Automatic adsorption water dissolving device for chlorine dioxide room
By installing an adsorption structure in the chlorine dioxide room, using the reaction force of the water mist spray hole to form negative pressure to inhale and dissolve chlorine dioxide, the room pollution problem caused by chlorine dioxide leakage is solved and the health of the operators is ensured.
Patent Information
- Application Number
- CN202510589732.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-08
- Publication Date
- 2025-08-08
AI Technical Summary
When chlorine dioxide leaks, the chlorine-containing compound produced by the top spray combined with chlorine dioxide remains in the chlorine dioxide room, affecting the health of maintenance personnel and operators.
A chlorine dioxide room automatic adsorption water solator is designed. By installing an adsorption structure in the dissolution pipeline, the reaction force of the spray spray is used to drive the adsorption structure to rotate, forming a negative pressure to inhale gas in the chlorine dioxide room, and dissolve chlorine dioxide in the water mist.
Effectively prevent chlorine-containing compounds from contaminating the chlorine dioxide room, ensuring the health of maintenance personnel and operators, and dissolving chlorine dioxide through negative pressure inhalation and water mist to avoid contamination in the room.
Smart Images

Figure CN120437796A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of sewage treatment technology, in particular to a chlorine dioxide room automatic adsorption water dissolving device. Background Art
[0002] The water treatment plant is equipped with a chlorine dioxide room, which quickly kills bacteria, viruses, algae and other microorganisms in the sewage by adding chlorine dioxide (ClO2) to the sewage to meet the discharge standards.
[0003] The chlorine dioxide room is equipped with a chlorine dioxide storage tank, which is equipped with rubber gaskets and diaphragm valves. Aging rubber gaskets can easily lead to chlorine dioxide tank leakage, diaphragm valve diaphragm damage can lead to ClO penetration, ball valve ball wear can cause ClO leakage, and centrifugal pump vibration is transmitted to the tank interface, causing fatigue fracture of flange bolts and ClO leakage. The current method for dealing with leaked chlorine dioxide gas is to install a nozzle at the top of the chlorine dioxide room and an exhaust fan on the side wall of the chlorine dioxide room. When the monitoring system detects a chlorine dioxide leak, the nozzle and exhaust fan are turned on, causing the chlorine dioxide to dissolve in the spray and deposit in the chlorine dioxide room. When chlorine dioxide dissolves in water, it produces various chlorine-containing compounds, causing contamination of the chlorine dioxide room with chlorine-containing compounds, which in turn affects the health of maintenance personnel and operators in the chlorine dioxide room. Summary of the Invention
[0004] The technical problem to be solved by the present invention is that when chlorine dioxide leaks, chlorine-containing compounds generated by the combination of top spray and chlorine dioxide remain in the chlorine dioxide room, affecting the health of maintenance personnel and operators. The purpose is to provide an automatic adsorption water dissolver in the chlorine dioxide room, which draws air containing chlorine dioxide in the chlorine dioxide room into a dissolution pipe and dissolves it in water mist, thereby preventing chlorine-containing compounds from contaminating the chlorine dioxide room and ensuring the health of maintenance personnel and operators.
[0005] The present invention is achieved through the following technical solutions:
[0006] A chlorine dioxide room automatic adsorption water dissolving device comprises a dissolving pipe and a water pipe, wherein the inlet end of the dissolving pipe is installed in the chlorine dioxide room; an adsorption structure, wherein the adsorption structure is installed in the dissolving pipe and is provided with a water mist spray hole; the adsorption structure is rotatably and sealedly connected to the power structure; in a working state, the reaction force of the spray from the water mist spray hole drives the adsorption structure to rotate and discharge the gas in the dissolving pipe from the outlet end, thereby forming a negative pressure at the inlet end of the dissolving pipe to absorb the chlorine dioxide, and the chlorine dioxide is dissolved in the water mist.
[0007] The beneficial effects of the present invention are that, by installing the inlet end of the dissolution pipe in the chlorine dioxide room, installing an adsorption structure in the dissolution pipe, and rotatably sealingly connecting the power structure and the adsorption structure, the power structure provides power to the adsorption structure during operation, and then when the adsorption structure rotates, the air flow in the dissolution pipe is discharged from the outlet end of the dissolution pipe, thereby generating a negative pressure in the inlet end area of the dissolution pipe, and the air containing chlorine dioxide in the chlorine dioxide room is sucked into the dissolution pipe by the negative pressure. At the same time, since the adsorption structure is provided with a water mist spray hole, the adsorption structure rotates when spraying water mist, so that the water mist is diffused in the dissolution pipe, thereby achieving the dissolution of chlorine dioxide in the water mist, preventing chlorine-containing compounds from contaminating the chlorine dioxide room, and ensuring the health of maintenance personnel and operators.
[0008] In some embodiments, the adsorption structure includes a hollow tube and several fan blades. The top of the hollow tube is open and the bottom is sealed. The outlet end of the water pipe is rotatably sealed and connected to the top of the hollow tube. Several fan blades are evenly distributed in a circular shape on the outer periphery of the bottom of the hollow tube. Each fan blade is provided with several water mist nozzles, and each water mist nozzle is connected to the hollow tube. In the working state, the reaction force generated by the water spraying from the water mist nozzle of the fan blade drives the hollow tube and the fan blade to rotate synchronously. By rotatably and sealingly connecting the water pipe and the hollow tube, and sealing the bottom of the hollow tube, a number of fan blades are evenly distributed in a circular pattern at the bottom of the hollow tube, and a number of water mist spray holes communicated with the hollow tube are provided on each fan blade, so that during operation, pressurized water (tap water or other pressurized water) entering the hollow tube from the water pipe can be sprayed out of the fan blades from the water mist spray holes. The reaction force generated after the water mist is sprayed drives the fan blades and the hollow tube to rotate synchronously, thereby generating negative pressure and water mist in the dissolution pipe, sucking chlorine dioxide into the dissolution pipe, and dissolving it under the action of the water mist.
[0009] In some embodiments, each fan blade is provided with a main hole and several water mist nozzle holes. The main hole is a blind hole, and the inlet end of the main hole is connected to the hollow tube. The several water mist nozzle holes located on the same fan blade are all connected to the main hole. By providing the main hole and connecting all the water mist nozzle holes located on the same fan blade to the main hole, the water mist nozzle holes are connected to the hollow tube, so that pressurized water entering the hollow tube can be sprayed out from the water mist nozzle holes.
[0010] In some embodiments, the water mist nozzles are distributed on one side of the corresponding fan blades and are arranged in a clockwise direction or counterclockwise direction of the fan structure composed of the plurality of fan blades. By arranging the fan blades in a clockwise or counterclockwise direction of the fan structure, the reaction forces are prevented from canceling each other out. When the water mist nozzles spray water mist, a reaction force is generated, which in turn generates a torque around the axis of the hollow tube, causing the hollow tube to rotate under the action of the reaction force.
[0011] In some embodiments, the axis of the water mist nozzle is parallel to the corresponding tangent of the hollow tube, or the component of the reaction force generated by the water sprayed from the water mist nozzle is parallel to the corresponding tangent of the hollow tube. By aligning the axis of the water mist nozzle with the corresponding tangent of the hollow tube, or aligning the component of the reaction force generated by the water sprayed from the water mist nozzle with the corresponding tangent of the hollow tube, when pressurized water is sprayed from the water mist nozzle, the reaction force generated is tangential to the hollow tube, or the component of the reaction force is tangential to the hollow tube, thereby generating a torque around the axis of the hollow tube. The hollow tube and the fan blades rotate under the action of the reaction force, thereby generating a negative pressure at the inlet end of the dissolution pipe and a positive pressure at the outlet end of the dissolution pipe, and the chlorine dioxide dissolved in the water mist flows out from the outlet end of the dissolution pipe.
[0012] In some embodiments, two mounting brackets and two mounting bearings are further included. Both mounting brackets are in the shape of bar rods and are parallel to each other. Both ends of the mounting brackets are respectively connected perpendicularly to the inner side wall of the dissolution pipe. A support ring is provided in the middle of the mounting bracket. The inner cavity of the support ring is matched with the axial hole of the outer ring of the mounting bearing, and the inner ring of the mounting bearing is matched with the axial hole of the upper end of the hollow tube. By mounting the brackets and providing the support rings on the mounting brackets, it is convenient to respectively install the two mounting bearings on the corresponding support rings, so that the hollow tube can rotate in the dissolution pipe and the hollow tube can be positioned so that the hollow tube is coaxial with the dissolution pipe, preventing the fan blades from interfering with the dissolution pipe during rotation.
[0013] In some embodiments, the mounting bearing is a sealed bearing. By setting the mounting bearing as a sealed bearing, chlorine dioxide or water mist is prevented from entering the bearing, thereby preventing the bearing from being contaminated.
[0014] In some embodiments, the water pipe and the hollow tube are connected via a rotary joint, wherein the rotary joint is a high-pressure, high-speed rotary joint. The rotary joint rotatably connects the water pipe and the hollow tube, facilitating the flow of pressurized water from the water pipe into the hollow tube. The hollow tube rotates under the reaction force generated by the spraying of the water mist nozzle, thereby rotating the hollow tube and the fan blades.
[0015] In some embodiments, a mounting hole for the water pipe is provided on the sidewall of the dissolution pipe, and a support frame is mounted on the outside of the dissolution pipe. The support frame is mounted outside the mounting hole, and a clamp is provided on the support frame, through which the water pipe and the support frame are connected. The provision of the support frame and the clamp on the support frame facilitates a lossless connection between the water pipe and the support frame, thereby achieving positioning of the water pipe.
[0016] In some embodiments, the water pipe is provided with a solenoid valve, located outside the dissolution pipe and electrically connected to a control center. The provision of the solenoid valve on the water pipe facilitates the control center to issue a corresponding command to the solenoid valve to open or close the water pipe when a command to open or close the water pipe is received.
[0017] Compared with the prior art, the present invention has the following advantages and beneficial effects:
[0018] 1. The pressurized water (tap water or other pressurized water) entering the hollow tube from the water pipe can spray out the fan blades from the water mist nozzle hole. The reaction force generated after the water mist is sprayed drives the fan blades and the hollow tube to rotate synchronously, thereby generating negative pressure and water mist in the dissolution pipe, sucking chlorine dioxide into the dissolution pipe and dissolving it under the action of the water mist.
[0019] 2. The fan blades are arranged in a clockwise or counterclockwise direction along the fan structure to prevent the reaction forces from offsetting each other, so that a reaction force is generated when the water mist nozzle sprays water mist, and then a torque is generated around the axis of the hollow tube. The hollow tube and the fan blades rotate under the action of the reaction force.
[0020] 3. The fan blades and hollow tubes are driven to rotate by tap water or other water that has pressure itself, instead of electric energy, which can save electricity. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solutions of the exemplary embodiments of the present invention, the following briefly introduces the drawings required for use in the examples. It should be understood that the following drawings only illustrate certain embodiments of the present invention and should not be considered as limiting the scope. A person of ordinary skill in the art can also derive other relevant drawings based on these drawings without inventive effort. In the drawings:
[0022] Figure 1 Schematic diagram of the internal structure of the present invention;
[0023] Figure 2 For the present invention Figure 1 A top view of
[0024] Figure 3 It is a partial structural diagram of the present invention;
[0025] Figure 4 This is a diagram showing the internal structure of the fan blade in the present invention;
[0026] Figure 5 This is a structural diagram of the present invention in which the spray hole is located in the middle of the fan blade.
[0027] Markings and corresponding parts names in the accompanying drawings:
[0028] Dissolution pipeline 10, water pipe 20, solenoid valve 21, support frame 22, clamp 221, rotary joint 23, mounting bearing 24, mounting bracket 26, support ring 261, hollow tube 30, fan blade 31, water mist spray hole 32, main hole 33. DETAILED DESCRIPTION
[0029] In order to make the objectives, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below in conjunction with examples and drawings. The exemplary embodiments of the present invention and their descriptions are only used to explain the present invention and are not intended to limit the present invention.
[0030] Throughout this specification, references to "one embodiment," "an embodiment," "an example," or "an example" mean that a particular feature, structure, or characteristic described in connection with the embodiment or example is included in at least one embodiment of the present invention. Therefore, appearances of the phrases "one embodiment," "an embodiment," "an example," or "an example" in various places throughout this specification are not necessarily all referring to the same embodiment or example. Furthermore, the particular features, structures, or characteristics may be combined in one or more embodiments or examples in any suitable combinations and / or subcombinations. Furthermore, it will be understood by those of ordinary skill in the art that the figures provided herein are for illustrative purposes only and are not necessarily drawn to scale. As used herein, the term "and / or" includes any and all combinations of one or more of the associated listed items.
[0031] In the description of the present invention, the terms "front", "back", "left", "right", "up", "down", "vertical", "horizontal", "high", "low", "inside", "outside", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they should not be understood as limiting the scope of protection of the present invention.
[0032] The terms "first" and "second" used in the present invention are only used to distinguish corresponding components for the sake of clarity of description and are not intended to limit any order or emphasize importance. In addition, the term "connected" used in this article can refer to direct connection or indirect connection via other components unless otherwise specified.
[0033] Example
[0034] See also Figure 1-Figure 5The present embodiment provides an automatic chlorine dioxide room adsorption water dissolving device, comprising a dissolving pipe 10 and a water pipe 20, wherein the inlet end of the dissolving pipe 10 is installed in the chlorine dioxide room; an adsorption structure, wherein the adsorption structure is installed in the dissolving pipe 10 and is provided with a water mist nozzle 32; the adsorption structure is rotatably and sealedly connected to the water pipe 20. In a working state, the reaction force of the spray sprayed from the water mist nozzle drives the adsorption structure to rotate and discharge the gas in the dissolving pipe 10 from the outlet end of the dissolving pipe 10, forming a negative pressure in the inlet end area of the dissolving pipe 10 to inhale chlorine dioxide, and the chlorine dioxide is dissolved in the water mist.
[0035] Specifically, a collection box may be connected to the outlet end of the dissolving pipe 10 so that the chlorine-containing compounds dissolved in the water mist are collected in the collection box to prevent pollution of the chlorine dioxide room and the natural environment.
[0036] See also Figures 1-4 The adsorption structure includes a hollow tube 30 and several fan blades 31. The top of the hollow tube 30 is open and the bottom is sealed. The outlet end of the water pipe 20 is rotatably sealed and connected to the top of the hollow tube 30. Several fan blades 31 are evenly distributed in a circular shape on the outer periphery of the bottom of the hollow tube 30. Each fan blade 31 is provided with several water mist spray holes 32, and each water mist spray hole 32 is communicated with the hollow tube 30. In the working state, the reaction force generated by the water spraying from the water mist spray hole 32 of the fan blade 31 drives the hollow tube 30 and the fan blade 31 to rotate synchronously. By rotatably sealingly connecting the water pipe 20 to the hollow tube 30 and sealing the bottom of the hollow tube 30, a number of fan blades 31 are evenly distributed in a circular pattern at the bottom of the hollow tube 30, and each fan blade 31 is provided with a number of water mist spray holes 32 that communicate with the hollow tube 30, so that during operation, pressurized water (tap water or other pressurized water) entering the hollow tube 30 from the water pipe 20 can be sprayed out of the fan blades 31 from the water mist spray holes 32. The reaction force generated after the water mist is sprayed drives the fan blades 31 and the hollow tube 30 to rotate synchronously, thereby generating negative pressure and water mist in the dissolution pipe 10, sucking chlorine dioxide into the dissolution pipe 10, and dissolving it under the action of the water mist. Specifically, the fan blades 31 include at least three.
[0037] See also Figure 3 and Figure 4 Each of the fan blades 31 is provided with a main hole 33 and several water mist spray holes 32. The main hole 33 is a blind hole. The inlet end of the main hole 33 is in communication with the hollow tube 30. The several water mist spray holes 32 located on the same fan blade 31 are all in communication with the main hole 33. By providing the main hole 33 and connecting all the water mist spray holes 32 located on the same fan blade 31 with the main hole 33, the water mist spray holes 32 are in communication with the hollow tube 30, so that the pressurized water entering the hollow tube 30 can be sprayed out from the water mist spray holes 32.
[0038] See also Figure 3 and Figure 4 The water mist spray holes 32 are distributed on one side of the corresponding fan blades 31 and are arranged in a clockwise direction or counterclockwise direction of the fan structure formed by the plurality of fan blades 31. By arranging the fan blades 31 in a clockwise or counterclockwise direction of the fan structure, the reaction forces are prevented from canceling each other out. When the water mist spray holes 32 spray water mist, a reaction force is generated, which in turn generates a torque around the axis of the hollow tube 30. The hollow tube 30 and the fan blades 31 rotate under the action of the reaction force.
[0039] The fan blades 31 in the present invention are provided with an inclination and an amplitude so that the fan blades 31 can generate wind force when rotating. Therefore, the structure of the fan blades 31 is the same as that of conventional fan blades 31, and the present invention will not repeat the specific structure of the fan blades 31 and the fan structure.
[0040] See also Figures 1-4 The axis of the water mist nozzle 32 is parallel to the corresponding tangent of the hollow tube 30, or the component of the reaction force generated by the water spraying from the water mist nozzle 32 is parallel to the corresponding tangent of the hollow tube 30. By aligning the axis of the water mist nozzle 32 with the corresponding tangent of the hollow tube 30, or aligning the component of the reaction force generated by the water spraying from the water mist nozzle 32 with the corresponding tangent of the hollow tube 30, when pressurized water is sprayed from the water mist nozzle 32, the reaction force generated is tangential to the hollow tube 30, or the component of the reaction force is tangential to the hollow tube 30, thereby generating a torque around the axis of the hollow tube 30. The hollow tube 30 and the fan blades 31 rotate under the action of the reaction force, thereby generating a negative pressure at the inlet end of the dissolution pipe 10 and a positive pressure at the outlet end of the dissolution pipe 10. The chlorine dioxide dissolved in the water mist flows out from the outlet end of the dissolution pipe 10, and the chlorine-containing compound can smoothly enter the collection box.
[0041] See also Figure 1 and Figure 2 , further comprising two mounting brackets 26 and two mounting bearings 24. Both mounting brackets 26 are parallel and strip-shaped, with both ends of the mounting brackets 26 perpendicularly connected to the inner sidewall of the dissolution pipe 10. A support ring 261 is provided in the middle of the mounting bracket 26. The inner cavity of the support ring 261 axially engages with the outer ring of the mounting bearing 24, and the inner ring of the mounting bearing 24 axially engages with the upper end of the hollow tube 30. The mounting brackets 26 and the support rings 261 provided on the mounting brackets 26 facilitate mounting the two mounting bearings 24 on their corresponding support rings 261, enabling the hollow tube 30 to rotate within the dissolution pipe 10 and positioning the hollow tube 30 so that it is coaxial with the dissolution pipe 10, preventing the fan blades 31 from interfering with the dissolution pipe 10 during rotation.
[0042] See also Figure 1 and Figure 2 The mounting bearing 24 is a sealed bearing. By setting the mounting bearing 24 as a sealed bearing, chlorine dioxide or water mist is prevented from entering the bearing, thereby preventing the bearing from being contaminated.
[0043] See also Figure 1 The water pipe 20 and the hollow tube 30 are connected by a rotary joint 23. The rotary joint 23 is a high-pressure, high-speed rotary joint. The rotary joint 23 rotatably connects the water pipe 20 and the hollow tube 30, facilitating the flow of pressurized water from the water pipe 20 into the hollow tube 30. The hollow tube 30 then rotates under the reaction force generated by the spraying of the water mist nozzle 32.
[0044] See also Figure 1 The sidewall of the dissolution pipe 10 is provided with a mounting hole for the water pipe 20 to pass through. A support frame 22 is mounted on the outside of the dissolution pipe 10. The support frame 22 is mounted outside the mounting hole. A clamp 221 is provided on the support frame 22, and the water pipe 20 is connected to the support frame 22 via the clamp 221. The provision of the support frame 22 and the clamp 221 on the support frame 22 facilitates a lossless connection between the water pipe 20 and the support frame 22, thereby achieving positioning of the water pipe 20. Specifically, a sealing ring is provided on the water pipe 20, the outer side of which is sealed with the mounting hole, thereby sealing the inner side of the dissolution pipe 10.
[0045] See also Figure 1 The water pipe 20 is provided with a solenoid valve 21, which is located outside the dissolution pipe 10 and is electrically connected to the control center. The solenoid valve 21 provided on the water pipe 20 facilitates the control center to issue a corresponding instruction to the solenoid valve 21 to open or close the water pipe 20 when receiving a command to open or close the water pipe 20.
[0046] See also Figure 5 Specifically, spray holes may be provided on all blades 31, or on some blades 31. The spray holes may be provided in the middle of the blades 31 to prevent most of the spray from hitting adjacent blades 31, thereby improving the dispersion of the spray and thereby improving the efficiency of dissolving chlorine dioxide.
[0047] During operation, when the control center receives an instruction from the monitoring system to detect a chlorine dioxide leak, the control center issues an opening instruction to the solenoid valve 21, and the water pipe 20 opens, allowing pressurized water to enter the hollow tube 30, and the pressurized water is then sprayed out from the water mist nozzle 32. When the pressurized water is sprayed out, a reaction force is generated on the fan blades 31. The reaction force or the component of the reaction force drives the fan blades 31 and the hollow tube 30 to rotate, so that a negative pressure is formed at the inlet end of the dissolution pipe 10, and the chlorine dioxide-containing air in the chlorine dioxide room is sucked into the dissolution pipe 10. The chlorine dioxide combines with the water mist and dissolves in the water mist to produce chlorine-containing compounds, which enter the collection box from the outlet of the dissolution pipe 10.
[0048] The water dissolver in the present invention is a device for inhaling and dissolving chlorine dioxide gas. To ensure negative pressure at the inlet of the dissolution pipe 10, the dissolution pipe 10 is configured as a straight pipe with a length of 500mm-1000mm. A fan structure is installed in the middle of the dissolution pipe 10. The reaction force when the water mist is sprayed can be adjusted by adjusting the water pressure in the water pipe 20, thereby adjusting the rotation speed of the fan structure to ensure negative pressure at the inlet area of the dissolution pipe 10.
[0049] The specific implementation methods described above further illustrate the objectives, technical solutions and beneficial effects of the present invention in detail. It should be understood that the above description is only a specific implementation method of the present invention and is not intended to limit the scope of protection of the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A chlorine dioxide room automatic adsorption water dissolving device, characterized in that, include: A dissolution pipeline, wherein in a working state, an inlet end of the dissolution pipeline is installed in a chlorine dioxide room; An adsorption structure, the adsorption structure being installed in the dissolution pipe and provided with a water mist spray hole; The adsorption structure is rotatably and sealedly connected to the water pipe. In the working state, the reaction force of the spray from the water mist nozzle drives the adsorption structure to rotate and discharge the gas in the dissolution pipe from the outlet end, forming a negative pressure at the inlet end of the dissolution pipe to inhale chlorine dioxide, so that the chlorine dioxide is dissolved in the water mist.
2. The chlorine dioxide room automatic adsorption water dissolving device according to claim 1, characterized in that, The adsorption structure includes a hollow tube and several fan blades. The top of the hollow tube is open and the bottom is sealed. The outlet end of the water pipe is rotatably sealed and connected to the top of the hollow tube. Several fan blades are evenly distributed in a circular shape on the outer periphery of the bottom of the hollow tube. Each fan blade is provided with several water mist spray holes, and each water mist spray hole is communicated with the hollow tube. In the working state, the reaction force generated by the water spraying from the water mist spray hole drives the hollow tube and the fan blades to rotate synchronously.
3. The chlorine dioxide room automatic adsorption water dissolving device according to claim 2, characterized in that, Each of the fan blades is provided with a main hole and several water mist spray holes, the main hole is a blind hole, the inlet end of the main hole is communicated with the hollow tube, and the several water mist spray holes located on the same fan blade are all communicated with the main hole.
4. The chlorine dioxide room automatic adsorption water dissolving device according to claim 2, characterized in that: The water mist spray holes are all distributed on one side of the corresponding fan blade, and are all arranged in a clockwise direction of the fan structure composed of a plurality of fan blades, or in a counterclockwise direction of the fan structure.
5. The chlorine dioxide room automatic adsorption water dissolving device according to claim 2, characterized in that: The axis of the water mist spray hole is parallel to the corresponding tangent line of the hollow tube, or the component of the reaction force generated by the sprayed water from the water mist spray hole is parallel to the corresponding tangent line of the hollow tube.
6. The chlorine dioxide room automatic adsorption water dissolving device according to claim 2, characterized in that: It also includes two mounting brackets and two mounting bearings. The two mounting brackets are both bar-shaped and parallel. The two ends of the two mounting brackets are respectively vertically connected to the inner wall of the dissolution pipe. A support ring is provided in the middle of the mounting bracket. The inner cavity of the support ring is matched with the axial hole of the outer ring of the mounting bearing, and the inner ring of the mounting bearing is matched with the axial hole of the upper end of the hollow tube.
7. The chlorine dioxide room automatic adsorption water dissolving device according to claim 6, characterized in that: The mounting bearing is a sealed bearing.
8. The chlorine dioxide room automatic adsorption water dissolving device according to claim 2, characterized in that: It also includes a rotary joint, through which the water pipe and the hollow tube are connected, and the rotary joint is a high-pressure and high-speed rotary joint.
9. The chlorine dioxide room automatic adsorption water dissolving device according to claim 6, characterized in that: A mounting hole for the water pipe to pass through is provided on the side wall of the dissolution pipe, a support frame is installed on the outside of the dissolution pipe, the support frame is installed on the outside of the mounting hole, a clamp is provided on the support frame, and the water pipe is connected to the support frame through the clamp.
10. The chlorine dioxide room automatic adsorption water dissolving device according to claim 6, characterized in that: The water pipe is provided with a solenoid valve, which is located outside the dissolution pipeline and is electrically connected to a control center.