Multi-layer composite sealing reaction kettle structure
The new support and positioning mechanism solves the problem of insufficient stability in the multi-layer composite sealed reactor structure, and realizes stable support and angle adjustment of the reactor during transportation and installation, thereby improving the overall applicability and stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUXI DINGHENGSHENG CHEMICAL EQUIPMENT MANUFACTURING CO LTD
- Filing Date
- 2025-04-30
- Publication Date
- 2026-04-21
AI Technical Summary
Existing multi-layer composite sealed reactors have complex structures and are relatively heavy. The use of traditional support legs results in insufficient stability, poses dangers during transportation and installation, and requires high ground strength.
A new type of support and positioning mechanism is adopted, including components such as positioning bolts, adjusting plates, support rods, horizontal threaded rods and locking nuts. Through sliding and rotating connections, it can achieve stable support and angle adjustment of the reactor. It is fixed with anchoring nails to improve stability.
This improves the stability of the reactor during transportation and installation, adapts to different installation requirements, avoids deformation of the support legs, and enhances overall applicability and stability.
Smart Images

Figure CN224142203U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of reaction vessel technology, specifically a multi-layer composite sealed reaction vessel structure. Background Technology
[0002] Multi-layer composite sealed reactors are reaction equipment that combines multiple sealing technologies. They are mainly used in reaction processes involving high pressure, high temperature, or corrosive media. Their core function is to improve the sealing performance, safety, and service life of the equipment through the synergistic effect of the multi-layer sealing structure.
[0003] Existing multi-layer composite sealed reactors have complex structures and are relatively heavy. However, they still use traditional support legs, resulting in insufficient overall stability and posing certain risks during transportation. Furthermore, they require strong ground surfaces for installation and use. Therefore, a new multi-layer composite sealed reactor structure needs to be designed to address these issues. Utility Model Content
[0004] The purpose of this utility model is to provide a multi-layer composite sealed reactor structure to solve the problems mentioned in the background art, such as the complex structure of existing multi-layer composite sealed reactors, their heavy weight, and the use of traditional support legs, which leads to insufficient overall stability of the reactor, certain dangers during transportation, and high requirements for ground strength during installation and use.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a multi-layer composite sealed reactor structure, comprising a reactor body, an outer composite sealing layer disposed on the outer side of the reactor body, a support leg fixed to the bottom of the reactor body, a side plate fixed to the outer wall of the outer composite sealing layer, a track groove formed on the side plate, the inner wall of the track groove fitting with one end of a positioning bolt, a positioning nut installed at the other end of the positioning bolt, the positioning bolt passing through a stabilizing hole, the stabilizing hole being located at the top of an adjusting plate, a support rod rotatably mounted at the bottom end of the adjusting plate, the bottom end of the support rod being rotatably connected to one end of the top surface of the bottom plate, an anchoring nail installed at the other end of the top surface of the bottom plate, a horizontal hole formed in the middle of the bottom plate, a horizontal threaded rod passing through the horizontal hole, the end of the horizontal threaded rod being connected and fixed to the bottom side of the support leg.
[0006] Preferably, the side plate has a side view length greater than half the outer diameter of the outer composite sealing layer, and the side plate is symmetrically distributed about the center of the outer composite sealing layer.
[0007] Preferably, the positioning bolt and the track groove are slidably connected, and the inner width of the track groove is greater than the width of the opening.
[0008] Preferably, the positioning bolts are tightly fitted with the stabilizing holes, and the positioning bolts are symmetrically distributed about the center of the adjusting plate.
[0009] Preferably, the side view length of the adjustment plate is greater than 3 / 4 of the side view length of the side plate, and the mating surface between the adjustment plate and the side plate is set to a matte finish.
[0010] Preferably, the support rods are evenly spaced, and the length of each support rod is greater than the length of the support leg.
[0011] Preferably, the horizontal threaded rod and the horizontal hole are slidably connected, and the horizontal threaded rod is symmetrically distributed about the center of the base plate.
[0012] Preferably, a locking nut is installed on the horizontal threaded rod, and the locking nuts are symmetrically distributed about the center of the base plate.
[0013] Compared with the prior art, the beneficial effects of this utility model are: the multi-layer composite sealed reactor structure adopts a novel structural design, which can not only support and position the entire reactor, but also lock the support legs, further improving the stability of the reactor during transportation and installation. At the same time, the support and positioning mechanism can be easily adjusted according to different installation requirements, greatly improving the overall applicability.
[0014] 1. By adjusting the plate and the positioning bolts, the vertical sliding along the track groove, combined with the horizontal sliding of the base plate along the horizontal threaded rod, the tilt angle of the support rod can be easily adjusted to adapt to different installation requirements and greatly improve the stability of the reactor body during installation and use;
[0015] 2. The relative position of the base plate and the horizontal threaded rod is locked by the horizontal threaded rod and the locking nut. With the help of the anchoring nail, the installation stability of the base plate is further improved. At the same time, the support legs are pulled and positioned to prevent deformation of the support legs during use, thereby improving the overall stability of the device during use. Attached Figure Description
[0016] Figure 1 This is a front view structural diagram of the present invention;
[0017] Figure 2 This is a front view cross-sectional structural diagram of the side plate and bottom plate of this utility model;
[0018] Figure 3 This is a side view of the side plate, adjusting plate, and support rod of this utility model.
[0019] Figure 4 This is a side view sectional structural diagram of the base plate of this utility model;
[0020] Figure 5 This is a top view of the support rod, base plate, and horizontal threaded rod of this utility model.
[0021] In the diagram: 1. Reactor body; 2. Outer composite sealing layer; 3. Support leg; 4. Side plate; 5. Track groove; 6. Positioning bolt; 7. Positioning nut; 8. Stabilizing hole; 9. Adjusting plate; 10. Support rod; 11. Base plate; 12. Anchoring nail; 13. Horizontal hole; 14. Horizontal threaded rod; 15. Locking nut. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0023] Please see Figure 1-5 This utility model provides a technical solution: a multi-layer composite sealed reactor structure, including a reactor body 1, an outer composite sealing layer 2, support legs 3, side plates 4, track grooves 5, positioning bolts 6, positioning nuts 7, stabilizing holes 8, adjusting plates 9, support rods 10, bottom plates 11, anchoring nails 12, horizontal holes 13, horizontal threaded rods 14, and locking nuts 15. The outer composite sealing layer 2 is provided on the outside of the reactor body 1, and support legs 3 are fixed to the bottom of the reactor body 1. Side plates 4 are fixed to the outer wall of the outer composite sealing layer 2, and openings are provided on the side plates 4. There is a track groove 5, the inner wall of the track groove 5 is fitted with one end of the positioning bolt 6, the other end of the positioning bolt 6 is fitted with a positioning nut 7, the positioning bolt 6 passes through the stabilizing hole 8, the stabilizing hole 8 is opened at the top of the adjusting plate 9, the bottom end of the adjusting plate 9 is rotatably installed with a support rod 10, the bottom end of the support rod 10 is rotatably connected to one end of the top surface of the base plate 11, the other end of the top surface of the base plate 11 is installed with an anchor nail 12, a horizontal hole 13 is opened in the middle of the base plate 11, a horizontal threaded rod 14 is installed through the horizontal hole 13, and the end of the horizontal threaded rod 14 is connected and fixed to the bottom side of the support leg 3.
[0024] In this example, the side plate 4 has a side view length greater than half the outer diameter of the outer composite sealing layer 2. The side plate 4 is symmetrically distributed about the center of the outer composite sealing layer 2. The above structural design makes the side plate 4 large enough to provide stable support for the outer composite sealing layer 2 and the reactor body 1.
[0025] The positioning bolt 6 is slidably connected to the track groove 5. The inner width of the track groove 5 is greater than the width of the opening. The above structural design ensures that the positioning bolt 6 will not slip off the track groove 5, and the positioning bolt 6 can slide stably in a straight line along the track groove 5.
[0026] The positioning bolt 6 fits tightly with the stabilizing hole 8. The positioning bolt 6 is symmetrically distributed about the center of the adjusting plate 9. The above structural design enables the positioning bolt 6 to carry the adjusting plate 9 to a stable displacement, and the positioning nut 7 installed on the positioning bolt 6 presses the adjusting plate 9 and fixes it to the side plate 4.
[0027] The side view length of the adjustment plate 9 is greater than 3 / 4 of the side view length of the side plate 4. The mating surface between the adjustment plate 9 and the side plate 4 is set to a matte finish. The above structural design allows the adjustment plate 9 to fit against the side plate 4 over a large area, ensuring stability during fixed use.
[0028] The support rods 10 are evenly spaced, and the length of the support rods 10 is greater than the length of the support legs 3. The above structural design enables the support rods 10 to rotate stably and adjust the support angle to adapt to different installation requirements.
[0029] The horizontal threaded rod 14 and the horizontal hole 13 are slidably connected. The horizontal threaded rod 14 is symmetrically distributed about the center of the base plate 11. The above structural design enables the base plate 11 to slide stably along the horizontal threaded rod 14 with the horizontal hole 13.
[0030] A locking nut 15 is installed on the horizontal threaded rod 14. The locking nuts 15 are symmetrically distributed about the center of the base plate 11. The above structural design allows the locking nuts 15 to quickly lock the relative position of the base plate 11 and the horizontal threaded rod 14 by pressing the two sides of the base plate 11.
[0031] Working principle: First, adjust the tilt angle of the support rod 10 according to the requirements of transportation and installation, rotate the positioning nut 7 away from the adjusting plate 9, and rotate the symmetrically distributed locking nuts 15 away from both sides of the base plate 11. Figure 2 The figure shows the minimum tilt angle between the support rod 10 and the horizontal plane. During adjustment, the adjustment plate 9 is pushed to slide up the track groove 5 with the positioning bolt 6, and the base plate 11 is pushed to slide along the horizontal threaded rod 14 towards the support leg 3 with the horizontal hole 13. The support rod 10 then rotates and stands upright.
[0032] Once the inclination angle of the support rod 10 is appropriate, rotate the positioning nut 7 to reset and press the adjusting plate 9 to fit and fix it to the side plate 4. Rotate the symmetrically distributed locking nuts 15 to press and fix the two sides of the bottom plate 11. Then, normal transportation can be carried out. When fixing and installing, after the above steps are completed, the anchor nail 12 is driven through the bottom plate 11 and driven into the installation ground to reinforce the bottom plate 11. This allows the bottom plate 11, support rod 10, adjusting plate 9 and side plate 4 to stably support the reactor body 1 and the outer composite sealing layer 2. At the same time, the bottom plate 11, together with the horizontal threaded rod 14, pulls and fixes the support leg 3 to prevent deformation of the support leg 3 and ensure the long-term stable use of the reactor body 1. This is the working principle of the multi-layer composite sealing reactor structure.
[0033] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A multi-layered composite seal reactor structure comprising a reactor body (1) characterised in that: An outer composite sealing layer (2) is provided on the outside of the reactor body (1). A support leg (3) is fixed at the bottom of the reactor body (1). A side plate (4) is fixed on the outer wall of the outer composite sealing layer (2). A track groove (5) is provided on the side plate (4). The inner wall of the track groove (5) is fitted with one end of the positioning bolt (6). A positioning nut (7) is installed at the other end of the positioning bolt (6). The positioning bolt (6) passes through the stabilizing hole (8). The stabilizing hole (8) is opened at the top of the adjusting plate (9). A support rod (10) is rotatably installed at the bottom end of the adjusting plate (9). The bottom end of the support rod (10) is rotatably connected to one end of the top surface of the base plate (11). An anchor nail (12) is installed at the other end of the top surface of the base plate (11). A horizontal hole (13) is opened in the middle of the base plate (11). A horizontal threaded rod (14) is installed through the horizontal hole (13). The end of the horizontal threaded rod (14) is connected and fixed to the bottom side of the support leg (3).
2. A multi-layered composite seal reactor structure as claimed in claim 1, wherein: The side plate (4) has a side view length greater than half the outer diameter of the outer composite sealing layer (2), and the side plate (4) is symmetrically distributed about the center of the outer composite sealing layer (2).
3. A multi-layered composite seal reaction vessel structure as claimed in claim 1, wherein: The positioning bolt (6) and the track groove (5) are slidably connected, and the inner width of the track groove (5) is greater than the width of the opening.
4. The multi-layered composite seal reaction vessel structure of claim 1, wherein: The positioning bolt (6) fits tightly with the stabilizing hole (8), and the positioning bolt (6) is symmetrically distributed about the center of the adjusting plate (9).
5. The multi-layered composite seal reaction vessel structure of claim 1, wherein: The side view length of the adjustment plate (9) is greater than 3 / 4 of the side view length of the side plate (4), and the mating surface of the adjustment plate (9) and the side plate (4) is set to a matte surface.
6. A multi-layered composite seal reaction vessel structure as claimed in claim 1, wherein: The support rods (10) are evenly spaced, and the length of the support rods (10) is greater than the length of the support legs (3).
7. The multi-layered composite seal reaction vessel structure of claim 1, wherein: The horizontal threaded rod (14) and the horizontal hole (13) are slidably connected, and the horizontal threaded rod (14) is symmetrically distributed about the center of the base plate (11).
8. The multi-layered composite seal reaction vessel structure of claim 1, wherein: A locking nut (15) is installed on the horizontal threaded rod (14), and the locking nuts (15) are symmetrically distributed about the center of the base plate (11).