Ultra-fine bubble generator
The fluid activation device uses a cylindrical shaft and blades with inner ribs to generate ultrafine bubbles efficiently, addressing inefficiencies in existing technologies and enhancing applications in fisheries, agriculture, medicine, and the chemical industry.
Patent Information
- Application Number
- JP2022575493
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-22
- Publication Date
- 2025-11-05
- Estimated Expiration
- 2041-12-22
AI Technical Summary
Existing fluid activation devices are inefficient in generating ultrafine bubbles, which are crucial for applications in fisheries, agriculture, medicine, and the chemical industry.
A fluid activation device comprising a cylindrical shaft, a cylindrical body with a hollow portion, and blades that generate turbulence, along with ribs on the inner surface, to create a spirally extending flow path that enhances ultrafine bubble generation through centrifugal force and turbulence.
The device efficiently generates ultrafine bubbles by utilizing centrifugal force and turbulence, improving fluid activation efficiency for various industrial applications.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a fluid activation device for activating a fluid. [Background technology]
[0002] In recent years, technology for generating ultrafine bubbles in liquids has attracted attention. Ultrafine bubbles (also known as ultrafine nanobubbles) are extremely small bubbles with a spherical equivalent diameter of less than 1 μm that exist stably in liquids. Ultrafine bubbles are colorless and transparent and cannot be directly seen with the naked eye, but various technologies have been developed to measure particle size and number concentration. Because generating ultrafine bubbles in liquids can have various effects, research is being conducted into their use in various fields, including fisheries, agriculture, medicine, the food industry, and the chemical industry. For example, generating ultrafine bubbles in liquids has been shown to have various effects, such as promoting biological growth, sterilization, improving cleaning power, improving fuel combustion efficiency, and improving paint uniformity.
[0003] Patent Document 1 describes a device capable of generating ultrafine bubbles in liquid, in which a blade body with multiple blades attached to the outer circumferential surface of a cylindrical shaft is housed in a cylindrical housing tube. In Patent Document 1, by providing bent portions in the blades, complex turbulence is generated in the liquid flowing between the blades, thereby improving the efficiency of generating ultrafine bubbles. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Patent No. 6490317 Summary of the Invention [Problem to be solved by the invention]
[0005] An object of the present invention is to provide a fluid activation device that can efficiently activate a fluid. [Means for solving the problem]
[0006] The present invention Ultra-fine bubble generation The device comprises a cylindrical shaft, a cylindrical body having a hollow portion and accommodating the shaft with a predetermined gap between the inner surface of the hollow portion and the outer surface of the shaft, and a plurality of blades disposed between the outer surface of the shaft and the inner surface of the cylindrical body, which form a flow path extending spirally from one end of the cylindrical body to the other end and generate turbulence in the fluid flowing through the flow path, and the inner surface of the cylindrical wall is provided with a plurality of ribs consisting of protrusions extending in the axial direction of the shaft. [Effects of the Invention]
[0007] According to the present invention, it is possible to provide a fluid activation device that can efficiently activate a fluid. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a perspective view of a fluid activation device according to a first embodiment. [Figure 2] FIG. 2 is a perspective view of a constituent unit of the fluid activation device shown in FIG. [Figure 3] FIG. 3 is a surface view of the structural unit shown in FIG. [Figure 4] FIG. 4 is a rear view of the structural unit shown in FIG. [Figure 5] FIG. 5 is a top view of the structural unit shown in FIG. [Figure 6] FIG. 6 is a development view of a cross section taken along line VI-VI shown in FIG. 3 developed on a plane. [Figure 7] FIG. 7 is a perspective view of a constituent unit of a fluid activation device according to the second embodiment. [Figure 8] FIG. 8 is a surface view of the structural unit shown in FIG. [Figure 9]FIG. 9 is a development view of the cross section taken along line IX-IX in FIG. 8 developed on a plane. [Figure 10] FIG. 10 is a perspective view of a constituent unit of a fluid activation device according to a modified example of the second embodiment. [Figure 11] FIG. 11 is a surface view of the structural unit shown in FIG. [Figure 12] FIG. 12 is a development view of the cross section taken along line XII-XII shown in FIG. 11 developed on a plane. [Figure 13A] FIG. 13A is a partial cross-sectional view of a fluid activation device according to a third embodiment. [Figure 13B] FIG. 13B is a cross-sectional view of the cylindrical body shown in FIG. 13A. [Figure 14] FIG. 14 is a cross-sectional view taken along line XIV-XIV shown in FIG. 13A. [Figure 15] FIG. 15 is a partial cross-sectional view of a fluid activation device according to a modification of the third embodiment. [Figure 16] FIG. 16 is a partial cross-sectional view of a fluid activation device according to the fourth embodiment. [Figure 17A] FIG. 17A is a cross-sectional view of a fluid activation device according to a fifth embodiment. [Figure 17B] FIG. 17B is a cross-sectional view of a fluid activation device according to Modification 1 of the fifth embodiment. [Figure 17C] FIG. 17C is a cross-sectional view of a fluid activation device according to Modification 2 of the fifth embodiment. [Figure 17D] FIG. 17D is a cross-sectional view of a fluid activation device according to a third modification of the fifth embodiment. [Figure 18] FIG. 18 is a cross-sectional view of a fluid activation device according to the sixth embodiment. [Figure 19] FIG. 19 is a schematic diagram of a fluid activation device according to the seventh embodiment. [Figure 20] FIG. 20 is a schematic diagram of a fluid activation device according to the eighth embodiment. [Figure 21] FIG. 21 is a schematic diagram of a constituent unit of a fluid activation device according to the ninth embodiment. [Figure 22] FIG. 22 is a schematic diagram of a constituent unit of a fluid activation device according to a modification of the ninth embodiment. [Figure 23] FIG. 23 is a schematic diagram of a fluid activation device according to the tenth embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] In this specification, "fluid" refers collectively to liquids and gases. Furthermore, "activating a fluid" refers to generating a large number of ultrafine bubbles in a liquid. When a fluid is a gas, "activating a fluid" refers to reducing the size (number of molecules) of clusters, which are aggregates of multiple (e.g., several to several tens) gas molecules present in the gas phase. When heterogeneous gases are activated using a fluid activation device, the cluster size of each gas decreases and the clusters are uniformly mixed. For example, when fuel gas and air (oxygen in the air) are uniformly mixed at the molecular and cluster levels, the fuel gas clusters and oxygen clusters are uniformly distributed in the gas phase, allowing efficient bonding between fuel gas molecules and oxygen molecules and dramatically improving combustion efficiency. In the following description, a device for generating ultrafine bubbles in a liquid is used as an example. However, the fluid activation device according to each of the following embodiments can also be applied to gas activation.
[0010] (First embodiment) FIG. 1 is a perspective view of a fluid activation device according to a first embodiment.
[0011] The fluid activation device 100 has a cylindrical shape as a whole and activates a supplied fluid. The fluid activation device 100 is connected to the middle of a piping such as a pipe or a tube so that the left end of the fluid activation device 100 in Fig. 1 is the upstream side and the right end of the fluid activation device 100 in Fig. 1 is the downstream side.
[0012] The fluid activation device 100 includes a cylindrical shaft 21, a cylindrical body 22 that houses the shaft 21, and a plurality of blades 3 disposed between the outer circumferential surface of the shaft 21 and the inner circumferential surface of the cylindrical body 22. The fluid activation device 100 according to this embodiment is configured by combining a plurality of units 10 having the same shape. The shaft 21 is formed by a plurality of cores 1 of the plurality of units 10, and the cylindrical body 22 is formed by a plurality of peripheral walls 2 of the plurality of units 10. The cylindrical body 22 has a hollow portion and houses the shaft 21 therein. As shown in FIG. 1 , the inner circumferential surface of the cylindrical body 22 is provided with a plurality of ribs 24 formed of protrusions extending in the axial direction of the shaft 21. The plurality of ribs 24 are formed by a plurality of protrusions 4 of the plurality of units 10.
[0013] The unit 10 will be described in detail below with reference to FIGS.
[0014] Fig. 2 is a perspective view of a constituent unit of the fluid activation device shown in Fig. 1, Fig. 3 is a front view of the constituent unit shown in Fig. 2, Fig. 4 is a back view of the constituent unit shown in Fig. 2, Fig. 5 is a top view of the constituent unit shown in Fig. 4, and Fig. 6 is a development view of a cross section along line VI-VI shown in Fig. 3 developed on a plane. In the following drawings, directions may be specified using an xyz coordinate system. The positive direction of the z axis corresponds to the fluid flow direction.
[0015] The unit 10 includes a core 1, a peripheral wall 2, and a plurality of blades 3. The unit 10 can be formed by, for example, injection molding of a resin.
[0016] The core 1 is a cylindrical member having a through hole 5, a boss 6, and a recess 7. The core 1 also has recesses 8 and 9 on its upstream and downstream surfaces, respectively, for the purpose of reducing the amount of resin.
[0017] The through-hole 5 is a circular hole that penetrates the center of the core 1. When a plurality of cores 1 are connected as shown in FIG. 1 to form a fluid activation device 100, the through-hole 5 serves to form a flow path that penetrates the fluid activation device 100 along its central axis. This flow path is provided so that other liquids or gases can be supplied to the fluid (fluid containing a large number of ultra-fine bubbles) that flows out of the fluid activation device 100. When there is no need to inject other liquids or gases into the fluid, the through-hole 5 may be closed or may be omitted.
[0018] The boss 6 is provided on one of both surfaces of the core 1, the surface facing upstream of the fluid activation device 100 (FIG. 3). The recess 7 is provided on one of both surfaces of the core 1, the surface facing downstream of the fluid activation device 100 (FIG. 4). The boss 6 and the recess 7 have shapes that allow them to fit together and are provided to connect adjacent cores 1. The recess 7 is located at a position rotated by a predetermined angle around the central axis AX of the core 1 relative to the boss 6. In other words, when the core 1 is viewed from a plan view from the upstream or downstream side of the fluid activation device 100, the boss 6 is located at a rotational position that does not overlap with the recess 7. Note that, instead of the configuration of this embodiment, the recess 7 may be provided on the upstream surface of the core 1 and the boss 6 on the downstream surface of the core 1. Furthermore, as long as adjacent cores 1 can be connected, mating portions constituting a mating structure other than the boss 6 and the recess 7 may be provided on the upstream and downstream surfaces. Furthermore, when the cores 1 are joined together using an adhesive or the like, the mating portions may be omitted.
[0019] The peripheral wall 2 is a cylindrical or annular member coaxial with the core 1. The peripheral wall 2 surrounds the core 1 with a predetermined gap between it and the outer peripheral surface of the core 1. A first positioning portion 11 and a second positioning portion 12 are provided on the outer surface of the peripheral wall 2 (FIGS. 3 to 5). The first positioning portion 11 and the second positioning portion 12 are provided so that the relative rotational positions of adjacent cores 1 can be easily adjusted when assembling the cores 1. The first positioning portion 11 and the second positioning portion 12 will be described in detail later. A plurality of protrusions 4 are provided on the inner peripheral surface of the peripheral wall 2. The protrusions 4 are formed of ridges extending in the direction of the central axis AX of the core 1. As shown in FIGS. 3 and 4, the cross section of each protrusion 4 parallel to a plane perpendicular to the central axis AX of the core 1 (hereinafter referred to as the "xy plane") is triangular. The multiple protrusions 4 are provided without gaps around the entire circumferential direction of the peripheral wall 2, and the cross section of the multiple protrusions 4 on a plane parallel to the xy plane is sawtooth-shaped. As shown in FIGS. 3 and 4, the protrusions 4 are provided on both the upstream side (front surface side) and downstream side (rear surface side) of the blade 3.
[0020] The height of the convex portion 4 on a cross section parallel to the xy plane, the magnitude of the apex angle, and the lengths of each of the two sides excluding the base are not particularly limited and can be set based on the viscosity and flow rate of the fluid supplied to the fluid activation device 100, the pressure applied to the fluid, the allowable pressure loss, etc. The height of the convex portion 4 refers to the maximum height of the convex portion 4 in the radial direction of the peripheral wall 2 on a cross section parallel to the xy plane. The magnitude of the apex angle and the lengths of each of the two sides excluding the base also refer to values on a cross section parallel to the xy plane. The cross-sectional shape of the convex portion 4 does not have to be triangular. For example, one or both of the slopes of the convex portion 4 may be curved.
[0021] The multiple blades 3 swirl the fluid flowing through the space between the outer peripheral surface of the core 1 and the inner peripheral surface of the peripheral wall 2 around the central axis AX of the core 1. The multiple blades 3 generate turbulence in the fluid, thereby generating ultrafine bubbles. Each blade 3 connects the outer peripheral surface of the core 1 to the inner peripheral surface of the peripheral wall 2. While the blade 3 may be connected to either the outer peripheral surface of the core 1 or the inner peripheral surface of the peripheral wall 2, connecting the blade 3 to both the outer peripheral surface of the core 1 and the inner peripheral surface of the peripheral wall 2 improves the strength of the blade 3. The blades 3 are arranged at a constant pitch around the circumferential direction of the core 1. Each blade 3 is inclined at a predetermined angle with respect to the central axis AX of the core 1. Specifically, each blade 3 is inclined so that the vertical distance from a plane P including the upstream surface of the core 1 to the surface of the blade 3 (upstream surface) increases in the swirling direction of the flow path (in this embodiment, the counterclockwise direction around the central axis AX of the core 1 when viewed from the upstream side) ( FIG. 6 ). The inclination angle of each blade 3 is the same. The surface of the blade 3 may be flat or curved. As shown in FIG. 6 , in this embodiment, the blade 3 has a flat main surface 13 and a bent portion 14 provided along the downstream edge of the main surface. The upstream edge of the main surface 13 is preferably formed into a thin blade shape to reduce fluid resistance. The bent portion 14 generates turbulence (vortexes) in the fluid flowing along the downstream surface of the blade 3. It is believed that the turbulence generated by the bent portion 14 generates ultrafine bubbles. The number and inclination angle of the blades 3 are not particularly limited and can be set based on the viscosity and flow rate of the fluid supplied to the fluid activation device 100, the pressure applied to the fluid, the allowable pressure loss, etc.
[0022] Referring again to FIG. 1, the fluid activation device 100 will be further described.
[0023] The fluid activation device 100 shown in FIG. 1 is constructed by connecting a plurality of units 10 in the direction of the central axis AX of the core 1. As described above, the upstream surface (FIG. 3) and the downstream surface (FIG. 4) of the core 1 are provided with a boss 6 and a recess 7, respectively. Two units 10 can be connected by fitting the boss 6 of one unit 10 into the recess 7 of another unit 10. The fluid activation device 100 can be constructed by connecting other units to the connected units 10 one after another. Note that the number of units 10 constituting the fluid activation device 100 is not particularly limited.
[0024] The recess 7 is disposed at a rotational position rotated a predetermined angle around the central axis AX of the core 1 relative to the boss 6. Therefore, when multiple units 10 are connected by fitting the boss 6 and the recess 7, each of the multiple units 10 is rotated by a predetermined rotational angle in a fixed direction around the central axis AX of the core 1 in sequence from the upstream side to the downstream side of the fluid activation device 100. For example, in the example of FIG. 1 , of two adjacent units 10, the downstream unit 10 can be disposed at a position rotated 27.5° counterclockwise around the central axis of the core 1 relative to the upstream unit 10 when viewed from the upstream side. In this way, when the multiple units 10 are connected by rotating by a predetermined rotational angle in a fixed direction in sequence from the upstream side to the downstream side of the fluid activation device, the rotational positions of the blades 3 provided in each of the multiple units 10 are shifted by a fixed rotational angle for each unit 10. By arranging the blades 3 of each unit 10 so that they are offset in the rotational direction by a certain rotational angle, a flow path is formed inside the cylindrical body 22 (circumferential wall 2) that extends spirally from the upstream side to the downstream side of the fluid activation device 100.
[0025] As shown in FIGS. 3 to 5, a first positioning portion 11 and a second positioning portion 12 are provided on the outer peripheral surface of the peripheral wall 2. When viewed from the upstream side of the unit 10, the second positioning portion 12 is located at a rotational position rotated a certain angle counterclockwise around the central axis AX of the core 1 relative to the first positioning portion 11. Therefore, as shown in FIG. 1, when connecting a pair of adjacent units 10, the second positioning portion 12 of the upstream unit 10 and the first positioning portion 11 of the downstream unit 10 are arranged at the same rotational position. This allows the downstream unit 10 to be arranged at a rotational position rotated a certain rotational angle in a certain rotational direction relative to the upstream unit 10. The relative rotational angle of the first positioning portion 11 and the second positioning portion 12 about the central axis AX is set to be equal to the relative rotational angle of the recess 7 about the central axis AX with respect to the boss 6. Therefore, when the second positioning portion 12 of the upstream unit 10 and the first positioning portion 11 of the downstream unit 10 are aligned, the recess 7 of the upstream unit 10 and the boss 6 of the downstream unit 10 are positioned so that they can be fitted together.
[0026] In other words, by aligning the rotational positions of the second positioning portion 12 of the upstream unit 10 and the first positioning portion 11 of the downstream unit 10, it is possible to displace each unit in the same direction by a designed fixed rotation angle, and also to align the bosses 6 and recesses 7. Note that the connected multiple units 10 may be fixed with adhesive, fixtures, etc.
[0027] In use, the fluid activation device 100 is attached midway through the piping. When gas is mixed at the outlet of the fluid activation device 100, a supply pipe for supplying gas is connected to the flow path formed by the through-holes 5 provided in the core 1. When no gas is introduced, the flow path formed by the through-holes 5 is closed.
[0028] Fluid is supplied to the fluid activation device 100 from an upstream pipe. The fluid may be a liquid or a gas. A combination of multiple types of fluids may also be supplied. When multiple types of fluids are supplied, the fluid activation device can mix the multiple types of fluids uniformly. When mixing fluids, different types of liquids may be supplied, different types of gases may be supplied, or a liquid and a gas may be supplied. Below, an example will be described in which the fluid is a liquid and ultra-fine bubbles are generated in the liquid.
[0029] Fluid supplied to the space between the core 1 and the peripheral wall 2 passes between the circumferentially adjacent blades 3 and flows to the downstream unit 10. At this time, ultrafine bubbles are generated in the fluid due to turbulence generated by the bends 14 of the blades 3 shown in Figure 6. As described above, the rotational positions of the blades 3 of each unit are offset by a fixed angle counterclockwise around the central axis AX from upstream to downstream as viewed from the upstream side, so that the spaces between adjacent blades 3 in the circumferential direction are connected in sequence to form a flow path that extends in a counterclockwise spiral. As the fluid collides with the bends 14 of the blades 3 multiple times while flowing through this spiral flow path, ultrafine bubbles are repeatedly generated.
[0030] Furthermore, as the fluid passes through the spiral flow path, a counterclockwise swirling flow is generated. When a swirling flow is generated, centrifugal force acts on the fluid, causing the fluid to collide with great force against the inner circumferential surface of the peripheral wall 2. In the fluid activation device 100 according to this embodiment, a plurality of convex portions 4 are provided on the inner circumferential surface of the peripheral wall 2. When the fluid collides with the convex portions 4, turbulence (vortices) is generated near the ridges of the convex portions 4, and this turbulence further generates ultra-fine bubbles.
[0031] As described above, in this embodiment, a plurality of protrusions 4 (ribs 24) are provided on the inside of the peripheral wall 2 (cylindrical body 22), and ultra-fine bubbles can be generated not only by collision between the fluid and the blades 3, but also by collision between the fluid and the protrusions 4 (ribs 24). The plurality of blades 3 generate a swirling flow, so that centrifugal force acts on the fluid flowing near the inner peripheral surface of the peripheral wall 2. By providing a plurality of protrusions 4 on the inner peripheral surface of the peripheral wall 2, centrifugal force acting on the fluid can be utilized, thereby improving the efficiency of ultra-fine bubble generation.
[0032] In this embodiment, the height of each of the multiple protrusions 4 (ribs 24) monotonically increases to a predetermined height in the swirling direction of the spiral flow path and then suddenly decreases at the ridges. In other words, the height of each protrusion 4 (rib 24) increases from the connection between the protrusion 4 (rib 24) and the adjacent rib on the upstream side in the swirling direction of the spiral flow path to the connection between the protrusion 4 (rib 24) and the adjacent rib on the downstream side in the swirling direction of the spiral flow path, resulting in a step at the connection between the protrusion 4 (rib 24) and the adjacent rib on the downstream side in the swirling direction of the spiral flow path. In this embodiment, the cross section of the protrusion 4 (rib 24) taken along a plane perpendicular to the central axis AX of the core is triangular. The protrusions 4 (ribs 24) are provided without gaps over the entire inner circumferential surface of the peripheral wall 2. This shape and arrangement of the protrusions 4 also improves the generation efficiency of ultra-fine bubbles.
[0033] Furthermore, the boss 6 and recess 7 provided on the core 1 are positioned such that they are rotated by a certain angle. Therefore, when a pair of adjacent units 10 are connected by fitting the boss 6 and recess 7, the blades 3 of one unit 10 and the blades 3 of the other unit 10 can be positioned with a predetermined angle offset. Therefore, with the unit 10 according to this embodiment, the fluid activation device 100 can be easily assembled.
[0034] When connecting a pair of adjacent units 10, the second positioning portion 12 provided on the upstream unit 10 and the first positioning portion 11 provided on the downstream unit 10 are positioned at the same rotational position in the circumferential direction of the peripheral wall 2. This allows the blades 3 of the upstream unit 10 and the blades 3 of the downstream unit 10 to be positioned offset by a predetermined angle. Furthermore, because the first positioning portion 11 and the second positioning portion 12 correspond to the relative rotational positions of the boss 6 and the recessed portion 7, it is easy to align the boss 6 and the recessed portion 7 to a positional relationship that allows them to be fitted together based on the first positioning portion 11 and the second positioning portion 12. Therefore, the first positioning portion 11 and the second positioning portion 12 further facilitate the assembly of the fluid activation device 100.
[0035] (Second embodiment) Fig. 7 is a perspective view of a constituent unit of a fluid activation device according to a second embodiment, Fig. 8 is a surface view of the constituent unit shown in Fig. 7, and Fig. 9 is a developed view of a cross section taken along line IX-IX shown in Fig. 8. The following will mainly describe the differences between this embodiment and the first embodiment.
[0036] The fluid activation device according to this embodiment is composed of a combination of a plurality of units 20. Each unit 20 has a plurality of blades 15 having a different shape from that of the first embodiment. As shown in FIGS. 7 to 9, a plurality of protrusions 16 extending in the radial direction of the unit 20 are provided on the front and back surfaces of the blades 15. As shown in FIG. 9, each of the protrusions 16 has a triangular cross section. By providing a plurality of protrusions 16 on the front and back surfaces of the blade 15, the blade has a sawtooth cross section. The protrusions 16 may be provided on either the front or back surface of the blade 15, but providing them on both surfaces of the blade 15 can further improve the efficiency of generating ultra-fine bubbles.
[0037] As in the first embodiment, a plurality of units 20 are connected in the direction of the central axis AX to form a fluid activation device. A fluid supplied to the space between the shaft formed by the core 1 and the cylindrical body formed by the peripheral wall 2 flows downstream along the front and back surfaces of the blades 15. At this time, the fluid collides with the multiple protrusions 16 provided on the front and back surfaces of the blades 15, causing turbulence near the ridges of the protrusions 16, which in turn generates a large number of ultrafine bubbles. The presence of multiple protrusions 16 on the front and back surfaces of the blades 15 improves the efficiency with which the blades 15 generate ultrafine bubbles. Furthermore, as in the first embodiment, microbubbles are also generated when the fluid collides with the protrusions 4 provided on the inner surface of the peripheral wall 2. Therefore, this embodiment provides a fluid activation device with excellent ultrafine bubble generation efficiency.
[0038] In the unit 20 according to this embodiment, the protrusions 16 on the blades 15 are configured so that, as shown in FIG. 9, the thickness of each protrusion 16 increases to a predetermined value in the direction of the spiral flow path formed by the blades 15, and then the thickness suddenly decreases at the junction with the adjacent protrusion 16. Furthermore, as shown in FIGS. 7 and 8, each protrusion 4 on the inner circumferential surface of the peripheral wall 2 increases to a predetermined height in the radial direction of the peripheral wall 2 in the direction of the spiral flow path formed by the blades 15, and then the height suddenly decreases at the junction with the adjacent protrusion 4. With this configuration, the fluid flows along the inclined surfaces of the protrusions 4 and 16, but a step is formed beyond the ridges of the protrusions 4 and 16, generating strong turbulence at this step. Therefore, when the combination of the shapes of the protrusions 4 and 16 shown in FIGS. 7 to 9 is adopted, the ultra-fine bubble generation efficiency is extremely high.
[0039] (Modification of the second embodiment) Figure 10 is an oblique view of a component unit of a fluid activation device relating to a modified example of the second embodiment, Figure 11 is a surface view of the component unit shown in Figure 10, and Figure 12 is an expanded view of a cross section along line XII-XII shown in Figure 11 expanded onto a plane.
[0040] The fluid activation device according to this modification is composed of a combination of multiple units 30. The units 30 each include a blade 18 having a sawtooth cross section, as in the second embodiment, but the shapes of the protrusions 4 provided on the peripheral wall 2 and the protrusions 19 provided on the blade 18 are different from those in the second embodiment.
[0041] More specifically, in the unit 30 according to this modification, a plurality of protrusions 19 extending in the radial direction of the peripheral wall 2 are provided on the front and back surfaces of the blades 18. As shown in Fig. 12, the thickness of each protrusion 19 decreases from a predetermined thickness toward the direction of rotation of the spiral flow path formed by the blades 18, and then suddenly increases to a predetermined thickness at the connection portion with the adjacent protrusion 19. Similarly, each protrusion 17 provided on the inner peripheral surface of the peripheral wall 2 is also configured such that the height in the radial direction of the peripheral wall 2 decreases from a predetermined height toward the direction of rotation of the spiral flow path formed by the blades 15, and then suddenly increases to a predetermined height at the connection portion with the adjacent protrusion 17. When these protrusions 17 and 19 are provided, turbulence occurs when the fluid collides with the steps formed by the protrusions 17 and 19, thereby improving the efficiency of generating ultra-fine bubbles compared to when the protrusions 17 and 19 are not provided. However, when the combination of convex shapes of this modification is adopted, the flow velocity of the fluid is likely to decrease due to collisions with steps, and the ultra-fine bubble generation efficiency is lower than with the combination of convex shapes of the second embodiment shown in Figures 7 to 9. However, the combination of the cross-sectional shapes of the convex parts provided on the peripheral wall (cylindrical body) and the cross-sectional shapes of the convex parts provided on the blades is not particularly limited. For example, the convex parts 4 according to the second embodiment may be combined with the convex parts 19 according to the modification, or the convex parts 17 according to the modification may be combined with the convex parts 16 according to the second embodiment.
[0042] (Third embodiment) Figure 13A is a partial cross-sectional view of a fluid activation device according to the third embodiment, Figure 13B is a cross-sectional view of the cylindrical body shown in Figure 13A, and Figure 14 is a cross-sectional view along line XIV-XIV shown in Figure 13A.
[0043] The fluid activation device 200 includes a cylindrical shaft 21, a cylindrical body 22 that houses the shaft 21, and a plurality of blades 23 provided between the outer circumferential surface of the shaft 21 and the inner circumferential surface of the cylindrical body 22. The cylindrical body 22 has a hollow portion, and houses the shaft 21 in the hollow portion. As shown in FIGS. 13B and 14 , a plurality of ribs 24 consisting of protrusions extending in the axial direction of the shaft 21 are provided on the inner circumferential surface of the cylindrical body 22. A space for arranging the blades 23 is formed between the outer circumferential surface of the shaft 21 and the inner circumferential surface of the cylindrical body 22.
[0044] Each of the blades 23 is inclined at a predetermined angle relative to the central axis of the shaft 21, as in the above-described embodiments. The blades 23 have the same shape as that shown in FIG. 6, but may also be formed in a sawtooth shape as in the second embodiment. The blades 23 are arranged at predetermined intervals in the circumferential and axial directions of the shaft 21. A plurality of blades 23 adjacent to each other in the axial direction of the shaft 21 are arranged rotated by a predetermined rotation angle in a predetermined rotational direction around the central axis of the shaft 21 from the upstream side to the downstream side of the fluid activation device 200. This arrangement of the blades 23 forms a flow path that extends spirally from the upstream side to the downstream side of the fluid activation device 200.
[0045] The materials of the shaft 21, the cylindrical body 22, and the blades 23 are not particularly limited, but may be made of, for example, resin or metal. The shaft 21 and the blades 23 may be integrally formed by machining or the like, or may be formed as separate members and then joined to each other.
[0046] Conical flow straightening members 25a and 25b are provided at the upstream end and downstream end of the shaft 21, respectively. The flow straightening member 25a is a member that smoothly guides the supplied fluid into the flow path formed by the blades 23. The flow straightening member 25b is a member that smoothly guides the fluid that flows out of the flow path formed by the blades 23 downstream. The flow straightening members 25a and 25b are not necessarily required and may be omitted.
[0047] In the fluid activation device 200 according to this embodiment, the bent portions of the blades 23 also generate turbulence in the fluid flowing through the flow path formed by the blades 23, thereby generating ultrafine bubbles. Furthermore, centrifugal force is generated in the fluid flowing through the spiral flow path formed by the blades 23, but the provision of multiple ribs 24 on the inner peripheral surface of the cylindrical body 22 improves the efficiency of generating ultrafine bubbles.
[0048] FIG. 15 is a partial cross-sectional view of a fluid activation device according to a modification of the third embodiment.
[0049] The fluid activation device 200 may be provided with a flow straightening member 26 shown in FIG. 15 instead of the flow straightening member 25a shown in FIG. 13A. The flow straightening member 26 has a conical base and a spiral blade provided on the conical surface of the base. The spiral blade rotates in the same direction as the flow path formed by the blade 23. By providing the flow straightening member 26 shown in FIG. 15, the fluid flowing into the fluid activation device 200 can be more efficiently straightened. Although not shown in FIG. 15, a flow straightening member of the same shape may also be provided on the downstream side.
[0050] (Fourth embodiment) FIG. 16 is a partial cross-sectional view of a fluid activation device according to the fourth embodiment.
[0051] The fluid activation device 300 includes a conical flow straightening member 27 having a shaft 28, a plurality of spacers 29, a plurality of blade plates 38 having a plurality of blades 23, and a cylindrical body 22. The plurality of spacers 29 and the plurality of blade plates 38 are integrated into a body having a central opening (not shown) through which the shaft 28 passes. In this embodiment, the shaft 21 is formed by integrating the plurality of spacers 29 with parts of the plurality of blade plates 38. The blade plates 38 can be formed, for example, by pressing a metal plate. The blades 23 provided on the blade plate 38 have the same shape as those shown in FIG. 6, but the blades 23 may also be formed in a sawtooth shape as in the second embodiment.
[0052] In this embodiment as well, a plurality of ribs (not shown) are provided on the inner peripheral surface of the cylindrical body 22, and the plurality of ribs can improve the efficiency of generating ultra-fine bubbles.
[0053] In this embodiment, the number of ultra-fine bubbles to be generated can be adjusted by appropriately adjusting the number of spacers 29 and blade plates 38.
[0054] (Fifth embodiment) FIG. 17A is a cross-sectional view of a fluid activation device according to a fifth embodiment.
[0055] The fluid activation device 400 further includes a supply pipe 31a for supplying gas. The supply pipe 31a passes through a through-hole provided in the center of the shaft 21 from the upstream side to the downstream side, and the end of the supply pipe 31a is located near the downstream end of the shaft 21.
[0056] When a fluid is supplied to the fluid activation device 400, the pressure in the supply pipe 31a is reduced by the flow of the fluid, and gas is drawn into the fluid through the supply pipe 31a. The gas drawn in from the supply pipe 31a is caught in the swirling flow of the fluid near the downstream end of the fluid activation device 400, and is introduced into the fluid as microbubbles with a diameter of 1 to 100 μm or larger.
[0057] 17B to 17D are cross-sectional views of fluid activation devices according to Modifications 1 to 3 of the fifth embodiment.
[0058] 17B, supply pipe 31b does not pass through shaft 21, but is provided on the downstream side of shaft 21. The end of supply pipe 31b is located near the downstream end of shaft 21. Even with this configuration, as fluid is supplied, gas supplied from supply pipe 31b can be taken into the fluid as microbubbles or bubbles larger in size.
[0059] 17C, an L-shaped flow path is provided in shaft 21, running from the upstream end through the center of shaft 21 to the outer circumferential surface of shaft 21, and the end of supply pipe 31c is located within this L-shaped flow path. When fluid is supplied to fluid activation device 400, gas drawn in from supply pipe 31c is caught in the swirling flow formed by blades 23 and is taken into the fluid as ultra-fine bubbles. This configuration makes it possible to obtain a fluid containing a high concentration of ultra-fine bubbles of the gas supplied from supply pipe 31c.
[0060] In Modification 3 shown in Fig. 17D, the end of supply pipe 31d is located upstream of the upstream end of shaft 21. Gas is supplied to supply pipe 31d by a pump. The gas supplied from supply pipe 31d is caught in the swirling flow formed by blades 23 and is taken into the fluid as ultra-fine bubbles. This configuration also makes it possible to obtain a fluid containing a high concentration of ultra-fine bubbles of the gas supplied from supply pipe 31d.
[0061] 17A to 17D, a plurality of ribs (not shown) are also provided on the inner circumferential surface of the cylindrical body 22. Therefore, as in each of the above embodiments, the centrifugal force acting on the fluid can be utilized by the plurality of ribs to improve the generation efficiency of ultra-fine bubbles.
[0062] The type of gas supplied in the fluid activation device shown in Figures 17A to 17D is not particularly limited. The fluid activation device shown in Figures 17A to 17D may have any of the configurations described in the first to fourth embodiments.
[0063] (Sixth embodiment) FIG. 18 is a cross-sectional view of a fluid activation device according to the sixth embodiment.
[0064] The fluid activation device 500 further includes a drive device 32 that rotates the shaft 21. The drive device 32 is, for example, a motor. Rotating the shaft 21 while supplying a fluid to the fluid activation device 500 increases the number of passes of the blades 23 per unit time, thereby promoting the generation of ultra-fine bubbles. The fluid activation device 500 shown in FIG. 18 also has multiple ribs (not shown) on the inner circumferential surface of the cylindrical body 22. Therefore, as in the above-described embodiments, the multiple ribs can utilize the centrifugal force acting on the fluid to improve the efficiency of ultra-fine bubble generation.
[0065] (Seventh embodiment) FIG. 19 is a schematic diagram of a fluid activation device according to the seventh embodiment.
[0066] The fluid activation device 600 includes a shaft 21, a cylindrical body 22, blades 23, a housing 33 that houses these components, and a motor 34 attached to the shaft 21. The housing 33 is provided with an inlet pipe 35a for introducing the fluid and an outlet pipe 35b for directing the fluid to the outside. In this embodiment, the motor 34 rotates the shaft 21, thereby efficiently generating ultrafine bubbles. Furthermore, in the fluid activation device 600 shown in FIG. 19, multiple ribs (not shown) are provided on the inner circumferential surface of the cylindrical body 22. Therefore, as in the above embodiments, the multiple ribs can improve the efficiency of generating ultrafine bubbles by utilizing the centrifugal force acting on the fluid.
[0067] (Eighth embodiment) FIG. 20 is a schematic diagram of a fluid activation device according to the eighth embodiment.
[0068] The fluid activation device 700 includes a shaft 21, a cylindrical body 22, blades 23, a storage tank 36, and a pump 37. The fluid in the storage tank 36 is supplied into the cylindrical body 22 by the pump 37, and the fluid discharged from the cylindrical body 22 is returned to the storage tank 36. By circulating the fluid in the storage tank 36 and repeatedly supplying the fluid to the cylindrical body 22, the concentration of ultra-fine bubbles can be improved. Furthermore, in the fluid activation device 700 shown in FIG. 20 , multiple ribs (not shown) are provided on the inner circumferential surface of the cylindrical body 22. Therefore, as in the above-described embodiments, the multiple ribs can improve the efficiency of ultra-fine bubble generation by utilizing the centrifugal force acting on the fluid.
[0069] (Ninth embodiment) FIG. 21 is a schematic diagram of a constituent unit of a fluid activation device according to the ninth embodiment.
[0070] The unit 40 has a structure in which the unit 10 according to the first embodiment is nested in the core 1 portion of the unit 10.
[0071] The unit 40 includes a core 41, a first peripheral wall 42, a plurality of first blades 43, a plurality of first protrusions 44, a second peripheral wall 45, a plurality of second blades 46, and a plurality of second protrusions 47.
[0072] The core 41 is a cylindrical member. A through-hole may be provided in the center of the core 41, as in the first embodiment. The first peripheral wall 42 is a cylindrical or annular member coaxial with the core 41. The first peripheral wall 42 surrounds the core 41 with a predetermined gap between it and the outer peripheral surface of the core 41. The multiple first blades 43 have the same shape as the blade 3 of the first embodiment (FIG. 6) and are connected to the outer peripheral surface of the core 41 and the inner peripheral surface of the first peripheral wall 42. Similar to the blade 3 described above, the multiple blades 43 form a flow path extending spirally within the first cylindrical body formed by the multiple first peripheral walls 42, causing the fluid flowing between the core 41 and the first peripheral wall 42 to swirl around the central axis AX of the core 41. The multiple first blades 43 also generate turbulence in the fluid, thereby generating ultra-fine bubbles. The plurality of first protrusions 44 are protrusions extending in the direction of the central axis AX of the core 1, and are configured similarly to the protrusions 4 of the first embodiment. The plurality of first protrusions 44 are provided without gaps around the entire circumferential direction of the first peripheral wall 42.
[0073] The second peripheral wall 45 surrounds the first peripheral wall 42 with a predetermined gap between them. The multiple second blades 46 have the same shape as the blade 3 of the first embodiment (FIG. 6) and are connected to the outer peripheral surface of the first peripheral wall 42 and the inner peripheral surface of the second peripheral wall 45. Similar to the blade 3 described above, the multiple second blades 46 form a flow path extending spirally within the second cylindrical body formed by the multiple second peripheral walls 45, causing the fluid flowing between the first peripheral wall 42 and the second peripheral wall 45 to swirl around the central axis AX of the core 41. The multiple second blades 46 also generate turbulence in the fluid, thereby generating ultra-fine bubbles. The multiple second protrusions 47 are ridges extending in the direction of the central axis AX of the core 1 and are configured similarly to the protrusions 4 of the first embodiment. A plurality of second protrusions 47 are provided without gaps around the entire circumferential direction of the second peripheral wall 45.
[0074] The unit 40 may be provided with the first positioning portion 11 and the second positioning portion 12 described in the first embodiment. The unit 40 may also be provided with the boss 6 and the recess 7 described in the first embodiment.
[0075] The fluid activation device according to this embodiment is configured by connecting a plurality of units 40 so that their central axes AX coincide. The plurality of cores 41 of the plurality of units 40 form the shaft of the fluid activation device, the plurality of first peripheral walls 42 of the plurality of units 40 form the first cylindrical body, and the plurality of second peripheral walls 45 of the plurality of units 40 form the second cylindrical body.
[0076] In a fluid activation device constructed using the unit 40 according to this embodiment, the interior of the second peripheral wall 45 is concentrically divided, and a plurality of first convex portions 44 and a plurality of second convex portions 47 are provided on the inner peripheral surfaces of the first peripheral wall 42 (first cylindrical body) and the second peripheral wall 45 (second cylindrical body). Therefore, the first convex portions 44 on the inner peripheral surface of the first peripheral wall 42 and the second convex portions 47 on the inner peripheral surface of the second peripheral wall 45 increase the amount of ultra-fine bubbles generated. The nested unit 40 is particularly suitable for use in large-diameter fluid activation devices, and can improve the efficiency of ultra-fine bubble generation in such devices.
[0077] FIG. 22 is a schematic diagram of a constituent unit of a fluid activation device according to a modified example of the ninth embodiment.
[0078] The unit 50 shown in FIG. 22 is provided with a plurality of first blades 48 and a plurality of second blades 49 instead of the plurality of first blades 43 and the plurality of second blades 46 of the unit 40 shown in FIG. 22. The first blades 48 and the second blades 49 have the same shape as the blades 15 (FIG. 9) shown in the second embodiment. That is, the front and back surfaces of the first blades 48 and the second blades 49 are provided with a plurality of protrusions 51 and 52 extending in the radial direction of the unit 50. The protrusions 51 and 52 have the same shape as the protrusions 16 (FIG. 9) of the second embodiment. The fluid swirling and flowing inside the fluid activation device collides with the plurality of protrusions 51 provided on the front and back surfaces of the first blades 48 and the plurality of protrusions 52 provided on the front and back surfaces of the second blades 49. At this time, turbulence occurs near the ridges of the protrusions 51 and 52, and a large number of ultra-fine bubbles are generated by the turbulence. Therefore, when a fluid activation device is configured with the unit 50 according to this embodiment, the generation efficiency of ultra-fine bubbles can be further improved compared to when the unit 40 shown in FIG. 22 is used.
[0079] (Tenth embodiment) FIG. 23 is a schematic diagram of a fluid activation device according to the tenth embodiment.
[0080] The fluid activation device 800 is obtained by arranging fluid activation devices 100a-100g, which are identical to the fluid activation device 100 according to the first embodiment, in parallel. The fluid activation devices 100a-100b are arranged so that their central axes are parallel and fixed to each other. The means for fixing the fluid activation devices 100a-100g is not particularly limited. According to this embodiment, a large-diameter fluid activation device 800 can be realized by combining fluid activation devices 100a-100g with relatively small diameters. Furthermore, the cross-sectional shape and cross-sectional size of the fluid activation device 800 can be easily changed by changing the number of small-diameter fluid activation devices to be combined. Note that instead of the fluid activation device according to the first embodiment, a plurality of fluid activation devices according to any of the second, third, and ninth embodiments may be arranged in parallel. [Industrial Applicability]
[0081] The present invention can be used in a fluid activation device. [Explanation of symbols]
[0082] 1 core 2 Surrounding wall 3 blades 4. Ribs 6. Boss 7. Recess 10 units 11 First positioning portion 12 Second positioning part 15 blades 16 Convex strips 20 units 21 Shaft 22 Cylindrical body 23 Blade 24 Ribs 30 units 40 units 41 cores 42 First Perimeter Wall 43 First Blade 44 First protrusion 45 Second Perimeter Wall 46 Second Blade 47 Second protrusion 48 First Blade 49 Second Blade 51, 52 Convex parts 100, 200, 300, 400, 500, 600, 700, 800 fluid activation device
Claims
1. An ultra-fine bubble generator that generates ultra-fine bubbles in a liquid, comprising a plurality of cylindrical activation devices, the plurality of activation devices are arranged in parallel with each other so that their central axes are parallel and fixed to each other; Each of the plurality of activation devices comprises: A cylindrical shaft; a cylindrical body having a hollow portion and accommodating the shaft with a predetermined gap between an inner peripheral surface of the hollow portion and an outer peripheral surface of the shaft; a plurality of blades provided between an outer peripheral surface of the shaft and an inner peripheral surface of the cylindrical body, forming a flow path extending in a spiral shape from one end side to the other end side of the cylindrical body, and generating turbulence in the fluid flowing through the flow path; An ultra-fine bubble generator in which the inner surface of the cylindrical body is provided with a plurality of ribs consisting of protrusions extending in the axial direction of the shaft.
2. The ultra-fine bubble generator according to claim 1, wherein the plurality of ribs are provided on the entire inner circumferential surface of the cylindrical body.
3. 3. The ultra-fine bubble generator according to claim 1, wherein the height of each of the plurality of ribs increases in the swirling direction of the flow path from the connection with the adjacent rib on the opposite side of the swirling direction of the flow path to the connection with the adjacent rib on the swirling direction side of the flow path, and a step is provided at the connection between each of the plurality of ribs and the adjacent rib on the swirling direction side of the flow path.
4. Each of the activation devices is composed of a plurality of units having the same shape, Each of the plurality of units comprises: A cylindrical core; a cylindrical peripheral wall that is coaxial with the core and surrounds the core with a predetermined gap between it and an outer peripheral surface of the core; a plurality of the blades connected to an outer peripheral surface of the core and / or an inner peripheral surface of the peripheral wall and arranged at a predetermined pitch in the circumferential direction of the core, The ultra-fine bubble generator according to any one of claims 1 to 3, wherein a plurality of protrusions constituting the plurality of ribs are provided on the inner peripheral surface of the peripheral wall.
5. A cylindrical shaft; a first cylindrical body having a first hollow portion and accommodating the shaft with a predetermined gap between an inner circumferential surface of the first hollow portion and an outer circumferential surface of the shaft; a plurality of first blades that are provided between an outer peripheral surface of the shaft and an inner peripheral surface of the first cylindrical body, that form a first flow path that extends spirally from one end side to the other end side of the first cylindrical body, and that generate turbulence in the fluid flowing through the first flow path; a plurality of first ribs formed on an inner peripheral surface of the first cylindrical body and extending in the axial direction of the shaft; a second cylindrical body having a second hollow portion and accommodating the first cylindrical body with a predetermined gap between an inner peripheral surface of the second hollow portion and an outer peripheral surface of the first cylindrical body; a plurality of second blades that are provided between an outer peripheral surface of the first cylindrical body and an inner peripheral surface of the second cylindrical body, that form a second flow path that extends spirally from one end side to the other end side of the second cylindrical body, and that generate turbulence in the fluid flowing through the second flow path; An ultra-fine bubble generator comprising a plurality of second ribs formed on the inner surface of the second cylindrical body and consisting of protrusions extending in the axial direction of the shaft.
6. The ultra-fine bubble generator of claim 5, wherein the plurality of first ribs are provided on the entire inner surface of the first cylindrical body, and the plurality of second ribs are provided on the entire inner surface of the second cylindrical body.
7. a height of each of the plurality of first ribs increases from a connection portion with an adjacent first rib on the opposite side of the turning direction of the first flow path to a connection portion with an adjacent first rib on the turning direction side of the first flow path, and a step is provided at a connection portion between each of the plurality of first ribs and an adjacent first rib on the turning direction side of the first flow path, 7. The ultra-fine bubble generator according to claim 5, wherein the height of each of the plurality of second ribs increases in the swirling direction of the second flow path from the connection with the adjacent second rib on the opposite side of the swirling direction of the second flow path to the connection with the adjacent second rib on the swirling direction side of the second flow path, and a step is provided at the connection between each of the plurality of second ribs and the adjacent second rib on the swirling direction side of the second flow path.
8. The ultra-fine bubble generator is composed of multiple units having the same shape, Each of the plurality of units comprises: A cylindrical core; a cylindrical first peripheral wall that is coaxial with the core and surrounds the core with a predetermined gap between it and an outer peripheral surface of the core; a cylindrical second peripheral wall that is coaxial with the core and surrounds the first peripheral wall with a predetermined gap between it and the first peripheral wall; a plurality of first blades connected to an outer circumferential surface of the core and / or an inner circumferential surface of the first circumferential wall and arranged at a predetermined pitch in the circumferential direction of the core; a plurality of second blades connected to an outer circumferential surface of the first circumferential wall and / or an inner circumferential surface of the second circumferential wall and arranged at a predetermined pitch in the circumferential direction of the first circumferential wall, a plurality of first protrusions constituting the plurality of first ribs are provided on an inner peripheral surface of the first peripheral wall; An ultra-fine bubble generator according to any one of claims 5 to 7, wherein a plurality of second convex portions constituting the plurality of second ribs are provided on the inner surface of the second peripheral wall.
9. 9. The ultra-fine bubble generator according to claim 4 or 8, wherein each of the plurality of units is arranged rotated by a constant rotation angle in a constant rotation direction around the central axis of the core in order from one end side to the other end side of the ultra-fine bubble generator.
10. a first fitting portion is provided on the surface of the core on the one end side of the ultra-fine bubble generator, and a second fitting portion engageable with the first fitting portion is provided on the surface of the core on the other end side of the ultra-fine bubble generator; The ultra-fine bubble generator according to claim 9, wherein the second fitting portion is arranged at a rotational position rotated by the constant rotation angle in the constant rotational direction around the central axis of the core relative to the first fitting portion.
11. a first positioning portion and a second positioning portion are provided on an outer peripheral surface of the unit; An ultra-fine bubble generator as described in claim 9 or 10, wherein when the first positioning portion provided on one of a pair of adjacent units and the second positioning portion provided on the other of the pair of adjacent units are arranged at the same rotational position, the other of the units is arranged at a rotational position rotated by the certain rotational angle in the certain rotational direction around the central axis of the core relative to the one of the units.
Citation Information
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