Cyclone water power device
The cyclone hydropower device uses high-pressure air to pressurize low-pressure fluids, solving the problems of large system size and high energy consumption of traditional liquid boosting technology, and realizes efficient and stable fluid delivery, which is used in scenarios such as car washing machines, industrial oil boosting conveying, hazardous fluid treatment and air compressors.
Patent Information
- Application Number
- CN202510504993.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-22
- Publication Date
- 2025-08-15
AI Technical Summary
The existing liquid boosting technology has problems such as large system size, heavy weight, high noise, waste of water resources, high power consumption and single functions. Traditional pump bodies cannot meet modern needs.
The cyclone hydropower device is adopted to pressurize the low-pressure fluid through high-pressure air, and the gas-pressure diversion chamber and gas-liquid mixing chamber in the closed chamber composed of a gas input tube, a low-pressure fluid input tube and a fluid output tube are used to design the air conductor groove of the flow guide block to form high-pressure fluid.
It greatly reduces fluid loss and energy consumption, improves production efficiency and stability of fluid transportation, and is suitable for car washing machines, industrial oil booster conveying, hazardous fluid treatment and air compressors.
Smart Images

Figure CN120488139A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of fluid pressurization, and in particular to a cyclone water power device. Background Art
[0002] Currently, liquid pressure boosting is typically achieved using pumps (such as self-priming pumps). However, these pumps have the following drawbacks: large footprint, excessive weight, high noise levels, significant water waste, three-phase electrical input, high power consumption, and limited functionality. Consequently, traditional fluid pressure boosting methods are no longer sufficient.
[0003] Based on this, it is necessary to develop a cyclone hydrodynamic device to achieve effective pressurization of low-pressure fluid. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide a cyclone water power device, which effectively overcomes the defects of the prior art.
[0005] The technical solution of the present invention to solve the above technical problems is as follows:
[0006] A cyclone hydrodynamic device comprises a gas input pipe, a low-pressure fluid input pipe, a fluid output pipe and a closed chamber, wherein an air pressure diversion chamber is provided at the upper part of the closed chamber, and an air-liquid mixing chamber with a smaller cross-sectional area than the air pressure diversion chamber is provided at the lower part, the air pressure diversion chamber and the air-liquid mixing chamber are separated by a guide block, the guide block is provided with an air guide groove extending obliquely from one end of the air pressure diversion chamber to the other end of the air-liquid mixing chamber, the air guide groove passes through the air pressure diversion chamber and the air-liquid mixing chamber, one end of the gas input pipe is connected and communicated with one end of the air pressure diversion chamber, one end of the low-pressure fluid input pipe is connected and communicated with one end of the gas-liquid mixing chamber, and one end of the fluid output pipe is connected and communicated with the other end of the gas-liquid mixing chamber.
[0007] On the basis of the above technical solution, the present invention can also be improved as follows.
[0008] Furthermore, a high-pressure mixed liquid reflux hole is provided in the middle of the guide block and passes through the guide block vertically.
[0009] Furthermore, the guide block is in the shape of a frustum with a cross-sectional area gradually decreasing from top to bottom.
[0010] Furthermore, the guide block is in the shape of a four-sided pyramid.
[0011] Furthermore, the air pressure diversion chamber and the gas-liquid mixing chamber are respectively rectangular parallelepiped chambers.
[0012] Furthermore, the above-mentioned closed chamber includes an upper shell and a lower shell sealed at the lower end of the upper shell, the lower end of the upper shell is provided with a first rectangular groove, one end of the upper shell is provided with a gas channel connecting the first groove with the outside world, the upper end of the lower shell is provided with an interlocking groove adapted to the above-mentioned guide block, the bottom wall of the above-mentioned interlocking groove is provided with a second groove downwardly, and the two ends of the interior of the above-mentioned lower shell are provided with a fluid inlet channel and a fluid outlet channel respectively connected to the two ends of the above-mentioned second groove, the above-mentioned guide block is embedded in the above-mentioned interlocking groove, the above-mentioned first groove and the above-mentioned guide block are enclosed to form the above-mentioned air pressure diversion chamber, the above-mentioned guide block and the above-mentioned second groove are enclosed to form the above-mentioned gas-liquid mixing chamber, one end of the above-mentioned gas input pipe is connected and connected to the port of the above-mentioned gas channel, one end of the above-mentioned low-pressure fluid input pipe is connected and connected to the port of the above-mentioned fluid inlet channel, and one end of the above-mentioned fluid output pipe is connected and connected to the port of the above-mentioned fluid outlet channel.
[0013] Furthermore, a first check valve is provided on the gas input pipe, and a second check valve is provided on the low-pressure fluid input pipe.
[0014] Furthermore, a flow control valve is provided on the low-pressure fluid input pipe.
[0015] Furthermore, the air guide grooves are respectively provided on one end and the conical surfaces on both sides of the guide block.
[0016] Furthermore, it also includes a shell base, in which the above-mentioned gas input pipe, low-pressure fluid input pipe, fluid output pipe and closed chamber are respectively arranged. One end of the above-mentioned shell base is provided with a high-pressure air input connector and a low-pressure fluid input connector respectively connected to the other ends of the above-mentioned gas input pipe and low-pressure fluid input pipe, and the other end of the above-mentioned shell base is provided with a high-pressure fluid output connector connected to the other end of the above-mentioned fluid output pipe.
[0017] The beneficial effects of the present invention are: reasonable structural design, the ability to use high-pressure air to pressurize low-pressure fluid to form high-pressure fluid, greatly reducing fluid loss and energy consumption, and relying on efficient pressurization performance to improve production efficiency and fluid transportation stability. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a schematic diagram of a cyclone hydrodynamic device of the present invention;
[0019] Figure 2 It is a structural schematic diagram of another embodiment of the cyclone water power device of the present invention;
[0020] Figure 3 A structural cross-sectional view of another embodiment of the cyclone water power device of the present invention;
[0021] Figure 4 The structure of the guide block in the cyclone water power device of the present invention is shown in FIG. Figure 1;
[0022] Figure 5 The structure of the guide block in the cyclone water power device of the present invention is shown in FIG. Figure 2 ;
[0023] Figure 6 It is a structural schematic diagram of the upper shell of the cyclone water power device of the present invention;
[0024] Figure 7 It is a schematic structural diagram of the lower shell of the cyclone water power device of the present invention.
[0025] In the accompanying drawings, the components represented by the reference numerals are as follows:
[0026] 1. Shell base; 2. Gas input pipe; 3. Low-pressure fluid input pipe; 4. Fluid output pipe; 5. Sealed chamber; 11. High-pressure air input connector; 12. Low-pressure fluid input connector; 13. High-pressure fluid output connector; 21. First check valve; 31. Second check valve; 32. Flow control valve; 51. Air pressure diversion chamber; 52. Gas-liquid mixing chamber; 53. Guide block; 511. Upper shell; 512. Lower shell; 531. Air guide groove; 532. High-pressure mixed liquid reflux hole. DETAILED DESCRIPTION
[0027] The principles and features of the present invention are described below with reference to the accompanying drawings. The examples given are only used to explain the present invention and are not used to limit the scope of the present invention.
[0028] Example
[0029] like Figure 1 、 3 As shown, the cyclone hydrodynamic device of this embodiment includes a gas input pipe 2, a low-pressure fluid input pipe 3, a fluid output pipe 4 and a closed chamber 5, an upper part of the closed chamber 5 is provided with an air pressure diversion chamber 51, and a lower part is provided with a gas-liquid mixing chamber 52 whose cross-sectional area is smaller than the above-mentioned air pressure diversion chamber 51, the above-mentioned air pressure diversion chamber 51 and the gas-liquid mixing chamber 52 are separated by a guide block 53, the above-mentioned guide block 53 is provided with an air guide groove 531 which extends obliquely from one end of the above-mentioned air pressure diversion chamber 51 to the other end of the above-mentioned gas-liquid mixing chamber 52, the above-mentioned air guide groove 531 passes through the above-mentioned air pressure diversion chamber 51 and the gas-liquid mixing chamber 52, one end of the above-mentioned gas input pipe 2 is connected and communicated with one end of the above-mentioned air pressure diversion chamber 51, one end of the above-mentioned low-pressure fluid input pipe 3 is connected and communicated with one end of the above-mentioned gas-liquid mixing chamber 52, and one end of the above-mentioned fluid output pipe 4 is connected and communicated with the other end of the above-mentioned gas-liquid mixing chamber 52.
[0030] When the cyclone hydrodynamic device of this embodiment is in use, high-pressure gas is input through the gas input pipe 2, and the high-pressure gas enters the air pressure diversion chamber 51 at the upper part of the closed chamber 5, then passes through the inclined air guide groove 531, and is quickly discharged through the fluid output pipe 4 near the other end of the gas-liquid mixing chamber 52. During this process, the high-pressure air forms a high-pressure cyclone in the gas-liquid mixing chamber 52. At the same time, the low-pressure fluid input pipe 3 synchronously transports the fluid into the gas-liquid mixing chamber 52, and the high-pressure cyclone is quickly discharged through the fluid output pipe 4. When the high-pressure cyclone is discharged, the siphon effect generated will quickly inhale the low-pressure fluid. At the same time, the high-pressure air continuously transported by the cyclone formed by the air guide groove 531 will also push out the low-pressure fluid. The high-pressure cyclone and the low-pressure fluid form a high-pressure fluid in the narrow gas-liquid mixing chamber 52, and the high-pressure air and fluid will be further fully mixed when the fluid passes through the output port and the external output pipe. The overall structural design is reasonable, and it can use high-pressure air to pressurize low-pressure fluid to form high-pressure fluid, greatly reducing fluid loss and energy consumption. With its efficient pressurization performance, it improves production efficiency and fluid transportation stability.
[0031] The cyclonic water power device of this embodiment can be used in high-pressure flushing equipment in car washes. By integrating this device into the car wash, replacing a traditional high-power water pump, an intelligent control system precisely regulates the water and air flow rates and pressures during the wash process, achieving efficient, high-pressure, and all-around vehicle washing. From pre-washing and foam spraying to high-pressure flushing, this system significantly reduces water and electricity consumption while ensuring effective cleaning, improving car wash efficiency and economic benefits. It can also be applied to other high-pressure fluid applications. For oil boosting and delivery in industrial production, such as high-pressure lubricant filling and hydraulic oil system pressure supply, the cyclonic water power device of this embodiment can flexibly adjust gas and liquid parameters based on the oil type and required pressure, ensuring stable high-pressure oil flow output to meet equipment operating requirements and reducing the energy consumption and maintenance costs of traditional oil pumps. In hazardous chemical fluid processing applications, such as high-pressure delivery of chemical raw materials and high-pressure fluid supply to reactors, the system can be constructed using corrosion-resistant and explosion-proof materials and components to ensure safe operation. Its efficient boosting performance also improves production efficiency and fluid delivery stability. Furthermore, it can also be applied in traditional air compressor applications: for air pressure delivery functions in industrial production and equipment applications, such as paint spraying, air dust removal, pneumatic mechanical devices, and inflation. During use, parameters can be flexibly adjusted according to the type of gas used and the required pressure, ensuring stable high and low pressure gas output to meet equipment operation requirements, replacing the high energy consumption and maintenance costs of traditional air compressors. In areas requiring silent operation and long-term air pressure supply, the efficient and stable pressure supply performance, 220V power supply, and safe charging and discharging can improve production efficiency and the stability of high-pressure air delivery.
[0032] As a preferred embodiment, a high-pressure mixed liquid reflux hole 532 is provided in the middle of the guide block 53 and vertically penetrates the guide block 53 .
[0033] In the above embodiment, during operation, bubbles are generated during the mixing of gas and liquid in the gas-liquid mixing chamber 52, which will cause "holes" in the ejected fluid (that is, fluid ejection in sections). Therefore, a high-pressure mixed liquid reflux hole 532 is provided through the middle of the guide block 53. The bubbles generated by the gas-liquid mixing will be pressed upward into the high-pressure mixed liquid reflux hole 532 in the narrow gas-liquid mixing chamber 52 as the high-pressure fluid is output, and then introduced into the gas-liquid mixing chamber 52 through the air guide groove 531, thereby achieving a better defoaming effect.
[0034] In this embodiment, Figure 4 、 5 As shown, the guide block 53 is in the shape of a frustum with a cross-sectional area gradually decreasing from top to bottom. This design ensures a smooth transition between the interface areas of the air pressure diversion chamber 51 and the gas-liquid mixing chamber 52, ensuring that the area of the air pressure diversion chamber 51 is larger than that of the gas-liquid mixing chamber 52.
[0035] Optimally, the guide block 53 is in the shape of a quadrangular pyramid.
[0036] In this embodiment, the air pressure diversion chamber 51 and the gas-liquid mixing chamber 52 are respectively rectangular parallelepiped chambers.
[0037] As a preferred embodiment, Figure 6 、 7 As shown, the sealed chamber 5 includes an upper shell 511 and a lower shell 512 sealed at the lower end of the upper shell 511, the lower end of the upper shell 511 is provided with a first rectangular groove (denoted by c in the figure), one end of the upper shell 511 is provided with a gas channel (denoted by a in the figure) connecting the first groove with the outside, the upper end of the lower shell 512 is provided with a fitting groove (denoted by e in the figure) adapted to the guide block 53, the bottom wall of the fitting groove is downwardly provided with a second groove (denoted by d in the figure), and the two ends of the lower shell 512 are provided with respective fittings connecting the first groove and the outside. The fluid inlet channel and the fluid outlet channel are at both ends of the two grooves, the above-mentioned guide block 53 is embedded in the above-mentioned interlocking groove, the above-mentioned first groove and the above-mentioned guide block 53 form the above-mentioned air pressure diversion chamber 51, and the above-mentioned guide block 53 and the above-mentioned second groove form the above-mentioned gas-liquid mixing chamber 52, one end of the above-mentioned gas input pipe 2 is connected and communicated with the port of the above-mentioned gas channel, one end of the above-mentioned low-pressure fluid input pipe 3 is connected and communicated with the port of the above-mentioned fluid inlet channel, and one end of the above-mentioned fluid output pipe 4 is connected and communicated with the port of the above-mentioned fluid outlet channel.
[0038] In the above embodiment, the sealed chamber 5 adopts a split component assembly structure design, and the upper shell 511 and the lower shell 512 can be welded to achieve a sealed assembly. The split processing of the two reduces the processing difficulty and is also easy to groove inside.
[0039] As a preferred embodiment, a first check valve 21 is provided on the gas input pipe 2 , and a second check valve 31 is provided on the low-pressure fluid input pipe 3 .
[0040] In the above embodiment, the first check valve 21 and the second check valve 31 have the same function of preventing the gas or liquid in the pipeline from flowing back and ensuring that the gas or liquid in the pipeline flows smoothly toward the fluid output pipe 4 .
[0041] In this embodiment, a flow control valve 32 is further provided on the low-pressure fluid input pipe 3. The flow of the low-pressure fluid input pipe 3 can be flexibly controlled. More specifically, the flow control valve 32 is a solenoid valve for easy operation.
[0042] In this embodiment, the guide block 53 is provided with the aforementioned air guide grooves 531 on one end and on both side conical surfaces. The multiple air guide grooves 531 can effectively divert the high-pressure gas entering the pressure diversion chamber 51 and can be introduced into the gas-liquid mixing chamber 52 from multiple directions to form a stable high-pressure cyclone.
[0043] As a preferred embodiment, Figure 2 As shown, it also includes a shell base 1, and the above-mentioned gas input pipe 2, low-pressure fluid input pipe 3, fluid output pipe 4 and closed chamber 5 are respectively arranged in the above-mentioned shell base 1. One end of the above-mentioned shell base 1 is provided with a high-pressure air input connector 11 and a low-pressure fluid input connector 12 respectively connected to the other ends of the above-mentioned gas input pipe 2 and the low-pressure fluid input pipe 3. The other end of the above-mentioned shell base 1 is provided with a high-pressure fluid output connector 13 connected to the other end of the above-mentioned fluid output pipe 4.
[0044] In the above embodiment, the accessories of the entire cyclone water power device are integrated into a closed housing 1, which has an aesthetically pleasing overall appearance and is convenient for overall movement and transportation.
[0045] In this embodiment, first side panels are provided at both sides of the lower end of the sealed chamber 5, and are bolted to the inner bottom wall of the housing base 1. Second side panels are provided at both sides of the housing base 1, and the second side panels can be used to fix the entire housing base 1 to other carriers through bolts.
[0046] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like to indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as limiting the present invention.
[0047] 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 the technical features being referred to. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one such feature. In the description of the present invention, "plurality" means at least two, such as two, three, etc., unless otherwise specifically defined.
[0048] In the present invention, unless otherwise specified or limited, the terms "installed," "connected," "connect," "fixed," etc. should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integration; mechanical connection, electrical connection; direct connection, or indirect connection through an intermediate medium; internal communication between two components, or interaction between two components, unless otherwise specified. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.
[0049] In the present invention, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. Furthermore, a first feature being "above," "above," and "above" a second feature may mean that the first feature is directly above or obliquely above the second feature, or simply means that the first feature is at a higher level than the second feature. A first feature being "below," "below," and "below" a second feature may mean that the first feature is directly below or obliquely below the second feature, or simply means that the first feature is at a lower level than the second feature.
[0050] In the description of this specification, the reference terms "one embodiment", "some embodiments", "example", "specific example", or "some examples" mean that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in this specification and features of different embodiments or examples without contradiction.
[0051] Although the embodiments of the present invention have been shown and described above, it will be understood that the above embodiments are illustrative and are not to be construed as limitations on the present invention. A person skilled in the art may change, modify, replace and modify the above embodiments within the scope of the present invention.
Claims
1. A cyclone water power device, characterized by: The invention comprises a gas input pipe (2), a low-pressure fluid input pipe (3), a fluid output pipe (4) and a sealed chamber (5); the sealed chamber (5) is provided with an air pressure diversion chamber (51) at the upper part, and a gas-liquid mixing chamber (52) having a smaller cross-sectional area than the air pressure diversion chamber (51) at the lower part; the air pressure diversion chamber (51) and the gas-liquid mixing chamber (52) are separated by a guide block (53); the guide block (53) is provided with an end of the air pressure diversion chamber (51) directed to the gas-liquid mixing chamber ( 52) has an air guide groove (531) extending obliquely from the other end thereof, the air guide groove (531) passing through the air pressure diversion chamber (51) and the gas-liquid mixing chamber (52), one end of the gas input pipe (2) is connected to and communicated with one end of the air pressure diversion chamber (51), one end of the low-pressure fluid input pipe (3) is connected to and communicated with one end of the gas-liquid mixing chamber (52), and one end of the fluid output pipe (4) is connected to and communicated with the other end of the gas-liquid mixing chamber (52).
2. A cyclone water power device according to claim 1, characterized in that: The middle portion of the guide block (53) is provided with a high-pressure mixed liquid reflux hole (532) vertically penetrating the guide block (53).
3. A cyclone water power device according to claim 1, characterized in that: The guide block (53) is in the shape of a frustum with a cross-sectional area gradually decreasing from top to bottom.
4. A cyclone water power device according to claim 3, characterized in that: The guide block (53) is in the shape of a four-sided frustum.
5. A cyclone water power device according to claim 4, characterized in that: The air pressure diversion chamber (51) and the gas-liquid mixing chamber (52) are respectively rectangular parallelepiped chambers.
6. A cyclone water power device according to claim 5, characterized in that: The sealed chamber (5) comprises an upper shell (511) and a lower shell (512) sealed at the lower end of the upper shell (511), the lower end of the upper shell (511) is provided with a first rectangular groove, one end of the upper shell (511) is provided with a gas channel connecting the first groove with the outside, the upper end of the lower shell (512) is provided with a fitting groove adapted to the guide block (53), the bottom wall of the fitting groove is provided with a second groove downwardly, and the two ends of the lower shell (512) are provided with a fluid inlet channel and a fluid outlet channel respectively connecting the two ends of the second groove. The guide block (53) is embedded in the interlocking groove, the first groove and the guide block (53) enclose the air pressure diversion chamber (51), the guide block (53) and the second groove enclose the gas-liquid mixing chamber (52), one end of the gas input pipe (2) is connected to and communicated with the port of the gas channel, one end of the low-pressure fluid input pipe (3) is connected to and communicated with the port of the fluid inlet channel, and one end of the fluid output pipe (4) is connected to and communicated with the port of the fluid discharge channel.
7. A cyclone water power device according to claim 6, characterized in that: The gas input pipe (2) is provided with a first check valve (21), and the low-pressure fluid input pipe (3) is provided with a second check valve (31).
8. A cyclone water power device according to claim 7, characterized in that: The low-pressure fluid input pipe (3) is also provided with a flow control valve (32).
9. A cyclone water power device according to any one of claims 3 to 8, characterized in that: The air guide grooves (531) are respectively provided on one end and the conical surfaces on both sides of the guide block (53).
10. A cyclone water power device according to any one of claims 1 to 8, characterized in that: The invention also includes a shell base (1), wherein the gas input pipe (2), the low-pressure fluid input pipe (3), the fluid output pipe (4) and the sealed chamber (5) are respectively arranged in the shell base (1); one end of the shell base (1) is provided with a high-pressure air input joint (11) and a low-pressure fluid input joint (12) which are respectively connected to the other ends of the gas input pipe (2) and the low-pressure fluid input pipe (3); and the other end of the shell base (1) is provided with a high-pressure fluid output joint (13) which is connected to the other end of the fluid output pipe (4).