Aeration unit and filtering apparatus comprising the same
09795926 ยท 2017-10-24
Assignee
Inventors
Cpc classification
B01D65/02
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23123
PERFORMING OPERATIONS; TRANSPORTING
B01D2315/06
PERFORMING OPERATIONS; TRANSPORTING
B01D2313/26
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D65/08
PERFORMING OPERATIONS; TRANSPORTING
B01D65/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is an aeration unit capable of cleaning all the hollow fiber membranes in a filtering apparatus sufficiently and uniformly thereby improving the filtration efficiency and a filtering apparatus comprising the same. An aeration unit of the present invention comprises a plurality of aeration tubes parallel to each other, each of the aeration tubes comprising a first end and a second end opposite the first end; and a first common pipe in fluid communication with the aeration tubes through the first ends of the aeration tubes to provide the aeration tubes with air. The first common pipe is perpendicular to the aeration tubes. The closer to both ends of the first common pipe the aeration tubes are, the more densely the aeration tubes are arranged.
Claims
1. A filtering apparatus comprising: a hollow fiber membrane module comprising hollow fiber membranes to be disposed, during a filtration process, parallel to a surface of water to be processed; and an aeration unit below the hollow fiber membrane module, wherein the aeration unit comprises: a plurality of aeration tubes which are disposed parallel to each other with a distance, wherein each of the plurality of aeration tubes comprises a first end and a second end opposite the first end; and a first common pipe having an inlet to receive air, a first end, and a second end opposite the first end, wherein the first common pipe is in fluid communication with the plurality of aeration tubes through the first end of the plurality of aeration tubes to provide the plurality of aeration tubes with the air, wherein the first common pipe is perpendicular to the plurality of aeration tubes and parallel to the hollow fiber membranes, and wherein the distance between the plurality of aeration tubes increases toward a middle of the first common pipe.
2. The filtering apparatus of claim 1, wherein none of the plurality of aeration tubes is connected to the middle of the first common pipe.
3. The filtering apparatus of claim 1, wherein the aeration unit further comprises a second common pipe in fluid communication with the plurality of aeration tubes through the second ends thereof.
4. The filtering apparatus of claim 3, wherein the first and second common pipes are parallel to each other.
5. The filtering apparatus of claim 3, wherein the first and second common pipes have aeration holes respectively.
Description
DESCRIPTION OF DRAWINGS
(1) The above and other objects, features and other advantages of the present invention will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
MODE FOR INVENTION
(7) Those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention. Accordingly, the present invention includes all alternations and modifications that fall within the scope of inventions described in claims and equivalents thereto.
(8) Hereinafter, an aeration unit and a filtering apparatus comprising the same according to the embodiments of the present invention will be described in detail with reference to the annexed drawings.
(9)
(10) As illustrated in
(11) Each of the hollow fiber membrane module 100 comprises a pair of headers 110 and a plurality of hollow fiber membranes 120. Both ends of each hollow fiber membrane 120 are potted into the opposite facing sides of the pair of headers 110 respectively through the fixing parts 112 formed of polyurethane.
(12) The filtering apparatus is submerged into the water to be purified in such a way that the longitudinal direction (Z direction) of the each header 110 is substantially perpendicular to the surface of the water and the longitudinal direction (X direction) of the hollow fiber membranes 120 is substantially parallel to the surface of the water.
(13) To prevent the breakage of the hollow fiber membrane 120 at the ends thereof and/or the separation of the hollow fiber membrane 120 from the headers 110 which may occur due to the contraction of the hollow fiber membrane during the filtration process, both ends of the hollow fiber membrane 120 are potted in the pair of headers 110 in such a way that there is slack in the hollow fiber membrane 120.
(14) There is a collecting space (not shown) inside each header 110 to receive the filtrate passing through the hollow fiber membranes 120. The hollow spaces of the hollow fiber membranes 120 are in fluid communication with the collecting spaces of the headers 110. As a negative pressure is applied to the hollow spaces of the hollow fiber membranes 120, the filtrate passes through the hollow fiber membranes 120, is collected in the collecting spaces of the headers 110, and then delivered to a filtrate storage tank (not shown) through the outlet ports 111 of the headers 110.
(15) The hollow fiber membranes 120 of the hollow fiber membrane modules 100 are cleaned by the bubbles ejected from the aeration unit 200.
(16) Hereinafter, the aeration units according to the embodiments of the present inventions will be described in detail with reference to
(17)
(18) As illustrated in
(19) The common pipe 210 may be a one body-type pipe. Optionally, the common pipe 210 may comprise a plurality of unit pipes connected to each other through cross-connectors.
(20) The aeration tubes 220 are connected to the common pipe 210 through their one ends in such a manner that they are disposed in symmetrical pattern having the common pipe 210 as an axis of symmetry. When a plurality of unit pipes are connected to each other through the cross-connectors to form the common pipe 210, a pair of aeration tubes 220 are respectively connected to each cross-connector.
(21) Above the aeration unit 200 are disposed a plurality of hollow fiber membrane modules 100 (illustrated with dotted line). The longitudinal direction of the hollow fiber membranes 120 is substantially parallel to the longitudinal direction of the aeration tubes 220. The cleaning effect can be maximized by positioning the hollow fiber membranes 120 directly above the aeration tubes 220.
(22) Each aeration tube 220 has a plurality of aeration holes (H) formed along the longitudinal direction thereof. Optionally, as illustrated in
(23) Air from an air supply unit (not shown) passes through the common pipe 210 and is ejected from the aeration tubes 220 through the aeration holes (H) thereof to create the bubbles. The bubbles so created directly hit or vibrate the hollow fiber membranes 120 to clean them, thereby preventing the fouling thereof.
(24) As explained above, during the aeration cleaning process, the hollow fiber membranes 120 get to have a shape convex toward the upper direction (Z direction) due to the raising bubbles and water flow caused by them. The bubbles ejected from the aeration tube 220 through the aeration holes (H) thereof hit the hollow fiber membranes 120 and, as a result thereof, raise gradually toward the middle portions of the hollow fiber membranes 120. Consequently, the relatively higher the hollow fiber membrane 120 is located (i.e., the closer to the surface of the water the hollow fiber membrane 120 is located), the less amount of the bubbles are supplied to both end parts thereof.
(25) To solve such problem, the aeration tubes 220 according to the first embodiment of the present invention have more aeration holes (H) at the portions corresponding to both end parts of the hollow fiber membrane 120 than at the portions corresponding to the middle part of the hollow fiber membrane 120. In other words, the farther from the one end of the aeration tube 220 through which the aeration tube 220 is connected to the common pipe 210 and the closer to the other opposite end the aeration holes (H) are, the more densely the aeration holes (H) are formed. The aeration tube 220 has no aeration hole at the predetermined area from its one end through which the aeration tube 220 is connected to the common pipe 210.
(26) Thus, according to the first embodiment of the present invention, the probability that the bubbles will be supplied to both end parts of the hollow fiber membrane 120 can be increased, and thus the bubbles can be uniformly supplied to the whole hollow fiber membrane 120.
(27) However, the aeration unit 200 of the first embodiment of the present invention has some drawbacks as below.
(28) First, since each aeration tube 220 is connected to the common pipe 210 only through its one end, it is difficult to maintain the aeration tubes 220 in a horizontal position during the aeration cleaning process. If the horizontal position of the aeration tubes 220 is broken even slightly, the bubbles cannot be supplied to the hollow fiber membranes 120 uniformly.
(29) Second, since the aeration tube 220 has no aeration hole at the predetermined area from its one end through which the aeration tube 220 is connected to the common pipe 210, the predetermined area of the aeration tube 220 only functions as a path for air and cannot directly contribute to the aeration cleaning. The more the portion which cannot directly contribute to the aeration cleaning the aeration tube 210 has, the more the economic loss or waste occurs.
(30) Hereinafter, described in detail will be the second embodiment of the present invention which can overcome the aforementioned problems of the first embodiment.
(31)
(32) As illustrated in
(33) The first common pipe 240 provides the aeration tubes 230 with air and has an inlet port 241 to receive the air from air supply unit (not shown).
(34) Each of the aeration tubes 230 comprises a first end and a second end opposite to the first end. Each aeration tube 230 has a plurality of aeration holes (H1) formed at equal intervals along the longitudinal direction (Y direction) thereof. Optionally, as illustrated in
(35) Since the aeration tube 230 of the second embodiment of the present invention has the aeration holes (H1) formed at equal intervals, unlike the first embodiment, there is not a portion in the aeration tube 230 which causes the economic loss or waste and the whole parts of the aeration tube 230 can perform the aeration cleaning function equivalently.
(36) Above the aeration unit 200 are disposed a plurality of hollow fiber membrane modules 100 (illustrated with dotted line). The longitudinal direction of the hollow fiber membranes 120 is substantially perpendicular to the longitudinal direction of the aeration tubes 230. The cleaning effect can be maximized by positioning the hollow fiber membranes 120 directly above the aeration holes (H1) of the aeration tubes 230.
(37) Each of the aeration tubes 230 is in fluid communication with the first common pipe 240 through the first end thereof to receive the air for aeration cleaning from the first common pipe 240. The first common pipe 240 is perpendicular to the aeration tubes 230.
(38) The air from an air supply unit (not shown) passes through the common pipe 240 and is ejected from the aeration tubes 230 through the aeration holes (H1) thereof to create the bubbles. The bubbles so created directly hit the hollow fiber membranes 120 or vibrate the hollow fiber membrane modules 100 to clean them, thereby preventing the fouling thereof.
(39) As explained above, during the aeration cleaning process, the hollow fiber membranes 120 get to have a shape convex toward the upper direction (Z direction) due to the raising bubbles and water flow caused by them. The bubbles ejected from the aeration tube 230 through the aeration holes (H1) thereof hit the hollow fiber membranes 120 and, as a result thereof, raise gradually toward the middle portions of the hollow fiber membranes 120. Consequently, the relatively higher the hollow fiber membrane 120 is located (i.e., the closer to the surface of the water the hollow fiber membrane 120 is located), the less amount of the bubbles are supplied to both end parts thereof.
(40) To solve such problem, according to the second embodiment of the present invention, the closer to both ends of the first common pipe 240 the aeration tubes 230 are, the more densely the aeration tubes 230 are arranged. That is, the number of the aeration tubes 230 corresponding to the end parts of the hollow fiber membranes 120 is larger than that of the aeration tubes 230 corresponding to the middle parts of the hollow fiber membranes 120.
(41) Optionally, as illustrated in
(42) Thus, according to the second embodiment of the present invention, the probability that the bubbles will be supplied to both end parts of the hollow fiber membrane 120 can be increased, and thus the bubbles can be uniformly supplied to the whole hollow fiber membrane 120. The uniform supply of the bubbles to the whole hollow fiber membrane 120 can improve both the cleaning efficiency and the filtration efficiency of the filtering apparatus at the same time.
(43) As shown in
(44) Consequently, since the aeration unit 200 of the second embodiment of the present invention has a structure in which each aeration tube 230 is connected to the first and second common pipes 240 and 250 through its first and second ends respectively, it is relatively easy to maintain the aeration tubes 230 in a horizontal position during the aeration cleaning process. The aeration tubes 230 maintained in a horizontal position can supply the bubbles uniformly to the hollow fiber membranes 120.
(45) Optionally, to minimize the probability that the horizontal position of the aeration tubes 230 will be broken, a certain part of the aeration unit 200 may be combined to a frame (not shown) into which the hollow fiber membrane modules 100 are supposed to be installed.
(46) As illustrated in
(47) Optionally, to supply the bubbles uniformly, it is possible for the first common pipe 240 to have no aeration holes at a predetermined area from its very middle. For the same reason, it is also possible for the second common pipe 250 to have no aeration holes at a predetermined area from its very middle.