Adjustable mounting structure for graphite composite microcrystal heating plate
The adjustable installation structure design enables rapid installation and flexible adjustment of the graphite composite microcrystalline heating plate, solving the problems of slow installation speed and difficulty in spacing adjustment in the existing technology, and improving installation efficiency and adaptability.
Patent Information
- Application Number
- CN202310824076.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-19
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2042-10-19
AI Technical Summary
The existing installation method for graphite composite microcrystalline heating plates is slow and difficult to adjust the spacing between heating plates, resulting in low installation efficiency and inconvenience for adjustment according to needs.
It adopts an adjustable installation structure, including a support column, a long cylinder, a connecting seat, a sliding cylinder, and an adjusting cylinder. The design of the locking block, slider, and spring enables quick installation and disassembly, and the spacing of the heating plates can be adjusted by the adjusting cylinder. Flexible adjustment is achieved by the cooperation of bearings and springs.
It improves the speed of heating plate installation and removal, facilitates the adjustment of heating plate spacing according to needs, avoids damage to other components due to excessive temperature, and enhances the flexibility and adaptability of installation.
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Figure CN116744485B_ABST
Abstract
Description
[0001] The application is a divisional application, the original application has the application number of "202211277599.4", the application date of "2022.10.19", and the invention name of "Graphite composite material microcrystalline heating module and graphite composite material microcrystalline heating plate". TECHNICAL FIELD
[0002] The application relates to the field of heating plates, in particular to an adjustable mounting structure of a graphite composite material microcrystalline heating plate. BACKGROUND
[0003] The graphite composite material microcrystalline heating plate generates far infrared rays through a graphene heating chip after being powered on. When the wavelength of the emitted far infrared rays is consistent with the absorption wavelength of the heated object, the molecules or atoms in the heated object absorb the far infrared ray energy to produce strong vibration, promote the "resonance" of the molecules and atoms in the object, and make the molecules and atoms in the object collide at high speed to generate heat. The heating module is a certain heating through the simultaneous work of multiple microcrystalline heating plates. It is commonly used for indoor heating in cold regions, indoor heating in polar scientific research stations, and industrial product baking. However, the microcrystalline heating plates in the existing heating module are directly fixed on the corresponding brackets through threads or welding. The installation and disassembly are slow and inefficient. Moreover, once fixed, it is difficult to adjust the distance between the heating plates, and the distance between the heating plates cannot be adjusted according to the installation requirements.
[0004] Therefore, it is necessary to provide an adjustable mounting structure of a graphite composite material microcrystalline heating plate to solve the above technical problems. SUMMARY
[0005] To solve the above technical problems, the application provides an adjustable mounting structure of a graphite composite material microcrystalline heating plate, which is convenient to use and adjust.
[0006] The application also provides an adjustable mounting structure of a graphite composite material microcrystalline heating plate. The bottom of the graphite composite material microcrystalline heating plate is provided with grooves at both sides at equal intervals. The adjustable mounting structure comprises support columns, long barrels, connecting seats, sliding barrels and adjusting barrels.
[0007] Three support columns and one long barrel are connected to the four corners of the connecting seat respectively. The long barrels are slidably connected with adjusting barrels at equal intervals on the outer side. The adjusting barrels are rotatably connected to the inner corner of the corresponding connecting seat through bearings. The sliding barrels are slidably connected to the outer side of the corresponding support columns.
[0008] The movable holes are equidistantly arranged on the top of the connecting seat, the sliding blocks are slidably connected in the movable holes, the clamping blocks are fixedly connected on the top of the sliding blocks, the top of the clamping block is circular table shape, the recess is driven to slide the sliding block by extruding the clamping block, so that the clamping block is clamped with the corresponding recess, and the connecting plates are arranged on the both sides of the bottom of the connecting seat.
[0009] In the present application, the connecting blocks are fixedly connected on the bottom of the connecting plate, the fixed blocks are equidistantly fixedly connected on the bottom of the connecting seat, the limiting rods are slidably inserted into the fixed blocks, the opposite ends of the limiting rods are fixedly connected with the corresponding connecting blocks, the first springs are sleeved on the outer sides of the limiting rods, and the opposite ends of the first springs are fixedly connected with the corresponding connecting blocks and fixed blocks.
[0010] Wherein, the opposite ends of the limiting rods are fixedly connected with the blocking plates.
[0011] In addition, the opposite sides of the connecting plate are fixedly connected with the adjusting plates.
[0012] In the present application, the outer sides of the long barrels are provided with strip grooves, the outer sides of the long barrels are equidistantly provided with transverse grooves and bending grooves, and the transverse grooves and the bending grooves are communicated with the corresponding strip grooves at one end.
[0013] The outer sides of the adjusting barrels are provided with waist holes, the sliding rods are slidably connected in the waist holes, the sliding rods are slidably connected with the corresponding bending grooves, the fixed rods are fixedly connected on the inner walls of the adjusting barrels, the fixed rods are slidably connected with the corresponding transverse grooves, the opposite ends of the sliding rods and the fixed rods are fixedly connected with the movable blocks, the movable blocks are slidably connected in the corresponding long barrels, the second springs are equidistantly arranged in the long barrels, and the opposite ends of the second springs are fixedly connected with the corresponding movable blocks.
[0014] Further, the opposite ends of the sliding rods away from the movable blocks are fixedly connected with the pushing plates.
[0015] In the present application, the graphite composite material microcrystalline heating plate comprises a shell and a heating plate substrate embedded and fixed in the shell, the recesses are arranged on the both sides of the bottom of the shell, the shell is provided with a wiring port on one side, the heating plate substrate is electrically connected with the wiring port, and a ceramic nut penetrates one side of the top of the heating plate substrate and is threadedly connected with the shell.
[0016] Further, the shell comprises a bearing shell and a connecting shell, one end of the bearing shell and one end of the connecting shell are rotationally connected through a first rotating shaft, the recesses are arranged on the connecting shell, and the heating plate substrate is embedded and fixed on the bearing shell.
[0017] Further, two ends of the connecting shell away from the first rotating shaft are respectively rotationally connected with a support rod, the support rod is rotationally connected with the connecting shell through a second rotating shaft, the support rod is used for supporting between the bearing shell and the connecting shell, and an end of the support rod away from the second rotating shaft is provided with a fixing shaft for supporting the bearing shell;
[0018] A telescopic rod is connected between the two support rods, the telescopic rod comprises a main rod and movable rods slidably sleeved at two ends of the main rod, the movable rods are rotationally connected with the end of the support rod away from the second rotating shaft, and the main rod is provided with a button for controlling extension and contraction of the movable rods;
[0019] The button is rotationally connected on the main rod, a torsional spring is connected between the button and the main rod, the torsional spring is sleeved on the rotating shaft between the button and the main rod, and the elastic force of the torsional spring enables the button to rotate to frictionally contact the movable rods, so that extension and contraction of the movable rods is limited.
[0020] Compared with the related art, the graphite composite microcrystal heating module has the following beneficial effects:
[0021] 1、The graphite composite microcrystal heating module can push the shell into the corresponding connecting seat, enable the clamping block of the connecting seat to be clamped into the corresponding groove by the pressing mode, install the heating plate on the connecting seat, press the adjusting piece to separate the clamping block from the groove when disassembling, and then the heating plate can be disassembled from the connecting seat, so that the installation and disassembly speed is improved, and the heating plate in the heating module can be more conveniently installed and replaced.
[0022] 2、The graphite composite microcrystal heating module can adjust the distance between the heating plates by adjusting the adjusting cylinder on the connecting seat, moving to the corresponding height, adjusting the distance between the connecting seats, and adjusting the distance between the heating plates, so that the distance is not too tight, the temperature is not too high, and other components are not damaged, and the distance between the heating plates can be conveniently adjusted according to different requirements. BRIEF DESCRIPTION OF DRAWINGS
[0023] Figure 1 The structure schematic view of the graphite composite microcrystal heating plate of the first embodiment of the graphite composite microcrystal heating plate is provided.
[0024] Figure 2 The structure schematic view of the graphite composite microcrystal heating plate provided on the adjustable mounting structure of the graphite composite microcrystal heating plate is provided.
[0025] Figure 3 The structure schematic view of the graphite composite microcrystal heating module is provided.
[0026] Figure 4 A schematic diagram of the adjustable mounting structure of a graphite composite microcrystalline heating plate;
[0027] Figure 5 for Figure 4 A schematic diagram of the bottom structure of the connector shown;
[0028] Figure 6 for Figure 5 The diagram shows the structure of the connecting piece;
[0029] Figure 7 for Figure 4 The diagram shows the structure of the long cylinder.
[0030] Figure 8 for Figure 4 The diagram shows a cross-sectional view of the regulating cylinder.
[0031] Figure 9 for Figure 4 A schematic diagram of a partial structure of the elongated cylinder shown;
[0032] Figure 10 A schematic diagram of the structure of a second embodiment of the graphite composite microcrystalline heating plate provided by the present invention;
[0033] Figure 11 for Figure 10 Enlarged view of the local structure at point A;
[0034] Figure 12 for Figure 10 A schematic diagram of the support rod in the middle;
[0035] Figure 13 for Figure 10 A schematic diagram illustrating the control principle of the telescopic rod.
[0036] The following are the labeling elements in the diagram: 1. Shell; 2. Heating plate base; 3. Wiring port; 4. Groove; 5. Ceramic nut; 6. Base plate; 7. Support column; 8. Long cylinder; 9. Strip groove; 10. Connecting seat; 11. Sliding cylinder; 12. Adjusting cylinder; 13. Mounting hole; 14. Locking block; 15. Movable hole; 16. Horizontal groove; 17. Bending groove; 18. Connecting piece; 19. Adjusting piece; 20. Connecting block; 21. Fixing block; 22. Limiting rod; 23. First spring; 24. Baffle; 25. Sliding block; 26. Pushing piece; 27. Waist-shaped hole; 28. Sliding rod; 29. Fixing rod; 30. Movable block; 31. Second spring. 32. Telescopic rod; 33. Support rod; 101. Bearing shell; 102. Connecting shell; 103. First rotating shaft; 321. Main rod; 322. Movable rod; 323. Button; 331. Second rotating shaft; 332. Fixed shaft; 324. Torsion spring. DETAILED DESCRIPTION
[0037] In order to make the objects, technical solutions and advantages of the present application clearer, the present application will be further described in detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and not intended to limit the present application.
[0038] The following is a first embodiment of a graphite composite microcrystalline heating module provided by the present application to describe the specific implementation of the present application in detail.
[0039] Please refer to Figures 1 to 3 The graphite composite microcrystalline heating module provided by the embodiment of the present application includes a plurality of graphite composite microcrystalline heating plates arranged at equal intervals, and further includes a bottom plate 6, a support column 7, a long barrel 8, a connecting seat 10, a sliding barrel 11 and an adjusting barrel 12.
[0040] The graphite composite microcrystalline heating plate includes a shell 1, a heating plate substrate 2 and ceramic nuts 5. The shell 1 has grooves 4 at equal intervals on both sides of the bottom, and a wiring port 3 is formed on one side of the shell 1. The heating plate substrate 2 is embedded and fixed inside the shell 1, and two ceramic nuts 5 are provided and threadedly connected to one side of the top of the heating plate substrate 2.
[0041] It should be noted that the heating plate substrate 2 inside the shell 1 generates far infrared rays when powered on to heat the outside after the internal graphene heating chip is powered on. The ceramic nuts 5 on the heating plate substrate 2 facilitate the connection of the circuit, and the ceramic material has good insulation and high safety.
[0042] The heating plate substrate 2 uses microcrystalline glass as a base material, and silver paste that can be welded is printed on the microcrystalline glass by screen printing. Then the product with silver paste printed on it is placed in an oven for baking and curing. After the baked product is taken out, graphene composite material paste is printed on the side with silver paste lines by screen printing and fully covers it. Then the product is sent to a tunnel sintering furnace for baking, so that the graphene composite material and the microcrystalline glass are co-melted and form a close bond.
[0043] The graphene composite material is mainly composed of nanoscale graphene, silicon carbide, glass powder, graphite powder and water-based epoxy resin.
[0044] In the embodiment, the bottom plate 6 top is equidistantly provided with connecting seats 10, both sides of the bottom plate 6 top are equidistantly fixedly connected with long barrels 8, the outer sides of the long barrels 8 are equidistantly and slidably connected with adjusting barrels 12, the adjusting barrels 12 are rotatably connected in the inner corners of the corresponding connecting seats 10, the other three inner corners of the connecting seats 10 are fixedly embedded with slide barrels 11, the outer sides of the long barrels 8 located at the other three corners of the corresponding connecting seats 10 are provided with support columns 7, the slide barrels 11 are slidably connected outside the corresponding support columns 7, the bottom ends of the support columns 7 are fixedly connected with the bottom plate 6, both sides of the connecting seat 10 top are equidistantly provided with movable holes 15, the movable holes 15 are slidably connected with sliding blocks 25, the sliding blocks 25 are fixedly connected with clamping blocks 14 on the top, the clamping blocks 14 are clamped with the corresponding grooves 4, both sides of the connecting seat 10 bottom are provided with connecting pieces 18, the bottom of the clamping block 14 is fixedly connected with the corresponding connecting piece 18;
[0045] It should be noted that when installing, the shell 1 can be pushed into the corresponding connecting seat 10, the groove 4 on the shell 1 is pressed to face the clamping block 14 on the connecting seat 10, the groove 4 extrudes the clamping block 14 on the top to drive the sliding block 25 to slide, the clamping block 14 is gradually disengaged from the groove 4, and at the same time, under the driving of the sliding block 25, the connecting block 20 pushes the limiting rod 22, extrudes the first spring 23 to shrink, when the groove 4 extrudes the clamping block 14 to the bottom of the shell 1 and contacts the connecting seat 10, under the elastic force of the first spring 23, the connecting piece 18 is driven by the connecting block 20 to make the sliding block 25 slide, the clamping block 14 of the connecting seat 10 is clamped into the corresponding groove 4, the heating plate is installed on the connecting seat 10, and when disassembling, the clamping block 14 is separated from the groove 4 by pressing the adjusting piece 19, so that the heating plate can be disassembled from the connecting seat 10, the installation and disassembly speed is improved, and the heating plate in the heating module can be more conveniently installed and replaced;
[0046] In the embodiment of the application, please refer to Figure 5 and Figure 6 The bottom of the connecting piece 18 is fixedly connected with the connecting block 20, the bottom of the connecting seat 10 is equidistantly fixedly connected with the fixed block 21, the inner part of the fixed block 21 is slidably inserted with the limiting rod 22, the opposite end of the limiting rod 22 is fixedly connected with the corresponding connecting block 20, the outer side of the limiting rod 22 is sleeved with the first spring 23, the two ends of the first spring 23 are respectively fixedly connected with the corresponding connecting block 20 and the fixed block 21, the opposite end of the limiting rod 22 is fixedly connected with the baffle 24, and the opposite side of the connecting piece 18 is fixedly connected with the adjusting piece 19.
[0047] It should be noted that under the elastic force of the first spring 23, the external force pushes the clamping block 14 to slide, and then resets, so that the installation and disassembly is more convenient, and the adjusting piece 19 makes it more convenient to push the connecting piece 18 to adjust.
[0048] In the embodiment of the present application, please refer to Figure 3 The bottom plate 6 is provided with mounting holes 13 equidistantly on the top thereof;
[0049] It should be noted that the mounting holes 13 facilitate the fixing and installation of the bottom plate 6 by bolts, screws, etc.
[0050] In the embodiment of the present application, please refer to Figure 4 、 Figure 7 、 Figure 8 and Figure 9 The long tubes 8 are each provided with a strip-shaped slot 9 on the outer side thereof, and are each provided with a transverse slot 16 and a bent slot 17 equidistantly on the outer side thereof, and the transverse slot 16 and the bent slot 17 are each in communication with the corresponding strip-shaped slot 9, the adjusting tubes 12 are each provided with a waist-shaped hole 27 on the outer side thereof, the waist-shaped hole 27 is internally slidably connected with a slide rod 28, the slide rod 28 is slidably connected with the corresponding bent slot 17, the adjusting tube 12 is internally fixedly connected with a fixed rod 29, the fixed rod 29 is slidably connected with the corresponding transverse slot 16, the slide rod 28 and the fixed rod 29 are each fixedly connected with a movable block 30, and the movable block 30 is slidably connected inside the corresponding long tube 8, the long tube 8 is internally provided with a second spring 31 equidistantly, the two ends of the second spring 31 are each fixedly connected with the corresponding movable block 30, and the end of the slide rod 28 away from the movable block 30 is fixedly connected with a pushing piece 26;
[0051] It should be noted that the heating plates inside the heating module can be adjusted by adjusting the adjusting tube 12 on the connecting seat 10, when adjusting, first push the slide rod 28 up by the pushing piece 26, so that the slide rod 28 slides to the bent part of the bent slot 17, and under the driving of the slide rod 28, the movable blocks 30 are close to each other to press the second springs 31, then rotate the adjusting tube 12, so that the slide rod 28 slides along the bent slot 17 and the fixed rod 29 along the transverse slot 16 into the strip-shaped slot 9, so as to pull the adjusting tube 12 to drive the connecting seat 10 to adjust and move to the corresponding height, so as to adjust the distance between the connecting seats 10, so as to adjust the distance between the heating plates, after adjusting, embed the slide rod 28 into the corresponding bent slot 17 to position the height, so as to avoid the distance being too tight, causing the temperature to be too high, and damaging other parts, and facilitate the adjustment of the distance between the heating plates according to different needs.
[0052] The working principle of the graphite composite microcrystal heating module provided by the application is as follows: when installing, the shell 1 can be pushed into the corresponding connecting seat 10, the recess 4 on the shell 1 is pressed to be opposite to the clamping block 14 on the connecting seat 10, the recess 4 extrudes the clamping block 14 with a top in the shape of a circular truncated cone to drive the sliding block 25 to slide, the clamping block 14 is gradually disengaged from the recess 4, and meanwhile, under the driving of the sliding block 25, the connecting block 20 pushes the limiting rod 22 to slide and extrude the first spring 23 to contract, when the recess 4 extrudes the clamping block 14 to the bottom of the shell 1 to contact the connecting seat 10, the connecting piece 18 is driven by the connecting block 20 under the elastic force of the first spring 23, the sliding block 25 is slid, the clamping block 14 of the connecting seat 10 is clamped into the corresponding recess 4, and the heating plate is installed on the connecting seat 10.
[0053] When dismounting is needed, the heating plate can be dismounted from the connecting seat 10 by pressing the adjusting piece 19 to disengage the clamping block 14 from the recess 4, the mounting and dismounting speed is improved, and the heating plates inside the heating module can be more conveniently installed and replaced.
[0054] In addition, the heating plates inside the heating module can be adjusted by adjusting the adjusting cylinder 12 on the connecting seat 10, when adjusting, the sliding rod 28 is slid to the bending part of the bending groove 17 by pushing the pushing piece 26 to push the sliding rod 28, the movable block 30 is close to each other to extrude the second spring 31 under the driving of the sliding rod 28, the sliding rod 28 is slid along the bending groove 17 by rotating the adjusting cylinder 12, and the fixing rod 29 is slid along the transverse groove 16 into the strip-shaped groove 9, the connecting seat 10 is slid and adjusted in the height direction by pulling the adjusting cylinder 12, is moved to the corresponding height, the spacing between the connecting seats 10 is adjusted, the spacing between the heating plates is correspondingly adjusted, after adjustment, the height is positioned by embedding the sliding rod 28 into the corresponding bending groove 17, the distance is prevented from being too tight to cause high temperature and damage other components, and the spacing between the heating plates can be adjusted according to different requirements.
[0055] The following is a second embodiment of the graphite composite microcrystal heating module provided by the application, which can solve the above technical problems, and the difference lies in that the graphite composite microcrystal heating plate in the embodiment has a structure different from that in the first embodiment.
[0056] The graphite composite microcrystal heating module comprises a plurality of graphite composite microcrystal heating plates arranged at equal intervals, and a bottom plate 6, a support column 7, a long cylinder 8, a connecting seat 10, a sliding cylinder 11 and an adjusting cylinder 12.
[0057] The bottom plate 6 top is provided with a connecting seat 10 at equal intervals, and both sides of the bottom plate 6 top are fixedly connected with a long barrel 8 at equal intervals, and the outer side of the long barrel 8 is slidably connected with an adjusting barrel 12, and the adjusting barrel 12 is rotatably connected in the corner inside of the corresponding connecting seat 10, and the other three corners inside of the connecting seat 10 are embeddedly fixed with a sliding barrel 11, and the outer side of the long barrel 8 is provided with a support column 7 at the other three corners of the corresponding connecting seat 10, and the sliding barrel 11 is slidably connected outside of the corresponding support column 7, and the bottom end of the support column 7 is fixedly connected with the bottom plate 6, and both sides of the top of the connecting seat 10 are provided with a movable hole 15 at equal intervals, and the movable hole 15 is slidably connected with a sliding block 25 inside, and the top of the sliding block 25 is fixedly connected with a clamping block 14, and the clamping block 14 is clamped with the corresponding groove 4, and both sides of the bottom of the connecting seat 10 are provided with a connecting piece 18, and the bottom of the clamping block 14 is fixedly connected with the corresponding connecting piece 18.
[0058] The graphite composite microcrystal heating plate comprises a shell 1, a heating plate base plate 2, and a ceramic nut 5.
[0059] Both sides of the bottom of the shell 1 are provided with a groove 4 at equal intervals, and one side of the shell 1 is provided with a wiring port 3, and the heating plate base plate 2 is embeddedly fixed inside of the shell 1, and the heating plate base plate 2 is electrically connected with the wiring port 3, and the ceramic nut 5 penetrates through one side of the top of the heating plate base plate 2 and is threadedly connected with the shell 1.
[0060] Specifically, please refer to Figure 10 The shell 1 comprises a bearing shell 101 and a connecting shell 102, one end of the bearing shell 101 and one end of the connecting shell 102 are rotatably connected through a first rotating shaft 103, the groove 4 is arranged on the connecting shell 102, and the heating plate base plate 2 is embeddedly fixed on the bearing shell 101.
[0061] Please refer to Figure 10 , Figure 11 and Figure 12 One end of the connecting shell 102 away from the first rotating shaft 103 is rotatably connected with a support rod 33, the support rod 33 is rotatably connected with the connecting shell 102 through a second rotating shaft 331, the support rod 33 is used for supporting between the bearing shell 101 and the connecting shell 102, and the end of the support rod 33 away from the second rotating shaft 331 is provided with a fixed shaft 332 for supporting the bearing shell 101.
[0062] The two support rods 33 are connected with a telescopic rod 32, the telescopic rod 32 comprises a main body rod 321 and a movable rod 322 slidably sleeved at both ends of the main body rod 321, the movable rod 322 is rotatably connected with the end of the support rod 33 away from the second rotating shaft 331, and the main body rod 321 is provided with a button 323 for controlling the extension and contraction of the movable rod.
[0063] Please refer to Figure 13, the key 323 is rotatably connected to the main body rod 321, and a torsion spring 324 is connected between the key 323 and the main body rod 321, and the torsion spring 324 can be sleeved on the rotating shaft between the key 323 and the main body rod 321. The elastic force of the torsion spring makes the key 323 rotate to frictionally contact with the movable rod 322, thereby limiting the extension and contraction of the movable rod 322, that is, the telescopic rod 32 cannot be extended or contracted without external force. When the key 323 is pressed by an external force, the elastic force of the torsion spring 324 can be overcome to make the key 323 rotate and disengage from the frictional contact with the movable rod 322, so that the telescopic rod 32 can be extended or contracted.
[0064] It can be understood that the telescopic rod 32 can also be other controllable telescopic structures in the prior art.
[0065] The graphite composite microcrystalline heating plate of the embodiment can adjust the included angle between the bearing shell 101 and the connecting shell 102. After adjusting the included angle, the key 323 is pressed and the telescopic rod 32 is pulled to move. At this time, the telescopic rod 32 can drive the support rod 33 to rotate until the fixed shaft 332 on the support rod 33 contacts the bearing shell 101, that is, the support rod 33 is supported between the bearing shell 101 and the connecting shell 102, so that the bearing shell 101 and the connecting shell 102 maintain a set included angle. At the same time, the graphite composite microcrystalline heating plate can be adjusted to the same angle as the support rod 33, and the graphite composite microcrystalline heating plate can be adjusted to the same angle as the support rod 33. Figure 3 When a plurality of graphite composite microcrystalline heating plates are applied to the graphite composite microcrystalline heating module, the direction of heat dissipation can be changed by adjusting the inclination direction of different numbers of graphite composite microcrystalline heating plates, so as to have various heat radiation modes.
[0066] The above description is only an embodiment of the present application, and does not limit the patent scope of the present application. Any equivalent structure or equivalent process transformation, or direct or indirect application in other related technical fields based on the content of the specification and drawings of the present application, are also included in the patent protection scope of the present application.
Claims
1. An adjustable mounting structure of a graphite composite microcrystalline heat generating plate; characterized by, The graphite composite microcrystalline heating plate is provided with grooves (4) equidistantly arranged on both sides of the bottom, and the adjustable mounting structure comprises support columns (7), long tubes (8), a plurality of connecting seats (10), sliding tubes (11) and adjusting tubes (12); The three support columns (7) and the long tube (8) pass through the four corners of each connecting seat (10) respectively, a plurality of adjusting tubes (12) are slidably connected to the outer side of the long tube (8) equidistantly, each adjusting tube (12) is rotatably connected to the inner corner of a corresponding connecting seat (10) through a bearing, and the other three corners of each connecting seat (10) are embedded and fixed with the sliding tube (11). The connecting seat (10) is provided with movable holes (15) equidistantly arranged on both sides of the top, the movable holes (15) are slidably connected with sliding blocks (25) inside, the top of the sliding block (25) is fixedly connected with a clamping block (14), the top of the clamping block (14) is in the shape of a circular truncated cone, the groove (4) drives the sliding block (25) to slide by extruding the clamping block (14), so that the clamping block (14) is clamped with the corresponding groove (4), and the connecting seat (10) is provided with a connecting piece (18) on both sides of the bottom. The long tube (8) is provided with a strip-shaped groove (9) on the outer side, a plurality of transverse grooves (16) and a plurality of bending grooves (17) are equidistantly arranged on the outer side of the long tube (8), and one end of the transverse groove (16) and the bending groove (17) is communicated with the strip-shaped groove (9). The adjusting tube (12) is provided with a waist-shaped hole (27) on the outer side, the waist-shaped hole (27) is slidably connected with a sliding rod (28) inside, the sliding rod (28) is slidably connected with a corresponding bending groove (17), the inner wall of the adjusting tube (12) is fixedly connected with a fixed rod (29), the fixed rod (29) is slidably connected with a corresponding transverse groove (16), one end of the sliding rod (28) and the fixed rod (29) is fixedly connected with a movable block (30), and the movable block (30) is slidably connected inside the long tube (8), and the adjusting tube (12) is provided with a second spring (31) inside.
2. The graphite composite microcrystalline heat generating panel adjustable mounting structure according to claim 1, characterized by, The connecting piece (18) is fixedly connected with a connecting block (20) at the bottom, the connecting seat (10) is fixedly connected with a fixed block (21) equidistantly at the bottom, the fixed block (21) is slidably inserted with a limiting rod (22) inside, one end of the limiting rod (22) opposite to each other is fixedly connected with a corresponding connecting block (20), the outer side of the limiting rod (22) is sleeved with a first spring (23), and two ends of the first spring (23) are respectively fixedly connected with a corresponding connecting block (20) and a fixed block (21).
3. The graphite composite microcrystalline heating panel adjustable mounting structure according to claim 2, characterized in that, The limiting rod (22) is fixedly connected with a baffle (24) at the opposite end.
4. The graphite composite microcrystalline heating panel adjustable mounting structure according to claim 2, characterized in that, The connecting piece (18) is fixedly connected with an adjusting piece (19) on the opposite side.
5. The graphite composite microcrystalline heating panel adjustable mounting structure according to claim 1, characterized in that, The pusher (26) is fixedly connected to the end of the slide rod (28) away from the movable block (30).
6. The graphite composite microcrystalline heat generating panel adjustable mounting structure according to claim 1, characterized by, The graphite composite microcrystal heating plate comprises a shell (1) and a heating plate substrate (2) embedded and fixed inside the shell (1), the grooves (4) are arranged on both sides of the bottom of the shell (1), a wiring port (3) is arranged on one side of the shell (1), the heating plate substrate (2) is electrically connected with the wiring port (3), and a ceramic nut (5) penetrates through one side of the top of the heating plate substrate (2) and is threadedly connected with the shell (1).
7. The graphite composite microcrystalline heating panel adjustable mounting structure according to claim 6, characterized by, The shell (1) comprises a bearing shell (101) and a connecting shell (102), one end of the bearing shell (101) and one end of the connecting shell (102) are rotationally connected through a first rotating shaft (103), the grooves (4) are arranged on the connecting shell (102), and the heating plate substrate (2) is embedded and fixed on the bearing shell (101).
8. The graphite composite microcrystalline heating panel adjustable mounting structure according to claim 7, characterized in that, One end of the connecting shell (102) away from the first rotating shaft (103) is rotationally connected with a support rod (33), the support rod (33) is rotationally connected with the connecting shell (102) through a second rotating shaft (331), the support rod (33) is used for supporting between the bearing shell (101) and the connecting shell (102), and a fixed shaft (332) for supporting the bearing shell (101) is arranged at one end of the support rod (33) away from the second rotating shaft (331); A telescopic rod (32) is connected between the two support rods (33), the telescopic rod (32) comprises a main rod (321) and a movable rod (322) slidably sleeved at both ends of the main rod (321), the movable rod (322) is rotationally connected with one end of the support rod (33) away from the second rotating shaft (331), and a key (323) for controlling the telescopic rod (322) is arranged on the main rod (321). The key (323) is rotationally connected with the main rod (321), a torsion spring (324) is connected between the key (323) and the main rod (321), the torsion spring (324) is sleeved on the rotating shaft between the key (323) and the main rod (321), and the elastic force of the torsion spring (324) makes the key (323) rotate to be in frictional contact with the movable rod (322), so that the telescopic movement of the movable rod (322) is limited.
Citation Information
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