Mounting structure for nano material panel
Through the design of components such as the universal base and shaped hose, the problem of difficult fine-tuning of the traditional nanomaterial panel installation structure has been solved, achieving efficient, stable installation and precise adjustment effects.
Patent Information
- Application Number
- CN202422653117.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-31
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2034-10-31
AI Technical Summary
Traditional nanomaterial panel mounting structures are difficult to fine-tune without damaging the mounting structure or panel.
The installation structure includes components such as a universal base, a shaped hose, a compression spring, a mounting stud and an adjustment block. The universal base and the shaped hose are used to achieve angle adjustment, the compression spring provides shock absorption, and the adjustment block provides additional support and fixation to achieve precise adjustment.
It achieves efficient installation and precise position adjustment of nano panels, enhances the stability and durability of the installation, and reduces damage caused by vibration or impact.
Smart Images

Figure CN223306096U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of nano material panel installation, in particular to a mounting structure for a nano material panel. Background Art
[0002] Nanomaterials, due to their unique size effects, surface effects, quantum size effects, and macroscopic quantum tunneling effects, exhibit physical, chemical, and biological properties that are distinct from those of traditional materials. These characteristics give nanomaterials broad application prospects in electronics, optics, biomedicine, energy, and the environment.
[0003] However, the traditional mounting structure of nanomaterial panels has some shortcomings in actual use: traditional nanomaterial panel mounting structures often use rigid connections or fastening methods, such as screws and welding. Although this design ensures panel stability, once installed, it is difficult to fine-tune the position between the two panels without damaging the mounting structure or the panels.
[0004] To this end, we designed a mounting structure for nanomaterial panels to solve the above problems. Utility Model Content
[0005] The purpose of the present invention is to provide a mounting structure for a nanomaterial panel to solve the problems raised in the above background technology.
[0006] In order to solve the above technical problems, the utility model provides an installation structure for a nanomaterial panel, including two nano panels, each group of the first adjustment components includes at least two relatively arranged installation frames, and the two installation frames are respectively arranged on the opposite sides of the two nano panels, one end of one of the installation frames is fixedly connected to a bolt, and a universal base is threaded on the bolt, and the other end of the universal base is fixedly connected to a connecting tube, the bolt extends into the connecting tube, and the other end of the connecting tube is rotatably connected to a second ball head.
[0007] Furthermore, the first adjustment component also includes a shaping hose fixedly connected to the second ball head, another mounting frame is fixedly connected to the shaping hose, and another mounting frame is provided with a connecting frame at one end close to the shaping hose, a compression spring is provided in the connecting frame, and the inner wall of the compression spring is against the outer wall of the shaping hose.
[0008] Furthermore, the first adjustment component also includes a mounting stud arranged on the other side of the mounting frame, and a mounting hole adapted to the mounting stud is opened on the nano panel. Symmetrical machine screws are provided at both ends of the mounting stud, and an elastic pad is provided between each machine screw and the mounting frame. The elastic pad is against the mounting frame, and a second adjustment component is also provided at the end away from the first adjustment component.
[0009] Furthermore, the second adjustment component includes an adjustment block installed on a side of one of the nano panels away from the first adjustment component, and the adjustment block is "L"-shaped.
[0010] Furthermore, a C-shaped fixing clamp is provided on the adjustment block, and the C-shaped fixing clamp is arranged inside the adjustment block. A mounting column is provided inside the fixing clamp, and both ends of the mounting column are threadedly connected with symmetrical nuts.
[0011] Furthermore, a rotating shaft is provided on one side close to the nut, the rotating shaft rotates on the adjustment block, a torsion spring is provided on the rotating shaft, and the other end of the torsion spring is fixedly connected to the nano panel.
[0012] Furthermore, a bevel gear plate is provided on the inner bottom surface of the adjustment block, the bevel gear plate is fixedly connected to the rotating shaft, a bevel gear is meshed on the bevel gear plate, a connecting rod is connected to the bevel gear, and a knob is provided at the other end of the connecting rod, and the knob rotates on the adjustment block.
[0013] Compared with the prior art, the beneficial effects of the present invention are:
[0014] When in use, install the first adjustment component between the two nano panels. First, place the mounting frame close to the mounting hole corresponding to the nano panel, then insert the mounting stud into the mounting hole and pass through the mounting frame. At this time, install the elastic pad and machine screw on the mounting stud in sequence. By installing the mounting frame first, then inserting the mounting stud, and finally installing the elastic pad and machine screw, the installation process is more orderly and efficient, and the nano panel will not be damaged. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 This is a schematic diagram of the overall structure of the utility model;
[0016] Figure 2 This is a schematic structural diagram of the first adjustment component of the utility model;
[0017] Figure 3 This is a schematic structural diagram of the second adjustment component of the utility model;
[0018] Figure 4 for Figure 2 Enlarged view of point A in the middle;
[0019] Figure 5 This is a schematic diagram of the internal structure of the second adjustment component of the present invention.
[0020] In the figure: 1. Nano panel; 2. First adjustment component; 201. Bolt; 202. Universal base; 203. Second ball head; 204. Machine screw; 205. Mounting stud; 206. Elastic pad; 207. Mounting frame; 208. Connecting frame; 209. Compression spring; 3. Second adjustment component; 301. Adjustment block; 302. Knob; 303. Torsion spring; 304. Rotating shaft; 305. Nut. DETAILED DESCRIPTION
[0021] The following will be combined with the 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.
[0022] See also Figure 1-5 The utility model provides a technical solution: a mounting structure for a nanomaterial panel, comprising two nano panels 1, each group of the first adjustment components 2 comprising at least two oppositely arranged mounting frames 207, the two mounting frames 207 being respectively arranged on opposite sides of the two nano panels 1, one end of one mounting frame 207 being fixedly connected to a bolt 201, a universal base 202 being threadedly connected to the bolt 201, the other end of the universal base 202 being fixedly connected to a connecting pipe, the bolt 201 extending into the connecting pipe, the other end of the connecting pipe being rotatably connected to a second ball head 203.
[0023] It should be noted that the universal base 202 can rotate on the bolt 201 under the action of external force, and can also slide.
[0024] During specific implementation, the universal base 202 is rotated again. At this time, the universal base 202 slides on the bolt 201 to change the distance. At the same time, the shaping hose connected to the second ball head 203 is bent with the help of an instrument to change the installation angle. After bending, it is clamped by the compression spring 209 in the connecting frame 208 on another installation frame 207. At this time, the angle of the first adjustment component 2 is fixed, and the installation on the two nano panels 1 is further completed.
[0025] It should be noted that the use of shaped hoses can maintain their designed shape, ensuring that they will not be deformed by external forces during installation, thus ensuring that the shape of the hose after installation is consistent with the design requirements;
[0026] It should also be noted that the adjustment is performed by manually sliding the universal base 202 on the bolt 201 , so there is no need to provide a guide for the universal base 202 .
[0027] See Figure 2 As shown, the first adjustment component 2 also includes a shaping hose fixedly connected to the second ball head 203, another mounting frame 207 is fixedly connected to the shaping hose, and the other mounting frame 207 is provided with a connecting frame 208 near one end of the shaping hose, and a compression spring 209 is provided in the connecting frame 208, and the inner wall of the compression spring 209 is against the outer wall of the shaping hose.
[0028] It should be noted that the arrangement of the compression spring 209 can better keep the second ball head 203 in an inclined state without frequent shaking.
[0029] It should also be noted that the compression spring 209 within the connection frame 208 abuts against the outer wall of the shaped hose, forming an effective shock-absorbing and buffering mechanism. When subjected to external vibration or impact, the compression spring can absorb and disperse these forces, protecting the stability and durability of the connection and reducing damage or loosening caused by vibration.
[0030] The first adjustment component 2 also includes a mounting stud 205 arranged on the other side of the mounting frame 207. A mounting hole compatible with the mounting stud 205 is opened on the nano panel 1. Symmetrical machine screws 204 are provided at both ends of the mounting stud 205. An elastic pad 206 is provided between each machine screw 204 and the mounting frame 207. The elastic pad 206 is against the mounting frame 207. A second adjustment component 3 is also provided on the end away from the first adjustment component 2.
[0031] During specific implementation, when it is necessary to fix the two nano panels 1, first move the mounting frame 207 close to the mounting hole on one side of the nano panel 1. When they correspond, insert the mounting stud 205 into the mounting hole, then insert the elastic pad 206 into the mounting frame 207, and then use the set machine screw 204 to tighten it on the mounting stud 205 to complete the installation of the mounting frame 207.
[0032] See Figure 3 The second adjustment component 3 includes an adjustment block 301 installed on one side of the nano panel 1 away from the first adjustment component 2, and the adjustment block 301 is "L"-shaped.
[0033] It should be noted that the "L"-shaped design provides additional support and fixing points for the nanopanel 1, enhancing the stability and rigidity of the entire structure. This design helps reduce deformation or displacement caused by vibration, impact, or external forces, thereby protecting the integrity and performance of the nanopanel and its connected components.
[0034] A C-shaped fixing clamp is provided on the adjustment block 301 , and a mounting column is provided inside the C-shaped fixing clamp. Both ends of the mounting column are threadedly connected with symmetrical nuts 305 .
[0035] It should be noted that the "L"-shaped adjustment block 301 itself has good structural stability and can effectively support and fix the nano panel 1. At the same time, the design of the C-shaped fixing clamp further enhances the stability of the installation and prevents the nano panel from loosening or shifting during use.
[0036] A rotating shaft 304 is provided on one side close to the nut 305 . The rotating shaft 304 rotates on the adjusting block 301 . A torsion spring 303 is provided on the rotating shaft 304 . The other end of the torsion spring 303 is fixedly connected to the nano panel 1 .
[0037] It should be noted that when the nano panel 1 is in the lowered state, the torsion spring 303 can be hidden inside the device, thereby saving space.
[0038] The inner bottom surface of the adjustment block 301 is provided with a bevel gear plate, which is fixedly connected to the rotating shaft 304. The bevel gear plate is meshed with a bevel gear, which is connected to a connecting rod. The other end of the connecting rod is provided with a knob 302, which rotates on the adjustment block 301.
[0039] It should be noted that through the meshing of the bevel gear plate and the bevel gear, and the connection between the connecting rod and the knob 302, the user can precisely control the rotation angle of the shaft 304 by rotating the knob 302. This precise adjustment capability allows the nano panel to be raised or lowered or adjusted in angle more accurately, meeting more refined usage needs.
[0040] In specific implementation, by installing the "L"-shaped adjustment block 301 on a plane, rotating the knob 302 drives the bevel gear to rotate, and drives the bevel gear plate to rotate. At this time, the torsion spring 303 connected to the rotating shaft 304 is pulled up to adjust the height of the nano panel 1.
[0041] It should be noted that, for larger or heavier nano panels 1 , appropriate spacing needs to be set to ensure the stability and safety of their installation.
[0042] Working principle: When in use, install the first adjustment component 2 between two nano panels 1, first place the mounting frame 207 close to the corresponding mounting hole of the nano panel 1, then insert the mounting stud 205 into the mounting hole and pass through the mounting frame 207, then install the elastic pad 206 and the machine screw 204 on the mounting stud 205 in sequence;
[0043] After the initial installation is completed, the universal base 202 is rotated again. At this time, the universal base 202 slides on the bolt 201 to change the distance. At the same time, the shaped hose connected to the second ball head 203 is bent with the help of a tool to change the installation angle.
[0044] After bending, the first adjustment component 2 is clamped by the compression spring 209 in the connecting frame 208 on the other installation frame 207. At this time, the angle of the first adjustment component 2 is fixed, and the installation on the two nano panels 1 is further completed.
[0045] After completion, the "L"-shaped adjustment block 301 is installed on the plane. At this time, rotating the knob 302 drives the bevel gear to rotate, and drives the bevel gear plate to rotate. At this time, the torsion spring 303 connected to the rotating shaft 304 is pulled up to adjust the height of the nano panel 1.
[0046] There is redundancy in the connection between the torsion spring 303 and the nano panel 1 , so when the nano panel 1 is lifted, it is lifted by the annular frame of the torsion spring 303 .
Claims
1. A mounting structure for nanomaterial panels, comprising two nanomaterial panels (1), characterized in that: Two groups of mutually symmetrical first adjustment components (2) are arranged between the two nano panels (1), and each group of the first adjustment components (2) includes at least two oppositely arranged mounting frames (207). The two mounting frames (207) are respectively arranged on opposite sides of the two nano panels (1), one end of one of the mounting frames (207) is fixedly connected to a bolt (201), a universal base (202) is threadedly connected to the bolt (201), the other end of the universal base (202) is fixedly connected to a connecting pipe, the bolt (201) extends into the connecting pipe, and the other end of the connecting pipe is rotatably connected to a second ball head (203).
2. The mounting structure for a nanomaterial panel according to claim 1, characterized in that: The first adjustment component (2) further comprises a shaping hose fixedly connected to the second ball head (203); another mounting frame (207) is fixedly connected to the shaping hose; a connecting frame (208) is provided at one end of the mounting frame (207) close to the shaping hose; a compression spring (209) is provided in the connecting frame (208); the inner wall of the compression spring (209) abuts against the outer wall of the shaping hose.
3. The mounting structure for a nanomaterial panel according to claim 1, characterized in that: The first adjustment component (2) further comprises a mounting stud (205) arranged on the other side of the mounting frame (207); a mounting hole adapted to the mounting stud (205) is provided on the nano panel (1); symmetrical machine screws (204) are provided at both ends of the mounting stud (205); an elastic pad (206) is provided between each machine screw (204) and the mounting frame (207); the elastic pad (206) abuts against the mounting frame (207); and a second adjustment component (3) is further provided at the end away from the first adjustment component (2).
4. The mounting structure for a nanomaterial panel according to claim 3, wherein: The second adjustment component (3) comprises an adjustment block (301) installed on a side of one of the nano panels (1) away from the first adjustment component (2), and the adjustment block (301) is "L"-shaped.
5. The mounting structure for a nanomaterial panel according to claim 4, characterized in that: The adjusting block (301) is provided with a C-shaped fixing clamp, which is arranged inside the adjusting block (301). A mounting column is arranged inside the C-shaped fixing clamp, and both ends of the mounting column are threadedly connected with symmetrical nuts (305).
6. The mounting structure for a nanomaterial panel according to claim 5, characterized in that: A rotating shaft (304) is provided on one side close to the nut (305), the rotating shaft (304) rotates on the adjustment block (301), a torsion spring (303) is provided on the rotating shaft (304), and the other end of the torsion spring (303) is fixedly connected to the nano panel (1).
7. The mounting structure for a nanomaterial panel according to claim 6, characterized in that: The inner bottom surface of the adjustment block (301) is provided with a bevel gear disc, the bevel gear disc is fixedly connected to the rotating shaft (304), a bevel gear is meshed on the bevel gear disc, the bevel gear is connected to a connecting rod, and the other end of the connecting rod is provided with a knob (302), and the knob (302) rotates on the adjustment block (301).