Assembled glass fiber reinforced plastic storage tank
The modular design of glass-fiber reinforced plastic tanks with a connecting and cushioning mechanism addresses the transportation challenges of large tanks by facilitating disassembly and impact protection, improving logistics and durability.
Patent Information
- Application Number
- CN202421900903.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-07
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-08-07
AI Technical Summary
The existing fiberglass storage tanks are large in size, resulting in inconvenient transportation.
The assembly-type structure is designed, and the storage tank is divided into multiple parts through the splicing mechanism, which is convenient for transportation, and the impact of external objects is slowed down through the buffer mechanism and improved service life.
It realizes convenient disassembly and transportation of storage tanks, enhances sealing, and reduces damage to the storage tank by impact through buffering mechanisms, and extends service life.
Smart Images

Figure CN223101613U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of fiberglass storage tanks, and particularly relates to a detachable fiberglass storage tank. Background Technique
[0002] The fiberglass storage tank is a kind of fiberglass product, which is mainly a new composite material made by winding with a microcomputer-controlled machine using glass fiber as the reinforcing agent and resin as the binder. The fiberglass storage tank has the characteristics of corrosion resistance, high strength, light weight, long service life, etc. The fiberglass storage tank is widely used in industries such as chemical industry, environmental protection, food, and pharmacy.
[0003] The patent with the publication number CN221115346U discloses a fiberglass storage tank. There is a vacuum gap between the storage tank main body and the cylinder shell, which can play a heat insulation role and is beneficial to keeping the chemical substances within an appropriate temperature range. Through the heat exchange medium flowing in the spiral tube, the temperature of the chemical substances in the storage tank main body can be adjusted. However, the following problems still exist in the actual use of this patent:
[0004] Although the temperature of the chemical substances in the storage tank main body can be adjusted by the heat exchange medium flowing in the spiral tube of this fiberglass storage tank, the fiberglass storage tanks used in industry are very large in volume, resulting in rather troublesome transportation of the fiberglass storage tanks.
[0005] A detachable fiberglass storage tank is proposed to solve the problems mentioned above. Content of the Utility Model
[0006] The purpose of the utility model is to provide a detachable fiberglass storage tank to solve the problem that although the temperature of the chemical substances in the storage tank main body can be adjusted by the heat exchange medium flowing in the spiral tube as mentioned in the above background technique, the fiberglass storage tanks used in industry are very large in volume, resulting in rather troublesome transportation of the fiberglass storage tanks.
[0007] To achieve the above purpose, the utility model provides the following technical solution: A detachable fiberglass storage tank, including a splicing mechanism and a sealing ring installed inside the splicing mechanism;
[0008] A buffer mechanism is arranged on the outer side of the splicing mechanism, and one side of the buffer mechanism is fixedly connected to the outer side of the second fiberglass storage tank;
[0009] It further includes:
[0010] The splicing mechanism includes a first fiberglass storage tank, and a plurality of convex blocks are symmetrically and fixedly connected to the left and right ends of the first fiberglass storage tank;
[0011] Among them, the number of convex blocks is six, and the convex blocks are evenly distributed at both ends of the first fiberglass storage tank. A connecting rod is slidably connected to the central position inside the convex block;
[0012] Among them, a T-shaped bar is slidably connected to the inside of one end of the connecting rod. One end of the T-shaped bar is rotatably connected to a bolt, and the outside of the bolt is threadedly connected to the convex block.
[0013] Preferably, the other end of the connecting rod is fixedly connected to a first spring. One end of the first spring is fixedly connected to the convex block. Clamping blocks are symmetrically and adhesively connected to one side of the connecting rod close to the first spring.
[0014] Preferably, a limiting column is rotatably connected to the inside of one end of the clamping block. The front and rear ends of the limiting column are both fixedly connected to the convex block. The end of the clamping block away from the connecting rod is adhesively connected to a concave block.
[0015] Preferably, limiting strips are snap-fitted to the upper and lower ends of one side of the concave block close to the convex block. One end of the two limiting strips is fixedly connected to the convex block. One side of the concave block is fixedly connected to the second fiberglass storage tank. A sealing ring is snap-fitted to one side of the second fiberglass storage tank close to the first fiberglass storage tank.
[0016] Preferably, the buffer mechanism includes a guide rod. Support blocks are fixedly connected to both the left and right ends of the guide rod. One side of the two support blocks is fixedly connected to the second fiberglass storage tank. A second spring is sleeved on the central position of the outside of the guide rod.
[0017] Preferably, sliding sleeves are fixedly connected to both the left and right ends of the second spring. The inside of the two sliding sleeves is slidably connected to the guide rod. Support rods are symmetrically and rotatably connected to the upper and lower sides of the sliding sleeve. A buffer plate is rotatably connected to the support rod above the sliding sleeve.
[0018] Preferably, cylinders are fixedly connected to both the left and right ends of the buffer plate. Sleeves are sleeved on the outside of the two cylinders. One end of the sleeve is fixedly connected to the support block. A third spring is fixedly connected to one side inside the sleeve. One end of the third spring is in contact with the cylinder. Damping particles are fixedly connected to the other side inside the sleeve.
[0019] Compared with the prior art, the beneficial effects of the present utility model are as follows: For this detachable fiberglass storage tank, by setting the splicing mechanism, the fiberglass storage tank can be quickly disassembled into three parts, which is convenient for transporting the fiberglass storage tank. By setting the buffer mechanism, the impact of external objects on the fiberglass storage tank can be reduced, thereby improving the service life of the fiberglass storage tank. The specific content is as follows:
[0020] 1. By setting up a splicing mechanism, the FRP storage tank can be quickly disassembled into three parts, facilitating the transportation of the FRP storage tank. By rotating the bolt and utilizing the thread action between the bolt and the convex block, the T-shaped strip is driven to move in the convex block. With the cooperation between the T-shaped strip and the connecting rod, the connecting rod is driven to move. At the same time, with the cooperation between the connecting rod and the clamping block, the clamping block is driven to rotate around the limit post. By the action of the clamping block and the limit strip on the concave block simultaneously, the concave block can be fixed, and the second FRP storage tank can be fixedly installed at both ends of the first FRP storage tank to assemble a complete FRP storage tank. By setting up a sealing ring, the sealing performance between the first FRP storage tank and the second FRP storage tank can be improved;
[0021] 2. By setting up a buffer mechanism, the impact of external objects on the FRP storage tank can be reduced, thereby increasing the service life of the FRP storage tank. When an external impact force hits the buffer plate, part of the impact force is subtracted after the third spring is compressed. Then, the third spring causes the cylinder to reset. When the cylinder resets and contacts the damping particles, the rebound force is absorbed, thus playing a buffering role. Then, the buffer plate drives the two sliding sleeves to simultaneously squeeze the second spring, and part of the impact force is absorbed by the compression of the second spring for further buffering, so as to effectively reduce the damage of the impact force to the FRP storage tank. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is a schematic diagram of the overall structure of the present invention;
[0023] Figure 2 for the present invention Figure 1 is a schematic side view structure diagram;
[0024] Figure 3 for the present invention Figure 1 is a schematic front cross-sectional structure diagram;
[0025] Figure 4 for the present invention Figure 3 is an enlarged structure diagram of the splicing mechanism in the present invention;
[0026] Figure 5 for the present invention Figure 4 is a schematic diagram of the structure when the clamping block is loose in the present invention;
[0027] Figure 6 for the present invention Figure 2 is a schematic side view structure diagram of the support block in the present invention;
[0028] Figure 7 for the present invention Figure 6 is an enlarged structure diagram of the sleeve in the present invention.
[0029] In the figure: 1. splicing mechanism; 101. first fiberglass storage tank; 102. convex block; 103. connecting rod; 104. T-shaped bar; 105. bolt; 106. first spring; 107. clamping block; 108. limit post; 109. concave block; 110. limit strip; 111. second fiberglass storage tank; 112. sealing ring; 2. buffer mechanism; 201. guide rod; 202. support block; 203. second spring; 204. sliding sleeve; 205. support rod; 206. buffer plate; 207. cylinder; 208. sleeve; 209. third spring; 210. damping particle. Detailed implementation manner
[0030] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0031] Please refer to Figures 1-7 , the present invention provides a technical solution: a detachable fiberglass storage tank, including a splicing mechanism 1 and a sealing ring 112 installed inside the splicing mechanism 1; a buffer mechanism 2 is arranged outside the splicing mechanism 1, and one side of the buffer mechanism 2 is fixedly connected to the outside of the second fiberglass storage tank 111; the splicing mechanism 1 includes a first fiberglass storage tank 101, and a plurality of convex blocks 102 are symmetrically and fixedly connected to both ends of the first fiberglass storage tank 101. By setting a plurality of convex blocks 102, the stability of the fixation between the first fiberglass storage tank 101 and the second fiberglass storage tank 111 can be improved;
[0032] The number of the convex blocks 102 is six, and the convex blocks 102 are evenly distributed at both ends of the first fiberglass storage tank 101. A connecting rod 103 is slidably connected to the central position inside the convex block 102. A T-shaped bar 104 is slidably connected to the inside of one end of the connecting rod 103. One end of the T-shaped bar 104 is rotatably connected to a bolt 105, and the outside of the bolt 105 is threadedly connected to the convex block 102. By using the threaded action between the bolt 105 and the convex block 102, the position of the T-shaped bar 104 can be determined;
[0033] The other end of the connecting rod 103 is fixedly connected to a first spring 106. One end of the first spring 106 is fixedly connected to the convex block 102. Clamping blocks 107 are symmetrically attached to the side of the connecting rod 103 close to the first spring 106. By setting the first spring 106, the clamping blocks 107 can be in a relaxed state when not in a clamped state, which is convenient for the insertion of the concave block 109;
[0034] A limiting post 108 is rotatably connected to the inside of one end of the clamping block 107. Both the front and rear ends of the limiting post 108 are fixedly connected to the convex block 102. A concave block 109 is attached to the end of the clamping block 107 away from the connecting rod 103. Both the upper and lower ends of the concave block 109 on the side close to the convex block 102 are snap-connected with limiting strips 110. One end of the two limiting strips 110 is fixedly connected to the convex block 102. One side of the concave block 109 is fixedly connected to the second fiberglass storage tank 111. A sealing ring 112 is snap-connected to the side of the second fiberglass storage tank 111 close to the first fiberglass storage tank 101. By setting the sealing ring 112, the sealing performance of the device can be improved;
[0035] The buffer mechanism 2 includes a guide rod 201. Support blocks 202 are fixedly connected to both the left and right ends of the guide rod 201. One side of the two support blocks 202 is fixedly connected to the second fiberglass storage tank 111. A second spring 203 is sleeved at the central position outside the guide rod 201. By setting the support blocks 202, it is convenient to fix the position of the buffer mechanism 2;
[0036] Both the left and right ends of the second spring 203 are fixedly connected to sliding sleeves 204. The inside of the two sliding sleeves 204 is slidably connected to the guide rod 201. Support rods 205 are symmetrically and rotatably connected to the upper and lower sides of the sliding sleeves 204. The support rod 205 above the sliding sleeve 204 is rotatably connected to a buffer plate 206. Three groups of support blocks 202 are arranged on one side of the buffer plate 206, which can improve the buffering effect of the buffer plate 206. The support rod 205 below the sliding sleeve 204 is rotatably connected to the second fiberglass storage tank 111;
[0037] Both the left and right ends of the buffer plate 206 are fixedly connected to cylinders 207. Sleeves 208 are sleeved on the outside of the two cylinders 207. One end of the sleeve 208 is fixedly connected to the support block 202. A third spring 209 is fixedly connected to one side inside the sleeve 208. One end of the third spring 209 is attached to the cylinder 207. A damping particle 210 is fixedly connected to the other side inside the sleeve 208. After a part of the impact force is subtracted by the compression of the third spring 209, then the third spring 209 causes the cylinder 207 to reset. When the cylinder 207 resets and contacts the damping particle 210, the rebound force is absorbed, thus playing a buffering role.
[0038] Working principle: Before using this kind of assembled fiberglass storage tank, it is necessary to first check the overall situation of the device to determine that it can work normally. According to Figure 1 - Figure 7As shown in the figure, first place the two ends of the first fiberglass storage tank 101 on the second fiberglass storage tank 111, and place a sealing ring 112 between them. By rotating the bolt 105, through the threaded action between the bolt 105 and the convex block 102, the T-shaped strip 104 is driven to move in the convex block 102. By using the cooperation between the T-shaped strip 104 and the connecting rod 103, the connecting rod 103 is driven to move. At the same time, by using the cooperation between the connecting rod 103 and the clamping block 107, the clamping block 107 is driven to rotate around the limiting column 108. By using the actions of the clamping block 107 and the limiting strip 110 on the concave block 109 at the same time, the concave block 109 can be fixed, and the second fiberglass storage tank 111 can be fixedly installed at both ends of the first fiberglass storage tank 101 to assemble a complete fiberglass storage tank.
[0039] Secondly, when an external impact force impacts the buffer plate 206, a part of the impact force is subtracted by the compression of the third spring 209. Then, the third spring 209 makes the cylinder 207 reset. When the cylinder 207 resets and contacts the damping particles 210, the rebound force is absorbed, thus playing a buffering role. Then, the buffer plate 206 drives the two sliding sleeves 204 to simultaneously squeeze the second spring 203. By using the compression of the second spring 203 to absorb a part of the impact force, further buffering is carried out, so that the damage of the impact force to the fiberglass storage tank can be effectively reduced.
[0040] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A prefabricable fiberglass storage tank, comprising a splicing mechanism (1) and a sealing ring (112) installed inside the splicing mechanism (1); A buffer mechanism (2) is arranged on the outer side of the splicing mechanism (1), and one side of the buffer mechanism (2) is fixedly connected to the outer side of the second fiberglass storage tank (111); It is characterized in that It further includes: The splicing mechanism (1) includes a first fiberglass storage tank (101), and a plurality of convex blocks (102) are symmetrically and fixedly connected to both left and right ends of the first fiberglass storage tank (101); Among them, the number of the convex blocks (102) is six, and the convex blocks (102) are evenly distributed at both ends of the first fiberglass storage tank (101). A connecting rod (103) is slidably connected to the central position inside the convex block (102); Among them, a T-shaped bar (104) is slidably connected to the inside of one end of the connecting rod (103). One end of the T-shaped bar (104) is rotatably connected to a bolt (105), and the outer side of the bolt (105) is threadedly connected to the convex block (102).
2. The prefabricated FRP storage tank according to claim 1, wherein: The other end of the connecting rod (103) is fixedly connected to a first spring (106). One end of the first spring (106) is fixedly connected to the convex block (102). Clamping blocks (107) are symmetrically and fittingly connected to one side of the connecting rod (103) close to the first spring (106).
3. The prefabricatable fiberglass storage tank according to claim 2, wherein: A limiting column (108) is rotatably connected to the inside of one end of the clamping block (107), and both the front and rear ends of the limiting column (108) are fixedly connected to the convex block (102). The end of the clamping block (107) away from the connecting rod (103) is fittingly connected to a concave block (109).
4. The prefabricatable fiberglass storage tank according to claim 3, wherein: Limiting strips (110) are snap-fitted to both the upper and lower ends of the side of the concave block (109) close to the convex block (102). One end of the two limiting strips (110) is fixedly connected to the convex block (102). One side of the concave block (109) is fixedly connected to the second fiberglass storage tank (111). A sealing ring (112) is snap-fitted to the side of the second fiberglass storage tank (111) close to the first fiberglass storage tank (101).
5. A prefabricable fiberglass storage tank according to claim 1, wherein: The buffer mechanism (2) includes a guide rod (201). Support blocks (202) are fixedly connected to both the left and right ends of the guide rod (201). One side of each of the two support blocks (202) is fixedly connected to the second fiberglass storage tank (111). A second spring (203) is sleeved on the central position of the outer side of the guide rod (201).
6. The prefabricated FRP storage tank according to claim 5, characterized in that: Both the left and right ends of the second spring (203) are fixedly connected to sliding sleeves (204). The inside of each of the two sliding sleeves (204) is slidably connected to the guide rod (201). Support rods (205) are symmetrically and rotatably connected to the upper and lower sides of the sliding sleeve (204). The support rod (205) above the sliding sleeve (204) is rotatably connected to a buffer plate (206).
7. The prefabricatable fiberglass storage tank according to claim 6, wherein: Both the left and right ends of the buffer plate (206) are fixedly connected with cylinders (207). A sleeve (208) is sleeved outside the two cylinders (207). One end of the sleeve (208) is fixedly connected with a support block (202). One side inside the sleeve (208) is fixedly connected with a third spring (209). One end of the third spring (209) is in fit connection with the cylinder (207). The other side inside the sleeve (208) is fixedly connected with damping particles (210).
Citation Information
Patent Citations
Glass fiber reinforced plastic storage tank
CN221115346U