the center of the fiber sheet body 100.
[0032] A contacting annular groove 103 is provided on the left side of the connector 102 away from the center of the fiber sheet body 100. A set of supporting columns 107 are fixedly connected to both the front and rear ends of the right side of the connector 102. A fiber sheet inner seat 200 is connected to the end of the fiber sheet body 100 near the center of the fiber sheet body 100.
[0033] A fiber roll 400 is provided at one end of the fiber sheet inner seat 200 near the center of the fiber sheet body 100, and a fiber sheet inner seat 300 is provided on the other side of the fiber roll 400. A set of splicing sliders 201 are fixedly connected to both the front and rear sides of the side of the fiber sheet inner seat 200 near the fiber roll 400, and a splicing groove 301 is opened on the side of the fiber sheet inner seat 300 near the fiber roll 400.
[0034] A first holding hole 106 is provided on the left side of the connecting seat 102 and at the center of the holding column 107. An outer ring groove 202 is provided on the outer periphery of the right side of the fiber sheet inner seat 200 and the second fiber sheet inner seat 300.
[0035] The right side of the fiber sheet inner seat 1 200 and the fiber sheet inner seat 2 300 is located within the outer ring groove 202 and is also provided with an inner ring groove 203. The right side of the inner ring groove 203 is vertically penetrated on both the front and back sides to form a set of holding holes 207.
[0036] The abutting ring seat 104 and the abutting inner ring groove 203 are mutually engaged, and the abutting ring groove 103 and the abutting outer ring groove 202 are mutually engaged. The holding post 107 passes through the holding hole 106 and the holding hole 207. In the connection between the fiber sheet body 100 and the fiber sheet inner seat 100 or the fiber sheet inner seat 200, the holding post 107 and the holding hole 106 and the holding hole 207 are mutually engaged, and the relative circumferential position is positioned.
[0037] The splicing slider 201 and the splicing groove 301 are mutually movable and interlocked. The fiber sheet body 100, the fiber sheet inner seat 1 200 and the fiber sheet inner seat 2 300 are all semi-circular ring structures, so that the splicing slider 201 and the splicing groove 301 are mutually interlocked, and the splicing of the fiber sheet inner seat 1 200 and the fiber sheet inner seat 2 300 is completed.
[0038] Please see Figures 1-3 and Figures 5-6 As the first embodiment of this utility model: First, the user engages both the fiber sheet inner seat 200 and the fiber sheet inner seat 300 on the outside of the fiber roller 400, arranging them symmetrically. Then, the splicing slider 201 and the splicing groove 301 are interlocked to complete the splicing of the fiber sheet inner seat 200 and the fiber sheet inner seat 300. Next, the fiber sheet body 100 is respectively fitted onto the outside of the fiber sheet inner seat 200 and the fiber sheet inner seat 300. The abutment ring seat 104 and the abutment inner ring groove 203 are fitted together, and the abutment ring groove 103 and the abutment outer ring groove 202 are mated together. During splicing, the support column 107, support hole one 106 and support hole two 207 are all fitted together to position the relative circumference. After several sets of mating splices are completed, one end of the fiber roller 400 is connected to the installation structure for compression. In subsequent disassembly and assembly, there is no need to disassemble and replace all parts, thus achieving the effect of convenient disassembly and assembly.
[0039] Both ends of the fiber sheet inner seat 1 200 and the fiber sheet inner seat 2 300 are interconnected and have annular through holes 204 for auxiliary heat dissipation. The outer sides of the fiber sheet inner seat 1 200 and the fiber sheet inner seat 2 300 have several sets of external heat dissipation holes 206 that are evenly distributed in a circle.
[0040] Several side heat dissipation holes 205 are formed by vertically penetrating the outer periphery of the left side of the inner seat 200 and the inner seat 300 of the fiber sheet. The outer heat dissipation hole 206 and the side heat dissipation hole 205 are all connected to the annular through hole 204.
[0041] Several sets of side heat dissipation holes 105 are vertically formed at the position of the abutment ring groove 103 on the right side of the connecting seat 102. The side heat dissipation holes 105 and the side heat dissipation holes 205 are at the same center position. A fiber sheet outer ring 101 is fixedly connected to the outside of the connecting seat 102. The side heat dissipation holes 205 and the side heat dissipation holes 105 are connected and extend to both ends to form a heat dissipation channel. The channel is also connected to the outer heat dissipation hole 206 through the annular through hole 204 to assist in heat dissipation during use.
[0042] A fiber composite layer 101a is provided in the outer ring 101 of the fiber sheet to achieve voltage stability. The fiber composite layer 101a is made of heat-resistant fiber and high-stability resin. An inner stabilizing layer 101b is fixedly connected to the inner side of the fiber composite layer 101a.
[0043] The inner stabilizing layer 101b is made of nano-calcium carbonate material. A ceramic fiber layer 101c is fixedly connected to the inner side of the inner stabilizing layer 101b. A carbon fiber layer 101d is fixedly connected to the inner side of the ceramic fiber layer 101c. The fiber composite layer 101a is made of heat-resistant fiber and high-stability resin, which improves the compressive strength and voltage stability during use.
[0044] Please see Figures 1-4 As a second embodiment of this utility model: Based on the first embodiment above, the outer ring 101 of the fiber sheet is made of a multi-layer structure. The outermost layer is a fiber composite layer 101a, which is made of heat-resistant fiber and high-stability resin. In use, it improves the compressive strength and stress stability. The inner stabilizing layer 101b with added nano-calcium carbonate material can improve the mechanical strength and heat conduction uniformity of the fiber sheet and avoid stress concentration caused by local overheating. The ceramic fiber layer 101c improves the heat resistance, and the carbon fiber layer 101d provides structural strength and rigidity, ensuring that the overall structure remains stable in a high-temperature environment, thereby improving the performance.
[0045] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A string-stable heat-resistant fiber sheet comprising: Fiber sheet body (100), it is characterized by: the fiber sheet body (100) is equipped with a connecting seat (102) for connecting installation, the left side of the connecting seat (102) is fixedly connected with the abutment ring seat (104) near the center one end of the fiber sheet body (100); The left side of the connecting seat (102) is provided with an abutment ring groove (103) away from the center one end of the fiber sheet body (100), and a group of holding columns (107) are fixedly connected to the right side of the connecting seat (102) front and back; the fiber sheet body (100) is connected with the fiber sheet inner seat one (200) near the center one end of the fiber sheet body (100); The fiber sheet inner seat one (200) is provided with a fiber roller (400) near the center one end of the fiber sheet body (100), and the other side of the fiber roller (400) is provided with a fiber sheet inner seat two (300); a group of splicing sliding blocks (201) are fixedly connected to the side surface of the fiber sheet inner seat one (200) near the center one end of the fiber roller (400) front and back; the fiber sheet inner seat two (300) is provided with a splicing sliding groove (301) on the side surface near the center one end of the fiber roller (400).
2. A heat resistant fiber sheet stabilized by string pressing according to claim 1, wherein: The left side of the connecting seat (102) and the holding column (107) are provided with a holding hole one (106) at the same center, and the right side of the fiber sheet inner seat one (200) and the fiber sheet inner seat two (300) are provided with an abutment outer ring groove (202) peripherally.
3. A heat resistant fiber sheet stabilized by string pressing according to claim 2, wherein: The right side of the fiber sheet inner seat one (200) and the fiber sheet inner seat two (300) is further provided with an abutment inner ring groove (203) in the inner periphery of the abutment outer ring groove (202), and the right side of the abutment inner ring groove (203) is vertically penetrated to form a group of holding holes two (207) front and back.
4. A heat resistant fiber sheet stabilized by string pressing according to claim 3, wherein: The abutment ring seat (104) and the abutment inner ring groove (203) are mutually embedded, and the abutment ring groove (103) and the abutment outer ring groove (202) are mutually embedded, and the holding column (107) passes through the holding hole one (106) and the holding hole two (207).
5. A heat resistant fiber sheet stabilized by string pressing according to claim 4, wherein: The splicing sliding block (201) and the splicing sliding groove (301) are mutually movably embedded, and the fiber sheet body (100), the fiber sheet inner seat one (200) and the fiber sheet inner seat two (300) are all semicircular ring structures.
6. A heat resistant fiber sheet stabilized by string pressing according to claim 1, wherein: The left side of the fiber sheet inner seat one (200) and the fiber sheet inner seat two (300) is provided with a circular through hole (204) for auxiliary heat dissipation, which is mutually communicated, and a plurality of groups of circumferentially equidistributed outer heat dissipation holes (206) are provided on the outer side of the fiber sheet inner seat one (200) and the fiber sheet inner seat two (300).
7. A heat resistant fiber sheet stabilized by string pressing according to claim 6, wherein: The left side of the fiber sheet inner seat one (200) and the fiber sheet inner seat two (300) is vertically penetrated to form a plurality of groups of circumferentially equidistributed side heat dissipation holes one (205) peripherally, and the outer heat dissipation holes (206) and the side heat dissipation holes one (205) are mutually communicated with the circular through hole (204).
8. A heat resistant fiber sheet stabilized by string pressing according to claim 7, wherein: The right side surface of the connecting seat (102) is vertically penetrated to form a plurality of groups of side heat dissipation holes two (105) at the position of abutting with the ring groove (103), the side heat dissipation holes two (105) and the side heat dissipation holes one (205) are in the same center position, and the connecting seat (102) is fixedly connected with the fiber sheet outer ring (101) outside.
9. A heat resistant fiber sheet stabilized by string pressing according to claim 8, characterized by: The fiber sheet outer ring (101) is provided with a fiber composite layer (101a) for realizing string voltage stabilization, the fiber composite layer (101a) is made of heat-resistant fiber and high-stability resin, and the inner side of the fiber composite layer (101a) is fixedly connected with an inner stabilization layer (101b). The inner stabilization layer (101b) is made by adding nano calcium carbonate material inside, the inner side of the inner stabilization layer (101b) is fixedly connected with a ceramic fiber layer (101c), and the inner side of the ceramic fiber layer (101c) is fixedly connected with a carbon fiber layer (101d).