Single tank steam device

CN224771496UActive Publication Date: 2026-09-18SHENZHEN YINENGGAO TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202522130316.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-09
Publication Date
2026-09-18
Estimated Expiration
2035-10-09

AI Technical Summary

Technical Problem

[0003]现有的在一些传统的蒸汽装置中,水的利用率较低,容易出现部分水未被充分利用就被排放的情况,导致水资源浪费,而且由于水中的杂质较多,可能会导致蒸汽中携带杂质,影响蒸汽的质量,进而影响使用效果,尤其在一些需要高纯度蒸汽的工业场景中,如食品加工、制药等

Benefits of technology

[0024]The water storage tank is connected to the pump body, which delivers water to the filter assembly. The filter assembly, built into the first water pipe, effectively removes impurities from the water, ensuring the purity of the water entering the steam tank and preventing impurities from entering the steam, thus improving steam quality. The heating element inside the steam tank converts the filtered water into steam, which is connected to the pump body through the second water pipe, ensuring a stable water supply and improving water utilization. The air storage tank is connected to the steam tank through a vent pipe to collect the generated steam, preventing steam leakage and further improving water utilization and reducing water waste.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224771496U_ABST
    Figure CN224771496U_ABST
Patent Text Reader

Abstract

The utility model discloses a single tank body steam device, including case, water storage tank, pump body, filter component, steam tank body and gas storage tank body, be provided with first installation cavity in the case, water storage tank setting is in first installation cavity, and the outside of water storage tank is provided with first water pipe, and the pump body is built -in first installation cavity, and the pump body is linked together with first water pipe, and filter component is built -in first water pipe, and steam tank body is built -in first installation cavity, and the outside of steam tank body is provided with second water pipe, and one end pump body of second water pipe is linked together, and heating assembly is arranged in steam tank body, and gas storage tank body is built -in case, and gas storage tank body is provided with vent pipe, and one end of vent pipe is linked together with steam tank body. This scheme can effectively remove the impurity in water, ensure that the water quality pure that enters steam tank body, thereby avoid the impurity to enter the steam, and can also improve the utilization of water, reduce water resource waste.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the technical field of steam equipment, and in particular to a single-tank steam device. Background Technology

[0002] Steam is often used to generate mechanical power, heat / humidify space, and as a driving force. It is one of the most widely used heat energy transfer devices. A steam generator is a mechanical device that uses the heat energy of fuel or other energy sources to heat water into hot water or steam. It is an essential device in various industrial enterprises to provide the steam required for production and heating.

[0003] In some existing traditional steam plants, the water utilization rate is low, and some water is often discharged without being fully utilized, resulting in water waste. Moreover, due to the large amount of impurities in the water, the steam may carry impurities, affecting the quality of the steam and thus its performance, especially in industrial settings that require high-purity steam, such as food processing and pharmaceuticals. Utility Model Content

[0004] In order to overcome the shortcomings of existing technical solutions, this utility model provides a single-tank steam device.

[0005] The technical solution adopted by this utility model to solve its technical problem is:

[0006] A single-tank steam device, the single-tank steam device comprising:

[0007] A chassis, wherein a first mounting cavity is provided inside the chassis;

[0008] A water storage tank is disposed in the first mounting cavity, and a first water pipe is disposed on the outside of the water storage tank;

[0009] The pump body is placed inside the first mounting cavity and is connected to the first water pipe;

[0010] A filter assembly, wherein the filter assembly is built into the first water pipe;

[0011] A steam tank body is placed inside the first mounting cavity. A second water pipe is provided on the outside of the steam tank body, and one end of the second water pipe is connected to the pump body. A heating component is provided inside the steam tank body.

[0012] A gas storage tank is placed inside the machine housing. The gas storage tank is equipped with a vent pipe, one end of which is connected to the steam tank.

[0013] As a preferred technical solution of this utility model, the filter assembly includes a filter shell; the filter shell has an inlet and an outlet; an activated carbon layer, a sponge layer and a sedimentation chamber are arranged sequentially from top to bottom inside the filter shell, and the activated carbon layer, the sponge layer and the sedimentation chamber are located between the inlet and the outlet.

[0014] As a preferred technical solution of this utility model, a second mounting cavity is provided inside the chassis, and a partition is provided between the first mounting cavity and the second mounting cavity;

[0015] The second mounting cavity is provided with a control component, which is controlled to be connected to the heating component and the pump body.

[0016] As a preferred technical solution of this utility model, the cavity wall of the second mounting cavity has multiple air holes, and the cavity wall of the second mounting cavity is provided with a cooling fan, the air outlet direction of the cooling fan being opposite to each of the air holes.

[0017] As a preferred technical solution of this utility model, the bottom of the first mounting cavity is provided with a first base and a second base; the water storage tank is disposed on the first base, and the steam tank is disposed on the second base.

[0018] As a preferred technical solution of this utility model, the water storage tank includes a water tank body and a cover plate, and the cover plate is detachably disposed on the top of the water tank body.

[0019] As a preferred technical solution of this utility model, the outer side of the water tank body is connected to multiple water source circulation ports.

[0020] As a preferred technical solution of this utility model, a fixing component is provided on the outside of the steam tank body. The fixing component includes a connecting part and an arc-shaped fixing member. The connecting part is disposed on the cavity wall of the first mounting cavity, and the fixing member is sleeved on the outside of the steam tank body. Both ends of the fixing member are detachably connected to the connecting part.

[0021] As a preferred technical solution of this utility model, the gas storage tank is equipped with a safety valve and a pressure gauge and pressure gauge for detecting the internal pressure of the gas storage tank.

[0022] As a preferred technical solution of this utility model, the outer side of the gas storage tank is connected to a gas outlet pipe.

[0023] Compared with the prior art, the beneficial effects of this utility model are:

[0024] The water storage tank is connected to the pump body, which delivers water to the filter assembly. The filter assembly, built into the first water pipe, effectively removes impurities from the water, ensuring the purity of the water entering the steam tank and preventing impurities from entering the steam, thus improving steam quality. The heating element inside the steam tank converts the filtered water into steam, which is connected to the pump body through the second water pipe, ensuring a stable water supply and improving water utilization. The air storage tank is connected to the steam tank through a vent pipe to collect the generated steam, preventing steam leakage and further improving water utilization and reducing water waste. Attached Figure Description

[0025] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0026] Figure 1 This is a structural diagram of a single-tank steam device according to an embodiment of the present invention.

[0027] Figure 2 This is a structural diagram of the filter assembly according to an embodiment of the present invention.

[0028] Figure 3 This is a structural diagram of the internal structure of the chassis according to an embodiment of the present invention.

[0029] Figure 4 This is a structural diagram of the steam tank body according to an embodiment of the present utility model.

[0030] Figure 5 This is a structural diagram of the water storage tank according to an embodiment of the present utility model.

[0031] Figure 6 This is a structural diagram of the control component and cooling fan according to an embodiment of the present invention.

[0032] Numbers in the diagram

[0033] 1. Chassis; 11. First mounting cavity; 111. First base; 112. Second base; 12. Second mounting cavity; 121. Vent; 122. Cooling fan; 13. Partition; 14. Control components;

[0034] 2. Water storage tank; 21. First water inlet pipe; 22. Water tank body; 221. Water circulation port; 23. Cover plate;

[0035] 3. Pump body;

[0036] 4. Filter assembly; 41. Inlet; 42. Outlet; 43. Activated carbon layer; 44. Sponge layer; 45. Sedimentation chamber; 46. Filter shell;

[0037] 5. Steam tank body; 51. Second water pipe;

[0038] 6. Gas storage tank; 61. Safety valve; 62. Pressure gauge; 63. Pressure gauge; 64. Gas outlet pipe;

[0039] 7. Fixing component; 71. Connecting part; 72. Fastener. Detailed Implementation

[0040] To make the technical problems, technical solutions and beneficial effects to be solved by this application clearer, the following describes this application in further detail with reference to the accompanying drawings and embodiments.

[0041] It should be understood that the specific embodiments described herein are merely illustrative of this application and are not intended to limit this application.

[0042] It should be noted that when a component is referred to as "fixed to" or "set on" another component, it can be directly on the other component or indirectly on that other component.

[0043] When a component is said to be "connected to" another component, it can be directly connected to the other component or indirectly connected to that other component.

[0044] It should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0045] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include one or more of that feature.

[0046] In the description of this application, "multiple" means two or more, unless otherwise expressly and specifically defined.

[0047] To address the technical problems in existing technologies, such as low water utilization, the tendency for some water to be discharged without being fully utilized, leading to water waste, and the potential for water to carry impurities and affect steam quality due to the presence of impurities in the water, this utility model provides a single-tank steam device.

[0048] The following describes in detail the specific structure of a single-tank steam device provided by an embodiment of this utility model, according to the appendix. Figure 1-6 As shown, the specific structure of the single-tank steam device includes a casing 1, a water tank 2, a pump body 3, a filter assembly 4, and a gas storage tank 6.

[0049] The chassis 1 has a first mounting cavity 11.

[0050] Specifically, the first mounting cavity 11 is an independent space inside the casing 1, which can accommodate key components such as the water storage tank 2, the pump body 3, and the steam tank 5. By setting this space division, each component can be installed in an orderly manner in its designated position, avoiding mutual interference, and facilitating maintenance and replacement. Thus, through reasonable layout and design, the orderly installation and stable operation of each component are ensured. This not only provides physical space for water transportation, filtration, heating, and steam generation, but also provides thermal management and safety assurance measures.

[0051] according to Figure 3 As shown, the water storage tank 2 is installed inside the first mounting cavity 11, and the outside of the water storage tank 2 is provided with a first water pipe 21.

[0052] Specifically, the water storage tank 2 is located in the first mounting cavity 11 inside the casing 1. This arrangement allows the water storage tank 2 to be fixed in a relatively stable and safe position, facilitating connection and cooperation with other components. A first water pipe 21 is provided on the outside of the water storage tank 2. This first water pipe 21 connects the water storage tank 2 with other components, such as the pump body 3 in this embodiment of the present invention. The water storage tank 2 can store a certain amount of water, providing a continuous water source for the entire steam device. It should be noted that water can be injected into the water storage tank 2 through an external water source. The water storage tank 2 is connected to the pump body 3 through the first water pipe 21. One end of the first water pipe 21 is connected to the outlet 42 of the water storage tank 2, and the other end is connected to the inlet 41 of the pump body 3. The first water pipe 21 acts as a bridge between the water storage tank 2 and the pump body 3, thereby enabling the water in the water storage tank 2 to be transported to the pump body 3.

[0053] During operation, the water storage tank 2 is filled with water from an external water source. Water enters the water storage tank 2 through the water inlet pipe until the water level reaches the set upper limit. When the pump body 3 starts working, the pump body 3 draws water out of the water storage tank 2 through the first water pipe 21 and delivers it into the pump body 3.

[0054] according to Figure 3 As shown, the pump body 3 is built into the first mounting cavity 11, and the pump body 3 is connected to the first water pipe 21.

[0055] Specifically, the pump body 3 is built into the first mounting cavity 11 inside the casing 1, and is fixed inside the casing 1 together with other components such as the water storage tank 2 and the filter assembly 4. The pump body 3 is connected to the water storage tank 2 through the first water pipe 21, and simultaneously connected to the steam tank 5 through the second water pipe 51. This connection method ensures that water can smoothly enter the pump body 3 from the water storage tank 2 and be transported from the pump body 3 to the steam tank 5. In this embodiment of the present invention, the pump body 3 is a centrifugal pump. This centrifugal pump uses centrifugal force to draw water from a low position to a high position and provides pressure to the water through the rotation of the impeller. Specifically, after the motor of the pump body 3 is started, it drives the impeller to rotate. When the impeller rotates, a vacuum is formed at the inlet of the pump body 3. This vacuum effect causes water in the water storage tank 2 to be drawn into the pump body 3 through the first water pipe 21. After entering the pump body 3, the water is driven by the rotation of the impeller. The impeller blades throw water toward the outer casing of the pump body 3, creating centrifugal force. The water gains kinetic energy under the action of the impeller and is compressed inside the outer casing of the pump body 3, thereby increasing the pressure. The pressurized water is discharged through the outlet of the pump body 3 and transported to the steam tank 5 through the second water pipe 51.

[0056] Therefore, the operating principle of pump body 3 includes multiple aspects such as water intake, pressurization, transportation, and flow rate, thereby ensuring that water can enter steam tank 5 at appropriate pressure and flow rate, thus ensuring the efficient and stable operation of the entire device.

[0057] The filter assembly 4 is built into the first water pipe 21.

[0058] Specifically, the multi-stage filtration of the filter component 4 effectively removes organic matter, odors, particulate matter and impurities from the water, ensuring the purity of the water entering the steam tank 5. This multi-stage filtration design not only improves water quality but also extends the service life of the entire steam unit and guarantees the quality of the steam.

[0059] according to Figure 2 As shown, specifically, the filter assembly 4 includes a filter housing 46, which has an inlet 41 and an outlet 42. An activated carbon layer 43, a sponge layer 44 and a sedimentation chamber 45 are arranged sequentially from top to bottom inside the filter housing 46, and the activated carbon layer 43, the sponge layer 44 and the sedimentation chamber 45 are located between the inlet 41 and the outlet 42.

[0060] Specifically, the filter housing 46 is a closed container with a water flow channel inside. The filter housing 46 has an inlet 41 and an outlet 42. The inlet 41 is located at the top of the filter housing 46, and the outlet 42 is located at the bottom of the filter housing 46. Water enters the filter housing 46 from the inlet 41, is filtered, and then flows out from the outlet 42. The filter housing 46 has an activated carbon layer 43, a sponge layer 44, and a sedimentation chamber 45 arranged from top to bottom. These three layers of filter media work together to perform multi-stage filtration of water.

[0061] Water enters the filter housing 46 from the storage tank 2 through the first water pipe 21 via the inlet 41. The inlet 41 is located at the top of the filter housing 46, ensuring smooth entry. After entering the filter housing 46, the water passes through the activated carbon layer 43, the sponge layer 44, and the sedimentation chamber 45 from top to bottom, finally flowing out from the outlet 42. The activated carbon layer 43 is the first layer of the filter assembly 4, its main function being to adsorb organic matter, odors, and some heavy metal ions from the water. Because activated carbon has numerous micropores and a large specific surface area, it can effectively adsorb harmful substances in the water. Thus, when water flows through the activated carbon layer 43, organic matter, odors, and some heavy metal ions are adsorbed by the activated carbon, thereby removing these impurities. The activated carbon layer 43 can also initially filter out some larger particles, preventing them from entering subsequent filtration layers. The sponge layer 44 is the second layer of the filter assembly 4, mainly used to further filter particulate matter and impurities in the water. The sponge has a good pore structure, which can effectively intercept suspended particles and fine impurities in the water. After the water is filtered by the activated carbon layer 43, it enters the sponge layer 44. The pore structure of the sponge layer 44 can intercept suspended particles and fine impurities in the water, further purifying the water quality. The sponge layer 44 can also play a certain buffering role, slowing down the water flow speed, so that the water flows more smoothly into the sedimentation chamber 45. The sedimentation chamber 45 is the last layer of the filter assembly 4. Its main function is to remove tiny particles and impurities in the water by gravity sedimentation. After the water is filtered by the sponge layer 44, it enters the sedimentation chamber 45. The water flow speed is slowed down, and the tiny particles and impurities in the water settle to the bottom of the sedimentation chamber 45 under the action of gravity, thereby further purifying the water quality.

[0062] Therefore, after multi-stage filtration through the activated carbon layer 43, the sponge layer 44, and the sedimentation chamber 45, the water flows out from the outlet 42. The outlet 42 is located at the bottom of the filter housing 46, ensuring that the filtered water can smoothly enter subsequent components (such as the pump body 3).

[0063] according to Figure 3 As shown, the steam tank 5 is built into the first mounting cavity 11, and a second water pipe 51 is provided on the outside of the steam tank 5. One end of the second water pipe 51 is connected to the pump body 3; a heating component is provided inside the steam tank 5.

[0064] Specifically, the steam tank 5 is built into the first mounting cavity 11 of the casing 1. This arrangement fixes the steam tank 5 in a relatively stable and safe position, facilitating connection and cooperation with other components. A second water pipe 51 is provided on the outside of the steam tank 5. One end of the second water pipe 51 is connected to the pump body 3, and the other end is connected to the water inlet 41 of the steam tank 5 to deliver filtered water from the pump body 3 into the steam tank 5. A heating component is provided inside the steam tank 5. The heating component can be an electric heating element, a gas burner, or other heat source. The function of this heating component is to heat the water to boiling point to generate steam.

[0065] Specifically, during operation, filtered water enters the steam tank 5 through the second water pipe 51. The pump 3 delivers the water to the inlet 41 of the steam tank 5 through the second water pipe 51. After the water enters the steam tank 5, the heating components start working until the water is heated to boiling, generating steam. As water molecules absorb heat, they gradually gain enough energy, the temperature rises, and eventually reaches the boiling point and begins to boil. During the boiling process, the water transforms into steam. As the water temperature rises, the water molecules gradually gain enough energy to transform into steam. Steam forms and gradually accumulates pressure inside the steam tank 5, and the generated steam is temporarily stored inside the steam tank 5, waiting to be transported to the gas storage tank 6 through the vent pipe for further storage and supply.

[0066] according to Figure 3 As shown, the gas storage tank 6 is built into the casing 1. The gas storage tank 6 is equipped with a vent pipe, one end of which is connected to the steam tank 5.

[0067] Specifically, the gas storage tank 6 is equipped with a vent pipe. One end of the vent pipe is connected to the steam tank 5, and the other end is connected to the air inlet of the gas storage tank 6. The vent pipe is responsible for transporting the steam generated in the steam tank 5 to the gas storage tank 6. The steam generated in the steam tank 5 enters the gas storage tank 6 through the vent pipe. One end of the vent pipe is connected to the air outlet of the steam tank 5, and the other end is connected to the air inlet of the gas storage tank 6. After the steam enters the gas storage tank 6 through the vent pipe, the pressure inside the gas storage tank 6 will gradually increase. The main purpose of the gas storage tank 6 is to store a certain amount of steam so that it can be quickly supplied when needed. When steam is needed, the steam in the gas storage tank 6 is transported to the equipment in use through the output pipe.

[0068] according to Figure 3 As shown, in some specific embodiments, a second mounting cavity 12 is provided inside the chassis 1, and a partition 13 is provided between the first mounting cavity 11 and the second mounting cavity 12; a control component 14 is provided inside the second mounting cavity 12, and the control component 14 is connected to the heating component and the pump body 3 for control.

[0069] Specifically, the second mounting cavity 12 is used to install the control component 14, which is responsible for controlling and managing the operation of the entire device, including the start-up, stop, and power adjustment of the heating component and pump 3. The partition 13 separates the first mounting cavity 11 and the second mounting cavity 12, ensuring that each component is independent of the control component 14, reducing mutual interference, and improving the safety and reliability of the device. The control component 14 can control the start-up and stop of the pump 3 based on the signal from the water level sensor. That is, when the water level in the water tank 2 is lower than the set value, the pump 3 stops working; when the water level returns to normal, the pump 3 restarts. Furthermore, the control component 14 can adjust the speed of the pump 3, thereby controlling the water flow rate. By adjusting the speed of the pump 3, it can ensure that water enters the steam tank 5 at a suitable rate to meet the steam generation requirements.

[0070] It is important to understand that the control component 14 monitors the water temperature inside the steam tank 5 in real time via a temperature sensor. The temperature sensor feeds back the water temperature signal to the control component 14, which then adjusts the power of the heating component according to the set temperature value. Similarly, the control component 14 monitors the pressure inside the gas storage tank 6 in real time via a pressure sensor. The pressure sensor feeds back the pressure signal to the control component 14, which then adjusts the power of the heating component in the steam tank 5 according to the set pressure value.

[0071] By setting a first mounting cavity 11 and a second mounting cavity 12 inside the chassis 1 and separating the two by a partition 13, functional partitioning is achieved, and the safety of the control component 14 is improved. As the core of the entire device, the control component 14 realizes the automated control of the entire device through control connection with the heating component and the pump body 3.

[0072] according to Figure 1 and Figure 6 As shown, in a further embodiment, the cavity wall of the second mounting cavity 12 is provided with a plurality of air holes 121, and the cavity wall of the second mounting cavity 12 is provided with a cooling fan 122, the air outlet direction of the cooling fan 122 being opposite to each air hole 121.

[0073] Specifically, the cavity wall of the second mounting cavity 12 has multiple vents 121. These vents 121 are distributed at different positions on the cavity wall to promote air circulation and help dissipate heat. The cavity wall of the second mounting cavity 12 is provided with a cooling fan 122. The air outlet direction of the cooling fan 122 is opposite to each vent 121. The cooling fan 122 generates airflow by rotating to dissipate heat from around the control component 14.

[0074] When the cooling fan 122 is operating, as the fan blades rotate, air is drawn in from one direction and blown out from another. The air outlet direction of the cooling fan 122 is set opposite to the air vent 121, which ensures that the airflow can be effectively discharged from the second mounting cavity 12 through the air vent 121. The air vent 121 is distributed on the cavity wall of the second mounting cavity 12 to promote air circulation. The setting of the air vent 121 ensures that the airflow generated by the cooling fan 122 can be smoothly discharged from the second mounting cavity 12, while also allowing external cold air to enter, forming good air convection. In this way, the air vent 121 not only helps the cooling fan 122 to discharge hot air, but also allows external cold air to enter the second mounting cavity 12, further reducing the temperature of the control component 14. This air convection helps maintain the temperature balance in the second mounting cavity 12, ensuring that the control component 14 operates within the normal operating temperature range. It can be seen that the cooling fan 122 generates airflow by rotating, which dissipates heat from around the control component 14, and the air vents 121 promote air circulation, thereby helping to dissipate heat.

[0075] according to Figure 4 As shown, in some specific embodiments, the bottom of the first mounting cavity 11 is provided with a first base 111 and a second base 112; the water storage tank 2 is provided on the first base 111, and the steam tank 5 is provided on the second base 112.

[0076] Specifically, the first base 111 provides stable support for the water storage tank 2, ensuring that the water storage tank 2 will not shake or shift during the operation of the device, thus helping to maintain the stability of the entire device. For example, when the pump body 3 is working, the water delivery may generate some vibration. The first base 111 has a certain height, thus ensuring that the inlet 41 and outlet 42 of the water storage tank 2 can be correctly connected to the first water pipe 21. The second base 112 provides stable support for the steam tank 5, ensuring that the steam tank 5 will not shake or shift during heating and steam generation, thus helping to maintain the stability of the entire device. For example, when the heating component is working, the pressure inside the steam tank 5 may generate some vibration, and the second base 112 improves the stability of the steam tank 5 during operation.

[0077] according to Figure 5 As shown, in some specific embodiments, the water tank 2 includes a tank body 22 and a cover plate 23, with the cover plate 23 detachably disposed on the top of the tank body 22.

[0078] Specifically, the main body 22 of the water tank is the main part of the water storage tank 2, used for storing water. A cover 23 is detachably mounted on top of the main body 22. This design allows the cover 23 to be easily removed and installed as needed, facilitating various operations. The detachable cover 23 makes adding water to the main body 22 more convenient; users can easily open the cover 23 and directly pour water into the tank without complicated operations. Furthermore, the detachable design of the cover 23 facilitates cleaning and maintenance of the interior of the main body 22. By periodically opening the cover 23, sediment and impurities inside the tank can be removed, ensuring water purity.

[0079] according to Figure 4 As shown, in a further embodiment, the outer side of the water tank body 22 is connected to a plurality of water circulation ports 221.

[0080] Specifically, the outer side of the water tank body 22 is connected to multiple water circulation ports 221. These ports are distributed at different locations within the water tank body 22 to ensure uniform water distribution and circulation. The design of multiple circulation ports increases the water flow path and improves water flow efficiency. Thus, through multiple circulation ports, water can be more evenly distributed within the water tank body 22, reducing water flow resistance and ensuring smooth water flow. Furthermore, the water within the water tank body 22 can be periodically circulated through the water circulation ports 221 to prevent water quality deterioration.

[0081] according to Figure 4 As shown, in some specific embodiments, a fixing component 7 is provided on the outside of the steam tank body 5. The fixing component 7 includes a connecting part 71 and an arc-shaped fixing member 72. The connecting part 71 is disposed on the cavity wall of the first mounting cavity 11, and the fixing member 72 is sleeved on the outside of the steam tank body 5. Both ends of the fixing member 72 are detachably connected to the connecting part 71.

[0082] Specifically, the fixing component 7 is used to securely fix the steam tank 5 in the first mounting cavity 11 to prevent the steam tank 5 from shifting or shaking due to vibration or external force during operation, thereby helping to maintain the stability of the entire device.

[0083] A connecting part 71 is disposed on the cavity wall of the first mounting cavity 11 for connecting the fixing component 7 to the first mounting cavity 11. The fixing member 72 is arc-shaped and is sleeved on the outside of the steam tank body 5. Both ends of the fixing member 72 are detachably connected to the connecting part 71. This design allows the fixing member 72 to be easily installed and removed as needed. That is, the two ends of the fixing member 72 are detachably connected to the connecting part 71, making the installation and removal of the fixing component 7 very convenient. If maintenance or replacement of the steam tank body 5 is required, the fixing member 72 can be easily removed, and the steam tank body 5 can be taken out of the first mounting cavity 11. The arc-shaped fixing member 72 can fit tightly against the outer surface of the steam tank body 5. This setting not only improves the fixing effect, but also reduces the gap between the fixing member 72 and the steam tank body 5, further enhancing stability.

[0084] Specifically, when installing the fixing component 7, the connecting part 71 is installed on the cavity wall of the first mounting cavity 11, ensuring that the connecting part 71 is secure and accurately positioned. The arc-shaped fixing member 72 is then fitted onto the outside of the steam tank body 5, and both ends of the fixing member 72 are connected to the connecting part 71. The connection method can be bolt connection, snap connection, or other detachable connection method, ensuring that the fixing member 72 is securely fixed to the connecting part 71. After the fixing component 7 is installed, the steam tank body 5 is securely fixed inside the first mounting cavity 11.

[0085] It should be noted that the arc-shaped design of the fixing member 72 in this embodiment of the present invention ensures that the force on the steam tank 5 is evenly distributed during operation, reducing vibration and displacement.

[0086] If maintenance or replacement of the steam tank 5 is required, the two ends of the fastener 72 can be easily disassembled, the fastener 72 removed from the steam tank 5, and the steam tank 5 can then be removed from the first mounting cavity 11. After maintenance or replacement is completed, the fastener 72 is reinstalled to ensure that the steam tank 5 is once again securely fixed in the first mounting cavity 11.

[0087] according to Figure 1 As shown, in some specific embodiments, the gas storage tank 6 is equipped with a safety valve 61 and a pressure gauge 62 and a pressure gauge 63 for detecting the internal pressure of the gas storage tank 6.

[0088] Specifically, safety valve 61 automatically opens when the pressure inside the gas storage tank 6 exceeds a set safety value, releasing excess steam to prevent the gas storage tank 6 from becoming dangerous due to excessive pressure. Thus, by releasing excess pressure, safety valve 61 protects the gas storage tank 6 and other related components from high-pressure damage. Pressure gauge 62 is installed on the gas storage tank 6 to display the pressure inside the tank in real time. Operators can intuitively understand the pressure inside the gas storage tank 6 through pressure gauge 62, ensuring the pressure remains within a safe range. If the pressure displayed by pressure gauge 62 approaches the set value of safety valve 61, operators can take preventative measures, such as reducing steam generation or opening safety valve 61, to prevent excessive pressure. Pressure gauge 63 typically has higher measurement accuracy than pressure gauge 62, enabling more precise measurement of the pressure inside the gas storage tank 6. Furthermore, pressure gauge 63 can feed back the measured pressure signal to control component 14, which automatically adjusts the power of the heating component according to the set pressure value to ensure the pressure remains within a safe range.

[0089] according to Figure 1 As shown, in some specific embodiments, the outer side of the gas storage tank 6 is connected to a gas outlet pipe 64.

[0090] Specifically, the main function of the vent pipe 64 is to transport the steam from the storage tank 6 to the equipment in use. Through the vent pipe 64, the steam can quickly and stably reach the user end, meeting the equipment's operational needs. For example, when the heating element starts working, it heats water to boiling, generating steam. The steam enters the storage tank 6 through the vent pipe, and the pressure inside the storage tank 6 gradually increases. When steam is needed, the steam in the storage tank 6 is transported to the equipment in use through the vent pipe 64.

[0091] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this utility model, and these modifications or substitutions should all be covered within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.

Claims

1. A single tank steam device, characterized by, The single-tank steam unit includes: A chassis, wherein a first mounting cavity is provided inside the chassis; A water storage tank is disposed in the first mounting cavity, and a first water pipe is disposed on the outside of the water storage tank; The pump body is placed inside the first mounting cavity and is connected to the first water pipe; A filter assembly, wherein the filter assembly is built into the first water pipe; A steam tank body is placed inside the first mounting cavity. A second water pipe is provided on the outside of the steam tank body, and one end of the second water pipe is connected to the pump body. A heating component is provided inside the steam tank body. A gas storage tank is placed inside the chassis. The gas storage tank is equipped with a vent pipe, one end of which is connected to the steam tank.

2. The single-tank steam device according to claim 1, characterized in that, The filter assembly includes a filter housing; the filter housing has an inlet and an outlet; an activated carbon layer, a sponge layer and a sedimentation chamber are arranged sequentially from top to bottom inside the filter housing, and the activated carbon layer, the sponge layer and the sedimentation chamber are located between the inlet and the outlet.

3. The single tank steam device of claim 1, wherein, The chassis is provided with a second mounting cavity, and a partition is provided between the first mounting cavity and the second mounting cavity; The second mounting cavity is provided with a control component, which is controlled to be connected to the heating component and the pump body.

4. The single tank steam device of claim 3, wherein, The cavity wall of the second mounting cavity has multiple air holes, and a cooling fan is provided on the cavity wall of the second mounting cavity. The air outlet direction of the cooling fan is opposite to each of the air holes.

5. The single tank steam device of claim 1, wherein, The bottom of the first mounting cavity is provided with a first base and a second base; the water storage tank is disposed on the first base, and the steam tank is disposed on the second base.

6. The single tank steam device of claim 1, wherein, The water storage tank includes a tank body and a cover plate, the cover plate being detachably mounted on the top of the tank body.

7. The single tank steam device of claim 6, wherein, The outer side of the main body of the water tank is connected to multiple water circulation ports.

8. The single tank steam device of claim 1, wherein, A fixing component is provided on the outside of the steam tank body. The fixing component includes a connecting part and an arc-shaped fixing member. The connecting part is disposed on the cavity wall of the first mounting cavity. The fixing member is sleeved on the outside of the steam tank body, and both ends of the fixing member are detachably connected to the connecting part.

9. The single tank steam device of claim 1, wherein, The gas storage tank is equipped with a safety valve and a pressure gauge and pressure meter for detecting the internal pressure of the gas storage tank.

10. The single tank steam device of claim 1, wherein, An outlet pipe is connected to the outside of the gas storage tank.