Gas-liquid dissolving apparatus
11020715 ยท 2021-06-01
Assignee
Inventors
Cpc classification
B01F23/231267
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23123
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23113
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23125
PERFORMING OPERATIONS; TRANSPORTING
B01F23/2322
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23121
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23124
PERFORMING OPERATIONS; TRANSPORTING
B01F23/231231
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The disclosure provides a gas-liquid dissolving apparatus, comprising: a sealed tank, a gas jet tube and a plurality of membrane plates; the sealed tank being provided with a liquid supply joint at top, and a gas inlet joint and an output joint at bottom; the gas jet tube being located inside the sealed tank and connected to the gas inlet joint; the gas jet tube having a plurality of gas jet holes distributed on tube wall; the plurality of membrane plates being stacked around the periphery of the gas jet tube and fixed; each membrane plate being ring-shaped, and being structured with an inner ring wall, a mixing chamber and an outer ring wall sequentially from the center; the mixing chamber having an opening facing downward, and the inner ring wall being thicker than the outer ring wall, with a gap existing between the two adjacent stacked outer ring walls.
Claims
1. A gas-liquid dissolving apparatus, comprising: a sealed tank, provided with a liquid-supply joint at top, and a gas inlet joint and an output joint at bottom; a gas jet tube, located inside the sealed tank, with a top end closed and a bottom portion connected to the gas inlet joint; the gas jet tube having a plurality of gas jet holes distributed on a tube wall; and a plurality of plates, stacked around a periphery of the gas jet tube and fixed; each plate having a ring shape, and being structured with an inner ring wall, a mixing chamber and an outer ring wall sequentially from a center; the mixing chamber having an opening facing downward, and the inner ring wall being thicker than the outer ring wall, so that a gap exists between the outer ring walls of two adjacent stacked plates; the inner ring wall being axially provided with at least an axial passage, and provided at different radial positions with at least a radial passage and at least a gas passage respectively; the radial passage communicating with the axial passage and the mixing chamber; the gas passage corresponding to the plurality of gas jet holes and communicating with the mixing chamber.
2. The gas-liquid dissolving apparatus as claimed in claim 1, wherein the plurality of the gas jet holes of the gas jet tube are divided into a plurality of groups in accordance with being located at different heights on the tube wall, and a plurality of the gas jet holes of a same group are distributed at an equal angular interval at a same height on the tube wall, a plurality of gas passages are radially disposed on the inner ring wall, and the plurality of gas jet holes of the same group correspond to the plurality of gas passages of the plate.
3. The gas-liquid dissolving apparatus as claimed in claim 1, wherein the sealed tank is disposed with a partition member inside; the partition member partitions the inside of the sealed tank into an upper space and a lower space; the partition member is engaged to the top end of the gas jet tube and the plurality of plates are located in the lower space; the partition member is disposed with at least a penetrating first liquid passage at a center, and the first liquid passage communicates with the axial passage; the partition member is further disposed with a gas guiding tube, located in the upper space and communicating with the lower space; the top of the sealed tank is connected to a pressure relief joint.
4. The gas-liquid dissolving apparatus as claimed in claim 1, wherein the plate has an outer diameter smaller than an inner diameter of the sealed tank, and the center of the plate has a central hole, the central hole is matched with a shape and size of the gas jet tube, and a plurality of axial passages are connected to the central hole at equal angle intervals; when the plurality of the plates are stacked on the periphery of the gas jet tube, axial passages adjacent to each other serve as a passage for the liquid to flow.
5. The gas-liquid dissolving apparatus as claimed in claim 1, wherein the radial passage and the gas passage are all concave passages with openings facing downward, and are distributed at an equiangular interval to the inner ring wall, but the radial passages are both greater in depth than the gas passages.
6. The gas-liquid dissolving apparatus as claimed in claim 1, wherein the gas jet tube is sequentially combined, from top to bottom, with an upper nut, the plurality of the plates, a fixing plate and a lower nut; the gas jet tube has a first external thread and a second external thread respectively on an outer wall of upper and lower ends, the upper nut is screwed to the first external thread, and the lower nut is screwed to the second external thread, so that the plurality of the plates and the fixing plate are fixed to an outer periphery of the gas jet tube.
7. The gas-liquid dissolving apparatus as claimed in claim 6, wherein a center portion of the upper nut further is disposed with at least a second liquid passage in communication with the axial passage.
8. The gas-liquid dissolving apparatus as claimed in claim 6, wherein the inner ring wall is disposed with a plurality of first positioning holes extending in an axial direction, and the fixing plate is also disposed with at least a second positioning hole penetrating through, and at least a positioning post is disposed through the plurality of the first positioning holes of the plates and the second positioning hole of the fixing plate to maintain relative positions of the plates.
9. The gas-liquid dissolving apparatus as claimed in claim 6, wherein the fixing plate has a same outer shape as the plate, has an elliptical tapered hole in a central area, and the elliptical tapered hole matches a positioning section of the gas jet tube, and the positioning section is located at an upper edge of the second external thread.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The embodiments can be understood in more detail by reading the subsequent detailed description in conjunction with the examples and references made to the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE DISCLOSED EMBODIMENTS
(13) In the following detailed description, for purpose of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
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(15) The sealed tank 3 is a long cylindrical container with closed surrounding wall, with a partition member 31 disposed inside. The partition member 31 partitions the inside of the sealed tank 30 into an upper space 32 and a lower space 33. The jet tube 4 and the plurality of membrane plates 5 are located in the lower space 33, where is the working area for main liquid-gas mixing and dissolving, and is also the design focus of the present invention, which will be described in detail later.
(16) Although the partition member 31 is located at the middle of the sealed tank 3, the partition member 31 does not completely block the passage of gas and liquid between both spaces. A gas guiding tube 311 is disposed at non-central area of the partition member 31, and is located in the upper layer space 32 but still communicates with the lower layer space 33. The gas guiding tube 311 has a gas outlet 312 located in the upper layer area of the upper layer space 32. The partition member 31 is disposed with at least an axially penetrating first liquid flow passage 313 in central area. The first liquid flow passage 313 supplies liquid to the lower space 33, or more precisely, the first liquid flow passage 313 supplies liquid to the central area of the plurality of membrane plates 5, and then passes through the gap between the adjacent two membrane plates to fill the entire lower space 33. In the present embodiment, the partition member 31 is coupled to the top end of the gas jet tube 4 and fixed by screwing.
(17) The top of the sealed tank 3 is provided with a liquid supply joint 34 and a pressure relief joint 35, and the two joints communicate with the upper space 32. The liquid supply joint 34 is for connecting an external liquid supply tube to supply the liquid into the sealed tank 3 from top down. A liquid outlet tube 341 is further disposed inside the sealed tank 3 to connect to the liquid supply joint 34. The liquid outlet 342 of the outlet tube 341 is close to the first liquid flow passage 313. The pressure relief joint 35 is used to connect a tube for discharging excess gas or liquid at an appropriate timing to adjust the pressure in the sealed tank 3. A gas inlet joint 36 and an output joint 37 are disposed at the bottom of the sealed tank 3. The gas inlet joint 36 communicates with the gas jet tube 4 in the sealed tank 3, and is connected to a gas supply tube to supply gas into the sealed tank 3 from bottom up. The output joint 37 is used for connecting a liquid supply tube, and the processed high-concentration gas solution is output through the output joint 37.
(18) The following describes an operation mode of the present invention: the liquid is injected into the sealed tank 3 from the top through a liquid tube connected to the liquid supply joint 34, and maintains a preset pressure. The gas is ejected from the bottom via the gas supply tube through the gas supply tube connected to the gas inlet 36, and the gas-liquid mixing and dissolving operation is mainly performed among the plurality of the membrane plates 5 in the lower space 33. The subsequent high concentration gas solution is outputted through the liquid supply tube connected to the output joint 37 for use. However, the excess or undissolved gas in the process may flow through the gas guiding tube 311 to the upper layer area of the upper space 32 by buoyancy to prevent gas bubbles from being accumulated in the lower space 33, thereby affecting the progress of the dissolution reaction. When the pressure in the sealed tank 3 is higher than a preset value, gas or liquid is discharged through a tube connected to the pressure relief joint 35 for the purpose of reducing pressure.
(19) The gas-liquid mixing and dissolution operation of the present invention is mainly performed among the plurality of membrane plates 5 fixed to the periphery of the gas jet tube 4. The following explains the structure of this part. The plurality of the membrane plates 5 are sleeved over the periphery of the gas jet tube 4. This manner of attachment can be achieved by a number of configurations, and the present invention is described by only one of embodiments, and does not limit the scope of the invention. As shown in
(20) The gas jet tube 4 is a hollow circular tube with a closed top end (see also
(21) The upper nut 6 has an internally threaded hole 61 at the center for screwing to the first external thread 42. The central area of the upper nut 6 further includes at least a second liquid flow passage 62. The second liquid flow passage 62 has a concave opening communicating with the internally threaded hole 61. The plurality of second liquid flow passages 62 are distributed at equal angular intervals in the internally threaded holes 61. When the upper nut 6 is locked to the first external thread 42, the space of the second liquid flow passage 62 existing in the axial direction allows the liquid to circulate.
(22) The shapes of the plurality of membrane plates 5 are the same. Now, only a single membrane plate 5 will be described. As shown in
(23) The fixing plate 7 is located below the bottommost layer of the plurality of membrane plates 5, so that the membrane plates 5 located at the bottom layer also can mix gas and liquid. The fixing plate 7 has the same outer shape as the membrane plates 5, but the intermediate dimension has an elliptical tapered hole 71 smaller than the central hole 51, and the elliptical tapered hole 71 is the match the outer wall of the positioning section 44 of the gas jet tube 4. The positioning section 44 is located at the upper edge of the second external thread 43. In addition, the fixing plate 7 is provided with at least a penetrating second positioning hole 72 in the axial direction, and two second positioning holes 72 are provided in this embodiment.
(24) The present invention further is provided with two positioning posts 9, which can respectively pass through the first positioning holes 58 of the plurality of the membrane plates 5 and the second positioning holes 72 of the fixing plate 7, thereby maintaining the relative positions of the plurality of membrane plates 5. The lower nut 8 has an inner threaded hole 81 at the center thereof for locking to the second external thread 43 of the gas jet tube 4.
(25) During assembly, the plurality of membrane plates 5 and the fixing plate 7 are stacked on the periphery of the gas jet tube 4, and the positioning post 9 is inserted into the plurality of first positioning holes 58 and the second positioning hole 72 to ensure the relative positions of the plurality of membrane plates 5 and the fixing plate 7 are respectively locked to the two ends of the gas jet tube 4 to achieve the overall fixing. Then, the structure is assembled into the sealed tank 3. For example, the bottom of the gas jet tube 4 is further connected to the gas inlet joint 36, and the first external thread 42 at the top end of the gas jet tube 4 can be screwed to the center of the partition member 31.
(26) The following describes the actual operation and principle of the present invention. In order to avoid the over-complicated drawing, only 3-4 membrane plates 5 are shown to be stacked and fixed on the gas jet 4, while up to several tens of membrane plates 5 are actually disposed.
(27) As shown in
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(30) In summary, the gas-liquid dissolving apparatus of the present invention is disposed with a plurality of membrane plates 5 in a stacked manner on the periphery of the gas jet tube 4 inside the sealed tank 3 to form up to tens of stacked mixing chambers. In a high pressure state, the liquid is supplied from the top and the gas is ejected from the bottom, and the fine bubbles in the mixing chamber 53 continuously stays in contact with the liquid with a large area and prolong the contact time, so that the gas is dissolve into the liquid, and a large amount of high-concentration gas-liquid solution is generated.
(31) It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.