ORGANIC WASTEWATER TREATMENT APPARATUS
20210206677 ยท 2021-07-08
Inventors
Cpc classification
C02F11/04
CHEMISTRY; METALLURGY
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
C02F2203/006
CHEMISTRY; METALLURGY
International classification
Abstract
An organic wastewater treatment apparatus biologically treats organic wastewater containing nitrogen using a treatment tank storing activated sludge. A top-bottom partition member divides the treatment tank in into an upper space and a lower space. A plurality of anoxic tanks are formed in the lower space, while a plurality of aerobic tanks, each of which having an immersion-type membrane separation device, are formed in the upper space. A raw water supply path divides and supplies the organic wastewater to each anoxic tank. A plurality of denitrifying liquid transfer paths repeatedly transfers the activated sludge from the anoxic tanks to the aerobic tanks, while a plurality of nitrifying liquid transfer paths repeatedly transfer the activated sludge from the aerobic tanks to the anoxic tanks, whereby the activated sludge is circulated throughout the treatment tank.
Claims
1. An organic wastewater treatment apparatus for biologically treating organic wastewater containing nitrogen, comprising: a treatment tank in which activated sludge is stored; a top-bottom partition member for dividing the treatment tank in a vertical direction into an upper space and a lower space; a plurality of anoxic tanks formed in the lower space of the treatment tank; a plurality of aerobic tanks formed in the upper space of the treatment tank, each aerobic tank being provided with an immersion-type membrane separation device; a raw water supply path for dividing and supplying the organic wastewater to the plurality of anoxic tanks; a plurality of denitrifying liquid transfer paths for transferring the activated sludge from the anoxic tanks to the aerobic tanks; and a plurality of nitrifying liquid transfer paths for transferring the activated sludge from the aerobic tanks to the anoxic tanks, wherein the organic wastewater treatment apparatus is configured to repeatedly transfer the activated sludge from the anoxic tanks to the aerobic tanks via the denitrifying liquid transfer paths, and from the aerobic tanks to the anoxic tanks via the nitrifying liquid transfer paths, such that the activated sludge circulates throughout the treatment tank.
2. The organic wastewater treatment apparatus according to claim 1, wherein the plurality of anoxic tanks and the plurality of aerobic tanks have a same shape with the top-bottom partition members interposed therebetween.
3. The organic wastewater treatment apparatus according to claim 1, further comprising: an anaerobic tank for anaerobically treating the organic wastewater supplied from the raw water supply path; a plurality of denitrifying liquid return paths for transferring the activated sludge from the plurality of anoxic tanks to the anaerobic tank; and a plurality of distribution paths for dividing and supplying the activated sludge from the anaerobic tank to the plurality of anoxic tanks.
4. The organic wastewater treatment apparatus according to claim 3, wherein the anaerobic tank is disposed in a center of the treatment tank across the upper and lower spaces.
5. The organic wastewater treatment apparatus according to claim 1, further comprising: beam members provided on a lower surface of the top-bottom partition member, wherein each nitrifying liquid transfer path has an inlet provided on an upper surface of the anoxic tank, and each beam member has a through-hole such that a gas generated in the anoxic tank is released therethrough into the nitrifying liquid transfer path.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0044] Hereinafter, embodiments of the organic wastewater treatment apparatus according to the present invention will be described referring to the drawings. The wastewater treatment apparatus according to the present invention is an organic wastewater treatment apparatus in which organic wastewater containing nitrogen is biologically treated in activated sludge.
[0045]
[0046] The anoxic tank 10 (one of 10a, 10b, 10c, 10d) is disposed on an upstream side along a flow of organic wastewater (also referred to as raw water) containing nitrogen, while the aerobic tank 20 (corresponding one of 20a, 20b, 20c, 20d) is disposed on a downstream side along the flow of the raw water, and provided with a membrane separation device 30 immersed in the activated sludge.
[0047] The wastewater treatment apparatus 1 further includes a sludge return path 3 for returning the activated sludge from the aerobic tank 20d disposed on the most downstream side to the anoxic tank 10a disposed on the most upstream side, a raw water introduction path 4 for dividing and supplying the organic wastewater to the anoxic tanks 10 (10a, 10b, 10c, 10d), and a treated water discharge path 7 for discharging membrane-permeated liquid from the membrane separation devices 30 of the biological treatment units as treated water.
[0048] According to the wastewater treatment apparatus 1, nitrate-nitrogen, which has been nitrified from ammoniacal nitrogen in the aerobic tanks 20, is reduced to nitrogen in the anoxic tanks 10, an effective denitrification process can be achieved.
[0049] As shown in
[0050] The lower space LS of the treatment tank 2 is formed into a plurality of anoxic tanks 10 (10a, 10b, 10c, 10d), and the upper space US of the treatment tank 2 is formed into a plurality of aerobic tanks 20 (20a, 20b, 20c, 20d) each provided with an immersion-type membrane separation device 30.
[0051] The wastewater treatment apparatus 1 further includes a raw water supply paths 4 for dividing and supplying the organic wastewater to each anoxic tank 10, a plurality of denitrifying liquid transfer paths 15 for transferring activated sludge from the anoxic tanks 10 to the aerobic tanks 20, and a plurality of nitrifying liquid transfer paths 25 for transferring activated sludge from the aerobic tanks 20 to the anoxic tanks 10.
[0052] The wastewater treatment apparatus 1 is configured such that the transfer of activated sludge from the anoxic tanks 10 to the aerobic tanks 20 via the denitrifying liquid transfer paths 15 and the transfer of activated sludge from the aerobic tanks 20 to the anoxic tanks 10 via the nitrifying liquid transfer paths 25 are repeatedly performed, whereby the activated sludge is circulated throughout the treatment tank 2.
[0053] By partitioning the treatment tank 2 storing the activated sludge into the upper space and the lower space via the top-bottom partition member 2A, and arranging the plurality of anoxic tanks 10 in the lower space, while arranging the plurality of aerobic tanks 20 having the immersion-type membrane separation devices 30 in the upper space, it has become possible to realize an organic wastewater treatment apparatus having a small installation area without causing an increase in the aeration load required for the aerobic tanks 20.
[0054] As shown in
[0055] As shown in
[0056] Alternatively, as shown in
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[0058] One of the denitrifying liquid transfer paths 15 may be provided with an airlift pump AP, and the remaining subsequent denitrifying liquid transfer paths 15 are formed as a duct such that a liquid naturally flows down due to the water pressure difference between the anoxic tanks 10 and the aerobic tanks 20. In addition, or alternatively, the duct may be provided with a circulation pump so as to transfer the mixed liquid of the sludge and the organic wastewater.
[0059] In each aerobic tank 20, the membrane separation device 30 is installed by being immersed therein, and an auxiliary diffuser 40 for the aerobic process is installed in the vicinity of the membrane separation device 30, as shown in
[0060] As shown in
[0061] According to the above-mentioned construction, the anoxic tanks 10 are sealed from the air without in contact therewith, thereby increasing the degree of anaerobiosis so as to allow an efficient denitrification treatment process, which also suppresses generation of scum. As a result, not only a defoaming water supply equipment for destroying the scum becomes unnecessary, but also additional membrane separation devices for filtering the defoaming water can be eliminated from the aerobic tanks 20. In addition, a deodorization device for the anoxic tanks 10 is no longer necessary, which also greatly contributes to the reduction of equipment costs.
[0062] The top-bottom partition member 2A, which divides the treatment tank 2 into the upper space US and the lower space LS in the vertical direction, may be formed of a reinforced concrete wall in which steel bars are arranged, i.e., a ceiling slab. If transverse beams supporting the ceiling slab are not provided, the resistance to agitation near the ceiling in the anoxic tanks 10 is reduced, whereby the agitation efficiency can be improved.
[0063] As shown in
[0064] The membrane separation device 30 is provided with a plurality of membrane elements 31 and an aeration apparatus installed below the membrane elements 31. The plurality of membrane elements 31 are housed in a casing with up-and-down two stages, and arranged at regular intervals such that each membrane surface has an upright posture.
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[0066] The types of the separation membrane 31b and the membrane element 31 are not limited to the above-described embodiments, but any type of separation membrane and any form of membrane element (hollow fiber membrane element, tubular membrane element, monolith membrane element, etc.) can be used.
[0067] As shown in
[0068] By providing the anaerobic tank 50, even organic wastewater containing phosphorus can be effectively dephosphorized. In other words, phosphorus is efficiently discharged from the activated sludge in the anaerobic tank 50 by transferring the activated sludge, which has excessively absorbed phosphorus in the aerobic tanks 20, from the anoxic tanks 10 to the anaerobic tank 50 through the denitrifying liquid return paths 6. The activated sludge is then transferred to the anoxic tanks 10 through the distribution paths 5, and then to the aerobic tanks 20, in which phosphorus is excessively absorbed by the activated sludge, whereby the phosphorus concentration in the treated water after passing through the membrane separation devices 30 becomes very low.
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[0070] As shown in
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[0072] In the previous embodiments described in
[0073] Similarly to
[0074] In the above-described embodiments, the auxiliary diffuser 40 and the membrane separator 30 are provided within a single tank (each of 20a, 20b, 20c, and 20d) of the aerobic tank 20. However, each aerobic tank 20 may be divided into an aerobic compartment and a membrane separation compartment by a partition. In such a case, the activated sludge is transferred to the aerobic compartment via the denitrifying liquid transfer path 15, and after being transferred from the aerobic compartment to the membrane separation compartment, the activated sludge is transferred to the anoxic tank 10 via the nitrifying liquid transfer path 25.
[0075] In the above-described embodiments, mechanical agitators are used to agitate the activated sludge in the anoxic tanks 10. However, the activated sludge may be agitated by providing coarse bubble diffusers at the bottom of the anoxic tanks 10 and intermittently diffusing air therefrom. In such a case, since the agitating device does not have mechanical driving parts, the maintainability of the apparatus can be improved
[0076] The above-described embodiments are all examples of the present invention, and the description does not limit the present invention, and the specific configuration of each part can be appropriately modified and designed within the range in which the effects of the present invention are exhibited. In addition, any one or more of the above-mentioned embodiments may be appropriately combined with each other.