Auxiliary structure of graphene aerogel detection equipment
By designing the auxiliary structure of graphene aerogel detection equipment, the problem of gel position shaking affecting detection is solved, and higher detection accuracy and efficiency are achieved.
Patent Information
- Application Number
- CN202421160469.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-27
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2034-05-27
AI Technical Summary
During the graphene aerogel detection process, the gel position is prone to shake, which affects the pressing detection of the detection equipment and leads to inaccurate detection of the detection data.
An auxiliary structure of graphene aerogel detection equipment is designed, including a base, slide rail, strength detection rod, workbench and auxiliary device. By setting up auxiliary devices and lifting devices, the gel is fastened and clamped and shaking is reduced.
It improves the stability and detection accuracy of the detection equipment, reduces operation difficulty and detection time, and improves detection efficiency.
Smart Images

Figure CN222895999U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of gel detection, in particular to an auxiliary structure of a graphene aerogel detection device. Background Art
[0002] Graphene aerogel is a high-strength oxidized aerogel with high elasticity and strong adsorption characteristics. It is a porous material with a three-dimensional network cross-linked structure formed by assembling and overlapping graphene nanosheets. This material not only inherits all the structural characteristics of aerogel, but also exhibits graphene's inherent ultra-high compression resilience, excellent electrical conductivity and thermal conductivity, good environmental stability and hydrophobicity. The application prospects of graphene aerogel are broad. It can be used as a thermal barrier coating for high-temperature structural materials to protect structural materials. It can also be used as a basic material for nano-composite materials to improve the mechanical properties of composite materials. In the field of energy storage, it can be used as an electrode material for equipment such as capacitors and lithium-ion batteries to improve the energy storage density of electrode materials. It can also play an important role in the preparation of oil-water separation materials. In addition, it can also show unique value in the fields of gas separation and gas purification. During the production process of graphene aerogel, testing equipment is required to test the strength of graphene aerogel.
[0003] The inventors found in their daily work that during the detection process, the graphene aerogel placed on the workbench is prone to shaking, which affects the pressure detection of the detection equipment. In order to solve the problem of position offset of the graphene aerogel during the detection process, the prior art uses manual adjustment by the operator, but this takes a lot of time, affects the detection efficiency, and leads to inaccurate detection data. Utility Model Content
[0004] The utility model aims to solve the shortcoming in the prior art that the position of the graphene aerogel is offset during the detection process, and proposes an auxiliary structure of a graphene aerogel detection device.
[0005] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme: an auxiliary structure of a graphene aerogel detection equipment, comprising a base and an auxiliary device, a slide rail is installed on the surface of the slide rail, a strength detection rod is installed on the surface of the base, a workbench is installed on the surface of the base, and the auxiliary device is arranged on the surface of the workbench, the auxiliary device comprises a first clamping ring, the first clamping ring is fixedly connected to the workbench, one side of the first clamping ring is fixedly connected to the slide rod, one side of the slide rod is fixedly connected to the connecting plate, the surface of the slide rod is slidably connected to the second clamping ring, one side of the second clamping ring is fixedly connected to the baffle, the surface of the workbench is threadedly connected to the threaded rod, and by arranging the auxiliary device, it is convenient to tighten the gel, the stability of the equipment is increased, the situation where the gel shaking affects the detection is reduced, and the auxiliary equipment is clamped.
[0006] Preferably, a pressure block is fixedly connected to one side of the threaded rod close to the baffle, and a knob is fixedly connected to one side of the threaded rod away from the pressure block. By setting the knob, the knob can easily drive the threaded rod to rotate during use, thereby increasing the stability of the device and reducing the difficulty of operating the device.
[0007] Preferably, the first clamping ring and the second clamping ring are arranged in a "C" shape, and the blocking piece is clamped with the pressing block. By setting the first clamping ring, when in use, the first clamping ring cooperates with the second clamping ring to facilitate clamping the gel, thereby increasing the stability of the device and reducing the difficulty of operating the device.
[0008] Preferably, there are four sliding rods, and the four sliding rods are arranged in mirror symmetry. By arranging the sliding rods, when in use, the sliding rods can easily drive the second clamping ring to slide, thereby increasing the stability of the equipment and reducing the difficulty of operating the equipment.
[0009] Preferably, a lifting device is provided on the surface of the workbench, and the lifting device includes a moving rod, the moving rod is fixedly connected to the workbench, a top plate is provided on the surface of the moving rod, a hole is opened on the surface of the top plate, and the moving rod is slidably connected to the hole on the surface of the top plate. By providing the lifting device, it is convenient to lift the gel, which is convenient for the user to take out the gel, thereby increasing the stability of the equipment and facilitating operation.
[0010] Preferably, there are two moving rods, which are arranged in mirror symmetry. A magnetic suction ring is fixedly connected to the surface of the top plate. By providing the magnetic suction ring, it is easy to adsorb and position the container, thereby increasing the stability of the equipment and reducing the difficulty of operating the equipment.
[0011] Preferably, a buffer spring is fixedly connected to the lower surface of the top plate, and the side of the buffer spring away from the top plate is fixedly connected to the workbench. By setting the buffer spring, when in use, the buffer spring generates elastic force to squeeze the top plate, which facilitates rapid discharge of the gel and increases the safety of the equipment.
[0012] Compared with the prior art, the advantages and positive effects of the utility model are:
[0013] In the utility model, by arranging an auxiliary device and a lifting device, when in use, the graphene aerogel is poured into the container, and then the container is placed on the top plate. At this time, the magnetic attraction ring is magnetically attracted to the container, the container is pressed, the top plate moves downward, and then the knob is turned, the knob drives the threaded rod to rotate, and the threaded rod drives the pressure block to squeeze the baffle. At this time, the second clamping ring slides and clamps the container between the first clamping ring and the second clamping ring. At this time, the strength detection rod is pressed downward to detect the strength of the gel. After the detection is completed, the reverse knob drives the threaded rod and the pressure block to separate from the baffle. At this time, the second clamping ring is separated from the first clamping ring, and the top plate loses its restraint. The buffer spring generates elastic force to push the top plate out, and at the same time drives the container to slide out, so that the container can be removed. By arranging the utility model, it is convenient for the auxiliary equipment to clamp and tighten the container during detection, which is convenient for the equipment to detect, improves the detection accuracy of the equipment, increases the detection efficiency of the equipment, and is convenient for the user to take out the gel, improves the stability of the equipment, and is convenient for rapid detection. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 A three-dimensional structural schematic diagram of an auxiliary structure of a graphene aerogel detection device proposed for the utility model;
[0015] Figure 2 A side view structural schematic diagram of an auxiliary structure of a graphene aerogel detection device proposed in the utility model;
[0016] Figure 3 A partial structural schematic diagram of an auxiliary structure of a graphene aerogel detection device proposed in the utility model;
[0017] Figure 4 A schematic diagram of the auxiliary device structure of an auxiliary structure of a graphene aerogel detection device proposed in the utility model;
[0018] Figure 5 The utility model provides a structural schematic diagram of a lifting device for an auxiliary structure of a graphene aerogel detection device.
[0019] Legend: 1. Base; 2. Slide rail; 3. Strength detection rod; 4. Workbench; 5. Auxiliary device; 51. First clamping ring; 52. Slide rod; 53. Connecting plate; 54. Second clamping ring; 55. Baffle; 56. Threaded rod; 57. Pressure block; 58. Knob; 6. Lifting device; 61. Top plate; 62. Magnetic ring; 63. Moving rod; 64. Buffer spring. DETAILED DESCRIPTION
[0020] See also Figure 1-5The utility model provides a technical solution: an auxiliary structure of a graphene aerogel detection device, comprising a base 1 and an auxiliary device 5, a slide rail 2 is installed on the surface of the base 1, a strength detection rod 3 is installed on the surface of the slide rail 2, a workbench 4 is installed on the surface of the base 1, and the auxiliary device 5 is arranged on the surface of the workbench 4.
[0021] The specific configuration and functions of the auxiliary device 5 and the lifting device 6 will be described in detail below.
[0022] In this embodiment: the auxiliary device 5 includes a first clamping ring 51, the first clamping ring 51 is fixedly connected to the workbench 4, one side of the first clamping ring 51 is fixedly connected to a sliding rod 52, one side of the sliding rod 52 is fixedly connected to a connecting plate 53, the surface of the sliding rod 52 is slidably connected to a second clamping ring 54, one side of the second clamping ring 54 is fixedly connected to a blocking plate 55, and the surface of the workbench 4 is threadedly connected to a threaded rod 56. By providing the auxiliary device 5, it is convenient to tighten the gel, which increases the stability of the equipment, reduces the situation where the shaking of the gel affects the detection, and the auxiliary equipment is clamped.
[0023] Specifically, a pressure block 57 is fixedly connected to one side of the threaded rod 56 close to the baffle 55, and a knob 58 is fixedly connected to one side of the threaded rod 56 away from the pressure block 57. By setting the knob 58, when in use, the knob 58 can easily drive the threaded rod 56 to rotate, thereby increasing the stability of the equipment and reducing the difficulty of operating the equipment.
[0024] Specifically, the first clamping ring 51 and the second clamping ring 54 are arranged in a “C” shape, and the blocking piece 55 is clamped with the pressing block 57 .
[0025] In this embodiment, by providing the first clamping ring 51, when in use, the first clamping ring 51 cooperates with the second clamping ring 54 to facilitate clamping of the gel, thereby increasing the stability of the device and reducing the difficulty of operating the device.
[0026] Specifically, there are four slide bars 52, and the four slide bars 52 are arranged in mirror symmetry. By arranging the slide bars 52, when in use, the slide bars 52 can easily drive the second clamping ring 54 to slide, thereby increasing the stability of the device and reducing the difficulty of operating the device.
[0027] Specifically, a lifting device 6 is provided on the surface of the workbench 4, and the lifting device 6 includes a moving rod 63, which is fixedly connected to the workbench 4. A top plate 61 is provided on the surface of the moving rod 63, and a hole 1 is opened on the surface of the top plate 61. The moving rod 63 is slidably connected to the hole 1 on the surface of the top plate 61.
[0028] In this embodiment, the lifting device 6 is provided to facilitate lifting of the gel, so that the user can take out the gel, thereby increasing the stability of the device and facilitating operation.
[0029] Specifically, there are two moving rods 63, and the two moving rods 63 are arranged in mirror symmetry. The surface of the top plate 61 is fixedly connected with a magnetic suction ring 62. By setting the magnetic suction ring 62, it is convenient to adsorb and position the container, thereby increasing the stability of the equipment and reducing the difficulty of operating the equipment.
[0030] Specifically, a buffer spring 64 is fixedly connected to the lower surface of the top plate 61 , and a side of the buffer spring 64 away from the top plate 61 is fixedly connected to the workbench 4 .
[0031] In this embodiment, a buffer spring 64 is provided. When in use, the buffer spring 64 generates elastic force to squeeze the top plate 61, which facilitates rapid discharge of the gel and increases the safety of the device.
[0032] Working principle: By setting the auxiliary device 5 and the lifting device 6, when in use, the graphene aerogel is poured into the container, and then the container is placed on the top plate 61. At this time, the magnetic ring 62 is magnetically attracted to the container, the container is pressed, the top plate 61 moves downward, and then the knob 58 is turned, the knob 58 drives the threaded rod 56 to rotate, and the threaded rod 56 drives the pressing block 57 to squeeze the baffle 55. At this time, the second clamping ring 54 slides and clamps the container between the first clamping ring 51 and the second clamping ring 54. At this time, the strength detection rod 3 is pressed downward to detect the strength of the gel. After the detection is completed , the reversal knob 58 drives the threaded rod 56 and the pressure block 57 to disengage from the blocking piece 55. At this time, the second clamping ring 54 is separated from the first clamping ring 51, and the top plate 61 loses its restraint. The buffer spring 64 generates elastic force to push the top plate 61 out, and at the same time drives the container to slide out, so that the container can be removed. By setting up the utility model, it is convenient for the auxiliary equipment to clamp and tighten the container during detection, which is convenient for the equipment to detect, improves the detection accuracy of the equipment, increases the detection efficiency of the equipment, and is convenient for the user to take out the gel, improves the stability of the equipment, and facilitates rapid detection.
Claims
1. An auxiliary structure of a graphene aerogel detection device, comprising a base (1) and an auxiliary device (5), characterized in that: A slide rail (2) is installed on the surface of the base (1), a strength detection rod (3) is installed on the surface of the slide rail (2), a workbench (4) is installed on the surface of the base (1), the auxiliary device (5) is arranged on the surface of the workbench (4), the auxiliary device (5) comprises a first clamping ring (51), the first clamping ring (51) is fixedly connected to the workbench (4), one side of the first clamping ring (51) is fixedly connected to a slide rod (52), one side of the slide rod (52) is fixedly connected to a connecting plate (53), the surface of the slide rod (52) is slidably connected to a second clamping ring (54), one side of the second clamping ring (54) is fixedly connected to a baffle (55), and the surface of the workbench (4) is threadedly connected to a threaded rod (56).
2. The auxiliary structure of a graphene aerogel detection device according to claim 1, characterized in that: A pressure block (57) is fixedly connected to one side of the threaded rod (56) close to the blocking plate (55), and a knob (58) is fixedly connected to one side of the threaded rod (56) away from the pressure block (57).
3. The auxiliary structure of a graphene aerogel detection device according to claim 1, characterized in that: The first clamping ring (51) and the second clamping ring (54) are arranged in a "C" shape, and the blocking piece (55) is clamped with the pressing block (57).
4. The auxiliary structure of a graphene aerogel detection device according to claim 1, characterized in that: There are four sliding rods (52), and the four sliding rods (52) are arranged in a mirror-symmetrical manner.
5. The auxiliary structure of a graphene aerogel detection device according to claim 1, characterized in that: The surface of the workbench (4) is provided with a lifting device (6), and the lifting device (6) comprises a moving rod (63), and the moving rod (63) is fixedly connected to the workbench (4); the surface of the moving rod (63) is provided with a top plate (61), and the surface of the top plate (61) is provided with a hole one, and the moving rod (63) is slidably connected with the hole one on the surface of the top plate (61).
6. The auxiliary structure of the graphene aerogel detection device according to claim 5, characterized in that: There are two moving rods (63), and the two moving rods (63) are arranged in a mirror-symmetrical manner. A magnetic attraction ring (62) is fixedly connected to the surface of the top plate (61).
7. The auxiliary structure of the graphene aerogel detection device according to claim 5, characterized in that: A buffer spring (64) is fixedly connected to the lower surface of the top plate (61), and the side of the buffer spring (64) away from the top plate (61) is fixedly connected to the workbench (4).