Stable structure special inert resin synthesis equipment
Patent Information
- Application Number
- CN202521872346.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-01
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-09-01
AI Technical Summary
[0004]本实用新型的目的在于提供一种稳定结构特种惰性树脂合成设备,通过设置合成罐、锚形桨叶、转轴一、动态混合器、转轴二、水管、喷头、内胆、外壳、进水口和出水口,解决了树脂合成过程中原料与催化剂可能无法充分混合的问题,树脂可能会粘连在合成罐内壁无法排出的问题,以及树脂合成过程中温度升高导致树脂粘度降低的问题
本实用新型通过设置合成罐、锚形桨叶、转轴一和动态混合器,解决了树脂合成原料可能无法充分与催化剂混合的问题;树脂合成原料和催化剂分别从动态混合器的两个加料口加入,经过动态混合器的预混进入合成罐内部,锚形桨叶对原料和催化剂进行搅拌,转轴一通过小幅的正向、逆向重复转动带动合成罐小幅往复转动加强搅拌,达到充分混合原料和催化剂的目的。
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Figure CN224656727U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of materials synthesis technology, and in particular relates to a device for synthesizing a special inert resin with a stable structure. Background Technology
[0002] Specialty inert resins play a crucial role in water treatment systems, providing physical support, optimizing fluid flow, and protecting equipment. With a density between that of anionic and cationic resins, these resins typically use siloxane compounds (such as tetraethoxysilane) as the silicon source. A stable structure is formed through hydrolysis and polycondensation reactions. During the reaction, a catalyst is needed to regulate the reaction rate and ensure the stable production of the specialty inert resin. However, the following problems still exist in the preparation of stable-structure specialty inert resins: During the resin preparation process, the siloxane compound and the catalyst need to be stirred and mixed to ensure that the siloxane compound can fully contact the catalyst and undergo a catalytic reaction to produce a stable special inert resin. If the stirring of the siloxane compound and the catalyst is insufficient, it may lead to an incomplete embrittlement reaction, resulting in a lower quality resin that cannot perform its intended function. Because of the high viscosity of the resin, the prepared resin may be adsorbed inside the mold cavity of the synthesis equipment and cannot be discharged from the outlet. The resin that cannot be discharged will solidify inside the equipment, affecting the subsequent resin synthesis work. 3. The process of catalytic reaction to synthesize resin is an exothermic process. If the temperature is too high, it may cause the resin molecules to decompose, thereby reducing the resin viscosity and affecting the resin quality. Therefore, it is necessary to cool down during the resin synthesis process. The commonly used cooling method is water cooling. However, if water is added directly during the synthesis process, it may reduce the binding force of the resin molecules, which will also reduce the resin viscosity and affect the resin quality.
[0003] To address these issues, we provide a stable structure special inert resin synthesis apparatus. Utility Model Content
[0004] The purpose of this invention is to provide a stable structure for synthesizing special inert resins. By setting up a synthesis tank, anchor-shaped paddle, shaft one, dynamic mixer, shaft two, water pipe, nozzle, inner liner, outer shell, water inlet, and water outlet, it solves the problems of raw materials and catalysts not being able to mix sufficiently during resin synthesis, resin sticking to the inner wall of the synthesis tank and not being able to be discharged, and resin viscosity decreasing due to temperature increase during resin synthesis.
[0005] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution: This utility model relates to a stable structure special inert resin synthesis device, comprising a synthesis tank, a dynamic mixer, and a rotating shaft; the synthesis tank includes an outer shell and an inner liner located inside the outer shell; The inner liner and the outer shell are fixedly connected to the top end of the same end cap. A dynamic mixer is fixedly connected through one side of the top end of the end cap. The bottom end of the dynamic mixer extends into the inner liner. A second rotating shaft is rotatably connected at the center of the bottom of the end cap. An anchor-shaped paddle is fixedly connected to the lower part of the second rotating shaft inside the inner liner. Two first rotating shafts are symmetrically fixedly connected to the middle of the periphery of the outer shell. A support plate is rotatably connected to the end of the first rotating shaft away from the synthesis tank. During resin synthesis, the raw materials and catalyst are added from the two feed ports of the dynamic mixer. After premixing in the dynamic mixer, they enter the inner tank. The rotation of the second shaft drives the anchor-shaped blades to stir and mix the raw materials and catalyst. At the same time, the first shaft rotates slightly forward and backward, causing the synthesis tank to rotate slightly back and forth, mixing the resin raw materials and catalyst inside the synthesis tank, so that the resin raw materials and catalyst can be in full contact. Water pipes are provided on both sides of the rotating shaft located on one side of the anchor-shaped blade, and nozzles are fixedly connected to both the periphery and bottom of the water pipes. After the resin synthesis is completed, if the resin adheres to the inner wall of the inner tank, the water outlet device is activated. Water is sprayed out from the nozzle through the water pipe, and the second rotating shaft rotates back and forth, causing the water pipe and nozzle to rotate back and forth around the second rotating shaft, thus impacting and removing the resin on the inner wall of the inner tank.
[0006] Furthermore, a discharge pipe is fixedly connected to the center of the bottom of the inner liner. The bottom end of the discharge pipe extends through the outer shell and is fixedly connected to a valve. The valve is connected to a resin collection device. After the resin synthesis is completed, the valve is opened, and the resin flows into the resin collection device under the action of gravity.
[0007] Furthermore, a motor is fixedly connected to one of the support plates on the side away from the synthesis tank, and a shaft close to the motor passes through the support plate and is connected to the output end of the motor. A motor is fixedly connected to the center of the top of the end cover, and the top of the shaft passes through the end cover and is connected to the output end of the motor. When performing resin synthesis, motor one and motor two are started. The output end of motor one rotates repeatedly in a small amplitude forward and reverse direction, while the output end of motor two rotates to stir and mix the resin raw materials and catalyst inside the synthesis tank. When removing the sticky resin, motor two is started, and the output end of motor two rotates back and forth in a forward and reverse direction, driving the rotating shaft two to rotate back and forth to remove the resin.
[0008] Furthermore, a water inlet is fixedly connected through the lower part of the outer casing near the motor, and a water outlet is fixedly connected through the upper part of the outer casing away from the water inlet. During resin synthesis, cold water flows in through the inlet and accumulates in the cavity between the inner liner and the outer shell. When the water reaches a certain volume, it flows out through the outlet, carrying away the heat generated during the reaction.
[0009] Furthermore, the top of the end cap located on one side of the dynamic mixer is provided with a through-hole, and a rotating ring is rotatably connected to the bottom of the end cap located outside the second rotating shaft. A rotating plate is fixedly connected to the circumference of the rotating ring, and the rotating plate is located below the mounting hole. When performing resin synthesis, turn off the rotating plate; when observing the inside of the synthesis tank, turn on the rotating plate; when installing water pipes, turn on the rotating plate.
[0010] Furthermore, a locking assembly is provided above the rotating plate. The locking assembly includes a handle, a fixing member, and a latch. The bottom end of the handle is fixedly connected to the rotating plate, the bottom end of the fixing member is fixedly connected to the end cover, the latch is rotatably connected to the tail of the fixing member, and the latch is sleeved with the handle. Open the latch and turn the handle to open the rotating plate. When performing resin synthesis, close the rotating plate and turn the latch to lock the handle, ensuring that the rotating plate will not move and that no debris will fall into the synthesis tank.
[0011] Furthermore, the latch has a first groove inside, a second groove inside the latch located at the end of the first groove away from the throttle, and a third groove through-type groove inside the latch located at the side of the first groove away from the throttle shaft. The locking assembly also includes a locking rod, which is slidably connected to the first groove. A pull rod is fixedly connected to the side of the locking rod away from the throttle shaft, and the pull rod is slidably connected to the third groove. A limit rod is fixedly connected to the end of the locking rod away from the throttle. The end of the limit rod away from the throttle is inserted into the second groove and slidably connected to the second groove. A spring is provided around the limit rod inside the first groove. One end of the spring is fixedly connected to the locking rod, and the other end of the spring is fixedly connected to the latch. Pushing the lever toward the fixed part will pull the locking lever, unlocking the latch from the throttle. To lock the rotating plate, first pull the locking lever, then rotate the latch to engage with the throttle. Release the lever, and under the action of the spring, the locking lever will move to lock the throttle, thus locking the rotating plate.
[0012] Furthermore, two connecting rods are fixedly connected side by side to the rotating shaft on one side of the anchor-shaped blade. A cross-shaped limiting groove is opened through the end of the connecting rod away from the rotating shaft. A limiting block is inserted into the two limiting grooves. A connecting strip is fixedly connected to the side of the limiting block away from the connecting rod. A water pipe is fixedly connected to the side of the connecting strip away from the limiting block. A fixing block is fixedly connected to the top of the limiting block. Both connecting rods are located below the fixing block. Open the rotating plate, pull out the water pipe from the installation port, and then close the rotating plate to start the resin synthesis process. When it is necessary to clean the adhered resin, open the rotating plate and insert the limiting block into the limiting groove from the installation port. Due to the setting of the fixing block, the water pipe will be fixed at a certain height inside the inner tank.
[0013] This utility model has the following beneficial effects: This invention solves the problem of insufficient mixing of resin synthesis raw materials with catalyst by setting up a synthesis tank, anchor-shaped blades, a rotating shaft, and a dynamic mixer. The resin synthesis raw materials and catalyst are added from two feed ports of the dynamic mixer, respectively, and enter the synthesis tank after premixing in the dynamic mixer. The anchor-shaped blades stir the raw materials and catalyst, and the rotating shaft drives the synthesis tank to rotate back and forth slightly by small forward and reverse rotations to enhance stirring, thereby achieving the purpose of fully mixing the raw materials and catalyst.
[0014] This invention solves the problem of resin potentially sticking to the inner wall of the synthesis tank and being unable to drain by setting up a second rotating shaft, a water pipe, and a nozzle. Water is sprayed out from the nozzle through the water pipe, and the second rotating shaft rotates repeatedly in the forward and reverse directions, driving the water pipe to rotate back and forth to remove the resin from the inner wall and bottom of the synthesis tank, thereby achieving the purpose of draining the resin sticking to the inner wall of the synthesis tank.
[0015] This invention solves the problem of reduced resin quality caused by exothermic reactions during resin synthesis by setting up an inner liner, an outer shell, an inlet, and an outlet. During resin synthesis, cold water is added through the outlet, which accumulates between the inner liner and the outer shell. Once a certain volume is reached, the cold water is discharged through the outlet. The discharged water carries away the heat generated during resin synthesis, thereby reducing the temperature of resin synthesis and increasing the viscosity of the resin.
[0016] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0017] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0018] Figure 1 This is a schematic diagram of a device for synthesizing a stable, special inert resin.
[0019] Figure 2 This is a cross-sectional schematic diagram of a device for synthesizing a stable, special inert resin.
[0020] Figure 3 This is a schematic diagram of the connection structure between the end cap, rotating plate, rotating ring, rotating shaft 2 and locking assembly.
[0021] Figure 4 This is a structural diagram of the locking component.
[0022] Figure 5 This is a cross-sectional view of the locking component.
[0023] Figure 6 for Figure 5 Enlarged view of the structure at point A in the middle.
[0024] Figure 7 This is a schematic diagram of the connection structure of the rotating shaft, anchor blade, connecting rod, and water pipe.
[0025] Figure 8 This is a schematic diagram of the connection structure of the connecting rod, limiting block, connecting strip, fixing block and water pipe.
[0026] The attached diagram lists the components represented by each number as follows: 1. Synthesis tank; 101. Inner liner; 1011. Discharge pipe; 102. Outer shell; 103. End cap; 1031. Mounting port; 104. Water inlet; 105. Water outlet; 106. Shaft one; 107. Support plate; 108. Motor one; 2. Dynamic mixer; 3. Valve; 4. Shaft two; 401. Anchor-shaped paddle; 402. Fixing block; 403. Connecting rod; 4031. Limiting groove; 404. Limiting block; 405. Water pipe; 406. Nozzle; 407. Connecting strip; 408. Motor II; 5. Locking assembly; 501. Rotary handle; 502. Fixing component; 503. Lock; 5031. Groove I; 5032. Groove II; 5033. Groove III; 504. Locking rod; 5041. Pull rod; 505. Limiting rod; 506. Spring; 6. Rotating plate; 601. Rotating ring. Detailed Implementation
[0027] 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 skilled in the art without creative effort are within the protection scope of the present utility model. Specific Implementation Example 1
[0028] Please see Figure 1 , Figure 2 This utility model is a stable structure special inert resin synthesis equipment, including a synthesis tank 1, a dynamic mixer 2 and a rotating shaft 4; the synthesis tank 1 includes an outer shell 102 and an inner liner 101 located inside the outer shell 102; The top of the inner liner 101 and the outer shell 102 are fixedly connected to the end cap 103. The end cap 103 is fixedly connected to one side of the top of the end cap 103. The bottom end of the dynamic mixer 2 extends into the inner liner 101. The bottom center of the end cap 103 is rotatably connected to the second shaft 4. The lower part of the second shaft 4 located inside the inner liner 101 is fixedly connected to the anchor-shaped paddle 401. The outer shell 102 is symmetrically fixedly connected to two first shafts 106. The end of the first shaft 106 away from the synthesis tank 1 is rotatably connected to the support plate 107. During resin synthesis, the resin synthesis raw materials and catalyst are added from the two feed ports of the dynamic mixer 2. After premixing in the dynamic mixer 2, they enter the inner tank 101 from the discharge port of the dynamic mixer 2. The rotating shaft 4 drives the anchor blade 401 to rotate and stir the synthesis raw materials and catalyst. At the same time, the rotating shaft 106 rotates slightly forward and backward, driving the synthesis tank 1 to rotate slightly back and forth, mixing the resin raw materials and catalyst inside the synthesis tank 1, so that the resin raw materials and catalyst can fully contact each other to produce a catalytic reaction to generate resin.
[0029] Among them, such as Figure 1 As shown, a discharge pipe 1011 is fixedly connected to the center of the bottom of the inner liner 101. The bottom end of the discharge pipe 1011 extends through the outer shell 102 and is fixedly connected to a valve 3. The valve 3 is connected to a resin collection device. When the resin synthesis is complete, the valve 3 is opened, and under the action of gravity, the resin flows into the resin collection device through the discharge pipe 1011.
[0030] Among them, such as Figure 1 , Figure 2As shown, a motor 108 is fixedly connected to one of the support plates 107 on the side away from the synthesis tank 1. A shaft 106 close to the motor 108 passes through the support plate 107 and is connected to the output end of the motor 108. A motor 408 is fixedly connected to the center of the top of the end cover 103. The top of the shaft 408 passes through the end cover 103 and is connected to the output end of the motor 408. When performing resin synthesis, start motor 108 and motor 2 408. The output end of motor 108 rotates repeatedly in a small amplitude forward and reverse direction, driving synthesis tank 1 to rotate in a small amplitude reciprocating motion, shaking the resin raw materials and catalyst inside synthesis tank 1, and enhancing the mixing of resin raw materials and catalyst. The output end of motor 2 408 rotates, driving the anchor-shaped blade 401 to rotate, stirring and mixing the resin raw materials and catalyst inside synthesis tank 1.
[0031] Among them, such as Figure 1 As shown, a water inlet 104 is fixedly connected through the lower part of the outer casing 102 near the motor 108, and a water outlet 105 is fixedly connected through the upper part of the outer casing 102 away from the water inlet 104. Since the resin synthesis reaction is an exothermic reaction, cold water flows in from the inlet 104 during the resin synthesis process and accumulates in the cavity between the inner liner 101 and the outer shell 102. When the water reaches a certain volume, it will flow out from the outlet 105. This outflowing water will carry away the heat generated during the reaction process, ensuring that the temperature inside the inner liner 101 does not get too high and that the resin molecules do not decompose, thus guaranteeing the quality of the resin.
[0032] The working principle of this embodiment is as follows: When the resin is synthesized, cold water flows in from the inlet 104. Motor 108 and Motor 208 are started. The resin synthesis raw materials and catalyst are added from the two feeding ports of the dynamic mixer 2. After premixing in the dynamic mixer 2, they enter the inner tank 101 from the outlet of the dynamic mixer 2. The output end of Motor 108 rotates slightly in both the forward and reverse directions (the angles of both rotations are less than 90 degrees), driving the synthesis tank 1 to rotate slightly back and forth. The output end of Motor 208 rotates, driving the anchor blade 401 to rotate, mixing the resin raw materials and catalyst inside the synthesis tank 1, so that the resin raw materials and catalyst can fully contact each other to produce a catalytic reaction to generate inert resin. When the resin synthesis is completed, valve 3 is opened, and under the action of gravity, the resin flows into the resin collection device through the discharge pipe 1011. Specific Implementation Example 2
[0033] Please see Figure 2 , Figure 7 Based on the first specific embodiment, a water pipe 405 is provided around the second rotating shaft 4 on one side of the anchor blade 401, and a nozzle 406 is fixedly connected to the periphery and bottom of the water pipe 405. Water pipe 405 is connected to an external water outlet device. After the resin synthesis is completed, if there is resin adhering to the inner wall of the inner tank 101, the water outlet device is started, and water is sprayed out from the nozzle 406 through the water pipe 405. Motor 408 is started, and the output end of motor 408 rotates repeatedly in the forward and reverse directions, driving the rotating shaft 4 to rotate back and forth. This, in turn, drives the water pipe 405 and the nozzle 406 to rotate back and forth around the rotating shaft 4, impacting the resin on the inner wall of the inner tank 101 to remove the adhering resin.
[0034] Among them, such as Figure 1-3 As shown, the top of the end cap 103 located on one side of the dynamic mixer 2 has a through-hole 1031. The bottom of the end cap 103 located outside the rotating shaft 2 is rotatably connected to a rotating ring 601. A rotating plate 6 is fixedly connected to the circumference of the rotating ring 601. The rotating plate 6 is located below the mounting hole 1031. When performing resin synthesis, rotating the rotating plate 6 to block the installation port 1031 can prevent foreign objects from entering the inner liner 101 and affecting the resin synthesis. Opening the rotating plate 6 allows observation of the inside of the inner liner 101 through the installation port 1031. When performing resin removal, opening the rotating plate 6 allows water pipe 405 to be installed into the inner liner 101 through the installation port 1031.
[0035] Among them, such as Figure 3 , Figure 4 As shown, a locking assembly 5 is provided above the rotating plate 6. The locking assembly 5 includes a handle 501, a fixing member 502 and a latch 503. The bottom end of the handle 501 is fixedly connected to the rotating plate 6, the bottom end of the fixing member 502 is fixedly connected to the end cover 103, and the latch 503 is rotatably connected to the tail of the fixing member 502. The latch 503 is sleeved with the handle 501. When performing resin synthesis, close the rotating plate 6 and rotate the latch 503 to lock the handle 501, ensuring that the rotating plate 6 will not move and that no debris will fall into the synthesis tank 1. When observing the internal condition of the inner liner 101 and installing the water pipe 405, open and rotate the latch 503 in the reverse direction, and turn the handle 501 to open the rotating plate 6.
[0036] Among them, such as Figure 4-6As shown, the latch 503 has a first groove 5031 inside, a second groove 5032 inside the latch 503 located at the end of the first groove 5031 away from the handle 501, and a third groove 5033 through the latch 503 located on the side of the first groove 5031 away from the pivot 106. The locking assembly 5 also includes a locking rod 504, which is slidably connected to the first groove 5031. A pull rod 5041 is fixedly connected to the side of the locking rod 504 away from the pivot 106. Pull rod 5041 is slidably connected to groove three 5033. The end of locking rod 504 away from handle 501 is fixedly connected to limit rod 505. The end of limit rod 505 away from handle 501 is inserted into groove two 5032 and slidably connected to groove two 5032. A spring 506 is provided around the limit rod 505 located inside groove one 5031. One end of spring 506 is fixedly connected to locking rod 504, and the other end of spring 506 is fixedly connected to latch 503. The groove 5031, groove 5033, and limit rod 505 limit the movement direction of the locking rod 504. The pull rod 5041 and groove 5032 facilitate the opening and closing of the locking rod 504. Pushing the pull rod 5041 towards the fixing part 502 will pull the locking rod 504, which will unlock the latch 503 from the handle 501. To lock the rotating plate 6, first pull the locking rod 504, then rotate the latch 503 to engage the latch 503 with the handle 501. Release the pull rod 5041, and under the action of the spring 506, the locking rod 504 will move to lock the handle 501, thereby locking the rotating plate 6 and preventing the rotating plate 6 from moving randomly during the resin synthesis process, which could cause foreign objects to fall into the inner liner 101.
[0037] Among them, such as Figure 7 , Figure 8 As shown, two connecting rods 403 are fixedly connected side by side to the rotating shaft 4 on one side of the anchor blade 401. A cross-shaped limiting groove 4031 is opened through the end of the connecting rod 403 away from the rotating shaft 4. A limiting block 404 is inserted into the two limiting grooves 4031. A connecting strip 407 is fixedly connected to the side of the limiting block 404 away from the connecting rod 403. A water pipe 405 is fixedly connected to the side of the connecting strip 407 away from the limiting block 404. A fixing block 402 is fixedly connected to the top of the limiting block 404. Both connecting rods 403 are located below the fixing block 402. After the resin synthesis is completed and discharged, open the rotating plate 6 and observe from the installation port 1031 whether there is resin adhering to the inner wall of the inner tank 101. If there is resin adhering, insert the limiting block 404 into the limiting groove 4031 from the installation port 1031. Use the fixing block 402 to keep the water pipe 405 at a certain height. Then perform the resin cleaning work. After the cleaning is completed, pull out the water pipe 405 and close the rotating plate 6. After all the water has flowed out, the resin synthesis work can be repeated.
[0038] The working principle of this embodiment is as follows: During resin synthesis, pull the handle 501 towards the fixing member 502. When the handle 501 approaches the fixing member 502, rotate the latch 503 and simultaneously push the pull rod 5041 towards the fixing member 502, thereby pulling the locking rod 504 and unlocking the latch 503. The latch 503 is then fitted onto the handle 501, closing and locking the rotating plate 6. After resin synthesis is complete and released, push the pull rod 5041 towards the fixing member 502, thereby pulling the locking rod 504 and unlocking the latch 503 from the handle 501. Pull the handle 501 to open the rotating plate 6. Observe from the installation port 1031 whether there is resin adhesion on the inner wall of the inner liner 101. If there is resin adhesion, check from the installation port 1031. Insert the limiting block 404 into the limiting groove 4031 at the inlet 1031. The fixing block 402 keeps the water pipe 405 at a certain height. The water pipe 405 is connected to the water outlet device. Start the water outlet device, and water will spray out from the nozzle 406 through the water pipe 405. Start the second motor 408. The output end of the second motor 408 rotates in the forward and reverse directions, driving the second shaft 4 to rotate back and forth. This, in turn, drives the water pipe 405 and the nozzle 406 to rotate back and forth around the second shaft 4, impacting the resin on the inner wall of the inner tank 101 to remove the adhered resin. After the adhered resin is cleaned, pull out the water pipe 405 and close and lock the rotating plate 6 again. After all the water inside the inner tank 101 has flowed out, the resin synthesis work can be restarted.
[0039] The above are merely preferred embodiments of the present utility model and do not limit the present utility model. Any modifications, equivalent substitutions, or improvements made to the technical solutions described in the foregoing embodiments, or to some of the technical features, shall fall within the protection scope of the present utility model.
Claims
1. A stable structure special inert resin synthesis device, comprising a synthesis tank (1), a dynamic mixer (2), and a rotating shaft (4); characterized in that: The synthesis tank (1) includes an outer shell (102) and an inner liner (101) located inside the outer shell (102). The top of the inner liner (101) and the outer shell (102) are fixedly connected to an end cap (103). A dynamic mixer (2) is fixedly connected through one side of the top of the end cap (103). The bottom end of the dynamic mixer (2) extends into the inner liner (101). A rotating shaft (4) is rotatably connected at the center of the bottom of the end cap (103). An anchor-shaped paddle (401) is fixedly connected to the lower part of the rotating shaft (4) inside the inner liner (101). Two rotating shafts (106) are symmetrically fixedly connected to the middle of the periphery of the outer shell (102). A support plate (107) is rotatably connected to the end of the rotating shaft (106) away from the synthesis tank (1). A water pipe (405) is provided around the second shaft (4) located on one side of the anchor blade (401), and a nozzle (406) is fixedly connected to the periphery and bottom of the water pipe (405).
2. The equipment for synthesizing a stable structural special inert resin according to claim 1, characterized in that: The inner liner (101) is fixedly connected to the center of the bottom end of the inner liner (101) by a discharge pipe (1011), the bottom end of the discharge pipe (1011) extends through the outer shell (102) and is fixedly connected to a valve (3).
3. The equipment for synthesizing a stable structural special inert resin according to claim 1, characterized in that: One of the support plates (107) is fixedly connected to a motor (108) on the side away from the synthesis tank (1). A shaft (106) close to the motor (108) passes through the support plate (107) and is connected to the output end of the motor (108). A motor (408) is fixedly connected at the center of the top of the end cover (103). The top of the shaft (4) passes through the end cover (103) and is connected to the output end of the motor (408).
4. The equipment for synthesizing a stable structural special inert resin according to claim 3, characterized in that: A water inlet (104) is fixedly connected through the lower part of the outer casing (102) near the motor (108), and a water outlet (105) is fixedly connected through the upper part of the outer casing (102) away from the water inlet (104).
5. The equipment for synthesizing a stable structural special inert resin according to claim 1, characterized in that: An installation port (1031) is provided at the top of the end cap (103) located on one side of the dynamic mixer (2). A rotating ring (601) is rotatably connected to the bottom of the end cap (103) located outside the rotating shaft (4). A rotating plate (6) is fixedly connected to the circumference of the rotating ring (601). The rotating plate (6) is located below the installation port (1031).
6. The equipment for synthesizing a stable structural special inert resin according to claim 5, characterized in that: A locking assembly (5) is provided above the rotating plate (6). The locking assembly (5) includes a handle (501), a fixing member (502), and a latch (503). The bottom end of the handle (501) is fixedly connected to the rotating plate (6), the bottom end of the fixing member (502) is fixedly connected to the end cover (103), the latch (503) is rotatably connected to the tail of the fixing member (502), and the latch (503) is sleeved with the handle (501).
7. The equipment for synthesizing a stable structural special inert resin according to claim 6, characterized in that: The latch (503) has a groove 1 (5031) inside. The latch (503) located at the end of the groove 1 (5031) away from the handle (501) has a groove 2 (5032) inside. The latch (503) located at the side of the groove 1 (5031) away from the pivot 1 (106) has a through groove 3 (5033) inside. The locking assembly (5) also includes a locking rod (504). The locking rod (504) is slidably connected to the groove 1 (5031). A pull rod (5041) is fixedly connected to the side of the locking rod (504) away from the pivot 2 (4). The pull rod (5041) is slidably connected to the groove three (5033). The end of the locking rod (504) away from the handle (501) is fixedly connected to the limiting rod (505). The end of the limiting rod (505) away from the handle (501) is inserted into the groove two (5032) and slidably connected to the groove two (5032). A spring (506) is provided around the limiting rod (505) located inside the groove one (5031). One end of the spring (506) is fixedly connected to the locking rod (504), and the other end of the spring (506) is fixedly connected to the latch (503).
8. The equipment for synthesizing a stable structural special inert resin according to claim 1, characterized in that: Two connecting rods (403) are fixedly connected side by side to the rotating shaft 2 (4) on one side of the anchor blade (401). A cross-shaped limiting groove (4031) is opened through the end of the connecting rod (403) away from the rotating shaft 2 (4). A limiting block (404) is inserted into the two limiting grooves (4031). A connecting strip (407) is fixedly connected to the side of the limiting block (404) away from the connecting rod (403). A water pipe (405) is fixedly connected to the side of the connecting strip (407) away from the limiting block (404). A fixing block (402) is fixedly connected to the top of the limiting block (404). Both connecting rods (403) are located below the fixing block (402).