Micro-bubble generator
11565219 · 2023-01-31
Assignee
Inventors
Cpc classification
B01F25/4523
PERFORMING OPERATIONS; TRANSPORTING
B01F23/2323
PERFORMING OPERATIONS; TRANSPORTING
F16K47/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/31242
PERFORMING OPERATIONS; TRANSPORTING
B01F25/3121
PERFORMING OPERATIONS; TRANSPORTING
Y02W10/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01F23/2373
PERFORMING OPERATIONS; TRANSPORTING
B01F25/4521
PERFORMING OPERATIONS; TRANSPORTING
B01F25/4323
PERFORMING OPERATIONS; TRANSPORTING
B01F23/232
PERFORMING OPERATIONS; TRANSPORTING
B01F2101/305
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01F23/232
PERFORMING OPERATIONS; TRANSPORTING
B01F25/452
PERFORMING OPERATIONS; TRANSPORTING
B01F25/432
PERFORMING OPERATIONS; TRANSPORTING
B01F25/312
PERFORMING OPERATIONS; TRANSPORTING
F16K47/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A micro-bubble generator is provided between an input end and an output end of a water outlet device. The micro-bubble generator includes a water inlet member and a water outlet member. A gas inlet gap is remained between the water inlet member and the water outlet member, with the gas inlet gap being communicated to external air, such that the external air is allowed to enter the micro-bubble generator for gas-liquid mixing and generate minute and dense bubbles.
Claims
1. A micro-bubble generator provided between an input end and an output end of a water outlet device, said micro-bubble generator comprising: a water inlet member, including a first main body adjacent to said input end, and a first channel penetrating said first main body, said first main body being provided at one end penetrated by said first channel with a first junction surface; and a water outlet member, including a second main body adjacent to said output end, and a second channel penetrating said second main body, said second main body being provided at one end penetrated by said second channel with a second junction surface, and said second main body is provided with a sleeve at other end opposite to said second channel, wherein said sleeve is arranged annularly toward said output end; wherein said water inlet member and said water outlet member are abutted against each other, with said first junction surface facing said second junction surface, said first channel being communicated with said second channel, and at least one of said first junction surface and said second junction surface are provided with a plurality of chiseled shallow recesses which respectively forms a gas inlet gap after said first junction surface being engaged with said second junction surface, said gas inlet gap communicating external air to said first channel and said second channel.
2. The micro-bubble generator according to claim 1, wherein each gas inlet gap is provided with an air vent perforation at an outer side wall of said first main body adjacent to an outer side wall of said second main body.
3. The micro-bubble generator according to claim 1, wherein said sleeve of said second main body comprises a water outlet chamber adjacent to said output end, and an inner side wall of said second main body comprises an internal screw thread adjacent to said water outlet chamber.
4. The micro-bubble generator according to claim 3, wherein said second main body is locked with an eddy current guiding pipe at said internal screw thread of said water outlet chamber of said sleeve, and said eddy current guiding pipe comprises a plurality of blades arranged in a spiral manner, a plurality of eddy current passages respectively arranged between two of said plurality of blades, and an outer casing tube surrounding said plurality of blades and said plurality of eddy current passages, and wherein a plurality of stepped surfaces are provided on a surface of each of said plurality of blades corresponding to each of said plurality of eddy current passages.
5. The micro-bubble generator according to claim 3, wherein said second main body is locked with a through-hole end cap at said internal screw thread of said water outlet chamber of said sleeve adjacent to said output end, and a bubble-multiplying part disposed between said through-hole end cap and said second main body.
6. The micro-bubble generator according to claim 5, wherein said bubble-multiplying part comprises at least one multiplying net and at least one spacing ring connected to said multiplying net.
7. The micro-bubble generator according to claim 1, wherein said micro-bubble generator further comprises a regulating part which includes a regulating room constituted by a depression in an opposite side of said first junction surface of said first main body, a regulating screw rod penetrating said first main body and locked with said second main body, and an inner thread screwedly threaded with said regulating screw rod.
8. The micro-bubble generator according to claim 7, wherein said regulating screw rod is fixed in said regulating room by riveting.
9. The micro-bubble generator according to claim 7, wherein said micro-bubble generator further comprises a position-limiting part, said position-limiting part including a position-limiting room constituted by corresponding depressions in said first junction surface and said second junction surface, and a position-limiting bolt movably provided in said position-limiting room, and wherein said regulating screw rod is operated in a rotating manner to change a depth of screw-threaded connection between said regulating screw rod and said inner thread.
10. The micro-bubble generator according to claim 7, wherein said regulating part includes a regulating screw head moved along with said regulating screw rod, a fixing ring fixing said regulating screw head to an inner wall of said regulating room, said fixing ring being openly provided with an operating through-hole allowing a tool passing therethrough and operating said regulating screw head, and a plurality of water-passing holes allowing water stream passing therethrough.
11. The micro-bubble generator according to claim 1, wherein one of said first junction surface and said second junction surface is depressedly provided with a gasket groove which is accommodated with a gasket.
12. The micro-bubble generator according to claim 11, wherein said gasket is further an embossing gasket, and a drop between said embossing gasket and said gasket groove is provided to form another gas inlet gap between said first junction surface and said second junction surface when said first junction surface and said second junction surface are abutted against each other.
13. The micro-bubble generator according to claim 1, wherein a diameter of said second channel is greater than a diameter of said first channel.
14. The micro-bubble generator according to claim 2, wherein each gas inlet gap is tapered from said corresponding air vent perforation toward an engagement between said communicated first channel and second channel.
15. The micro-bubble generator according to claim 1, wherein an inner side wall of said water inlet member adjacent to said input end is provided with an adapting screwed groove.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(22) Regarding the technology of the present invention, referring to
(23) Specifically speaking, referring to
(24) The gas inlet gap 30 is provided with a plurality of chiseled shallow recesses 31 on the first junction surface 111 or the second junction surface 211, and it is necessary for each shallow recess 31 to pass through two arbitrary points on the peripheral of the first junction surface 111 or the second junction surface 211. After the first junction surface 111 and the second junction surface 211 are joined face to face, slits formed by the shallow recesses 31 are then considered as the gas inlet gap 30. In addition, it is necessary for the gas inlet gap 30 to pass through external air from joints between the first channel 12 and the second channel 22, so as to enable external air to be communicated to the first channel 12 and the second channel 22. On the boundary, a negative pressure is generated, so as to suck external air through the gas inlet gap 30 when the water stream flows into the second channel 22 from the first channel 12 according to the above structure. Thus, the effect of bubble generation due to liquid-gas mixing is achieved.
(25) In this embodiment, the water inlet member 10a includes a plurality of first branching channels 13a arranged alongside of the first channel 12, while the water outlet member 20a includes a plurality of second branching channels 23a arranged alongside of the second channel 22. In this case, the aperture of the second branching channel 23a is preferably larger than that of each first branching channel 13a, and the engagement between the first branching channel 13a and the second branching channel 23a is communicated with the gas inlet gap 30. Each first branching channel 13a and each second branching channel 23a are preferably arranged to be respectively centered at the first channel 12 and the second channel 22, for facilitating even suction of external air at various angles, such that gas inflow of liquid-gas mixing is increased. In addition, the water inlet member 10a, on one side adjacent to the input end 910, includes a raised platform 14 penetrated by the first channel 12, and a notch 15 depressed around the raised platform 14 and penetrated by each first branching channel 13a. The water stream flowing into each first branching channel 13a is accelerated so as to increase gas inflow due to the gradually narrowed cross-sectional area of the path, when the water stream flows through the notch 15.
(26) Further, each first branching channel 13a and/or each second branching channel 23a may be respectively inclined with respect to the first channel 12 and the second channel 22, and preferably respectively centered at the first channel 12 and the second channel 22 to be inclined toward the center. In this way, after passing through each second branching channel 23a and the second channel 22, the water streams are disturbed by each other, so as to enhance the effect of bubble collision and miniaturization.
(27) The above-mentioned micro-bubble generator 100a further includes a sleeve 40 and an air vent perforation 50 penetrating the sleeve 40. The water inlet member 10a and the water outlet member 20a may be put into the sleeve 40 and fixed, while the gas inlet gap 30 is communicated with the air vent perforation 50. In addition, the first main body 11a and the second main body 21a are provided, at one side connected to the sleeve 40, with a recess 112, 212, and a packing ring 113, 213 located within the recess 112, 212, respectively. Thereby, the first main body 11a and the second main body 21a may be abutted against each other, while external air is allowed to flow into the boundary between the first junction surface 111 and the second junction surface 211 through the air vent perforation 50.
(28) In addition, referring to
(29) In a second embodiment of the present invention, referring to
(30) In addition, the water outlet member 20c includes a through-hole end cap 241 located, correspondingly to the output end 920, in the second main body 21c, and a bubble-miniaturizing net 242 located between the through-hole end cap 241 and the second main body 21c. The through-hole end cap 241 is used for diverging the water stream so as to achieve, similarly to each first branching channel 13c and each second branching channel 23c, the effect of disturbance. The large-volume bubble may be divided again into smaller bubbles, when the water stream passes through the bubble-miniaturizing net 242. In addition, the water outlet member 20c includes a projecting edge 243 extending toward the output end 920 from the through-hole end cap 241. An action of guidance is provided by the projecting edge 243 for guiding the water stream, when passing through the through-hole end cap 241, to flow along the axle center of the projecting edge 243.
(31) In a fourth embodiment, referring to
(32) Referring to
(33) In addition, the micro-bubble generator 100d further includes a position-limiting part 80, the position-limiting part 80 including a position-limiting room 81 including corresponding depressions in the first junction surface 111 and the second junction surface 211, and a position-limiting bolt 82 movably provided in the position-limiting room 81. In this case, the regulating screw head 72 may be operated in a rotating manner to change the depth of screw-threaded connection between the regulating screw rod 73 and the inner thread 74, as well as drive the water inlet member 10d and the water outlet member 20d to be far away from or close to each other. Moreover, the maximum extent to which the water inlet member 10d and the water outlet member 20d are far away from each other is determined by the position-limiting part 80. In this embodiment, the interior space of the position-limiting room 81 may be provided for the position-limiting bolt 82 to be moved within a certain range. The object of the adjustment of the spacing between the water inlet member 10d and the water outlet member 20d without disconnecting these two members from each other may be obtained, if the position-limiting room 81 is formed in a shape having one wider end together with the other narrower end, and the top of the position-limiting bolt 82 is allowed to pass through the wider end while stuck at the narrower end.
(34) For further increasing the amount and the density of bubbles in the present invention, the water outlet member 20d includes at least one bubble-multiplying part 26 provided at one side, far away from the first main body 11d, of the second main body 21d, the bubble-multiplying part 26 including a plurality of concentric spacing rings 262, and a plurality of multiplying nets 261 provided between the spacing rings 262, respectively. Each spacing ring 262 and the second main body 21d are closely fitted. The gas-liquid mixed liquid may be impacted to damage in the space, causing the separation provided by the spacing ring 262, when passing through each multiplying net 261, so as to make bubbles more minute and dense. Additionally, the amount of bubbles is then increased by cutting via another layer of multiplying net 261. The spacing due to the separation provided by each spacing ring 262 is dependent on the apertures of water inlet and outlet of the water inlet member 10d and the water outlet member 20d without limitation herein.
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(37) In addition, referring to