Reaction kettle for platinum-carbon catalyst
By setting a combination structure of a bonding plate, a movable plate, a slider, and a buffer plate in the reactor, combined with spring damping and a telescopic rod, the problem of increased shaking caused by the buffer spring is solved, and a stable vibration reduction effect is achieved for the reactor body.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 广年储能科技(大连)有限公司
- Filing Date
- 2024-11-22
- Publication Date
- 2026-04-17
AI Technical Summary
When using buffer springs for shock absorption in existing reactors, the shaking amplitude increases, affecting normal operation.
It adopts a combination structure of bonding plate, movable plate, slider and buffer plate, combined with spring damping and telescopic rod, to relieve shaking through rotation and sliding, and to absorb shock by using rubber buffer plate and spring damping.
It effectively reduces the shaking of the reactor, ensuring the stability and safety of the reactor body during operation, and avoiding the impact of excessive shaking on normal operation.
Smart Images

Figure CN224135499U_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of reaction vessel technology, specifically to a reaction vessel for a platinum-carbon catalyst. Background Technology
[0002] A reaction vessel is a container used for chemical reactions. To adapt to different requirements under various working conditions, there are many types of reaction vessels, which are widely used in the fields of biology, chemical engineering, materials science, and semiconductor science.
[0003] The applicant discovered through a search that a Chinese patent, CN 213493615 U, discloses a "glass reactor for platinum catalyst production." This patent includes a glass reactor body and a base located at the bottom of the reactor body. The glass reactor is horizontally positioned above the base. A bottom plate is provided at the bottom of the base, and the bottom plate has a placement groove for placing the bottom of the glass reactor body. Several support columns are vertically arranged on the bottom plate, and a fixing plate is provided at the top of each support column. The fixing plate has a receiving groove for accommodating the glass reactor body. This application provides the ability to secure the exterior of the glass reactor body, ensuring safe use.
[0004] However, when processing platinum carbon, the reactor uses a buffer spring to dampen vibrations, but the spring force of the buffer spring exacerbates the shaking of the reactor, making it shake more violently and affecting the normal operation of the reactor. Summary of the Invention
[0005] Therefore, this invention provides a reaction vessel for platinum-carbon catalysts to solve the problem that in the prior art, the reaction vessel is damped by a buffer spring, but the spring force of the buffer spring will aggravate the shaking amplitude of the reaction vessel, making the shaking more violent and affecting the normal operation of the reaction vessel.
[0006] To achieve the above objectives, this utility model provides the following technical solution:
[0007] According to a first aspect of this utility model, a platinum-carbon catalyst reactor includes a base, in which four sets of supports are embedded. Side plates are fixedly connected to the sides of each of the four sets of supports. A placement groove located at the top of the base is provided on one side of each support. The reactor body is placed inside the placement groove. Telescopic rods are fixedly connected to the inner walls of each of the four sets of side plates. Adhesive plates that fit against the reactor body are fixedly connected to the tails of the four sets of telescopic rods. Movable plates are rotatably connected to one side of each of the four sets of adhesive plates. Slider blocks that are slidably connected to the side plates are rotatably connected to the surfaces of each of the four sets of movable plates. Spring dampers that are fixedly connected to the side plates are fixedly connected to one side of each of the four sets of sliders. Buffer plates are fixedly connected to the other side of each of the four sets of sliders.
[0008] Furthermore, each of the four sets of brackets has a slot inside, and both sides of the base are rotatably connected to positive and negative lead screws. The surfaces of the two sets of positive and negative lead screws are threaded with two sets of embedding blocks that are embedded in the slots. The top of the embedding block is slidably connected to a limiting plate that is fixedly connected to the base, and the bottom of the base is provided with rollers.
[0009] Furthermore, the placement groove is located at the center of the base, and the placement groove is in close contact with the main body of the reactor.
[0010] Furthermore, the telescopic rod is a telescopic sleeve design, and the surface curvature of the bonding plate is consistent with that of the reactor body.
[0011] Furthermore, the movable plate has an "eight" shape design, and the contact points between the movable plate and the bonding plate and the slider are all at the end points of the movable plate.
[0012] Furthermore, the buffer plate is a rubber plate, and one side of the buffer plate is in contact with the side plate.
[0013] Furthermore, the four sets of brackets are arranged at opposite corners of the base, and the base has corresponding insertion holes for the slots inside.
[0014] Furthermore, the two sets of embedded blocks have an "L" shaped structure, and the two sets of embedded blocks form a reverse sliding structure along the limiting plate through positive and negative lead screws.
[0015] Furthermore, the card slot matches the size of the insert block, and the bracket forms a locking mechanism through the insert block.
[0016] Furthermore, the surface of the roller is covered with a layer of rubber gasket.
[0017] This invention has the following advantages: When in use, by setting up a bonding plate, if shaking occurs when the reactor body is working, the reactor body will push the bonding plate, and the bonding plate will transfer the thrust to the movable plate. The movable plate will rotate around the bonding plate and push the slider to slide on the side of the side plate, squeezing the buffer plate. The buffer plate is made of rubber, which can alleviate the thrust. In addition, by setting spring damping, it can also buffer the slider when it slides towards the telescopic rod, thereby achieving the shock absorption effect of the reactor body during operation. Attached Figure Description
[0018] Figure 1 This is a three-dimensional structural diagram of a reaction vessel for a platinum-carbon catalyst provided for some embodiments of this utility model.
[0019] Figure 2 This is a three-dimensional structural view of a platinum-carbon catalyst reactor provided for some embodiments of this utility model.
[0020] Figure 3 This is a structural diagram of the movable plate of a reaction vessel for a platinum-carbon catalyst provided for some embodiments of this utility model.
[0021] Figure 4 A structural diagram of a placement tank for a platinum-carbon catalyst reactor provided for some embodiments of this utility model;
[0022] Figure 5 This is a structural diagram of a limiting plate for a reaction vessel using a platinum-carbon catalyst, provided for some embodiments of this utility model.
[0023] In the diagram: 1. Base; 2. Support; 3. Placement slot; 4. Reactor body; 5. Telescopic rod; 6. Adhesive plate; 7. Movable plate; 8. Slider; 9. Spring damping; 10. Buffer plate; 11. Positive and negative lead screws; 12. Embedded block; 13. Limiting plate; 14. Slot; 15. Side plate; 16. Roller. Detailed Implementation
[0024] The following specific embodiments illustrate the implementation of this utility model. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0025] Example
[0026] like Figures 1 to 5 As shown, a platinum-carbon catalyst reactor according to the first aspect of this utility model includes a base 1, with four sets of supports 2 embedded inside the base 1. Each of the four sets of supports 2 has a side plate 15 fixedly connected to its side. A placement groove 3 located on the top of the base 1 is provided on one side of the support 2. The reactor body 4 is placed inside the placement groove 3. Telescopic rods 5 are fixedly connected to the inner side walls of the four sets of side plates 15. The tail of each of the four sets of telescopic rods 5 is fixedly connected to a fitting plate 6 that fits against the reactor body 4. The placement groove 3 is located at the center of the base 1 and fits against the reactor body 4. The telescopic rods 5 are telescopic sleeves. The surface curvature of the fitting plate 6 is consistent with that of the reactor body 4.
[0027] The technical effects achieved by the above embodiments are as follows: When in use, the reactor body 4 can be placed inside the placement slot 3. The placement slot 3 can instruct the installer to place the reactor body 4 in a suitable position when placing the reactor body 4. The telescopic rod 5 can limit the movement of the bonding plate 6. When the bonding plate 6 is subjected to a pushing force, the telescopic rod 5 can limit its movement trajectory.
[0028] Example
[0029] like Figures 2 to 4 As shown, a platinum-carbon catalyst reactor includes all the contents of Example 1. Each of the four sets of bonding plates 6 has a movable plate 7 rotatably connected to one side. Each of the four sets of movable plates 7 has a slider 8 rotatably connected to a side plate 15. Each of the four sets of sliders 8 has a spring damper 9 fixedly connected to one side of the side plate 15. Each of the four sets of sliders 8 has a buffer plate 10 fixedly connected to the other side. The movable plate 7 has an "eight"-shaped design. The contact points between the movable plate 7 and the bonding plates 6 and sliders 8 are at the endpoints of the movable plate 7. The buffer plate 10 is a rubber plate, and one side of the buffer plate 10 is in contact with the side plate 15.
[0030] The technical effects achieved by the above embodiments are as follows: When platinum carbon needs to be processed, the material is added into the interior of the reactor body 4, and the material is processed by the reactor body 4. When the reactor body 4 is working, if shaking occurs, the reactor body 4 will push the bonding plate 6, and the bonding plate 6 will transmit the thrust to the movable plate 7. The movable plate 7 will rotate around the bonding plate 6 and push the slider 8 to slide on the side of the side plate 15, squeezing the buffer plate 10. The buffer plate 10 is made of rubber, which can relieve the thrust. In addition, by setting the spring damper 9, it can also buffer the slider 8 when it slides towards the telescopic rod 5, thereby achieving the shock absorption effect of the reactor body 4 during operation.
[0031] Example A platinum-carbon catalyst reactor, comprising all the contents of Example 2, further includes four sets of supports 2, each with a slot 14 inside. Both sides of the base 1 are rotatably connected to positive and negative lead screws 11. The surfaces of the two sets of positive and negative lead screws 11 are threadedly connected to two sets of embedding blocks 12 embedded in the slots 14. The top of each embedding block 12 is slidably connected to a limiting plate 13 fixedly connected to the base 1. The bottom of the base 1 is provided with rollers 16. The four sets of supports 2 are located diagonally opposite to the base 1. The base 1 has corresponding insertion holes for the slots 14 inside. The two sets of embedding blocks 12 have an "L" shaped structure. The two sets of embedding blocks 12 form a reverse sliding structure along the limiting plate 13 via the positive and negative lead screws 11. The slots 14 and embedding blocks 12 are sized to match. The supports 2 form a locking mechanism via the embedding blocks 12. The surface of the rollers 16 is covered with a rubber gasket.
[0032] The technical effect achieved by the above embodiment is as follows: when it is necessary to disassemble the bracket 2 and the side plate 15, the positive and negative screws 11 are turned to control the two sets of embedded blocks 12 to slide in opposite directions along the limiting plate 13. When the embedded blocks 12 slide, they will gradually slide out of the slot 14. At this time, the bracket 2 will lose the fixing force of the embedded blocks 12, and the bracket 2 can be pulled upward to pull it out from the base 1 to achieve the purpose of disassembly.
Claims
1. A reaction vessel for platinum carbon catalyst comprising a base (1), characterized in that, The base (1) is embedded with four sets of brackets (2). Each of the four sets of brackets (2) is fixedly connected to a side plate (15). One side of each bracket (2) is provided with a placement groove (3) located at the top of the base (1). The main body of the reactor (4) is placed inside the placement groove (3). Each of the four sets of side plates (15) is fixedly connected to a telescopic rod (5). The tail of each of the four sets of telescopic rods (5) is fixedly connected to a fitting plate (6) that fits against the main body of the reactor (4). Each of the four sets of fitting plates (6) is rotatably connected to a movable plate (7). Each of the four sets of movable plates (7) is rotatably connected to a slider (8) that slides against the side plate (15). Each of the four sets of sliders (8) is fixedly connected to a spring damper (9) that is fixedly connected to the side plate (15) on one side. Each of the four sets of sliders (8) is fixedly connected to a buffer plate (10) on the other side.
2. The reaction kettle for platinum carbon catalyst according to claim 1, characterized in that, The four sets of brackets (2) are provided with slots (14) inside. Both sides of the base (1) are rotatably connected with positive and negative screws (11). The surfaces of the two sets of positive and negative screws (11) are threaded with two sets of embedding blocks (12) embedded in the slots (14). The top of the embedding block (12) is slidably connected with a limiting plate (13) fixedly connected to the base (1). The bottom of the base (1) is provided with rollers (16).
3. The reaction kettle for platinum carbon catalyst according to claim 1, characterized in that, The placement groove (3) is located at the center of the base (1), and the placement groove (3) is in close contact with the reactor body (4).
4. The reaction kettle for platinum carbon catalyst according to claim 1, characterized in that, The telescopic rod (5) is designed as a telescopic sleeve rod, and the surface curvature of the bonding plate (6) is consistent with that of the reactor body (4).
5. The reaction vessel for a platinum-carbon catalyst according to claim 1, characterized in that, The movable plate (7) is designed in the shape of the number "8". The contact points between the movable plate (7) and the bonding plate (6) and the slider (8) are all at the end points of the movable plate (7).
6. The reaction vessel for platinum carbon catalyst according to claim 1, wherein The buffer plate (10) is a rubber plate, and one side of the buffer plate (10) is in contact with the side plate (15).
7. The reaction vessel for a platinum-carbon catalyst according to claim 2, characterized in that, The four sets of brackets (2) are arranged at opposite corners of the base (1), and the base (1) has a slot (14) with corresponding insertion holes inside.
8. The reaction kettle for platinum carbon catalyst according to claim 2, characterized in that, The two sets of embedded blocks (12) are "L" shaped structures, and the two sets of embedded blocks (12) form a reverse sliding structure along the limiting plate (13) through positive and negative lead screws (11).
9. The reaction vessel for platinum carbon catalyst according to claim 2, characterized in that, The slot (14) is matched with the size of the insert block (12), and the bracket (2) forms a locking mechanism through the insert block (12).
10. The reaction vessel for platinum carbon catalyst according to claim 2, characterized in that, The surface of the roller (16) is covered with a layer of rubber gasket.
Citation Information
Patent Citations
Glass reaction kettle for platinum catalyst production
CN213493615U