An integrated ammonia storage and sealing tank device

CN224603727UActive Publication Date: 2026-08-07ANHUI YINGSHEN ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ANHUI YINGSHEN ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
Filing Date
2025-08-04
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0005]本实用新型的目的在于提供一种氨水储封一体罐装置,通过多轴联动搅拌结构与转向相反的搅拌叶的配合,以及环绕管与恒温循环系统的协同作用,解决了现有技术中氨水储存过程中易结晶分层、混合不均匀、温控响应不及时等问题

Benefits of technology

[0015]1、本实用新型通过第一转杆、第二转杆及转向相反的搅拌叶组成的多轴联动搅拌结构,结合齿轮传动系统实现同步运行;这样,使罐体内氨水在多个搅拌点同时受到不同方向的扰动,增强混合强度,有效防止物料分层或结晶沉积,显著提升混合均匀性与处理效率。

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Abstract

The utility model discloses an ammonia water storage and seal integrated tank device relates to chemical equipment technical field, the utility model discloses a tank body, upper cover, lower pipe valve, surround pipe, mixing mechanism and constant temperature circulation structure, the tank body is used for storing ammonia water, and its lower extreme is equipped with lower pipe valve, is used for controlling material discharge, and the tank body outside is equipped with support structure, ensures equipment stable operation, the upper cover is connected in the tank body top through screw thread, and the inside is equipped with surround pipe, is used for the import constant temperature medium, realizes the temperature regulation in the jar, prevents ammonia water crystallization or volatilization, the mixing mechanism includes main rotation lever, from rotation lever and multiple groups of stirring vane, realizes multi -shaft synchronous stirring through gear drive, and the stirring vane adopts reverse rotation design, and the mixing effect is enhanced, and the material uniformity is promoted, the whole structure is integrated in storage, mixing, temperature control and sealing function, and the stability of ammonia water storage and conveying safety has been effectively promoted, is applicable to the application scene of efficient treatment to ammonia water in chemical industry, environmental protection and energy etc. field.
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Description

Technical Field

[0001] This utility model belongs to the field of chemical equipment technology, and in particular relates to an integrated ammonia water storage and sealing tank device. Background Technology

[0002] Currently, integrated ammonia storage and sealing tanks are widely used in chemical, environmental protection, and energy industries as important equipment for ammonia storage and mixing. These devices integrate storage, stirring, temperature control, and sealing functions to achieve safe storage and efficient mixing of ammonia, effectively preventing crystallization, stratification, or volatilization caused by temperature changes or prolonged standing, thus improving the stability and safety of ammonia during transportation and use.

[0003] With the increasing demands for environmental protection and process control precision in industrial production, ammonia storage tank systems are undergoing continuous optimization in terms of structural design, mixing efficiency, and temperature control performance. Existing technologies have incorporated some ammonia storage equipment with certain stirring and temperature control functions, meeting basic storage and mixing requirements. Some units are also equipped with independent temperature control circulation systems and multi-point stirring structures, improving the uniformity of materials inside the tank and its temperature control capabilities. Furthermore, with advancements in materials science and automation control technology, existing storage tank equipment has made positive progress in terms of sealing performance, corrosion resistance, and intelligent operation.

[0004] However, in practical applications, problems still exist, such as the need to improve mixing uniformity, insufficient temperature control response, and inconvenient equipment maintenance and operation. Especially when dealing with high-viscosity materials, materials with a strong tendency to crystallize at low temperatures, or those requiring continuous and stable material supply, how to further improve mixing efficiency, optimize the temperature control system, and achieve a compact equipment structure and efficient operation has become one of the important directions for current technological improvements. Utility Model Content

[0005] The purpose of this invention is to provide an integrated ammonia storage and sealing tank device. Through the cooperation of a multi-axis linkage stirring structure and stirring blades with opposite directions, as well as the synergistic effect of the surrounding pipe and the constant temperature circulation system, the invention solves the problems of easy crystallization and stratification, uneven mixing, and untimely temperature control response in the storage of ammonia in the prior art.

[0006] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution.

[0007] This utility model is an integrated ammonia storage and sealing tank device, including a tank body; The lower pipe valve is fixedly connected to the lower end of the tank body; The top cover is connected to the upper end of the tank body by bolts and threads; A surrounding tube, which is fixedly connected to the inner circumference of the upper cover; A surrounding tube inlet and outlet tube is fixedly connected to the upper end of the upper cover, and the surrounding tube inlet and outlet tube is connected to the surrounding tube; A mixing mechanism includes a first rotating rod, a lower mixing blade, a second bevel gear, a mounting base, a motor, and the first bevel gear. The first rotating rod is rotatably connected to the side end of the upper cover. The lower mixing blade is fixedly connected to the lower end of the first rotating rod. The second bevel gear is fixedly connected to the upper end of the first rotating rod. The mounting base is fixedly connected to the upper end of the upper cover. The motor is fixedly connected to the upper end of the mounting base. The first bevel gear is fixedly connected to the output end of the motor. The first bevel gear meshes with the second bevel gear.

[0008] The present invention is further configured such that four second rotating rods are rotatably connected to the side end of the upper cover, stirring blades are fixedly connected to the circumferential surface of each of the four second rotating rods, and a second driven gear is fixedly connected to the upper end of each of the four second rotating rods. A first master gear is fixedly connected to the upper end of the first rotating rod, and the four second driven gears mesh with the first master gear respectively.

[0009] The present invention is further configured such that a controller is fixedly connected to the side end of the tank, and three observation windows are arranged sequentially from top to bottom on the circumferential surface of the tank.

[0010] The present invention is further configured such that a discharge pipe is fixedly connected to the circumferential surface of the tank body, and a feed pipe is fixedly connected to the upper end of the top cover.

[0011] The present invention is further configured such that three support columns are fixedly connected to the lower end of the tank body, and the lower ends of the three support columns are respectively fixedly connected to a base, and the three support columns are arranged in a triangular pattern.

[0012] The present invention is further configured such that the height of the surrounding tube is equal to the height of the tank, and the diameter of the tank is equal to the diameter of the top cover.

[0013] The present invention is further configured such that the length of the first rotating rod is equal to the length of the second rotating rod, and the four stirring blades rotate in opposite directions.

[0014] The present invention has the following beneficial effects.

[0015] 1. This utility model uses a multi-axis linkage stirring structure composed of a first rotating rod, a second rotating rod, and stirring blades with opposite directions, combined with a gear transmission system to achieve synchronous operation; in this way, the ammonia water in the tank is disturbed in different directions at multiple stirring points at the same time, which enhances the mixing intensity, effectively prevents material stratification or crystallization and deposition, and significantly improves the mixing uniformity and processing efficiency.

[0016] 2. This utility model uses an external temperature control circulation structure composed of a surrounding pipe and a surrounding pipe inlet and outlet pipe, combined with a sealed connection between the tank body and the top cover, to achieve uniform and constant temperature control of the material inside the tank. This effectively prevents ammonia crystallization or volatilization caused by temperature fluctuations, ensures the stability of material storage, and improves the overall sealing and operational safety of the equipment. 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.

[0018] Figure 1 A perspective view of an integrated ammonia storage and sealing tank device; Figure 2 An exploded view of an integrated ammonia storage and sealing tank device; Figure 3 A type of integrated ammonia storage and sealing tank device Figure 2 Enlarged view of the motor in the middle; Figure 4 A type of integrated ammonia storage and sealing tank device Figure 2 Cross-sectional view of the middle tank.

[0019] In the attached diagram: 1. Tank body; 2. Controller; 3. Lower pipe valve; 4. Support column; 5. Base; 6. Observation window; 7. Circulating pipe; 8. Top cover; 9. Feed pipe; 10. Circulating pipe inlet and outlet pipes; 11. Discharge pipe; 12. Mounting base; 13. Motor; 14. First bevel gear; 15. First rotating rod; 16. First main gear; 17. Second rotating rod; 18. Second driven gear; 19. Lower mixing blade; 20. Stirring blade; 21. Second bevel gear. Detailed Implementation

[0020] The technical solutions of the present utility model will be described below with reference to the accompanying drawings. The described embodiments are only some embodiments of the present utility model, and not all embodiments. Example

[0021] Please see Figure 1-4 The present invention provides the following technical solution: An integrated ammonia storage and sealing tank device includes: Tank 1; Lower pipe valve 3 is fixedly connected to the lower end of tank body 1; The upper cover 8 is connected to the upper end of the tank body 1 by bolts and threads; The surrounding tube 7 is fixedly connected to the inner circumference of the upper cover 8; The inlet and outlet pipe 10 of the surrounding pipe is fixedly connected to the upper end of the upper cover 8, and the inlet and outlet pipe 10 of the surrounding pipe is connected to the surrounding pipe 7. The mixing mechanism includes a first rotating rod 15, a lower mixing blade 19, a second bevel gear 21, a mounting base 12, a motor 13, and a first bevel gear 14. The first rotating rod 15 is rotatably connected to the side end of the upper cover 8. The lower mixing blade 19 is fixedly connected to the lower end of the first rotating rod 15. The second bevel gear 21 is fixedly connected to the upper end of the first rotating rod 15. The mounting base 12 is fixedly connected to the upper end of the upper cover 8. The motor 13 is fixedly connected to the upper end of the mounting base 12. The first bevel gear 14 is fixedly connected to the output end of the motor 13. The first bevel gear 14 meshes with the second bevel gear 21.

[0022] In a specific embodiment of this utility model, when the tank 1 is used to store ammonia, a lower pipe valve 3 is fixedly connected to its lower end to control the discharge of materials inside the tank; this ensures that the material discharge process is controllable and safe, and facilitates connection with the subsequent conveying system.

[0023] When the top cover 8 is connected to the upper end of the tank body 1 by bolts and threads, and a surrounding pipe 7 is fixedly connected to the inner circumference of the top cover, the surrounding pipe is used to introduce a constant temperature medium to regulate the temperature inside the tank; in this way, ammonia water is prevented from crystallizing at low temperature or volatilizing at high temperature, thus ensuring its storage stability.

[0024] When the inlet and outlet pipes 10 of the surrounding pipe are fixedly connected to the upper end of the cover 8 and connected to the surrounding pipe 7, the external constant temperature system can achieve medium circulation through the inlet and outlet pipes; in this way, the internal temperature of the tank can be continuously regulated, and the temperature control accuracy and adaptability of the device can be improved.

[0025] When the mixing mechanism is located above the top cover 8 and inside the tank 1, the first rotating rod 15 is rotatably connected to the side end of the top cover, and the lower mixing blade 19 is fixed to its lower end, which is used to stir the ammonia water in the tank; in this way, the ammonia water is prevented from stratifying or crystallizing due to prolonged standing, and the material is kept uniform.

[0026] When the motor 13 is fixed to the upper end of the cover 8 via the mounting base 12, and its output end is connected to the first bevel gear 14 and meshes with the second bevel gear 21 fixed to the upper end of the first rotating rod 15, the motor can start to drive the first rotating rod to rotate; in this way, stable driving of the mixing blade is achieved, and stirring efficiency and automation level are improved.

[0027] When the mixing mechanism drives multiple stirring components to operate in coordination, the first rotating rod 15 drives the first main gear 16 to rotate, thereby driving the second driven gear 18 and the second rotating rod 17 to rotate, so that multiple stirring blades 20 operate synchronously; in this way, the mixing intensity of the materials inside the tank is enhanced, and the mixing uniformity and efficiency are improved.

[0028] In this way, when tank 1 achieves controllable discharge through lower pipe valve 3, and the upper cover 8 and surrounding pipe 7 achieve constant temperature control, and the mixing mechanism achieves efficient stirring through multi-stage gear linkage, the ammonia water can still maintain stability and uniformity when the device is running under different ambient temperatures or long-term storage conditions, thus meeting the comprehensive needs of safe storage and efficient mixing of ammonia water in industrial production.

[0029] Please refer to the details. Figure 1-4 The upper cover 8 is rotatably connected to four second rotating rods 17. Stirring blades 20 are fixedly connected to the circumferential surface of each of the four second rotating rods 17. The upper ends of the four second rotating rods 17 are respectively fixedly connected to second driven gears 18. The upper end of the first rotating rod 15 is fixedly connected to a first main gear 16. The four second driven gears 18 mesh with the first main gear 16 respectively.

[0030] In this embodiment: when four second rotating rods 17 are rotatably connected to the side end of the top cover 8, a stirring blade 20 is fixedly connected to the circumferential surface of each second rotating rod 17; in this way, the stirring blade rotates synchronously with the second rotating rod, forming multi-point disturbance to the ammonia water inside the tank 1, enhancing the mixing effect, and preventing material stratification or crystallization deposition.

[0031] When the upper ends of the four second rotating rods 17 are respectively fixedly connected to the second driven gears 18 and mesh with the first main gear 16 at the upper end of the first rotating rod 15, the power is transmitted to each stirring component through gear transmission; in this way, multiple stirring blades 20 can operate synchronously, improving the uniformity and efficiency of stirring.

[0032] When the first main gear 16 is driven to rotate by the motor, the power drives the four second rotating rods 17 to rotate symmetrically around the first rotating rod 15 through the meshing second driven gear 18; in this way, a multi-axis linkage stirring structure is formed, so that the material in the tank is simultaneously stirred in different areas, further improving the mixing uniformity.

[0033] When the stirring blades 20 are arranged in opposite directions, a convective mixing effect can be formed, enhancing the fluidity and mixing intensity of the liquid; thus, the formation of local dead zones is effectively prevented, and the overall mixing efficiency is improved.

[0034] In this way, when multiple second rotating rods 17 and stirring blades 20 are linked with the first rotating rod 15 through a gear meshing structure, the device can achieve efficient and uniform stirring when storing or mixing ammonia, ensuring the stability and flowability of the material and meeting the needs of use under complex working conditions.

[0035] Please refer to the details. Figure 1-4 A controller 2 is fixedly connected to the side of the tank body 1, and three observation windows 6 are arranged from top to bottom on the circumferential surface of the tank body 1.

[0036] In this embodiment: when a controller 2 is fixedly connected to the side of the tank 1, the controller is used to centrally control the temperature, stirring status and feeding and discharging process inside the tank; this improves the automation level of the device, makes it easier for operators to adjust the operating parameters in real time, and ensures the safe and stable operation of the equipment.

[0037] When three observation windows 6 are set on the circumferential surface of the tank 1 from top to bottom, the operator can observe the mixing state of the materials in the tank, the changes in liquid level and the stirring operation in real time through the observation windows at different heights; in this way, it is easy to detect abnormalities in time, such as material stratification, crystallization or uneven stirring, so as to take corresponding control measures.

[0038] When the controller 2 is used in conjunction with the observation window 6, the operator can adjust the parameters based on the actual observation results while monitoring the system's operating status; this improves the intuitiveness and accuracy of the operation, and enhances the controllability and operational reliability of the equipment.

[0039] In this way, when the controller 2 realizes intelligent control of the tank's operating status and the observation window 6 provides multi-angle observation of the material status, the operator can still have a comprehensive grasp of the situation inside the tank when the device is running under complex conditions, thus improving the overall safety and ease of operation.

[0040] Please refer to the details. Figure 1-4 A discharge pipe 11 is fixedly connected to the circumferential surface of the tank body 1, and a feed pipe 9 is fixedly connected to the upper end of the cover 8.

[0041] In this embodiment: when the discharge pipe 11 is fixedly connected to the circumferential surface of the tank 1, the discharge pipe is used to stably output the ammonia water that has been mixed or stored in the tank to external equipment; in this way, the material conveying process is continuous and controllable, and the subsequent process flow is avoided due to poor material discharge.

[0042] When the upper end of the cover 8 is fixedly connected to the feed pipe 9, ammonia or other additives can enter the tank through the feed pipe; this provides a convenient channel for continuous material replenishment and improves the efficiency and operational flexibility of the device.

[0043] When the feed pipe 9 and the discharge pipe 11 are respectively located at the upper and lower parts of the tank, a reasonable material flow path is formed. This helps to achieve efficient circulation and full mixing of materials in the tank, and prevents uneven mixing or residue problems caused by imbalance between feed and discharge.

[0044] In this way, when the feed pipe 9 and the discharge pipe 11 work together, combined with the stirring and temperature control structure inside the tank, the device can maintain the stability and uniformity of material flow during the storage, mixing or transportation of ammonia, thus meeting the needs of high-precision storage and continuous feeding in industrial applications.

[0045] Please refer to the details. Figure 1-4 The lower end of the tank body 1 is fixedly connected to three support columns 4, and the lower ends of the three support columns 4 are respectively fixedly connected to bases 5, and the three support columns 4 are arranged in a triangle.

[0046] In this embodiment: when three support columns 4 are fixedly connected to the lower end of the tank 1 and the three support columns are arranged in a triangle, the support structure forms a stable mechanical layout; in this way, the load-bearing capacity and anti-overturning capacity of the entire device are effectively improved, ensuring the stability and safety of the equipment during operation.

[0047] When each support column 4 is fixedly connected to a base 5 at its lower end, the base is used to fix the entire device to the ground or installation platform; this enhances the connection between the equipment and the foundation and prevents the equipment from shifting or the structure from being damaged due to vibration or external forces.

[0048] When the support column 4 and the base 5 are connected in a detachable or adjustable manner, it is convenient to adjust the height or disassemble and maintain the equipment according to the installation environment; thus, the applicability and ease of installation of the lifting device can meet the usage requirements under different working conditions.

[0049] In this way, when the tank 1 is stably supported by the triangularly distributed support columns 4 and the base 5, the equipment can still maintain good structural stability and operational reliability when working in complex environments or under continuous operating conditions, ensuring the safe and efficient operation of the ammonia water storage and sealing integrated tank device.

[0050] Please refer to the details. Figure 1-4 The height of the surrounding tube 7 is equal to the height of the tank body 1, and the diameter of the tank body 1 is equal to the diameter of the top cover 8.

[0051] In this embodiment: when the height of the surrounding pipe 7 is equal to the height of the tank 1, the surrounding pipe can form a complete annular temperature control channel along the outer wall of the tank; in this way, it ensures that the constant temperature medium flows uniformly around the tank, improves the uniformity and efficiency of temperature regulation, and prevents local temperature differences from causing ammonia crystallization or volatilization.

[0052] When the diameter of the tank body 1 is equal to the diameter of the top cover 8, the top cover can be seamlessly connected to the tank body. This not only improves the overall structural coordination and sealing performance, but also facilitates the disassembly and maintenance of the top cover and the tank body, enhancing the practicality and ease of operation of the equipment.

[0053] When the surrounding pipe 7 is structurally matched with the top cover 8 and has the same dimensions as the tank body 1, the entire device is more rational in terms of appearance, structure, and functional layout. This is conducive to improving the overall stability, aesthetics, and compatibility with external piping systems of the equipment.

[0054] Thus, when the height of the surrounding pipe 7 is the same as that of the tank body 1, and the diameter of the tank body 1 is equal to that of the top cover 8, the device can achieve structural stability, uniform temperature control, and reliable sealing when performing ammonia storage, mixing, or temperature control operations, meeting the multi-functional requirements of integrated ammonia storage and sealing tanks in industrial scenarios.

[0055] Please refer to the details. Figure 1-4 The length of the first rotating rod 15 is equal to the length of the second rotating rod 17, and the four stirring blades 20 rotate in opposite directions.

[0056] In this embodiment: when the length of the first rotating rod 15 is equal to the length of the second rotating rod 17, the various levels of stirring components in the mixing mechanism form a symmetrical distribution structure inside the tank 1; in this way, it is ensured that the stirring blades cover a uniform area during operation, thereby improving the uniformity and efficiency of stirring.

[0057] When the four stirring blades 20 are set on the second rotating rod 17 and arranged in opposite directions, the adjacent stirring blades form a convective mixing effect during rotation; in this way, the flow and mixing between ammonia water in different areas of the tank are enhanced, and the generation of dead zones in material flow is effectively prevented.

[0058] When the stirring blade 20 is driven by the first rotating rod 15 through the gear transmission structure, the stirring blades that turn in opposite directions work together to cause the material inside the tank to be disturbed in multiple directions; in this way, the mixing efficiency is further improved, and the uniformity and stability of ammonia water before and after storage or transportation are ensured.

[0059] Thus, when the first rotating rod 15 and the second rotating rod 17 are of the same length and the four stirring blades 20 rotate in opposite directions, the device can achieve a more efficient and uniform stirring effect when mixing or homogenizing ammonia water, meeting the high requirements for material mixing quality under complex working conditions.

[0060] The working principle of this utility model is as follows: Before use, the device is installed on a flat and stable ground using the base 5, ensuring that the tank 1 is placed vertically and the three support columns 4 are distributed in a triangle to provide stable structural support; the controller 2 is installed on the side of the tank 1 to facilitate parameter setting and operation monitoring by the operator; the feed pipe 9 is connected to the external feeding system and the discharge pipe 11 is connected to the downstream equipment to ensure that the connection is sealed reliably and without leakage; the surrounding pipe 7 is connected to the external constant temperature system through the surrounding pipe inlet and outlet pipes 10 to regulate the internal temperature of the tank and prevent ammonia water from crystallizing or evaporating; Before starting the device, check that the mixing mechanism is installed correctly, that the first rotating rod 15 and the second rotating rod 17 are of the same length, that the stirring blades 20 are firmly fixed, and that adjacent stirring blades rotate in opposite directions to ensure convective mixing during the mixing process and improve mixing uniformity. The motor 13 meshes with the first main gear 16 through the first bevel gear 14, driving the entire mixing system to run. At the start of operation, ammonia water enters the tank 1 through the feed pipe 9. The controller 2 starts the motor 13, driving the first rotating rod 15 to rotate, which in turn drives the first main gear 16 to rotate, further driving the four second driven gears 18 and the second... The rotating rod 17 operates synchronously, causing multiple stirring blades 20 to form a multi-axis stirring structure, efficiently and uniformly mixing the materials in the tank. During operation, the operator can observe the state of the materials in the tank in real time through three observation windows 6 on the tank body 1 to determine whether the mixing is uniform and whether there is crystallization or stratification. A constant-temperature medium is continuously introduced through the surrounding pipe 7 to maintain a stable internal temperature of the tank and prevent changes in the performance of ammonia water due to temperature fluctuations. When the materials have been mixed or have reached the storage requirements, the controller 2 controls the opening of the lower pipe valve 3, and the ammonia water is stably output to the downstream equipment through the discharge pipe 11, completing the process. The entire storage, sealing, and mixing process is completed. After operation, the motor 13 and the constant temperature system are shut down, residual materials inside the tank are cleaned, and the stirring components and sealing structure are checked for integrity to prepare for the next use. In summary, this integrated ammonia storage and sealing tank device, through the coordinated operation of components such as the tank body 1, the top cover 8, the mixing mechanism, the surrounding pipe 7, and the controller 2, achieves safe storage, efficient mixing, and stable output of ammonia. It has the advantages of reasonable structure, precise temperature control, uniform mixing, and convenient operation, and is suitable for scenarios of storing and mixing ammonia in industries such as chemical, environmental protection, and energy.

[0061] All standard parts used in this invention can be purchased from the market, and can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment adopt conventional models in the prior art. The control method is automatic control through the control unit. The control circuit of the control unit can be implemented by simple programming by those skilled in the art, which is common knowledge in the field. Therefore, the control method and circuit connection will not be explained in detail in this invention.

[0062] The preferred embodiments of the present utility model disclosed above are only used to help illustrate the present utility model. The preferred embodiments do not describe all the details in detail, nor do they limit the present utility model to the specific implementation methods described. The present specification selects and specifically describes these embodiments in order to better explain the principle and practical application of the present utility model, so that those skilled in the art can better understand and utilize the present utility model.

Claims

1. An integrated ammonia storage and sealing tank device, characterized in that, include: Tank body (1); The lower pipe valve (3) is fixedly connected to the lower end of the tank body (1); The top cover (8) is connected to the upper end of the tank body (1) by bolts and threads; A surrounding tube (7) is fixedly connected to the inner circumferential wall of the upper cover (8); The inlet and outlet pipe (10) of the surrounding pipe is fixedly connected to the upper end of the cover (8), and the inlet and outlet pipe (10) of the surrounding pipe is connected to the surrounding pipe (7); The mixing mechanism includes a first rotating rod (15), a lower mixing blade (19), a second bevel gear (21), a mounting base (12), a motor (13), and a first bevel gear (14). The first rotating rod (15) is rotatably connected to the side end of the upper cover (8). The lower mixing blade (19) is fixedly connected to the lower end of the first rotating rod (15). The second bevel gear (21) is fixedly connected to the upper end of the first rotating rod (15). The mounting base (12) is fixedly connected to the upper end of the upper cover (8). The motor (13) is fixedly connected to the upper end of the mounting base (12). The first bevel gear (14) is fixedly connected to the output end of the motor (13). The first bevel gear (14) meshes with the second bevel gear (21).

2. The ammonia water storage and sealing integrated tank device according to claim 1, characterized in that: The upper cover (8) is rotatably connected to four second rotating rods (17). The circumferential surfaces of the four second rotating rods (17) are all fixedly connected to stirring blades (20). The upper ends of the four second rotating rods (17) are respectively fixedly connected to second driven gears (18). The upper end of the first rotating rod (15) is fixedly connected to a first master gear (16). The four second driven gears (18) mesh with the first master gear (16) respectively.

3. The ammonia water storage and sealing integrated tank device according to claim 2, characterized in that: The tank (1) is fixedly connected to a controller (2) at its side end, and three observation windows (6) are arranged sequentially from top to bottom on the circumferential surface of the tank (1).

4. The ammonia water storage and sealing integrated tank device according to claim 3, characterized in that: The circumferential surface of the tank (1) is fixedly connected to the discharge pipe (11), and the upper end of the cover (8) is fixedly connected to the feed pipe (9).

5. The ammonia water storage and sealing integrated tank device according to claim 4, characterized in that: The lower end of the tank (1) is fixedly connected to three support columns (4), and the lower ends of the three support columns (4) are respectively fixedly connected to bases (5), and the three support columns (4) are arranged in a triangle.

6. The ammonia water storage and sealing integrated tank device according to claim 5, characterized in that: The height of the surrounding tube (7) is equal to the height of the tank (1), and the diameter of the tank (1) is equal to the diameter of the top cover (8).

7. The ammonia water storage and sealing integrated tank device according to claim 6, characterized in that: The length of the first rotating rod (15) is equal to the length of the second rotating rod (17), and the four stirring blades (20) rotate in opposite directions.