Anti-precipitation mechanism and circulation disorder device
By designing an anti-saltitude mechanism in a square material pool, using nozzle parts and disturbing components to drive gas-liquid mixture injection and liquid disorder, the problem of difficulty in stirring the edges and corners of the material pool by traditional stirrers is solved, and the reduction of material precipitation and convenience of cleaning and maintenance are achieved.
Patent Information
- Application Number
- CN202510330702.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2025-06-17
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In square material pools, traditional blade mixers are difficult to effectively mix the edges and corners of the material pool, resulting in increased difficulty in material precipitation and cleaning and maintenance.
An anti-precipitation mechanism is designed, including a nozzle component and a disturbing component installed outside the circulation tube. Through the injection of the gas-liquid mixture and the rotation of the rotating assembly, the liquid can form a chaotic flow in the material pool and reduce precipitation.
It effectively reduces the precipitation and accumulation of materials in square material pools, improves the uniformity of material distribution, and reduces the difficulty of cleaning and maintenance.
Smart Images

Figure CN120155111A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of sediment prevention in material pools, and in particular to a sediment prevention mechanism and a circulation disorder device. Background Art
[0002] Material pools are generally equipped with vane agitators to prevent particulate matter or suspended matter in the pool from settling. Traditional agitators have many drawbacks. Especially in a square material pool, it is difficult for a vane agitator to achieve a good stirring effect at the corner positions of the square material pool, resulting in uneven distribution of materials in the material pool, which in turn affects subsequent processing.
[0003] Dead zones are likely to form at the corners and edges of a square material pool, causing materials to accumulate or settle in these areas. Due to the structure of the corners and edges of the square material pool, it is difficult for workers to clean and maintain the corner areas. The accumulation or settlement of materials in these areas further increases the cleaning difficulty. Summary of the Invention
[0004] Therefore, the technical problem to be solved by the present invention is: how to reduce the situation of material precipitation and accumulation in a square material pool.
[0005] The above technical problem is solved by the following technical solution: The present invention provides a sediment prevention mechanism, which includes,
[0006] A nozzle component installed outside the circulation pipe, with a gas-liquid mixture flowing inside the circulation pipe;
[0007] The nozzle component includes a first installation component, a connection component fixedly connected to the outside of the first installation component, a second installation component fixedly connected to the outside of the connection component, and an end component fixedly connected to the outside of the second installation component;
[0008] A disturbance component, the disturbance component includes a rotating component installed between the first installation component and the second installation component, and a flow disturbing component fixedly connected to the outside of the rotating component;
[0009] When the gas-liquid mixture passes through the nozzle component, it can drive the rotating component to rotate.
[0010] In a preferred embodiment of the sediment prevention mechanism of the present invention: The first installation component includes a first installation pipe, and a first installation frame fixedly connected to the inside of the first installation pipe.
[0011] In a preferred embodiment of the anti-settling mechanism of the present invention: The connection assembly includes a first connection cylinder fixedly connected to the outside of the first installation pipe, a first support rod fixedly connected to the outside of the first connection cylinder, a fairing fixedly connected to the outside of the first support rod, a second support rod fixedly connected to the outside of the fairing, and a second connection cylinder fixedly connected to the outside of the second support rod.
[0012] In a preferred embodiment of the anti-settling mechanism of the present invention: The second installation assembly includes a second installation pipe fixedly connected to the outside of the second connection cylinder, and a second installation bracket fixedly connected to the inside of the second installation pipe.
[0013] In a preferred embodiment of the anti-settling mechanism of the present invention: The end assembly includes an auxiliary pipe fixedly connected to the outside of the second installation pipe, and a through hole opened inside the auxiliary pipe.
[0014] In a preferred embodiment of the anti-settling mechanism of the present invention: The rotating assembly includes a rotating shaft rotatably connected between the first installation bracket and the second installation bracket, and a driving blade fixedly connected to the outside of the rotating shaft.
[0015] In a preferred embodiment of the anti-settling mechanism of the present invention: The flow disturbance assembly includes a connecting rod fixedly connected to the outside of the rotating shaft, a mounting ring fixedly connected to the outside of the connecting rod, an auxiliary blade fixedly connected to the outside of the mounting ring, and a fixing ring fixedly connected to the outside of the auxiliary blade;
[0016] Wherein, the mounting ring is arranged between the first installation pipe and the second installation pipe, and there is a gap between the mounting ring and the first installation pipe and the second installation pipe.
[0017] The present invention also provides a circulation disorder device.
[0018] In a preferred embodiment of the circulation disorder device of the present invention: A circulation disorder device includes the anti-settling mechanism as described above, and further includes,
[0019] A water pool arranged outside the nozzle component and the disturbance component;
[0020] A circulation mechanism, the circulation mechanism includes a liquid filling component arranged outside the water pool, and a liquid discharging component installed outside the liquid filling component;
[0021] An auxiliary mechanism, the auxiliary mechanism includes an air filling component arranged outside the water pool, and an air discharging component installed outside the air filling component.
[0022] In a preferred embodiment of the circulation disorder device of the present invention: The liquid filling component includes a self-priming pump arranged outside the water tank, a suction pipe adaptively installed outside the self-priming pump, a water outlet pipe adaptively installed outside the self-priming pump, a liquid distributor adaptively installed outside the water outlet pipe, and a drain pipe adaptively installed outside the liquid distributor;
[0023] Among them, the water outlet pipe and the drain pipe are arranged inside the water tank;
[0024] The liquid outlet component includes a first circulation pipe, a second circulation pipe, and a third circulation pipe adaptively installed outside the liquid distributor, side nozzles adaptively installed outside the first circulation pipe and the second circulation pipe, and a central nozzle adaptively installed outside the third circulation pipe;
[0025] Among them, the nozzle component is adaptively installed outside the first circulation pipe and the second circulation pipe.
[0026] In a preferred embodiment of the circulation disorder device of the present invention: The gas filling component includes a gas storage tank arranged outside the water tank, an air flow pipe adaptively installed outside the gas storage tank, and a gas distributor adaptively installed outside the air flow pipe;
[0027] The gas outlet component includes a first gas outlet pipe, a second gas outlet pipe, and a third gas outlet pipe adaptively installed outside the gas distributor;
[0028] Among them, the first gas outlet pipe, the second gas outlet pipe, and the third gas outlet pipe are respectively connected to the first circulation pipe, the second circulation pipe, and the third circulation pipe.
[0029] The beneficial effect of the present invention is that: with the mutual cooperation of each component, the liquid in the water tank can be pumped, and gas can be mixed in the liquid, and then the gas-liquid mixture can be sprayed into the water tank through pipes and nozzles, so as to achieve the effect of disturbing the liquid inside the square water tank, thereby reducing the situation of material precipitation and accumulation in the water tank, and the square water tank can be more comprehensively disturbed, reducing the dead corners of disturbance. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments of the present invention will be briefly introduced below. Obviously, the drawings described below only relate to some embodiments of the present invention and do not limit the present invention.
[0031] Figure 1 Shows the overall mechanism schematic diagram of the present invention;
[0032] Figure 2 Shows the top view schematic diagram of the overall structure of the present invention;
[0033] Figure 3 Shows a schematic diagram of the liquid-filled component of the present invention;
[0034] Figure 4 Shows the Figure 3 Schematic enlarged view of part A in the present invention;
[0035] Figure 5 Shows a right view schematic diagram of the nozzle component of the present invention;
[0036] Figure 6 Shows a front view schematic diagram of the nozzle component of the present invention;
[0037] Figure 7 Shows a schematic diagram of the disturbance component of the present invention;
[0038] Figure 8 Shows a sectional view schematic diagram of the anti-settling mechanism of the present invention;
[0039] Figure 9 Shows the Figure 8 Schematic enlarged view of part B in the present invention;
[0040] Figure 10 Shows a schematic diagram of the first mounting assembly of the present invention;
[0041] Figure 11 Shows a schematic diagram of the second mounting assembly of the present invention;
[0042] Figure 12 Shows a schematic diagram of the liquid disturbance of the present invention.
[0043] In the figure: 1. Nozzle component; 2. Disturbing component; 11. First mounting assembly; 12. Connecting assembly; 13. Second mounting assembly; 14. End component; 111. First mounting pipe; 112. First mounting bracket; 121. First connecting cylinder; 122. First support rod; 123. Fairing; 124. Second support rod; 125. Second connecting cylinder; 131. Second mounting pipe; 132. Second mounting bracket; 141. Auxiliary pipe; 142. Through hole; 21. Rotating assembly; 22. Flow disturbing assembly; 211. Rotating shaft; 212. Active blade; 221. Connecting rod; 222. Mounting ring; 223. Auxiliary blade; 224. Fixed ring; 3. Water tank; 4. Circulation mechanism; 5. Auxiliary mechanism; 41. Liquid filling component; 42. Liquid outlet component; 411. Self-priming pump; 412. Suction pipe; 413. Outlet pipe; 414. Liquid distributor; 415. Drain pipe; 421. First circulation pipe; 422. Second circulation pipe; 423. Third circulation pipe; 424. Side nozzle; 425. Central nozzle; 51. Gas filling component; 52. Gas outlet component; 511. Gas storage tank; 512. Air flow pipe; 513. Gas distributor; 521. First gas outlet pipe; 522. Second gas outlet pipe; 523. Third gas outlet pipe. Detailed implementation manner
[0044] To enable those skilled in the art to better understand the present invention, the present invention will be further described in detail below in conjunction with the detailed implementation manner and the accompanying drawings.
[0045] The terms used in the present invention are those general terms currently widely used in the art in consideration of the functions of the present invention, but these terms may vary according to the intentions of those of ordinary skill in the art, precedents, or new technologies in the art. In addition, specific terms may be selected by the applicant, and in this case, their detailed meanings will be described in the detailed description of the present invention. Therefore, the terms used in the specification should not be understood as simple names, but based on the meanings of the terms and the overall description of the present invention.
[0046] Referring to Figures 5 to 11 , this embodiment provides a sediment prevention mechanism, including,
[0047] A nozzle component 1 installed outside the circulation pipe, and a gas-liquid mixture flows inside the circulation pipe;
[0048] The nozzle component 1 includes a first mounting assembly 11, a connecting assembly 12 fixedly connected to the outside of the first mounting assembly 11, a second mounting assembly 13 fixedly connected to the outside of the connecting assembly 12, and an end component 14 fixedly connected to the outside of the second mounting assembly 13;
[0049] The disturbing component 2 includes a rotating component 21 installed between the first installation component 11 and the second installation component 13, and a flow disturbing component 22 fixedly connected to the outside of the rotating component 21;
[0050] When the gas-liquid mixture passes through the nozzle component 1, it can drive the rotating component 21 to rotate.
[0051] The first installation component 11 includes a first installation pipe 111 and a first installation frame 112 fixedly connected inside the first installation pipe 111.
[0052] The connecting component 12 includes a first connecting cylinder 121 fixedly connected to the outside of the first installation pipe 111, a first support rod 122 fixedly connected to the outside of the first connecting cylinder 121, a fairing 123 fixedly connected to the outside of the first support rod 122, a second support rod 124 fixedly connected to the outside of the fairing 123, and a second connecting cylinder 125 fixedly connected to the outside of the second support rod 124.
[0053] The second installation component 13 includes a second installation pipe 131 fixedly connected to the outside of the second connecting cylinder 125 and a second installation frame 132 fixedly connected inside the second installation pipe 131.
[0054] The end component 14 includes an auxiliary pipe 141 fixedly connected to the outside of the second installation pipe 131 and a through hole 142 opened inside the auxiliary pipe 141.
[0055] During use, the first installation pipe 111 is connected to the circulation pipe, and the gas-liquid mixture flows in the circulation pipe. After passing through the first installation pipe 111, the second installation pipe 131, and the auxiliary pipe 141, the gas-liquid mixture passes through the through hole 142 and enters the water tank, thereby impacting the liquid in the water tank and making the liquid disordered to prevent the precipitation and accumulation of materials in the liquid.
[0056] As an example provided, such as Figures 3 to 12 , the rotating component 21 includes a rotating shaft 211 rotatably connected between the first installation frame 112 and the second installation frame 132, and a driving blade 212 fixedly connected to the outside of the rotating shaft 211.
[0057] The flow disturbing component 22 includes a connecting rod 221 fixedly connected to the outside of the rotating shaft 211, a mounting ring 222 fixedly connected to the outside of the connecting rod 221, an auxiliary blade 223 fixedly connected to the outside of the mounting ring 222, and a fixing ring 224 fixedly connected to the outside of the auxiliary blade 223;
[0058] Among them, the mounting ring 222 is arranged between the first installation pipe 111 and the second installation pipe 131, and there is a gap between the mounting ring 222 and the first installation pipe 111 and the second installation pipe 131.
[0059] When the gas-liquid mixture passes through the first installation pipe 111 and the second installation pipe 131, the gas-liquid mixture impacts the active blade 212, causing the active blade 212 to drive the rotating shaft 211 to rotate. The rotating shaft 211 drives the installation ring 222, the auxiliary blade 223, and the fixed ring 224 to rotate through the connecting rod 221.
[0060] When the auxiliary blade 223 rotates, it will disturb the liquid outside the nozzle component 1 to form a vortex, making the liquid inside the pool more disordered, thereby further preventing the material from precipitating and accumulating.
[0061] In addition, since the liquid in the pool contains materials, some materials will be blocked at the connection positions between the installation ring 222 and the first installation pipe 111 and the second installation pipe 131 during the sinking process, making it difficult for the installation ring 222 to rotate.
[0062] By setting the fairing 123, some of the sinking materials can be blocked, thereby reducing the situation where materials are blocked at the connection positions between the installation ring 222 and the first installation pipe 111 and the second installation pipe 131.
[0063] Moreover, due to the gap between the installation ring 222 and the first installation pipe 111 and the second installation pipe 131, during the process of the gas-liquid mixture passing through the first installation pipe 111 and the second installation pipe 131, part of the gas-liquid mixture will spray out from the gap between the installation ring 222 and the first installation pipe 111 and the second installation pipe 131, thereby flushing the materials at the installation position of the installation ring 222 to further prevent the blockage at the installation position of the installation ring 222.
[0064] In addition, as shown in the attachment Figure 3 In the vertical direction of the pool, the nozzle components 1 are arranged vertically. In the horizontal direction of the pool, the nozzle components 1 are connected end to end and arranged in a cycle along the four side walls of the pool.
[0065] When the gas-liquid mixture is ejected through the nozzle component 1, it will cause the liquid in the pool to form a circulating flow state, thereby achieving the purpose of stirring the liquid in the pool and preventing the material from precipitating.
[0066] In addition, in the vertical direction, the liquid between two nozzle components 1 is less impacted by the gas-liquid mixture, so its disorder effect is poor, resulting in the problem that the material is prone to precipitate.
[0067] However, as shown in the attachment Figure 12 shown, in the attachment Figure 12Among them, the two circular arrows indicate the rotation direction of the eddy current formed by the liquid in the water tank under the disturbance of the auxiliary blade 223. Vertically, for two adjacent nozzle components 1 and disturbance components 2, when the auxiliary blade 223 rotates, it will disturb the liquid in the water tank to form two eddy currents with the same rotation direction along the direction shown by the arrow. The two eddy currents will collide between the two nozzle components 1, making the liquid between the two nozzle components 1 more disordered, thereby preventing the material from precipitating.
[0068] As shown in the Figure 8 attachment, when the gas-liquid mixture impacts the active blade 212, it will cause the active blade 212 to rotate counterclockwise when viewed from the first installation pipe 111 towards the through hole 142, while the auxiliary blade 223 has an inclination direction opposite to that of the active blade 212.
[0069] By rotating the auxiliary blade 223, the situation of bending and damage of the circulation pipe can be reduced to a certain extent.
[0070] Referring to Figures 1 to 6 , this embodiment provides a circulation disorder device, including an anti-precipitation mechanism, and also including
[0071] a water tank 3 arranged outside the nozzle component 1 and the disturbance component 2;
[0072] a circulation mechanism 4, the circulation mechanism 4 includes a liquid filling component 41 arranged outside the water tank 3, and a liquid discharging component 42 installed outside the liquid filling component 41;
[0073] an auxiliary mechanism 5, the auxiliary mechanism 5 includes an air filling component 51 arranged outside the water tank 3, and an air discharging component 52 installed outside the air filling component 51.
[0074] The liquid filling component 41 includes a self-priming pump 411 arranged outside the water tank 3, a water suction pipe 412 adaptively installed outside the self-priming pump 411, and a water discharge pipe 413 adaptively installed outside the self-priming pump 411, a liquid distributor 414 adaptively installed outside the water discharge pipe 413, and a drain pipe 415 adaptively installed outside the liquid distributor 414;
[0075] Among them, the water discharge pipe 413 and the drain pipe 415 are arranged inside the water tank 3;
[0076] The liquid discharging component 42 includes a first circulation pipe 421, a second circulation pipe 422 and a third circulation pipe 423 adaptively installed outside the liquid distributor 414, a side nozzle 424 adaptively installed outside the first circulation pipe 421 and the second circulation pipe 422, and a central nozzle 425 adaptively installed outside the third circulation pipe 423;
[0077] Among them, the nozzle component 1 is adaptively installed outside the first circulation pipe 421 and the second circulation pipe 422.
[0078] The self-priming pump 411 extracts the liquid inside the water tank 3 through the suction pipe 412, and distributes the liquid to the inside of the first circulation pipe 421, the second circulation pipe 422, and the third circulation pipe 423 through the outlet pipe 413 and the liquid distributor 414, and then the liquid is sprayed into the water tank 3 by the nozzle component 1 to realize the disturbance of the liquid in the water tank 3, thereby preventing material precipitation.
[0079] In addition, the side nozzle 424 surrounding the bottom of the side wall of the water tank 3 can stir the materials deposited at the edge of the water tank 3.
[0080] As attached Figure 2 As shown, the four central nozzles 425 are respectively directed towards the four corners of the water tank 3, so as to perform targeted disturbance on the corner positions that are difficult to clean and maintain, making it difficult for materials to deposit in the corners.
[0081] In addition, after the liquid inside the water tank 3 forms a circulating disturbance, it is easier for sediment to occur at the central position compared to the side position. At this time, the four central nozzles 425 can push the materials deposited at the central position to the side, so that the materials are circulated and disturbed with the liquid, thereby preventing material precipitation.
[0082] As an example provided, as Figures 1 to 4 , the inflation component 51 includes an air storage tank 511 arranged outside the water tank 3, an air flow pipe 512 adaptively installed outside the air storage tank 511, and a gas distributor 513 adaptively installed outside the air flow pipe 512;
[0083] The air outlet component 52 includes a first air outlet pipe 521, a second air outlet pipe 522, and a third air outlet pipe 523 adaptively installed outside the gas distributor 513;
[0084] Among them, the first air outlet pipe 521, the second air outlet pipe 522, and the third air outlet pipe 523 are respectively connected to the first circulation pipe 421, the second circulation pipe 422, and the third circulation pipe 423.
[0085] The air storage tank 511 stores compressed gas, and the compressed gas enters the inside of the first air outlet pipe 521, the second air outlet pipe 522, and the third air outlet pipe 523 through the air flow pipe 512 and the gas distributor 513, and then enters the inside of the first circulation pipe 421, the second circulation pipe 422, and the third circulation pipe 423, and is mixed with the liquid to form a gas-liquid mixture, and the gas-liquid mixture is then sprayed into the water tank 3 through the nozzle component 1.
[0086] During the spraying process of the gas-liquid mixture, the compressed gas gradually expands due to the decrease in pressure, forming rising bubbles in the water tank 3 to disturb the liquid in the water tank 3, increasing the liquid disorder, and further preventing material precipitation.
[0087] In addition, the compressed gas can not only assist in disturbing the liquid in the water tank 3. Depending on the usage scenario, the compressed gas can be selected from gases such as air, oxygen, nitrogen, carbon dioxide, etc., which can have functions such as oxidation and dissolution while disturbing the liquid.
[0088] In summary, with the mutual cooperation of each component, the liquid in the square water tank 3 can be disturbed by pumping the liquid in the water tank 3, mixing gas in the liquid, and then spraying the gas-liquid mixture into the water tank 3 through a pipeline and a nozzle. As a result, the accumulation of materials in the water tank 3 can be reduced, and the liquid in the square water tank 3 can be more comprehensively disturbed, reducing the dead corners of disturbance.
[0089] Finally, it should be pointed out that the methods and devices described in detail above are only examples, and those skilled in the art can modify these examples in different ways as long as they do not depart from the scope of the present invention.
Claims
1. An anti-sedimentation mechanism, characterized in that: include, A nozzle component (1) is installed on the outside of a circulation pipe, and a gas-liquid mixture flows inside the circulation pipe; The nozzle component (1) comprises a first mounting component (11), a connecting component (12) fixedly connected to the outside of the first mounting component (11), a second mounting component (13) fixedly connected to the outside of the connecting component (12), and an end component (14) fixedly connected to the outside of the second mounting component (13); A disturbance component (2), the disturbance component (2) comprising a rotating component (21) installed between the first mounting component (11) and the second mounting component (13), and a spoiler component (22) fixedly connected to the outside of the rotating component (21); When the gas-liquid mixture passes through the nozzle component (1), it can drive the rotating component (21) to rotate.
2. The anti-sedimentation mechanism according to claim 1, characterized in that: The first mounting assembly (11) comprises a first mounting tube (111) and a first mounting frame (112) fixedly connected to the inside of the first mounting tube (111).
3. The anti-sedimentation mechanism according to claim 2, characterized in that: The connecting assembly (12) comprises a first connecting tube (121) fixedly connected to the outside of the first mounting tube (111), a first support rod (122) fixedly connected to the outside of the first connecting tube (121), a fairing (123) fixedly connected to the outside of the first support rod (122), a second support rod (124) fixedly connected to the outside of the fairing (123), and a second connecting tube (125) fixedly connected to the outside of the second support rod (124).
4. The anti-sedimentation mechanism according to claim 3, characterized in that: The second mounting assembly (13) comprises a second mounting tube (131) fixedly connected to the outside of the second connecting tube (125), and a second mounting frame (132) fixedly connected to the inside of the second mounting tube (131).
5. The anti-sedimentation mechanism according to claim 4, characterized in that: The end assembly (14) comprises an auxiliary tube (141) fixedly connected to the outside of the second mounting tube (131), and a through hole (142) opened inside the auxiliary tube (141).
6. The anti-sedimentation mechanism according to claim 5, characterized in that: The rotating assembly (21) comprises a rotating shaft (211) rotatably connected between the first mounting frame (112) and the second mounting frame (132), and an active blade (212) fixedly connected to the outside of the rotating shaft (211).
7. The anti-sedimentation mechanism according to claim 6, characterized in that: The spoiler assembly (22) comprises a connecting rod (221) fixedly connected to the outside of the rotating shaft (211), a mounting ring (222) fixedly connected to the outside of the connecting rod (221), an auxiliary blade (223) fixedly connected to the outside of the mounting ring (222), and a fixing ring (224) fixedly connected to the outside of the auxiliary blade (223); Wherein, the mounting ring (222) is arranged between the first mounting tube (111) and the second mounting tube (131), and there is a gap between the mounting ring (222) and the first mounting tube (111) and the second mounting tube (131).
8. A circulation disorder device, characterized in that: The method comprises the anti-sedimentation mechanism according to any one of claims 1 to 7, and further comprises: A water pool (3) arranged outside the nozzle component (1) and the disturbance component (2); A circulation mechanism (4), the circulation mechanism (4) comprising a liquid-filling component (41) arranged outside the water pool (3), and a liquid-discharging component (42) installed outside the liquid-filling component (41); An auxiliary mechanism (5), the auxiliary mechanism (5) comprising an inflatable component (51) arranged outside the pool (3), and an air outlet component (52) installed outside the inflatable component (51).
9. The circulatory disturbance device according to claim 8, characterized in that: The liquid-filled component (41) comprises a self-priming pump (411) arranged outside the water pool (3), a water suction pipe (412) adapted to be installed outside the self-priming pump (411), a water outlet pipe (413) adapted to be installed outside the self-priming pump (411), a liquid distributor (414) adapted to be installed outside the water outlet pipe (413), and a drainage pipe (415) adapted to be installed outside the liquid distributor (414); Wherein, the water outlet pipe (413) and the drain pipe (415) are arranged inside the pool (3); The liquid outlet component (42) comprises a first circulation pipe (421), a second circulation pipe (422) and a third circulation pipe (423) adapted to be installed on the outside of the liquid distributor (414), a side nozzle (424) adapted to be installed on the outside of the first circulation pipe (421) and the second circulation pipe (422), and a center nozzle (425) adapted to be installed on the outside of the third circulation pipe (423); Wherein, the nozzle component (1) is adapted to be installed on the outside of the first circulation pipe (421) and the second circulation pipe (422).
10. The circulatory disturbance device according to claim 9, characterized in that: The inflatable component (51) comprises an air storage tank (511) arranged outside the water pool (3), an air flow pipe (512) adapted to be installed outside the air storage tank (511), and a gas distributor (513) adapted to be installed outside the air flow pipe (512); The gas outlet component (52) comprises a first gas outlet pipe (521), a second gas outlet pipe (522) and a third gas outlet pipe (523) adapted to be installed outside the gas distributor (513); Wherein, the first air outlet pipe (521), the second air outlet pipe (522) and the third air outlet pipe (523) are respectively connected to the first circulation pipe (421), the second circulation pipe (422) and the third circulation pipe (423).