Submerged membrane separator and membrane cartridge
09878290 ยท 2018-01-30
Assignee
Inventors
- Yoshio Matsuzaki (Hyogo, JP)
- Kimihiro Ishikawa (Hyogo, JP)
- Tatsuya Uejima (Hyogo, JP)
- Tomohiko Sasaki (Hyogo, JP)
Cpc classification
B01D2313/06
PERFORMING OPERATIONS; TRANSPORTING
B01D63/0821
PERFORMING OPERATIONS; TRANSPORTING
B01D2313/02
PERFORMING OPERATIONS; TRANSPORTING
B01D2313/56
PERFORMING OPERATIONS; TRANSPORTING
B01D2315/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D65/08
PERFORMING OPERATIONS; TRANSPORTING
B01D65/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A submerged membrane separator includes: a plurality of membrane cartridges arranged at predetermined spaces; a flow generating device for generating flows in one direction along the membrane surfaces of the membrane cartridges; and wall members on both sides of a channel of the flow in the one direction formed between the membrane cartridges adjacent to each other. The membrane cartridges can be attached and detached from another direction substantially orthogonal to the flows in the one direction and substantially orthogonal to the arrangement direction of the membrane cartridges.
Claims
1. A submerged membrane separator, comprising: a casing having an inside defined by a frame body, the frame body comprising an upper frame and a bottom frame; a filtration membrane arranged on a surface of a flat membrane cartridge; a plurality of the membrane cartridges removably arranged in the casing at predetermined intervals between the filtration membranes of the membrane cartridges opposed to each other, each of the membrane cartridges being inserted into and removed from the casing from a sideward direction orthogonal to a flow in one direction along a membrane surface of the membrane cartridge; first and second upper guiding members fixed to the inside of the casing at the upper frame of the frame body, the first and second upper guiding members having a comb-tooth shape, the first and second upper guiding members being spaced apart from each other at an interval in a width direction of the membrane cartridge, the first upper guiding member being dimensioned to engage a portion of an upper edge of the membrane cartridge that is disposed near an end of the membrane cartridge, the second upper guiding member being dimensioned to engage another portion of the upper edge of the membrane cartridge that is disposed near an opposite end of the membrane cartridge; first and second lower guiding members fixed to the inside of the casing at the bottom frame of the frame body, the first and second lower guiding members having a comb-tooth shape, the first and second lower guiding members being spaced apart from each other at an interval in the width direction of the membrane cartridge, the first lower guiding member being dimensioned to engage a portion of a lower edge of the membrane cartridge that is disposed near the end of the membrane cartridge, the second lower guiding member being dimensioned to engage another portion of the lower edge of the membrane cartridge that is disposed near the opposite end of the membrane cartridge; and a flow generating device configured to generate the flow in one direction along the membrane surface of the membrane cartridge, wherein the first and second upper guiding members do not engage a middle portion of the upper edge of the membrane cartridge, wherein the first and second lower guiding members do not engage a middle portion of the lower edge of the membrane cartridge, wherein each of the upper and lower guiding members has a plurality of guiding grooves configured to guide the membrane cartridges one by one to a pulling and inserting direction, the membrane cartridges being configured to move in the pulling and inserting direction in a state that the upper guiding members and the lower guiding members are attached and fixed to the inside of the casing, and wherein the pulling and inserting direction of the membrane cartridges is a direction substantially orthogonal to the flow in the one direction and substantially orthogonal to an arrangement direction of the membrane cartridges.
2. The submerged membrane separator according to claim 1, wherein an upper part of the casing is opened, wherein an air diffuser for generating upflow along the membrane surface of the membrane cartridge is provided below the membrane cartridge, and wherein the membrane cartridge is removed from and inserted into the casing from a sideward direction orthogonal to the upflow.
3. The submerged membrane separator according to claim 1 or 2, wherein a side opening is provided on a side of the casing and covered by an openable and closable or detachable side panel, the membrane cartridge being removed from and inserted into said casing through said side opening on said side of said casing.
4. The submerged membrane separator according to claim 1 or 2, wherein a space maintaining member for maintaining a space between the membrane cartridges is disposed on a side of the membrane cartridge.
5. The submerged membrane separator according to claim 1 or 2, wherein a water intake portion for sucking treated water obtained by membrane filtration is provided on the side of the membrane cartridge substantially orthogonal to said pulling and inserting direction.
6. The submerged membrane separator according to claim 5, wherein a plurality of water intake nozzles is provided and heights from a lower side of the membrane cartridge to the water intake nozzles are different from one another.
7. The submerged membrane separator according to claim 6, wherein the plurality of water intake nozzles is provided on one side of the membrane cartridge.
8. The submerged membrane separator according to claim 7, wherein a difference in height between the water intake nozzles is equal to or larger than a length in the sideward direction of the membrane cartridge.
9. The submerged membrane separator according to claim 1 or 2, wherein the upper edges of the membrane cartridge are inserted into the guiding grooves of the first and second upper guiding members, the lower edges of the membrane cartridge are inserted into the guiding grooves of the first and second lower guiding members, and a height between upper inner surfaces of the guiding grooves of the first and second upper guiding member and lower inner surfaces of the guiding grooves of the first and second lower guiding member is higher than a height of the membrane cartridge.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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BEST MODE FOR CARRYING OUT THE INVENTION
(35) A first embodiment in the present invention is explained below with reference to the drawings.
(36) As shown in
(37) The air diffuser 36 is an example of a flow generating device for diffusing air from a plurality of diffusing holes formed in an air diffusion pipe to thereby generate upflow 77 along the membrane surface of the membrane cartridge 34 (an example of a flow in one direction).
(38) As shown in
(39) The side panels 39a and 39b are an example of wall members and located on both sides of a channel for the upflow 77 formed between the membrane cartridges 34 adjacent to each other.
(40) The frame body 37 includes a bottom frame 41 having a square frame shape, an upper frame 42 having a square frame shape, and a plurality of vertical frames 43a and 43b coupled between four corners of the frames 41 and 42.
(41) Side openings 45a and 45b through which the membrane cartridge 34 can be removed and inserted in a width direction A (left-right direction) are formed on both of the left and right sides of the frame body 37. The width direction A is an example of the sideward direction (the other direction) orthogonal to the upflow 77 and orthogonal to the arrangement direction C of the membrane cartridges 34.
(42) The one side panel 39a is attached to the frame body 37 by a plurality of bolts 46 and closes the one side opening 45a. Similarly, the other side panel 39b is attached to the frame body 37 by a plurality of bolts 46 and closes the other side opening 45b. When the bolts 46 are removed and the one side panel 39a is removed from the frame body 37, the one side opening 45a is opened. Similarly, when the other side panel 39b is removed from the frame body 37, the other side opening 45b is opened.
(43) Each of the membrane cartridges 34 includes a flat filtration plate 49 having a rectangular shape elongated in the up-down direction, filtration membranes 50 attached to both front and rear sides of the filtration plate 49, and a plurality of supporting portions 51a and 51b provided on both sides of the filtration plate 49. The supporting portions 51a and 51b are provided vertically in pairs on both sides of the filtration plate 49 in the width direction A and project to the outer side. Recesses 52 having a square shape are formed in the supporting portions 51a and 51b.
(44) Water intake nozzles 53 (an example of water intake portions) for sucking treated water obtained by the filtration membranes 50 are provided at upper ends on both sides orthogonal to the width direction A (the other direction) of the filtration plate 49. Permeate channels (not shown) communicating with the water intake nozzles 53 are respectively formed on both front and rear sides of the filtration plate 49. The permeate channels are covered with the filtration membranes 50.
(45) As shown in
(46) As shown in
(47) A projecting portion 60 surrounding the outer sides of the peripheral portions of the filtration membranes 50 is formed on each of the front and rear surfaces of the filtration plate 49. The projecting portion 60 is formed in a square frame shape by a projecting portion 60a on one side, a projecting portion 60b on the other side, an upper projecting portion 60c, and a lower projecting portion 60d. The projecting portion 60a on one side is formed along the outer side of left or right one side of the filtration membranes 50. The projecting portion 60b on the other side is formed along the outer side of the other left or right side of the filtration membranes 50. The upper projecting portion 60c is formed along the outer side of the upper sides of the filtration membranes 50. The lower projecting portion 60d is formed along the outer side of the lower sides of the filtration membranes 50.
(48) The projecting portion 60 has a triangular section and includes inclined surfaces 61 that are inclined in a projecting direction from the surface of the filtration plate 49 as being closer to the peripheral edges of the filtration membranes 50 from the peripheral edges of the filtration plate 49. A height h from the surface of the filtration plate 49 to the distal end of the projecting portion 60 is set larger than a height t (thickness) of the peripheral edges of the filtration membranes 50.
(49) As shown in
(50) A plurality of front and rear guiding grooves 72 are formed in each of the upper and lower guiding members 70 and 71. The upper end of the membrane cartridge 34 is freely inserted into and removed from the guiding grooves 72 of the upper guiding member 70 from the width direction A. The lower end of the membrane cartridge 34 is freely inserted into and removed from the guiding grooves 72 of the lower guiding member 71 from the width direction A.
(51) A height H1 between upper inner surfaces 70a of the guiding grooves 72 of the upper guiding member 70 and lower inner surfaces 71a of the guiding grooves 72 of the lower guiding member 71 is set slightly larger than a height H2 of the membrane cartridge 34. Thus, the membrane cartridge 34 has a space ? (i.e., ?=H1?H2) in which the membrane cartridge 34 can move in an up-down direction B. A width D of the guiding grooves 72 is set slightly larger than a thickness T of the membrane cartridge 34. Consequently, the membrane cartridge 34 has a space ? (i.e., (?=D?T) in which the membrane cartridge 34 can move in an arrangement direction C (the front-rear direction, the thickness direction of the membrane cartridge 34).
(52) As shown in
(53) As shown in
(54) The material of the holding members 65 is an elastic material such as rubber. Grooves 68 are formed over the entire length on the outer surfaces of the holding members 65. A plurality of front and rear slits 69 are formed on the inner surfaces of the holding members 65. The horizontal plate portions 64b of the horizontal frames 64 are inserted into the grooves 68 of the holding members 65, whereby the holding members 65 are attached to the horizontal frames 64.
(55) As shown in
(56) Operations in the configuration explained above are explained below.
(57) (1) During a filtration operation, as shown in
(58) In this case, as shown in
(59) As shown in
(60) As shown in
(61) (2) When the membrane cartridge 34 is removed in maintenance or the like, after the air diffusion by the air diffuser 36 is stopped, the filtration operation is stopped, and a liquid to be treated 74 in the treatment tank 32 is discharged, as shown in
(62) Subsequently, the bolts 66 are unscrewed to remove the space maintaining members 63a on one of the left and right from the frame body 37. Consequently, as shown in
(63) Consequently, it is possible to easily pull out the membrane cartridge 34 from the inside of the casing 33 in the width direction A (left-right sideward direction). As shown in
(64) (3) When the membrane cartridge 34 is attached, as shown in
(65) Subsequently, as shown in
(66) Thereafter, the bolts 46 are screwed to attach the one side panel 39a to the frame body 37 as shown in
(67) In a state in which the filtration operation is stopped and the liquid to be treated 74 in the treatment tank 32 is drained, the force of the upflow 77 and the buoyant force do not act on the membrane cartridge 34. As shown in
(68) As explained above, the one side opening 45a of the casing 33 for membranes is closed by the one side panel 39a and the other side opening 45b is closed by the other side panel 39b. Therefore, during the filtration operation, it is possible to prevent bubbles of air diffused from the air diffuser 36 from being released to the outside of the casing 33 through the side openings 45a and 45b.
(69) (4) During the filtration operation, as explained above in (1), the upflow 77 along the membrane surface of the membrane cartridge 34 is generated by diffusing air from the air diffuser 36. However, the flow rate of this upflow 77 falls as being closer to the inner side surface of the side panels 39a and 39b of the casing 33, i.e., closer to both sides of the membrane cartridge 34. Therefore, as shown in
(70) In this case, a clogging portion E of the sludge 14 occurs substantially over the entire length in the up-down direction B on both sides of the membrane cartridge 34. A width W in the sideward direction of the clogging portion E of the sludge 14 is extremely small compared with a length L in the up-down direction of the clogging portion E of the sludge 14.
(71) Therefore, as explained above in (2), when the membrane cartridge 34 is removed from the inside of the casing 33 in maintenance or the like, by removing the membrane cartridge 34 from the width direction A, the direction in which the membrane cartridge 34 is removed is the same as the direction of the width W of the clogging portion E of the sludge 14 rather than the direction of the length L of the clogging portion E of the sludge 14 (see
(72) (5) When the properties of the liquid to be treated 74 are deteriorated and the sludge 14 clogs between the membrane cartridges 34 or alternatively when an abnormal operation such as continuation of the filtration operation is performed in a state in which the air diffuser 36 is stopped, an operator can also jet a high-pressure cleaning liquid 75 from an injection nozzle 76 of a cleaning device (not shown) to clean the membrane cartridges 34. In this case, after the air diffusion by the air diffuser 36 is stopped, the filtration operation is stopped, and the liquid to be treated 74 in the treatment tank 32 is discharged, as shown in
(73) Subsequently, as shown in
(74) In this case, as shown in
(75) In the embodiment, as shown in
(76) In the embodiment, as shown in
(77) In the embodiment, as shown in
(78) In the embodiment, as shown in
(79) In the embodiment, as shown in
(80) In the embodiment explained above, as shown in
(81) A fourth embodiment in the present invention is explained below with reference to
(82) The same members as the members explained in the first embodiment are denoted by the same reference numerals and signs and an explanation of the members is omitted.
(83) As shown in
(84) The ratio (=Lv/Lh) of a length Lv in the vertical direction (up-down direction) of the membrane cartridge 34 and a length Lh in the sideward direction (width direction A) is set to 3. A difference Hd between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 (i.e., Hd?Lh).
(85) Permeate channels 86 for communicating with the water intake nozzles 53 and 85 are respectively formed on both front and rear sides of the filtration plate 49. The permeate channels 86 are covered with the filtration membrane 50.
(86) As shown in
(87) A lead-out pipe 57 for leading out treated water is connected to the water collecting pipes 55 and 87. A suction pump (not shown) for generating a suction force for sucking the treated water is provided in the lead-out pipe 57. A suction force may be generated by using the head pressure of a liquid to be treated 35 in a treatment tank 32 as a filtration driving pressure without using the suction pump.
(88) Opened windows 89 and 90 are formed in a plurality of upper and lower places in a left or right one side panel 39a. The first opened window 89 is located at the upper end of the side panel 39a and opposed to the first water intake nozzle 53. The second opened window 90 is located between the upper and lower ends of the side panel 39a and opposed to the second water intake nozzle 85. The first connection pipe 56 is inserted through the first opened window 89 and the second connection pipe 88 is inserted through the second opened window 90.
(89) Operations in the configuration explained above are explained below.
(90) (1) During a filtration operation, the inside of the membrane cartridges 34 is depressurized while air is diffused from an air diffuser 36, whereby sludge or the like in the liquid to be treated 35 is caught by the filtration membrane 50 of the membrane cartridge 34. A liquid permeating through the filtration membrane 50 and flowing into the inner side of the membrane cartridges 34 flows through the permeate channel 86 as treated water 79, is sucked from the first and second water intake nozzles 53 and 85, and is collected in the first and second water collecting pipes 55 and 87 through the first and second connection pipes 56 and 88.
(91) The first and second water intake nozzles 53 and 85 are provided on one side of the membrane cartridge 34 and are located at different heights. Therefore, a sufficient suction pressure acts on the entire membrane cartridge 34. Consequently, it is possible to obtain the treated water 79 (permeate) using the entire filtration membrane 50 effectively.
(92) When the difference Hd between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is too small, it is likely that areas where permeate can be obtained from the filtration membrane 50 by the respective water intake nozzles 53 and 85 overlap each other and the entire filtration membrane 50 cannot be effectively used. To cope with such a problem, as shown in
(93) In this case, the matter adhering to the membrane surface of the membrane cartridge 34 is removed by upflow 77 generated by bubbles of air diffused from the air diffuser 36. Since the membrane cartridge 34 is vertically long, it is possible to effectively use the air diffusion by the air diffuser 36.
(94) As shown in
(95) In some case, a part of air (gas) diffused from the air diffuser 36 passes through the filtration membrane 50 and is sucked into the inner side of the membrane cartridge 34 or a part of dissolved gas in permeate (treated water) permeating through the filtration membrane 50 and flowing into the inner side of the membrane cartridge 34 vaporizes. However, since the first water intake nozzle 53 is located at the upper end of one side of the membrane cartridge 34, the gas such as air is sucked from the first intake nozzle 53 and is discharged from the inner side of the membrane cartridge 34. Consequently, it is possible to prevent the gas from being retained on the inner side at the upper end of the membrane cartridge 34.
(96) (2) When the membrane cartridge 34 is removed in maintenance or the like, after the air diffusion by the air diffuser 36 is stopped, the filtration operation is stopped, and the water to be treated 35 in the treatment tank 32 is discharged, as indicated by the virtual line of
(97) As indicated by the virtual lines of
(98) (3) When the membrane cartridge 34 is attached, as indicated by the solid line of
(99) Thereafter, the bolts 46 are screwed to attach the other side panel 39b to the frame body 37 as indicated by the solid line of
(100) Thereafter, as indicated by the solid line of
(101) In this way, since the water intake nozzles 53 and 85 are provided on one side of the membrane cartridge 34, the water intake nozzles 53 and 85 do not obstruct removal and insertion of the membrane cartridge 34. In the submerged membrane separator of the type for inserting a membrane cartridge into and removing the membrane cartridge from a casing from the up-down direction as in the prior art, when a plurality of water intake nozzles are provided on a side of the membrane cartridge, the water intake nozzles obstruct removal and insertion of the membrane cartridge.
(102) In the embodiment, as shown in
(103) A fifth embodiment in the present invention is explained below.
(104) As shown in
(105) A ratio (=Lv/Lh) of a length Lv in the vertical direction (up-down direction) of the membrane cartridge 34 and a length Lh in the sideward direction (width direction A) thereof is set to 3. A difference Hd between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 (i.e., Hd?Lh).
(106) A first water collecting pipe 55 for collecting treated water sucked from the first water intake nozzle 53 is provided above left or right one side of a frame body 37. A second water collecting pipe 87 for collecting treated water sucked from the second water intake nozzle 85 is provided below the left or right other side of the frame body 37. The first water collecting pipe 55 and the first water intake nozzle 53 are connected via a first connection pipe 56. The second water collecting pipe 87 and the second water intake nozzles 85 are connected via a second connection pipe 88.
(107) A first opened window 89 is formed at the upper end of left or right one side panel 39a and a second opened window 90 is formed at the lower end of the other side panel 39b. The first connection pipe 56 is inserted through the first opened window 89 and the second connection pipe 88 is inserted through the second opened window 90.
(108) Operations in the configuration explained above are explained below.
(109) (1) The first and second water intake nozzles 53 and 85 are provided on both sides of the membrane cartridge 34 and are located at different heights. Therefore, a sufficient suction pressure acts on the entire membrane cartridge 34. Consequently, it is possible to obtain treated water (permeate) effectively using an overall filtration membrane 50.
(110) When the difference Hd between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is too small, it is likely that areas where permeate can be obtained from the filtration membrane 50 by the respective water intake nozzles 53 and 85 overlap each other and the entire filtration membrane 50 cannot be effectively used. To cope with such a problem, the difference Hd between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34. Consequently, it is possible to considerably reduce the overlap (interference) of the areas where the permeate can be obtained from the filtration membrane 50 by the respective water intake nozzles 53 and 85 and to sufficiently draw out the ability of the membrane cartridge 34.
(111) Since the first and second water intake nozzles 53 and 85 are provided on both sides of the membrane cartridge 34, upflow 77 smoothly flows without hitting the first and second connection pipes 56 and 88. Consequently, matter adhering to the membrane surface of the membrane cartridge 34 is sufficiently removed. Vibration of the connection pipes 56 and 88 is reduced and it is possible to prevent a crack from occurring around the water intake nozzles 53 and 85.
(112) (2) When the membrane cartridge 34 is removed in maintenance or the like, after air diffusion by an air diffuser 36 is stopped, a filtration operation is stopped, and a liquid to be treated 35 in a treatment tank 32 is discharged, first, as indicated by the virtual line of
(113) Subsequently, as indicated by the virtual line of
(114) (3) When the membrane cartridge 34 is attached, as indicated by the solid line of
(115) Thereafter, the bolts 46 are screwed and, as indicated by the solid line of
(116) Thereafter, as indicated by the solid line of
(117) In this way, since the water intake nozzles 53 and 85 are provided on both sides of the membrane cartridge 34, the water intake nozzles 53 and 85 do not obstruct removal and insertion of the membrane cartridge 34. In the submerged membrane separator of the type for inserting a membrane cartridge into and removing the membrane cartridge from a casing from the up-down direction as in the prior art, when water intake nozzles are provided on both sides of the membrane cartridge, it is likely that the water intake nozzles obstruct removal and insertion of the membrane cartridge.
(118) In the embodiment, as shown in
(119) In this embodiment, as indicated by the virtual line of
(120) A sixth embodiment in the present invention is explained below.
(121) The sixth embodiment is a modification of the fourth embodiment. As shown in
(122) A ratio (=Lv/Lh) of a length Lv in the vertical direction (up-down direction) of the membrane cartridge 34 and a length Lh in the sideward direction thereof (a width direction A) is set to 3. A difference Hd1 between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 (i.e., Hd1?Lh). A difference Hd2 between the heights of the second water intake nozzle 85 and the third water intake nozzle 92 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 (i.e., Hd2?Lh).
(123) First to third water collecting pipes 55, 87, and 93 are provided on one of the left and right sides of a frame body 37. The first water collecting pipe 55 and the first water intake nozzle 53 are connected via a first connection pipe 56. The second water collecting pipe 87 and the second water intake nozzle 85 are connected via a second connection pipe 88. The third water collecting pipe 93 and the third water intake nozzle 92 are connected via a third connection pipe 94.
(124) First to third opened windows 89, 90, and 95 are formed in left or right one side panel 39a. Out of the first to third opened windows 89, 90, and 95, the first opened window 89 is located at the upper end of the side panel 39a and opposed to the first water intake nozzle 53. The third opened window 95 is located at the lower end of the side panel 39a and opposed to the third water intake nozzle 92. The second opened window 90 is located between the upper first opened window 89 and the lower third opened window 95 and opposed to the second water intake nozzle 85. The first connection pipe 56 is inserted through the first opened window 89, the second connection pipe 88 is inserted through the second opened window 90, and the third connection pipe 94 is inserted through the third opened window 95.
(125) Operations in the configuration explained above are explained below.
(126) (1) During a filtration operation, permeate permeating though a filtration membrane 50 and flowing into the inner side of the membrane cartridge 34 flows through a permeate channel 86 as treated water. The permeate is sucked from the first to third water intake nozzles 53, 85, and 92, is collected in the first to third water collecting pipes 55, 87, and 93 through the first to third connection pipes 56, 88, and 94, and is removed from the first to third water collecting pipes 55, 87, and 93 through a lead-out pipe (not shown).
(127) Since the first to third water intake nozzles 53, 85, and 92 are provided on one side of the membrane cartridge 34 and are located at different heights, a sufficient suction pressure acts on the entire membrane cartridge 34. Consequently, it is possible to obtain treated water (permeate) using the entire filtration membrane 50 effectively.
(128) When the difference Hd1 between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is too small, it is likely that areas where permeate can be obtained from the filtration membrane 50 by the first and second water intake nozzles 53 and 85 overlap each other and the entire filtration membrane 50 cannot be effectively used. Similarly, when the difference Hd2 between the heights of the second water intake nozzle 85 and the third water intake nozzle 92 is too small, it is likely that areas where permeate can be obtained from the filtration membrane 50 by the second and third water intake nozzles 85 and 92 overlap each other and the entire filtration membrane 50 cannot be effectively used. To cope with such a problem, the difference Hd1 between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 and the difference Hd2 between the heights of the second water intake nozzle 85 and the third water intake nozzle 92 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34. Consequently, it is possible to considerably reduce the overlap (interference) of the areas where the permeate can be obtained from the filtration membrane 50 by the respective water intake nozzles 53, 85, and 92 and to sufficiently draw out the ability of the membrane cartridge 34.
(129) Since upflow 77 smoothly flows without hitting the first to third connection pipes 56, 88, and 94, the matter adhering to the membrane surface of the membrane cartridge 34 is sufficiently removed. Vibration of the connection pipes 56, 88, and 94 is reduced and it is possible to prevent a crack from occurring around the water intake nozzles 53, 85, and 92.
(130) (2) When the membrane cartridge 34 is removed in maintenance or the like, as indicated by the virtual line of
(131) Subsequently, as indicated by the virtual line of
(132) (3) When the membrane cartridge 34 is attached, as indicated by the solid line of
(133) Thereafter, as indicated by the solid line of
(134) In the embodiment, as shown in
(135) In this embodiment, as shown in
(136) A seventh embodiment in the present invention is explained below.
(137) As shown in
(138) A ratio (=Lv/Lh) of a length Lv in the vertical direction (up-down direction) of the membrane cartridge 34 and a length Lh in the sideward direction (a width direction A) thereof is set to 3. A difference Hd1 between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 (i.e., Hd1?Lh). A difference Hd2 between the heights of the second water intake nozzle 85 and the third water intake nozzle 92 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 (i.e., Hd2?Lh).
(139) First and third water collecting pipes 55 and 93 are provided on left or right one side of a frame body 37. A second water collecting pipe 87 is provided on the left or right other side of the frame body 37. The first water collecting pipe 55 and the first water intake nozzle 53 are connected via a first connection pipe 56. The second water collecting pipe 87 and the second water intake nozzle 85 are connected via a second connection pipe 88. The third water collecting pipe 93 and the third water intake nozzle 92 are connected via a third connection pipe 94.
(140) First and third opened windows 89 and 95 are formed in left or right one side panel 39a. A second opened window 90 is formed in the left or right other side panel 39b. Out of the first to third opened windows 89, 90, and 95, the first opened window 89 is located at the upper end of the one side panel 39a and opposed to the first water intake nozzle 53. The third opened window 95 is located at the lower end of the one side panel 39a and opposed to the third water intake nozzle 92. The second opened window 90 is located between the upper and lower ends of the other side panel 39b and opposed to the second water intake nozzle 85.
(141) Operations in the configuration explained above are explained below.
(142) (1) Since the first to third water intake nozzles 53, 85, and 92 are provided on the sides of the membrane cartridge 34 and located at different heights, a sufficient suction pressure acts on the entire membrane cartridge 34. Consequently, it is possible to obtain treated water (permeate) using an overall filtration membrane 50 effectively.
(143) When the difference Hd1 between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is too small, it is likely that areas where permeate can be obtained from the filtration membrane 50 by the first and second water intake nozzles 53 and 85 overlap each other and the entire filtration membrane 50 cannot be effectively used. Similarly, when the difference Hd2 between the heights of the second water intake nozzle 85 and the third water intake nozzle 92 is too small, it is likely that areas where permeate can be obtained from the filtration membrane 50 by the second and third water intake nozzles 85 and 92 overlap each other and the entire filtration membrane 50 cannot be effectively used. To cope with such a problem, the difference Hd1 between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 and the difference Hd2 between the heights of the second water intake nozzle 85 and the third water intake nozzle 92 is set to be equal to or larger than the length Lh in the sideward direction thereof. Consequently, it is possible to considerably reduce the overlap (interference) of the areas where the permeate can be obtained from the filtration membrane 50 by the respective water intake nozzles 53, 85, and 92 and sufficiently draw out the ability of the membrane cartridge 34.
(144) Since upflow 77 smoothly flows without hitting the first to third connection pipes 56, 88, and 94, the matter adhering to the membrane surface of the membrane cartridge 34 is sufficiently removed. Vibration of the connection pipes 56, 88, and 94 is reduced and it is possible to prevent a crack from occurring around the water intake nozzles 53, 85, and 92.
(145) (2) When the membrane cartridge 34 is removed in maintenance or the like, as indicated by the virtual line of
(146) Subsequently, as indicated by the virtual line of
(147) (3) When the membrane cartridge 34 is attached, as indicated by the solid line of
(148) Thereafter, as indicated by the solid line of
(149) In the embodiment, as shown in
(150) One or three or more water intake nozzles 53 and 92 may be provided on one side of the membrane cartridge 34 or two or more water intake nozzles 85 may be provided on the other side of the membrane cartridge 34.
(151) An eighth embodiment in the present invention is explained below.
(152) As shown in
(153) The height from the lower side of the membrane cartridge 34 to the second water intake nozzle 85 is smaller than the height from the lower side of the membrane cartridge 34 to the first water intake nozzle 53. The height from the lower side of the membrane cartridge 34 to the fourth water intake nozzle 96 is smaller than the height from the lower side of the membrane cartridge 34 to the third water intake nozzle 92. The heights from the lower side of the membrane cartridge 34 to the first and third water intake nozzles 53 and 92 are the same. The heights from the lower side of the membrane cartridge 34 to the second and fourth water intake nozzles 85 and 96 are the same.
(154) A ratio (i.e., an aspect ratio=Lv/Lh) of a length Lv in the vertical direction (up-down direction) of the membrane cartridge 34 and a length Lh in the sideward direction (a width direction A) thereof is set to 3. A difference Hd1 between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 (i.e., Hd1?Lh). A difference Hd2 between the heights of the third water intake nozzle 92 and the fourth water intake nozzle 96 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 (i.e., Hd2?Lh).
(155) A first water collecting pipe 55 for collecting treated water sucked from the first and second water intake nozzles 53 and 85 of the membrane cartridges 34 is provided in the front-rear direction above left or right one side of a frame body 37. A second water collecting pipe 87 for collecting treated water sucked from the third and fourth water intake nozzles 92 and 96 of the membrane cartridges 34 is provided above the left or right other side of the frame body 37.
(156) The first water collecting pipe 55 and the first water intake nozzle 53 are connected via a first connection pipe 56. The first water collecting pipe 55 and the second water intake nozzle 85 are connected via a second connection pipe 88. The second water collecting pipe 87 and the third water intake nozzles 92 are connected via a third connection pipe 94. The second water collecting pipe 87 and the fourth water intake nozzle 96 are connected via a fourth connection pipe 97. The first to fourth connection pipes 56, 88, 94, and 97 have flexibility.
(157) First and second opened windows 89 and 90 are formed in left or right one side panel 39a. The first opened window 89 is located at the upper end of the side panel 39a and opposed to the first water intake nozzle 53. The second opened window 90 is located between the upper and lower ends of the side panel 39a and opposed to the second water intake nozzle 85. The first connection pipe 56 is inserted through the first opened window 89 and the second connection pipe 88 is inserted through the second opened window 90.
(158) Third and fourth opened windows 95 and 98 are formed in the left or right other side panel 39b. The third opened window 95 is located at the upper end of the side panel 39b and opposed to the third water intake nozzle 92. The fourth opened window 98 is located between the upper and lower ends of the side panel 39b and opposed to the fourth water intake nozzle 96. The third connection pipe 94 is inserted through the third opened window 95 and the fourth connection pipe 97 is inserted through the fourth opened window 98.
(159) Operations in the configuration explained above are explained below.
(160) (1) During a filtration operation, permeate permeating through a filtration membrane 50 and flowing into the inner side of the membrane cartridges 34 flows through a permeate channel 86 as treated water, is sucked from the first to fourth water intake nozzles 53, 85, 92, and 96, is collected in the first water collecting pipe 55 through the first and second connection pipes 56 and 88, and is collected in the second water collecting pipe 87 through the third and fourth connection pipes 94 and
(161) The first and second water intake nozzles 53 and 85 are provided on one side of the membrane cartridge 34 and located at different heights. The third and fourth water intake nozzles 92 and 96 are provided on the other side of the membrane cartridge 34 and located at different heights. Therefore, a sufficient suction pressure acts on the entire membrane cartridge 34. Consequently, it is possible to obtain treated water (permeate) using the entire filtration membrane 50 effectively.
(162) When the difference Hd1 between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is too small, it is likely that areas where permeate can be obtained from the filtration membrane 50 by the first and second water intake nozzles 53 and 85 overlap each other and the entire filtration membrane 50 cannot be effectively used. Similarly, when the difference Hd2 between the heights of the third water intake nozzle 92 and the fourth water intake nozzle 96 is too small, it is likely that areas where permeate can be obtained from the filtration membrane 50 by the third and fourth water intake nozzles 92 and 96 overlap each other and the entire filtration membrane 50 cannot be effectively used. To cope with such a problem, the difference Hd1 between the heights of the first water intake nozzle 53 and the second water intake nozzle 85 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34 and the difference Hd2 between the heights of the third water intake nozzle 92 and the fourth intake nozzle 96 is set to be equal to or larger than the length Lh in the sideward direction of the membrane cartridge 34. Consequently, it is possible to considerably reduce the overlap (interference) of the areas where the permeate can be obtained from the filtration membrane 50 by the respective water intake nozzles 53, 85, 92, and 96 and to sufficiently draw out the ability of the membrane cartridge 34.
(163) Since upflow 77 smoothly flows without hitting the first to fourth connection pipes 56, 88, 94, and 97, the matter adhering to the membrane surface of the membrane cartridge 34 is sufficiently removed. Vibration of the connection pipes 56, 88, 94, and 97 is reduced and it is possible to prevent a crack from occurring around the water intake nozzles 53, 85, 92, and 96.
(164) The first and second connection pipes 56 and 88 are connected to the common first water collecting pipe 55 and the third and fourth connection pipes 94 and 97 are connected to the common second water collecting pipe 87. Therefore, it is possible to reduce the number of the water collecting pipes 55 and 87 with respect to the number of the water intake nozzles 53, 85, 92, and 96.
(165) (2) When the membrane cartridge 34 is removed in maintenance or the like, as indicated by the virtual line of
(166) Subsequently, as indicated by the virtual line of
(167) (3) When the membrane cartridge 34 is attached, as indicated by the solid line of
(168) Thereafter, as indicated by the solid line of
(169) In the embodiment, as shown in
(170) In the fourth to eighth embodiments, the opened windows 89 and 90 are formed in the one side panel 39a. However, instead of forming the opened windows 89 and 90, it is also possible to divide the one side panel 39a into a plurality of upper and lower panel pieces, form spaces between these panel pieces, and attach the distal ends of the connection pipes to and detach the distal ends of the connection pipes from the water intake nozzles using the spaces. Similarly, the opened windows 95 and 98 are formed in the other side panel 39b. However, instead of forming the opened windows 95 and 98, it is also possible to divide the other side panel 39b into a plurality of upper and lower panel pieces, form spaces between these panel pieces, and attach the distal ends of the connection pipes to and detach the distal ends of the connection pipes from the water intake nozzles using the spaces.
(171) In the embodiments, the membrane cartridge 34 is formed in an elongated rectangle. However, the membrane cartridge 34 is not limited to the rectangle. The membrane cartridge 34 may be formed in a shape with a side 34a inclining with respect to the vertical direction, for example, as shown in
(172) In the fourth to tenth embodiments, the ratio (aspect ratio=Lv/Lh) of the length Lv in the vertical direction of the membrane cartridge 34 and the length Lh in the sideward direction thereof is set to 3. When the water intake nozzle 53 is provided in only one position at the upper end of the membrane cartridge 34, if the aspect ratio (=Lv/Lh) exceeds 2.5, the rate of increase of flux of permeate with respect to an increase in an area of the filtration membrane 50 suddenly decreases. Therefore, when the aspect ratio (=Lv/Lh) is equal to or larger than a lower limit of 2.5, the configuration having a plurality of water intake nozzles is effective. In terms of the handleability of the membrane cartridge 34, the upper limit of the aspect ratio is desirably equal to or smaller than 4.