A soft water circulating device with automatic feeding function

CN224812379UActive Publication Date: 2026-09-29TONGLU RED LION WASTE HEAT POWER GENERATION CO LTD
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Patent Information

Application Number
CN202522267067.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-27
Publication Date
2026-09-29
Estimated Expiration
2035-10-27

AI Technical Summary

Technical Problem

[0005]本实用新型的目的在于:解决目前存在的冷凝器冷凝效率下降导致蒸汽积累,水循环速度变慢,导致锅炉内部水位不稳,影响锅炉加热蒸汽转换连贯性,容易导致设备停机的问题

Benefits of technology

[0016]在本申请的方案中:

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Abstract

The application provides a soft water circulating device with automatic feeding function, and relates to the field of soft water circulation. The device comprises a water storage tank, a boiler is arranged on the left side of the water storage tank, a steam generator is arranged above the water storage tank, a first steam conduit is fixedly arranged between the air inlet of the steam generator and the top end of the boiler, the first steam conduit is in communication with the inside of the boiler, a filtering assembly is arranged on the right side of the water storage tank, a condensing assembly is arranged above the filtering assembly, and a second steam conduit is arranged between the condensing assembly and the steam generator. The condensing assembly is arranged, water in the water storage tank is sucked into the air inlet of the condenser above by the third spiral pump, is uniformly sprayed by the spraying head, and is driven by the soft water to enter the condenser to be cooled into water, so that the steam is prevented from being blocked in the condenser, the condensing efficiency is improved, the condensing efficiency in the prior art is improved, the conversion continuity of the boiler heating steam is improved, and the problem that the equipment is prone to shutdown is solved.
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Description

Technical Field

[0001] This utility model relates to the field of soft water circulation, and more specifically, to a soft water circulation device with automatic feeding function. Background Technology

[0002] The soft water circulation device is designed to meet the higher requirements for water quality and water resource utilization in industrial production. It aims to solve problems such as scaling, corrosion, and water waste in traditional circulating water systems, so as to ensure stable operation of the equipment, reduce costs, and achieve energy conservation and environmental protection.

[0003] In existing soft water circulation systems, during actual operation, a condenser is used to recool steam into liquid before it is introduced into a storage tank to be reheated into steam in the boiler for circulation. During the circulation process, steam accumulates in the condenser (the volume of water in the steam state is greater than that in the liquid state; in a water circulation environment, the internal volume of the device is constant. If it cannot be cooled and converted into liquid in time, the remaining space inside the device will be occupied, causing blockage). This reduces condensation efficiency, slows down the water circulation speed, and leads to unstable water levels inside the boiler. This affects the continuity of boiler heating steam conversion and can easily cause equipment shutdown.

[0004] Therefore, we have made improvements and proposed a soft water circulation device with automatic feeding function. Utility Model Content

[0005] The purpose of this invention is to solve the problem that the current condenser condensation efficiency decreases, leading to steam accumulation, slower water circulation, unstable water level inside the boiler, affecting the continuity of boiler heating steam conversion, and easily causing equipment shutdown.

[0006] To achieve the aforementioned objectives and address the aforementioned problems, this utility model provides a soft water circulation device with an automatic feeding function, comprising a water storage tank, a boiler located on the left side of the water storage tank, a steam generator located above the water storage tank, a first steam pipe fixedly connected between the air inlet of the steam generator and the top of the boiler, the first steam pipe communicating with the interior of the boiler, a filter assembly located on the right side of the water storage tank, a condensation assembly located above the filter assembly, a second steam pipe connected between the condensation assembly and the steam generator, one end of the second steam pipe fixedly connected to the air outlet of the steam generator, an automatic feeding assembly located at the rear of the water storage tank, a water replenishment tank located at the front of the water storage tank, a water replenishment pipe fixedly connected between the water storage tank and the water replenishment tank, the water replenishment pipe communicating with the interior of the water storage tank, and a water injection assembly located between the water storage tank and the boiler.

[0007] As a preferred technical solution of this application, the automatic feeding component includes a first material cylinder and a second material cylinder. Both the first and second material cylinders are equipped with suction pipes. A first screw pump is installed above the first and second material cylinders. One end of each of the two suction pipes passes through the top of the first and second material cylinders and is fixedly connected to the inlet of the first screw pump. The outlet of the first screw pump is fixedly equipped with an inlet pipe. The other end of the inlet pipe is fixedly connected to the top of the water storage tank and communicates with the inside of the water storage tank.

[0008] As a preferred technical solution of this application, the water injection assembly includes a No. 1 water injection pipe, one end of which is fixedly connected to one side of a water storage tank and communicates with the interior of the water storage tank. The other end of the No. 1 water injection pipe is equipped with a No. 2 spiral pump, the inlet of which is fixedly connected to the No. 1 water injection pipe, and the outlet of which is fixedly equipped with the No. 2 water injection pipe. The other end of the No. 2 water injection pipe is fixedly connected to one side of a boiler and communicates with the interior of the boiler.

[0009] As a preferred technical solution of this application, the filtration assembly includes a filter, a guide pipe is fixedly provided at the bottom end of the filter, the other end of the guide pipe is fixedly connected to one side of the water storage tank and communicates with the inside of the water storage tank, a water quality monitor is provided below the guide pipe, and a sampling pipe is provided between the water quality monitor and the guide pipe, and the sampling pipe communicates with the inside of the guide pipe.

[0010] As a preferred technical solution of this application, the condensation assembly includes a condenser, the air inlet of the condenser is fixedly connected to a second steam conduit, a spray head is provided above the air inlet of the condenser, a first water inlet pipe is fixedly provided at the top of the spray head, the other end of the first water inlet pipe passes through the second steam conduit and is connected to a third spiral pump, the first water inlet pipe is fixedly connected to the outlet of the third spiral pump, the inlet of the third spiral pump is fixedly provided with a second water inlet pipe, the other end of the second water inlet pipe is fixedly connected to one side of a water storage tank, the second water inlet pipe communicates with the inside of the water storage tank, and the liquid outlet of the condenser is fixedly connected to the top of the filter.

[0011] As a preferred technical solution of this application, a water inlet pipe is provided on one side of the boiler, one end of the water inlet pipe is fixedly connected to the top of the water storage tank, the water inlet pipe is connected to the inside of the water storage tank, and the other end of the water inlet pipe passes through the outer wall of the boiler and is provided with a buoyancy valve.

[0012] As a preferred technical solution of this application, the boiler is provided with a rotating component and a fire control component inside.

[0013] As a preferred technical solution of this application, the rotating component includes a hollow shell, a rotating fan is rotatably disposed inside the hollow shell, a rotating rod is fixedly disposed at the bottom of the rotating fan, and a stirring fan is fixedly disposed at the other end of the rotating rod through the bottom of the hollow shell.

[0014] As a preferred technical solution of this application, the fire control assembly includes a pressure tank located inside the boiler. One end of the pressure tank passes through the boiler and is fixedly connected. An opening is provided at the end of the pressure tank passing through the boiler. A piston is slidably disposed inside the pressure tank. A linkage rod is hinged to one end of the piston. A connecting rod is hinged to the other end of the linkage rod. A fixing rod is hinged to the middle of the connecting rod. The other end of the fixing rod is fixedly connected to the outer wall of the boiler. A push rod is hinged to the other end of the connecting rod. A support rod is hinged to the other end of the push rod. A support plate is provided at the other end of the support rod. A cavity is provided in the inner wall of the support plate. Holes are provided at the upper and lower ends of the support plate and communicate with the cavity. Two baffles are slidably disposed inside the cavity. Push rods are hinged to both sides of the other end of the support rod. The other ends of the two push rods are hinged to the two baffles.

[0015] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0016] In the scheme of this application:

[0017] 1. By using the condensing components, water from the storage tank is drawn into the air inlet of the condenser by the No. 3 spiral pump and sprayed evenly through the spray nozzle. The soft water falls and drives the steam to enter the condenser and cool into water more quickly. This avoids steam blockage in the condenser, speeds up the condensing efficiency, and solves the problem of decreased condensing efficiency, which affects the continuity of boiler heating steam conversion and easily leads to equipment shutdown in the existing technology.

[0018] 2. By setting up a water inlet pipe and a buoyancy valve, the buoyancy valve detects the soft water level in the boiler. When the water level is higher than the normal level, the buoyancy of the water lifts the buoyancy valve, preventing it from blocking the water inlet pipe inlet. This allows excess soft water to flow back into the storage tank, avoiding excessively high water levels that would slow down the evaporation of soft water in the boiler. This maintains the balance of the water level in the boiler and solves the problem in existing technologies where water level imbalance affects the continuity of boiler heating and steam conversion, easily leading to equipment shutdown.

[0019] 3. The rotating component is designed to drive the rotating fan through the rising steam, which in turn drives the stirring fan in the soft water to rotate synchronously, causing the soft water in the boiler to rotate. This accelerates the evaporation of the soft water in the boiler and reduces the occurrence of violent boiling (violent boiling refers to the phenomenon where a liquid does not boil when its temperature exceeds its boiling point during heating, but then suddenly boils violently under certain triggering conditions, accompanied by liquid splashing) when the soft water is heated to the boiling point. This prevents the equipment from vibrating violently, affecting the equipment's sealing performance, ensuring equipment safety, and further ensuring the continuity of steam conversion.

[0020] 4. Through the set fire control component, a certain amount of soft water in the pressure tank is used. As the pressure tank is heated in the boiler along with the water in the boiler, the soft water in the pressure tank is also heated and evaporates into steam. Because the pressure tank is closed, the steam pressure increases, pushing the piston to one side. During the piston's movement, the linkage rod moves to one side, driving the connecting rod to push the push rod, pulling the two baffles towards the center position. This makes the hole in the center of the support plate smaller, reducing the fire output. Conversely, when the temperature in the boiler decreases, the steam in the pressure tank decreases, the pressure decreases, the piston retracts, and the entire fire control component moves in the opposite direction. The two baffles move outward, increasing the fire output and maintaining the stability of steam generation in the boiler, avoiding too much or too little steam. Attached Figure Description

[0021] Figure 1 A schematic diagram of a soft water circulation device with automatic feeding function provided in this application;

[0022] Figure 2 A schematic diagram of the automatic feeding component in a soft water circulation device with automatic feeding function provided in this application;

[0023] Figure 3 A schematic diagram of the water injection component in a soft water circulation device with automatic feeding function provided in this application;

[0024] Figure 4 A schematic diagram of the filter assembly in a soft water circulation device with automatic feeding function provided in this application;

[0025] Figure 5 A cross-sectional structural diagram of the condenser component in a soft water circulation device with automatic feeding function provided in this application;

[0026] Figure 6 A cross-sectional structural diagram of a boiler in a soft water circulation device with automatic feeding function provided in this application;

[0027] Figure 7A cross-sectional schematic diagram of the fire control component in a soft water circulation device with automatic feeding function provided in this application.

[0028] The image shows:

[0029] 1. Water storage tank;

[0030] 2. Boiler; 201. Water inlet pipe; 202. Buoyancy valve;

[0031] 3. Steam generator; 301. Steam pipe No. 1; 302. Steam pipe No. 2;

[0032] 4. Filter assembly; 401. Filter; 402. Flow guide pipe; 403. Water quality monitor; 404. Sampling pipe;

[0033] 5. Condensation assembly; 501. Condenser; 502. Spray head; 503. No. 1 water inlet pipe; 504. No. 3 screw pump; 505. No. 2 water inlet pipe;

[0034] 6. Automatic feeding assembly; 601. No. 1 material cylinder; 602. No. 2 material cylinder; 603. Suction pipe; 604. No. 1 screw pump; 605. Feed pipe;

[0035] 7. Water supply tank; 701. Water supply pipe;

[0036] 8. Water injection assembly; 801. No. 1 water injection pipe; 802. No. 2 screw pump; 803. No. 2 water injection pipe;

[0037] 9. Rotating component; 901. Hollowed-out housing; 902. Rotating fan; 903. Rotating rod; 904. Stirring fan;

[0038] 10. Fire control assembly; 1001. Pressure tank; 1002. Piston; 1003. Linkage rod; 1004. Connecting rod; 1005. Fixing rod; 1006. Push rod; 1007. Support plate; 1008. Baffle; 1009. Push rod; 1010. Support rod. Detailed Implementation

[0039] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention 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 invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of the present invention.

[0040] To enable those skilled in the art to better understand the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings.

[0041] It should be noted that, unless otherwise specified, the embodiments and features and technical solutions in the present invention can be combined with each other.

[0042] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.

[0043] Example

[0044] Please refer to Figure 1 A soft water circulation device with automatic feeding function includes a water storage tank 1, a boiler 2 on the left side of the water storage tank 1, a steam generator 3 above the water storage tank 1, a first steam pipe 301 fixed between the air inlet of the steam generator 3 and the top of the boiler 2, the first steam pipe 301 communicating with the interior of the boiler 2, a filter assembly 4 on the right side of the water storage tank 1, a condenser assembly 5 above the filter assembly 4, a second steam pipe 302 between the condenser assembly 5 and the steam generator 3, one end of the second steam pipe 302 fixedly connected to the air outlet of the steam generator 3, an automatic feeding assembly 6 at the rear of the water storage tank 1, a water replenishment tank 7 at the front of the water storage tank 1, a water replenishment pipe 701 fixedly connected between the water storage tank 1 and the water replenishment tank 7, the water replenishment pipe 701 communicating with the interior of the water storage tank 1, and the water replenishment pipe 701... 01 is connected to the internal water supply tank 7. A water injection component 8 is provided between the water storage tank 1 and the boiler 2. The soft water in the boiler 2 is heated to boiling and generates steam. The steam moves upward and enters the steam generator 3 through the first steam pipe 301 to generate electricity. The generated steam then enters the condenser component 5 through the second steam pipe 302 to be cooled and converted back into soft water. The soft water is then filtered and purified by the filter component 4 and flows into the water storage tank 1 for storage. The water quality is monitored for abnormalities. If an abnormality is detected, the automatic feeding component 6 will be activated to add water purification substances to the water storage tank 1 to purify the water. The water in the water storage tank 1 then enters the boiler 2 through the water injection component 8 to be heated again to generate steam, completing the water circulation. If the water level in the water storage tank 1 is insufficient, the soft water in the water supply tank 7 flows into the water storage tank 1 to replenish it.

[0045] Furthermore, such as Figure 2As shown, the automatic feeding assembly 6 includes a first feeding cylinder 601 and a second feeding cylinder 602. Both the first feeding cylinder 601 and the second feeding cylinder 602 are equipped with suction pipes 603. A first screw pump 604 is installed above the first feeding cylinder 601 and the second feeding cylinder 602. One end of each of the two suction pipes 603 passes through the top of the first feeding cylinder 601 and the second feeding cylinder 602 and is fixedly connected to the inlet of the first screw pump 604. The outlet of the first screw pump 604 is fixedly equipped with an inlet pipe 605. The other end of the inlet pipe 605 is fixedly connected to the top of the water storage tank 1 and communicates with the inside of the water storage tank 1. When the first screw pump 604 is started, it generates suction, and the water purification substance in the first feeding cylinder 601 and the second feeding cylinder 602 is sucked into the first screw pump 604 through the two suction pipes 603, and then enters the inlet pipe 605 and flows into the water storage tank 1 to purify the water.

[0046] Furthermore, such as Figure 3 As shown, the water injection assembly 8 includes a first water injection pipe 801. One end of the first water injection pipe 801 is fixedly connected to one side of the water storage tank 1 and communicates with the inside of the water storage tank 1. The other end of the first water injection pipe 801 is equipped with a second spiral pump 802. The first water injection pipe 801 is fixedly connected to the inlet of the second spiral pump 802. The outlet of the second spiral pump 802 is fixedly equipped with a second water injection pipe 803. The other end of the second water injection pipe 803 is fixedly connected to one side of the boiler 2 and communicates with the inside of the boiler 2. When the second spiral pump 802 is started, it generates suction, drawing soft water from the water storage tank 1 into the second spiral pump 802 through the first water injection pipe 801, and then into the boiler 2 through the second water injection pipe 803 to replenish the soft water.

[0047] Furthermore, such as Figure 4 As shown, the filter assembly 4 includes a filter 401. A guide pipe 402 is fixedly provided at the bottom of the filter 401. The other end of the guide pipe 402 is fixedly connected to one side of the water storage tank 1 and communicates with the inside of the water storage tank 1. A water quality monitor 403 is provided below the guide pipe 402. A sampling pipe 404 is provided between the water quality monitor 403 and the guide pipe 402. The sampling pipe 404 communicates with the inside of the guide pipe 402. Soft water converted by steam cooling flows into the filter 401 for purification. After purification, it flows into the water storage tank 1 through the guide pipe 402 for storage. At the same time, a portion of the soft water in the guide pipe 402 flows into the water quality monitor 403 through the sampling pipe 404 to detect the water quality.

[0048] Furthermore, such as Figure 5As shown, the condensing assembly 5 includes a condenser 501. The air inlet of the condenser 501 is fixedly connected to the second steam conduit 302. A spray head 502 is provided above the air inlet of the condenser 501. A first water inlet pipe 503 is fixedly provided at the top of the spray head 502. The other end of the first water inlet pipe 503 passes through the second steam conduit 302 and is connected to a third spiral pump 504. The first water inlet pipe 503 is fixedly connected to the outlet of the third spiral pump 504. The inlet of 4 is fixedly equipped with a second water inlet pipe 505. The other end of the second water inlet pipe 505 is fixedly connected to one side of the water storage tank 1. The second water inlet pipe 505 is connected to the inside of the water storage tank 1. The outlet of the condenser 501 is fixedly connected to the top of the filter 401. The third spiral pump 504 is started to draw soft water from the water storage tank 1 into the spray head 502 and spray it out. The soft water falls and drives the steam to enter the condenser 501 to cool into water, thus accelerating the steam condensation efficiency.

[0049] Furthermore, such as Figure 6 As shown, a water inlet pipe 201 is provided on one side of the boiler 2. One end of the water inlet pipe 201 is fixedly connected to the top of the water storage tank 1 and is connected to the inside of the water storage tank 1. The other end of the water inlet pipe 201 passes through the outer wall of the boiler 2 and is equipped with a buoyancy valve 202. The buoyancy valve 202 detects the soft water level in the boiler 2. When the water level is higher than the normal water level, the buoyancy of the water lifts the buoyancy valve 202 so that it no longer blocks the inlet of the water inlet pipe 201, allowing the excess soft water to flow back into the water storage tank 1. This avoids the water level from being too high, which would cause the soft water in the boiler 2 to evaporate too slowly, thus maintaining the balance of the water level in the boiler 2.

[0050] Furthermore, such as Figure 1 and Figure 6 As shown, the boiler 2 is equipped with a rotating assembly 9 and a fire control assembly 10 inside;

[0051] The rotating assembly 9 includes a hollow outer shell 901, inside which a rotating fan 902 is rotatably mounted. A rotating rod 903 is fixed to the bottom of the rotating fan 902, and the other end of the rotating rod 903 passes through the bottom of the hollow outer shell 901 and is fixed to a stirring fan 904. The rising steam drives the rotating fan 902 to rotate, causing the stirring fan 904 located in the soft water to rotate synchronously, which in turn causes the soft water in the boiler 2 to rotate. This accelerates the evaporation and stirring of the soft water in the boiler 2, thus accelerating the thermal motion of water molecules. This significantly increases the efficiency of heat transfer and reduces the occurrence of violent boiling when the soft water is heated to its boiling point, which would cause severe vibration of the equipment and affect the sealing performance of the equipment. This ensures the safety of the equipment and further guarantees the continuity of steam conversion.

[0052] Furthermore, such as Figure 7As shown, the fire control assembly 10 includes a pressure tank 1001, which is located inside the boiler 2. One end of the pressure tank 1001 passes through the boiler 2 and is fixedly connected. An opening is provided at the end of the pressure tank 1001 that passes through the boiler 2. A piston 1002 is slidably disposed inside the pressure tank 1001. A linkage rod 1003 is hinged to one end of the piston 1002, and a connecting rod 1004 is hinged to the other end of the linkage rod 1003. A fixing rod 1 is hinged to the middle of the connecting rod 1004. 005, the other end of the fixing rod 1005 is fixedly connected to the outer wall of the boiler 2. The other end of the connecting rod 1004 is hinged to a push rod 1006. The other end of the push rod 1006 is hinged to a support rod 1010. The other end of the support rod 1010 is provided with a support plate 1007. The inner wall of the support plate 1007 has a cavity. The upper and lower ends of the support plate 1007 have holes that communicate with the cavity. Two baffles 1008 are slidably arranged in the cavity. The other end of the support rod 1010 has two... Each side is hinged with a push rod 1009, and the other end of the two push rods 1009 is hinged to two baffles 1008. The pressure tank 1001 is heated synchronously with the water in the boiler 2. The soft water in the pressure tank 1001 is also heated synchronously to evaporate steam. Because the pressure tank 1001 is closed, the steam pressure increases and pushes the piston 1002 to one side. During the piston 1002's movement, the linkage rod 1003 is pushed to one side, which drives the connecting rod 1004 to push the push rod 1006, pulling the two baffles 1008 towards the center position. This makes the hole in the center of the support plate 1007 smaller, reducing the fire output. Conversely, when the temperature in the boiler 2 decreases, the steam in the pressure tank 1001 decreases and the pressure decreases. The piston 1002 retracts, and the fire control assembly 10 moves in the opposite direction. The two baffles 1008 move outward, increasing the fire output and maintaining the stability of the steam generation in the boiler 2, avoiding too much or too little steam.

[0053] The operation process of the soft water circulation device with automatic feeding function provided by this utility model is as follows:

[0054] In boiler 2, soft water is heated to boiling and generates steam. The steam rises and enters steam generator 3 through steam pipe 301 to generate electricity. The generated steam then enters condenser 501 through steam pipe 302 for cooling and is converted back into soft water. Simultaneously, screw pump 504 draws soft water from storage tank 1 into spray nozzle 502, which sprays it out. The falling soft water carries the steam to condenser 501, accelerating the condensation efficiency. The newly converted soft water, along with the soft water sprayed from spray nozzle 502, flows into filter 401 for filtration. After filtration, the water flows through guide pipe 402... The water flows into the storage tank 1 for storage. At the same time, some soft water in the guide pipe 402 will flow into the water quality monitor 403 through the sampling pipe 404 to detect the water quality. If an abnormal water quality is detected, the first screw pump 604 will be started to generate suction. The water purification substance in the first material cylinder 601 and the second material cylinder 602 will be sucked into the first screw pump 604 through the two suction pipes 603. Then it will enter the feed pipe 605 and flow into the storage tank 1 to purify the water quality. The soft water in the storage tank 1 will be sucked into the boiler 2 through the second screw pump 802 to heat and generate steam to complete the water circulation.

[0055] During water circulation, when the water level in boiler 2 is higher than the normal level, the buoyancy of the water causes the buoyancy valve 202 to no longer block the inlet of the water pipe 201, allowing excess soft water to flow back into the storage tank 1, maintaining the water level balance in boiler 2. Furthermore, the steam generated by heating the soft water in boiler 2 drives the rotating fan 902 to rotate, causing the stirring fan 904 located within the soft water to rotate synchronously, thus rotating the soft water in boiler 2. This accelerates the evaporation of the soft water in boiler 2 and reduces the risk of violent boiling when the soft water is heated to its boiling point, which could lead to severe equipment vibration. Simultaneously, the pressure tank 1001 is heated synchronously with the water in boiler 2, and the soft water in pressure tank 1001 also evaporates synchronously. Steam, due to the sealing of pressure tank 1001, generates increased steam compression pressure, pushing piston 1002 to one side. During piston 1002's movement, it simultaneously pushes linkage rod 1003 to one side, causing connecting rod 1004 to push push rod 1006, pulling two baffles 1008 towards the center. This reduces the size of the hole in the center of support plate 1007, decreasing the fire output. Conversely, when the temperature inside boiler 2 decreases, the steam in pressure tank 1001 decreases, the pressure drops, piston 1002 retracts, and the fire control assembly 10 moves in the opposite direction. The two baffles 1008 move outward, increasing the fire output and maintaining the stability of steam generation inside boiler 2, preventing excessive or insufficient steam.

[0056] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a connection that allows communication between them; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0057] Obviously, the embodiments described above are only some embodiments of this utility model, not all embodiments. The accompanying drawings show preferred embodiments of this utility model, but do not limit the patent scope of this utility model. This utility model can be implemented in many different forms; conversely, the purpose of providing these embodiments is to provide a more thorough and comprehensive understanding of the disclosure of this utility model. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing specific embodiments, or make equivalent substitutions for some of the technical features. Any equivalent structures made using the content of this utility model specification and drawings, directly or indirectly applied to other related technical fields, are similarly within the patent protection scope of this utility model.

Claims

1. A soft water circulation device with automatic feeding function, characterized in that... The system includes a water storage tank (1), a boiler (2) on the left side of the water storage tank (1), a steam generator (3) above the water storage tank (1), a first steam pipe (301) fixed between the air inlet of the steam generator (3) and the top of the boiler (2), the first steam pipe (301) communicating with the inside of the boiler (2), a filter assembly (4) on the right side of the water storage tank (1), a condenser assembly (5) above the filter assembly (4), and a second steam pipe (3) between the condenser assembly (5) and the steam generator (3). The conduit (302) is fixedly connected at one end to the outlet of the steam generator (3). An automatic feeding component (6) is provided behind the water storage tank (1). A water replenishment tank (7) is provided in front of the water storage tank (1). A water replenishment pipe (701) is fixedly provided between the water storage tank (1) and the water replenishment tank (7). The water replenishment pipe (701) is connected to the inside of the water storage tank (1). The water replenishment pipe (701) is connected to the inside of the water replenishment tank (7). A water injection component (8) is provided between the water storage tank (1) and the boiler (2).

2. The soft water circulation device with automatic feeding function according to claim 1, characterized in that, The automatic feeding assembly (6) includes a first material cylinder (601) and a second material cylinder (602). Both the first material cylinder (601) and the second material cylinder (602) are equipped with suction pipes (603). A first spiral pump (604) is provided above the first material cylinder (601) and the second material cylinder (602). One end of each of the two suction pipes (603) passes through the top of the first material cylinder (601) and the second material cylinder (602) and is fixedly connected to the inlet of the first spiral pump (604). The outlet of the first spiral pump (604) is fixedly equipped with a feed pipe (605). The other end of the feed pipe (605) is fixedly connected to the top of the water storage tank (1) and communicates with the inside of the water storage tank (1).

3. A soft water circulation device with automatic feeding function according to claim 2, characterized in that, The water injection assembly (8) includes a first water injection pipe (801), one end of which is fixedly connected to one side of the water storage tank (1) and communicates with the interior of the water storage tank (1). The other end of the first water injection pipe (801) is provided with a second spiral pump (802), the first water injection pipe (801) is fixedly connected to the inlet of the second spiral pump (802), the outlet of the second spiral pump (802) is fixedly provided with a second water injection pipe (803), the other end of which is fixedly connected to one side of the boiler (2) and communicates with the interior of the boiler (2).

4. A soft water circulation device with automatic feeding function according to claim 3, characterized in that, The filter assembly (4) includes a filter (401), and a guide pipe (402) is fixedly provided at the bottom end of the filter (401). The other end of the guide pipe (402) is fixedly connected to one side of the water storage tank (1) and communicates with the inside of the water storage tank (1). A water quality monitor (403) is provided below the guide pipe (402). A sampling pipe (404) is provided between the water quality monitor (403) and the guide pipe (402). The sampling pipe (404) communicates with the inside of the guide pipe (402).

5. A soft water circulation device with automatic feeding function according to claim 4, characterized in that, The condensing assembly (5) includes a condenser (501). The air inlet of the condenser (501) is fixedly connected to the No. 2 steam conduit (302). A spray head (502) is provided above the air inlet of the condenser (501). A No. 1 water inlet pipe (503) is fixedly provided at the top of the spray head (502). The other end of the No. 1 water inlet pipe (503) passes through the No. 2 steam conduit (302) and is provided with a No. 3 spiral pump (504). The No. 1 water inlet pipe (503) is fixedly connected to the outlet of the No. 3 spiral pump (504). A No. 2 water inlet pipe (505) is fixedly provided at the inlet of the No. 3 spiral pump (504). The other end of the No. 2 water inlet pipe (505) is fixedly connected to one side of the water storage tank (1). The No. 2 water inlet pipe (505) communicates with the inside of the water storage tank (1). The liquid outlet of the condenser (501) is fixedly connected to the top of the filter (401).

6. A soft water circulation device with automatic feeding function according to claim 5, characterized in that, A water inlet pipe (201) is provided on one side of the boiler (2). One end of the water inlet pipe (201) is fixedly connected to the top of the water storage tank (1). The water inlet pipe (201) is connected to the inside of the water storage tank (1). The other end of the water inlet pipe (201) passes through the outer wall of the boiler (2) and is provided with a buoyancy valve (202).

7. A soft water circulation device with automatic feeding function according to claim 6, characterized in that, The boiler (2) is equipped with a rotating assembly (9) and a fire control assembly (10).

8. A soft water circulation device with automatic feeding function according to claim 7, characterized in that, The rotating component (9) includes a hollow shell (901), a rotating fan (902) is rotatably provided inside the hollow shell (901), a rotating rod (903) is fixedly provided at the bottom of the rotating fan (902), and a stirring fan (904) is fixedly provided at the other end of the rotating rod (903) through the bottom of the hollow shell (901).

9. A soft water circulation device with automatic feeding function according to claim 8, characterized in that, The fire control assembly (10) includes a pressure tank (1001), which is located inside the boiler (2). One end of the pressure tank (1001) passes through the boiler (2) and is fixedly connected. An opening is provided at the end of the pressure tank (1001) that passes through the boiler (2). A piston (1002) is slidably provided inside the pressure tank (1001). A linkage rod (1003) is hinged to one end of the piston (1002), and a connecting rod (1004) is hinged to the other end of the linkage rod (1003). A fixing rod (1005) is hinged to the middle of the connecting rod (1004), and the other end of the fixing rod (1005) is connected to the boiler. The furnace (2) is fixedly connected to the outer wall. The other end of the connecting rod (1004) is hinged to a push rod (1006). The other end of the push rod (1006) is hinged to a support rod (1010). The other end of the support rod (1010) is provided with a support plate (1007). The inner wall of the support plate (1007) is provided with a cavity. The upper and lower ends of the support plate (1007) are provided with holes and communicate with the cavity. Two baffles (1008) are slidably provided in the cavity. The other ends of the support rod (1010) are both hinged to push rods (1009). The other ends of the two push rods (1009) are hinged to the two baffles (1008).