JP5935076B2 - Water treatment equipment - Google Patents

Water treatment equipment Download PDF

Info

Publication number
JP5935076B2
JP5935076B2 JP2012058107A JP2012058107A JP5935076B2 JP 5935076 B2 JP5935076 B2 JP 5935076B2 JP 2012058107 A JP2012058107 A JP 2012058107A JP 2012058107 A JP2012058107 A JP 2012058107A JP 5935076 B2 JP5935076 B2 JP 5935076B2
Authority
JP
Japan
Prior art keywords
denitrification
water
breeding
nitrification
tank
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
JP2012058107A
Other languages
Japanese (ja)
Other versions
JP2013188719A (en
Inventor
川又 睦
睦 川又
森 正人
正人 森
隆司 山口
隆司 山口
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Taisei Corp
Nagaoka University of Technology
Original Assignee
Taisei Corp
Nagaoka University of Technology
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Taisei Corp, Nagaoka University of Technology filed Critical Taisei Corp
Priority to JP2012058107A priority Critical patent/JP5935076B2/en
Publication of JP2013188719A publication Critical patent/JP2013188719A/en
Application granted granted Critical
Publication of JP5935076B2 publication Critical patent/JP5935076B2/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Farming Of Fish And Shellfish (AREA)
  • Purification Treatments By Anaerobic Or Anaerobic And Aerobic Bacteria Or Animals (AREA)

Description

本発明は、水処理装置に関する。   The present invention relates to a water treatment apparatus.

飼育水槽で飼育生物(例えば魚類、貝類、甲殻類、両生類など)を飼育する場合には、飼育生物の排泄物や残餌に由来する浮遊懸濁物質(SS)、アンモニア態窒素その他によって水質が悪化しないように、適宜な方式により水処理を行う必要がある。また、飼育水中の硝酸濃度が高まった場合には、飼育水の一部を排水するとともに、新鮮な飼育水を補給して硝酸濃度を希釈する必要がある。   When rearing organisms (for example, fish, shellfish, crustaceans, amphibians, etc.) in a breeding aquarium, the water quality is reduced by suspended suspended matter (SS), ammonia nitrogen, etc. It is necessary to perform water treatment by an appropriate method so as not to deteriorate. In addition, when the concentration of nitric acid in the breeding water increases, it is necessary to drain part of the breeding water and replenish fresh breeding water to dilute the nitric acid concentration.

飼育水の補給量を削減あるいはゼロにすることが可能な閉鎖循環式の水処理装置が特許文献1に開示されている。特許文献1の水処理装置は、硝化槽と脱窒槽とを並列に設け、硝化槽中の硝化菌(独立栄養細菌)の作用によりアンモニア態窒素や亜硝酸態窒素を硝酸態窒素にまで酸化(硝化)するとともに、脱窒槽中の脱窒菌(従属栄養細菌)の作用により亜硝酸態窒素や硝酸態窒素を窒素にまで還元(脱窒)する、というものである。   Patent Document 1 discloses a closed-circulation type water treatment apparatus that can reduce or eliminate the amount of breeding water supplied. The water treatment apparatus of Patent Document 1 is provided with a nitrification tank and a denitrification tank in parallel, and oxidizes ammonia nitrogen and nitrite nitrogen to nitrate nitrogen by the action of nitrifying bacteria (autotrophic bacteria) in the nitrification tank ( In addition to nitrification, nitrite nitrogen and nitrate nitrogen are reduced to nitrogen (denitrification) by the action of denitrifying bacteria (heterotrophic bacteria) in the denitrification tank.

特開2011−177619号公報JP 2011-177619 A

硝化槽と脱窒槽とを並列に設けた場合において、予期せぬ不具合により脱窒槽での脱窒が不完全になり、脱窒槽において亜硝酸態窒素やアンモニア態窒素が発生すると、脱窒槽で発生した亜硝酸態窒素やアンモニア態窒素が飼育水槽に流入する虞がある。また、脱窒槽内の雰囲気が嫌気性である関係上、脱窒槽を通過した被処理水の溶存酸素濃度が低下するので、硝化槽と脱窒槽とを並列に設けた場合には、溶存酸素濃度の低い水が飼育水槽に流入する虞がある。   When a nitrification tank and a denitrification tank are installed in parallel, denitrification in the denitrification tank becomes incomplete due to an unexpected failure, and nitrite nitrogen or ammonia nitrogen is generated in the denitrification tank. Nitrite nitrogen and ammonia nitrogen may flow into the rearing tank. In addition, because the atmosphere in the denitrification tank is anaerobic, the dissolved oxygen concentration of the water to be treated that has passed through the denitrification tank decreases, so when the nitrification tank and the denitrification tank are installed in parallel, the dissolved oxygen concentration Water may flow into the rearing tank.

このような観点から、本発明は、予期せぬ不具合により脱窒槽で亜硝酸態窒素やアンモニア態窒素が発生した場合であっても、これらが飼育水槽に流入するリスクを下げることができ、かつ、溶存酸素濃度の低い水が飼育水槽に流入するリスクを下げることができる水処理装置を提供することを課題とする。   From this point of view, the present invention can reduce the risk of these flowing into the breeding tank even if nitrite nitrogen or ammonia nitrogen is generated in the denitrification tank due to an unexpected failure, and It is an object of the present invention to provide a water treatment device that can reduce the risk of water having a low dissolved oxygen concentration flowing into a breeding aquarium.

前記課題を解決する本発明は、飼育水槽から始まり前記飼育水槽に戻る循環流路と、前記循環流路の途中に設けられ、硝化菌による硝化が行われる硝化手段と、前記硝化手段の上流側に至る脱窒用流路と、前記脱窒用流路に設けられ、脱窒菌による脱窒が行われる脱窒手段と、を具備する水処理装置であって、前記脱窒手段は、前記硝化手段を介して又は介さないで飼育水槽中の飼育水の供給を受け、前記硝化手段は、前記脱窒菌による脱窒処理がなされた飼育水の供給を受け、前記硝化菌による硝化処理がなされた飼育水が前記飼育水槽に環流されることを特徴とする。 The present invention that solves the above problems includes a circulation channel that starts from a breeding aquarium and returns to the breeding aquarium, a nitrification unit that is provided in the middle of the circulation channel and that performs nitrification with nitrifying bacteria , and an upstream side of the nitrification unit And a denitrification means that is provided in the denitrification flow path and is denitrified by a denitrifying bacterium , wherein the denitrification means is the nitrification unit Supply of breeding water in the breeding tank through or without means, the nitrification means received supply of breeding water subjected to denitrification treatment by the denitrification bacteria, and nitrification treatment by the nitrification bacteria was made The breeding water is circulated to the breeding tank.

要するに本発明は、窒素化合物(タンパク質、アミノ酸、脂質、アンモニア態窒素、亜硝酸態窒素、硝酸態窒素など)を含有する飼育水を、硝化菌による硝化と脱窒菌による脱窒とを利用して浄化するものであって、脱窒手段を通過した飼育水を硝化手段に供給する、というものである。   In short, the present invention uses breeding water containing nitrogen compounds (proteins, amino acids, lipids, ammonia nitrogen, nitrite nitrogen, nitrate nitrogen, etc.) using nitrification by nitrifying bacteria and denitrification by denitrifying bacteria. It is to purify, and the breeding water that has passed through the denitrification means is supplied to the nitrification means.

なお、硝化菌とは、アンモニア態窒素を硝酸態窒素に酸化する際に関与する微生物群(例えば、アンモニア態窒素を酸化して亜硝酸態窒素を生成するアンモニア酸化細菌、亜硝酸態窒素を酸化して硝酸態窒素を生成する亜硝酸酸化細菌など)の総称である。硝化菌の多くは、好気的条件下において活発に活動・増殖する化学合成独立栄養細菌に属する。   Nitrifying bacteria are a group of microorganisms involved in oxidizing ammonia nitrogen to nitrate nitrogen (for example, ammonia oxidizing bacteria that oxidize ammonia nitrogen to produce nitrite nitrogen, oxidize nitrite nitrogen) Nitrite-oxidizing bacteria that produce nitrate nitrogen. Most of the nitrifying bacteria belong to chemosynthesis autotrophic bacteria that actively activate and proliferate under aerobic conditions.

脱窒菌とは、硝酸態窒素や亜硝酸態窒素を窒素に還元する際に関与する微生物群(例えば、硝酸態窒素または亜硝酸態窒素を還元して窒素を生成する硝酸還元細菌、硫黄酸化脱窒細菌など)の総称である。脱窒菌の多くは、嫌気性条件下において活動・増殖可能な通性嫌気性従属栄養細菌に属する。なお、本発明においては、硫黄酸化脱窒細菌と共生する硫酸塩還元細菌も脱窒菌に含まれるものとする。硫酸塩還元細菌は、硫酸塩を還元して硫黄イオンやチオ硫酸イオンを生成する。硫黄イオンやチオ硫酸イオンは、硫黄酸化脱窒細菌による脱窒に利用される。   Denitrifying bacteria are a group of microorganisms involved in reducing nitrate nitrogen or nitrite nitrogen to nitrogen (for example, nitrate-reducing bacteria that produce nitrogen by reducing nitrate nitrogen or nitrite nitrogen, sulfur oxidative desorption). It is a general term for nitrifying bacteria. Many of the denitrifying bacteria belong to facultative anaerobic heterotrophic bacteria that can act and grow under anaerobic conditions. In the present invention, sulfate-reducing bacteria that coexist with sulfur-oxidizing denitrifying bacteria are also included in the denitrifying bacteria. Sulfate-reducing bacteria produce sulfate ions and thiosulfate ions by reducing sulfates. Sulfur ions and thiosulfate ions are used for denitrification by sulfur oxidizing denitrifying bacteria.

本発明によれば、脱窒手段において亜硝酸態窒素やアンモニア態窒素が発生した場合であっても、硝化手段において硝化されるので、亜硝酸態窒素やアンモニア態窒素が飼育水槽に流入するリスクを下げることができる。また、硝化菌による硝化は、好気性条件下で行われるため、脱窒手段において溶存酸素濃度が低下しても、これを回復することができ、したがって、溶存酸素濃度の低い水が飼育水槽に流入するリスクを下げることができる。   According to the present invention, even if nitrite nitrogen or ammonia nitrogen is generated in the denitrification means, it is nitrified in the nitrification means, so that the risk of nitrite nitrogen or ammonia nitrogen flowing into the breeding aquarium Can be lowered. In addition, since nitrification by nitrifying bacteria is performed under aerobic conditions, even if the dissolved oxygen concentration decreases in the denitrification means, it can be recovered, and therefore water with a low dissolved oxygen concentration is returned to the breeding tank. The risk of inflow can be reduced.

請求項1に係る発明では、前記脱窒用流路が前記飼育水槽から前記硝化手段の上流側に至るものであり、脱窒手段が前記硝化手段を介さないで飼育水槽中の飼育水の供給を受け、硝化手段が飼育水槽中の飼育水の供給を受けるとともに、脱窒菌による脱窒処理がなされた飼育水の供給を受け、前記硝化菌による硝化処理がなされた飼育水の全部が前記飼育水槽に環流する。
また、請求項2に係る発明では、前記脱窒用流路が前記硝化手段の下流側から前記硝化手段の上流側に至るものであり、脱窒手段が硝化菌による硝化処理がなされた飼育水の供給を受け、硝化手段が飼育水槽中の飼育水の供給を受けるとともに、脱窒菌による脱窒処理がなされた飼育水の供給を受け、前記硝化菌による硝化処理がなされた飼育水の一部が前記脱窒手段に供給され、残部が前記飼育水槽に環流する。すなわち、本発明では、飼育水槽中の飼育水を循環させる循環流路の途中に硝化手段を設け、循環流路とは異なる流路に脱窒手段を設けている。このようにすると、脱窒手段のメンテナンス中においても硝化手段による飼育水の浄化を継続することができる。
In the invention according to claim 1, the flow path for denitrification extends from the breeding water tank to the upstream side of the nitrification means, and the denitrification means supplies the breeding water in the breeding water tank without passing through the nitrification means. The nitrification means is supplied with the breeding water in the breeding aquarium, and is fed with the breeding water that has been denitrified by the denitrifying bacteria, and all the breeding water that has been nitrified by the nitrifying bacteria is that flow ring to the water tank.
Further, in the invention according to claim 2, the denitrification flow path extends from the downstream side of the nitrification means to the upstream side of the nitrification means, and the denitrification means is reared by nitrification treatment with nitrifying bacteria. The nitrification means receives the supply of breeding water in the breeding aquarium, receives the breeding water that has been denitrified by denitrifying bacteria, and part of the breeding water that has been nitrified by the nitrifying bacteria There is supplied to the denitrification unit, that balance flow ring to the breeding tank. That is, in the present invention, the nitrification means is provided in the middle of the circulation flow path for circulating the breeding water in the breeding water tank, and the denitrification means is provided in a flow path different from the circulation flow path. If it does in this way, purification of breeding water by nitrification means can be continued even during maintenance of denitrification means.

本発明によれば、予期せぬ不具合により脱窒槽で亜硝酸態窒素やアンモニア態窒素が発生した場合であっても、これらが飼育水槽に流入するリスクを下げることができ、かつ、溶存酸素濃度の低い水が飼育水槽に流入するリスクを下げることができる。   According to the present invention, even if nitrite nitrogen or ammonia nitrogen is generated in the denitrification tank due to an unexpected failure, the risk of these flowing into the breeding tank can be reduced, and the dissolved oxygen concentration The risk of low water flowing into the breeding tank can be reduced.

本発明の実施形態に係る水処理装置を説明するための循環ろ過系統図である。It is a circulation filtration system diagram for demonstrating the water treatment apparatus which concerns on embodiment of this invention. 本発明の実施形態に係る水処理装置の変形例を説明するための循環ろ過系統図である。It is a circulation filtration system diagram for demonstrating the modification of the water treatment apparatus which concerns on embodiment of this invention.

本発明の実施形態に係る水処理装置Aは、窒素化合物(飼育生物の排泄物や残餌に由来する浮遊懸濁物質(SS)、アンモニア態窒素、亜硝酸態窒素、硝酸態窒素など)を含有する飼育水槽T中の飼育水Wを、硝化菌による硝化と脱窒菌による脱窒とを利用して浄化するものであり、図1に示すように、硝化手段1と、逆洗水供給手段2と、分解手段3と、脱窒手段4と、物理濾過手段5と、水温調整手段6と、殺菌手段7と、酸素供給手段8と、循環手段(流路91〜96、ポンプ97〜99)と、飼育水Wの硝酸濃度をリアルタイムにモニタリングするモニタリング手段(図示略)とを具備している。なお、本実施形態では、海水を飼育水Wとする閉鎖循環式の飼育水槽Tに水処理装置Aを適用する場合を例示する。 The water treatment apparatus A according to the embodiment of the present invention contains nitrogen compounds (such as suspended suspended matter (SS) derived from excrement and residual food of domesticated organisms, ammonia nitrogen, nitrite nitrogen, nitrate nitrogen). The breeding water W 0 in the breeding water tank T is purified using nitrification by nitrifying bacteria and denitrification by denitrifying bacteria. As shown in FIG. 1, nitrification means 1 and backwash water supply Means 2, decomposition means 3, denitrification means 4, physical filtration means 5, water temperature adjustment means 6, sterilization means 7, oxygen supply means 8, circulation means (flow paths 91 to 96, pumps 97 to 99), monitoring means for monitoring the concentration of nitric acid breeding water W 0 in real time (which includes the not shown) and. In the present embodiment illustrates a case where the rearing aquarium T of closed circuit to breeding water W 0 seawater applying the water treatment apparatus A.

硝化手段1は、飼育水槽T中の飼育水Wの供給を受けるとともに、脱窒手段4を通過した飼育水W(脱窒菌による脱窒処理がなされた飼育水W)の供給を受け、飼育水W,Wに含まれるアンモニア態窒素を硝酸態窒素にまで酸化(硝化)するものである。本実施形態の硝化手段1では、飼育生物の排泄物や残餌に由来する浮遊懸濁物質(SS)の物理濾過も行われる。硝化手段1は、飼育水槽Tから始まり飼育水槽Tに戻る循環流路91の途中に設けられている。硝化手段1を通過した飼育水Wは、水温調整手段6に供給され、殺菌手段7および酸素供給手段8を経た後、飼育水槽Tに環流する。本実施形態の硝化手段1は、硝化槽11と、硝化菌担体12と、入口弁13と、出口弁14とを備えて構成されている。 Nitrification unit 1, fed with supplied with breeding water W 0 of the water tank T, supplied with breeding water W 4 which has passed through the denitrification device 4 (denitrificans breeding water W 4 denitrification process has been performed by) The ammonia nitrogen contained in the breeding waters W 0 and W 4 is oxidized (nitrified) to nitrate nitrogen. In the nitrification means 1 of the present embodiment, physical filtration of suspended suspended matter (SS) derived from the excrement and residual food of the rearing organisms is also performed. The nitrification means 1 is provided in the middle of the circulation channel 91 starting from the breeding water tank T and returning to the breeding water tank T. The breeding water W 1 that has passed through the nitrification means 1 is supplied to the water temperature adjustment means 6, passes through the sterilization means 7 and the oxygen supply means 8, and then circulates to the breeding water tank T. The nitrification means 1 of the present embodiment includes a nitrification tank 11, a nitrifying bacteria carrier 12, an inlet valve 13, and an outlet valve 14.

硝化槽11は、飼育水槽Tから取水された飼育水Wの一部および脱窒手段4を通過した飼育水Wを受け入れる密閉型の容器である。本実施形態では、硝化槽11内の水流が下向きとなるように、硝化菌担体12の上側に流入口を設けるとともに、硝化菌担体12の下側に流出口を設けている。なお、図示は省略するが、硝化槽11内の水流が上向きとなるように、硝化菌担体12の下側に流入口を設け、上側に流出口を設けてもよい。 Nitrification tank 11 is a container sealed to accept breeding water W 4 which has passed through the portion and denitrification unit 4 of breeding water W 0 which is water intake from the breeding aquarium T. In the present embodiment, an inlet is provided above the nitrifying bacteria carrier 12 and an outlet is provided below the nitrifying bacteria carrier 12 so that the water flow in the nitrification tank 11 faces downward. In addition, although illustration is abbreviate | omitted, an inflow port may be provided under the nitrifying bacteria support | carrier 12 and an outflow port may be provided above so that the water flow in the nitrification tank 11 may become upward.

硝化菌担体12は、硝化菌(アンモニア酸化細菌や亜硝酸酸化細菌など)を担持するものであり、硝化槽11内に充填されている。硝化菌担体12は、その内部に固定された硝化菌の硝化作用により、アンモニア態窒素を硝酸態窒素に酸化する生物濾過手段として機能する。すなわち、アンモニア態窒素を酸化するアンモニア酸化細菌の働きにより亜硝酸態窒素が生成され、亜硝酸態窒素を酸化する亜硝酸酸化細菌の働きにより硝酸態窒素が生成される。なお、硝化菌の多くは、好気的条件下において活発に活動・増殖する化学合成独立栄養細菌に属することから、硝化菌担体12の内部は、好気的雰囲気に維持することが望ましい。   The nitrifying bacteria carrier 12 carries nitrifying bacteria (such as ammonia oxidizing bacteria and nitrite oxidizing bacteria), and is filled in the nitrifying tank 11. The nitrifying carrier 12 functions as a biological filtration means that oxidizes ammonia nitrogen to nitrate nitrogen by the nitrifying action of the nitrifying bacteria fixed therein. That is, nitrite nitrogen is generated by the action of ammonia oxidizing bacteria that oxidize ammonia nitrogen, and nitrate nitrogen is generated by the action of nitrite oxidizing bacteria that oxidize nitrite nitrogen. Since most nitrifying bacteria belong to chemically synthesized autotrophic bacteria that actively activate and proliferate under aerobic conditions, it is desirable to maintain the inside of the nitrifying bacteria carrier 12 in an aerobic atmosphere.

本実施形態の硝化菌担体12は、均等係数の小さい濾過砂の集合体からなり、飼育水W中の浮遊懸濁物質(SS)などを物理的に捕捉する。濾過砂の材質に制限はないが、天然石やガラスなどの無機質材料とすることが好ましい。なお、濾過砂に代えて、例えば、下向流懸架型スポンジ(DHS:Down-flow Hanging Sponge)を使用してもよい。 Nitrifying bacteria carrier 12 of the present embodiment is made of a collection of small filtration sand uniformity coefficient, physically capturing stray suspended matter in breeding water W 0 (SS). Although there is no restriction | limiting in the material of filtration sand, It is preferable to set it as inorganic materials, such as a natural stone and glass. Note that, for example, a down-flow hanging sponge (DHS) may be used in place of the filter sand.

入口弁13は、循環流路91から硝化槽11に流入する飼育水W,Wの水量を調整するものであり、出口弁14は、硝化槽11から循環流路91に流出する飼育水Wの水量を調整するものである。入口弁13および出口弁14は、生物濾過を行う場合(以下、「通常時」という)に開弁し、逆洗時には閉弁する。 The inlet valve 13 adjusts the amount of breeding water W 0 and W 4 flowing from the circulation channel 91 into the nitrification tank 11, and the outlet valve 14 is the breeding water flowing out from the nitrification tank 11 to the circulation channel 91. it is intended to adjust the amount of water in the W 1. The inlet valve 13 and the outlet valve 14 are opened when biological filtration is performed (hereinafter referred to as “normal time”), and are closed during backwashing.

逆洗水供給手段2は、硝化菌担体12に逆洗用の水(逆洗水)Wを供給するものであり、タンク(水源)21と、ポンプ22と、開閉弁23とを備えて構成されている。 The backwash water supply means 2 supplies backwashing water (backwash water) W 2 to the nitrifying bacteria carrier 12, and includes a tank (water source) 21, a pump 22, and an on-off valve 23. It is configured.

タンク21は、逆洗水を貯溜するものである。本実施形態のタンク21には、処理水(曝気手段8を通過した飼育水W)が貯溜されている。 The tank 21 stores backwash water. The tank 21 of the present embodiment stores treated water (bred water W 8 that has passed through the aeration means 8 ).

ポンプ22は、タンク21内の逆洗水を硝化槽11へ送り出すものである。開閉弁23は、タンク21から硝化手段1に至る流路94を開閉するものであり、逆洗時に開弁し、通常時には閉弁する。なお、流路94は、硝化菌担体12内における逆洗水の流れの向きが飼育水Wの流れと逆になるように、硝化菌担体12の下側に通じている。 The pump 22 sends backwash water in the tank 21 to the nitrification tank 11. The on-off valve 23 opens and closes the flow path 94 from the tank 21 to the nitrification means 1 and opens during backwashing and normally closes. Incidentally, the flow path 94, so that the flow direction of the backwash water in nitrifying bacteria carrier 12 is reversed and the flow of the rearing water W 1, leads to the lower side of nitrifying bacteria carrier 12.

逆洗水供給手段2は、硝化手段1の入口弁13および出口弁14を閉弁させた状態で作動させる。逆洗水供給手段2を作動させると、逆洗水Wによって硝化菌担体12が逆洗され、硝化手段1を通過した逆洗水W’は、硝化菌担体12に付着していた有機物とともに分解手段3に供給される。つまり、逆洗水供給手段2を作動させると、硝化菌担体12に付着した有機物を回収することができる。 The backwash water supply means 2 is operated with the inlet valve 13 and the outlet valve 14 of the nitrification means 1 closed. Operating the backwash water supply means 2, nitrifying bacteria carrier 12 is backwashed by backwash water W 2, backwash water W 2 which has passed through the nitrification unit 1 'is adhered to the nitrifying bacteria carrier 12 organics At the same time, it is supplied to the disassembling means 3. That is, when the backwash water supply means 2 is operated, the organic matter attached to the nitrifying bacteria carrier 12 can be recovered.

分解手段3は、逆洗水W’に含まれる有機物を可溶化するものであり、硝化手段1と脱窒手段4との間に介設されている。分解手段3には、硝化菌担体12を通過した逆洗水W’が供給され、分解手段3を通過した逆洗水Wは、脱窒手段4に供給される。本実施形態の分解手段3は、分解槽31と、入口弁32と、出口弁33とを備えて構成されている。可溶化した有機物の濃度は、吸光度計等により連続的にモニタリングする。 The decomposition means 3 solubilizes organic substances contained in the backwash water W 2 ′, and is interposed between the nitrification means 1 and the denitrification means 4. The backwashing water W 2 ′ that has passed through the nitrifying bacteria carrier 12 is supplied to the decomposition means 3, and the backwashing water W 3 that has passed through the decomposition means 3 is supplied to the denitrification means 4. The decomposition means 3 of the present embodiment includes a decomposition tank 31, an inlet valve 32, and an outlet valve 33. The concentration of the solubilized organic substance is continuously monitored with an absorptiometer or the like.

分解槽31では、可溶化菌の働きにより有機物が可溶化される。なお、可溶化の手段に制限はなく、酸、アルカリ、酵素、熱、オゾン、紫外線、光触媒、微生物等により有機物を可溶化してもよい。   In the decomposition tank 31, the organic matter is solubilized by the action of the solubilizing bacteria. The solubilization means is not limited, and the organic substance may be solubilized with acid, alkali, enzyme, heat, ozone, ultraviolet light, photocatalyst, microorganism, or the like.

入口弁32は、硝化手段1から分解槽31に至る流路95を開閉するものであり、逆洗時に開弁し、通常時には閉弁する。   The inlet valve 32 opens and closes the flow path 95 from the nitrification means 1 to the decomposition tank 31 and opens during backwashing and closes during normal operation.

出口弁33は、分解槽31から脱窒用流路92に至る流路96を開閉するものであり、分解槽31内の有機物を脱窒手段4に供給する際に開弁し、それ以外は閉弁する。   The outlet valve 33 opens and closes the flow path 96 from the decomposition tank 31 to the denitrification flow path 92, and opens when supplying the organic matter in the decomposition tank 31 to the denitrification means 4, and otherwise Close the valve.

分解槽31内の塩濃度は、1〜2%に調整することが望ましい。塩濃度1〜2%の条件下で可溶化すると、アンモニアの生成が抑制されるようになるので、炭素成分が脱窒菌に必要な有機物として貢献できるようになる。なお、塩濃度3%の条件下で有機物を可溶化すると、アンモニアの生成比率が高まるので(COD/N=7.3)、アンモニアを資化するために炭素成分が利用されてしまう虞がある。   It is desirable to adjust the salt concentration in the decomposition tank 31 to 1 to 2%. When solubilized under the condition of a salt concentration of 1 to 2%, the production of ammonia is suppressed, so that the carbon component can contribute as an organic substance necessary for denitrifying bacteria. In addition, when an organic substance is solubilized under the condition of a salt concentration of 3%, the production ratio of ammonia is increased (COD / N = 7.3), so that there is a possibility that a carbon component is used to assimilate ammonia. .

脱窒手段4は、硝化手段1を介さないで直接的に飼育水槽T中の飼育水Wの供給を受け、飼育水Wに含まれる硝酸態窒素や亜硝酸態窒素を窒素にまで還元(脱窒)するものである。脱窒手段4は、循環流路91とは異なる脱窒用流路92に設けられている。脱窒用流路92は、飼育水槽Tから硝化槽11の上流側の循環流路91に至る流路であり、循環流路91と物理濾過用流路93との分岐点よりも下流側において循環流路91に合流する。すなわち、脱窒手段4を通過した飼育水Wは、その全量が硝化手段1に供給される。 The denitrification means 4 is directly supplied with the breeding water W 0 in the breeding tank T without passing through the nitrification means 1, and reduces nitrate nitrogen and nitrite nitrogen contained in the breeding water W 0 to nitrogen. (Denitrification). The denitrification means 4 is provided in a denitrification channel 92 different from the circulation channel 91. The denitrification flow path 92 is a flow path from the breeding water tank T to the circulation flow path 91 on the upstream side of the nitrification tank 11, and downstream of the branch point between the circulation flow path 91 and the physical filtration flow path 93. It joins the circulation channel 91. That is, the entire amount of the breeding water W 4 that has passed through the denitrification means 4 is supplied to the nitrification means 1.

本実施形態の脱窒手段4は、並列に設けられた複数の脱窒槽41,41,…と、脱窒菌担体42,42,…とを備えて構成されている。   The denitrification means 4 of this embodiment comprises a plurality of denitrification tanks 41, 41,... Provided in parallel and denitrifying bacteria carriers 42, 42,.

脱窒槽41は、飼育水槽Tから取水された飼育水Wを受け入れる密閉型の容器である。脱窒槽41の酸化還元電位(ORP)が低下しすぎると、硫化水素が発生する虞があるので、酸化還元電位は、−300(mV)〜−100(mV)の範囲に調整することが好ましい。なお、酸化還元電位を調整するには、脱窒槽41への飼育水の供給量や炭素源・電子供与体の供給量をコントロールすればよい。また、脱窒槽41における水理学的滞留時間(HRT)は、飼育水槽T中の飼育水Wに含まれる硝酸態窒素や亜硝酸態窒素の濃度に応じて適宜設定すればよい。 The denitrification tank 41 is a sealed container that receives the breeding water W 0 taken from the breeding water tank T. If the oxidation-reduction potential (ORP) of the denitrification tank 41 is too low, hydrogen sulfide may be generated. Therefore, the oxidation-reduction potential is preferably adjusted to a range of −300 (mV) to −100 (mV). . In order to adjust the oxidation-reduction potential, the amount of breeding water supplied to the denitrification tank 41 and the amount of carbon source / electron donor supplied may be controlled. Moreover, hydraulic retention time in the denitrification tank 41 (HRT) may be set as appropriate depending on the concentration of nitrate nitrogen and nitrite nitrogen contained in the rearing water W 0 in the breeding aquarium T.

脱窒菌担体42は、脱窒菌(硝酸還元細菌、硫黄酸化脱窒細菌、硫酸塩還元細菌など)を担持するものであり、脱窒槽41内に充填されている。本実施形態の脱窒菌担体42は、その内部に固定された脱窒菌の脱窒作用により、硝酸態窒素や亜硝酸態窒素を窒素に還元する生物濾過手段として機能する。脱窒菌の多くは、嫌気性条件下において活動・増殖可能な通性嫌気性従属栄養細菌に属することから、脱窒菌担体42の内部は、嫌気性雰囲気に維持することが望ましい。なお、溶存酸素濃度の高い飼育水Wが脱窒手段4に流入するので、脱窒菌担体42の上流側では、好気性雰囲気となるが、脱窒菌担体42内の細菌により酸素が消費され、下流に向かうに従って嫌気状態となるので、脱窒作用は維持される。 The denitrifying carrier 42 carries denitrifying bacteria (nitrate-reducing bacteria, sulfur-oxidizing denitrifying bacteria, sulfate-reducing bacteria, etc.), and is filled in the denitrifying tank 41. The denitrifying carrier 42 of the present embodiment functions as a biological filtration means for reducing nitrate nitrogen or nitrite nitrogen to nitrogen by the denitrifying action of the denitrifying bacteria fixed inside. Since most of the denitrifying bacteria belong to facultative anaerobic heterotrophic bacteria that can act and grow under anaerobic conditions, it is desirable to maintain the inside of the denitrifying carrier 42 in an anaerobic atmosphere. Since the breeding water W 0 having a high dissolved oxygen concentration flows into the denitrification means 4, an aerobic atmosphere is formed upstream of the denitrification carrier 42, but oxygen is consumed by bacteria in the denitrification carrier 42, Since it becomes anaerobic as it goes downstream, the denitrification action is maintained.

脱窒菌担体42は、粒状化したグラニュール汚泥である。粒状化したグラニュール汚泥を使用すれば、高効率処理が可能になるとともに、脱窒槽41のコンパクト化を図ることが可能になるので、コストダウンを図ることが可能となる。このほか、脱窒菌担体42としては、多孔質ガラス、多孔質セラミック、サンゴ砂、天然樹脂製または合成樹脂製のスポンジ、活性炭などの多孔質材料や、天然岩石やガラスなどの無孔質材料を使用することができる。   The denitrifying carrier 42 is granulated granular sludge. If granulated granule sludge is used, high-efficiency processing becomes possible and the denitrification tank 41 can be made compact, so that the cost can be reduced. In addition, as the denitrifying carrier 42, porous materials such as porous glass, porous ceramic, coral sand, sponge made of natural resin or synthetic resin, activated carbon, and nonporous material such as natural rock or glass are used. Can be used.

脱窒菌担体42には、分解手段3で可溶化された有機物が供給される。脱窒菌担体42に供給された有機物は、脱窒菌の炭素源および電子供与体として利用される。可溶化された有機物(炭素源)は、脱窒菌担体42内における炭素率(C/N比)が1.00〜3.00になるように添加することが望ましい。なお、分解手段3から供給される有機物の量が不足している場合などには、脱窒菌の炭素源・電子供与体となる酢酸ナトリウム、酢酸、メタノール、グルコースなどを供給すればよいが、炭素源・電子供与体としては、飼育生物に悪影響を及ぼすことのない酢酸ナトリウム又は酢酸が好適である。炭素源・電子供与体の供給量は、飼育水Wの硝酸濃度に応じて調整する。 The denitrifying carrier 42 is supplied with the organic material solubilized by the decomposition means 3. The organic matter supplied to the denitrifying bacteria carrier 42 is used as a carbon source and electron donor for the denitrifying bacteria. The solubilized organic substance (carbon source) is preferably added so that the carbon ratio (C / N ratio) in the denitrifying carrier 42 is 1.00 to 3.00. In addition, when the amount of organic matter supplied from the decomposition means 3 is insufficient, sodium acetate, acetic acid, methanol, glucose, or the like that serves as a carbon source / electron donor for denitrifying bacteria may be supplied. As the source / electron donor, sodium acetate or acetic acid that does not adversely affect the rearing organism is preferable. The supply amount of the carbon source, the electron donor is adjusted according to the concentration of nitric acid breeding water W 0.

脱窒手段4に供給される飼育水Wは、硝化手段1、脱窒手段4および物理濾過手段5に供給される飼育水Wの合計水量(すなわち、飼育水槽Tから取水される飼育水の水量)の1〜20%に設定している。ちなみに、脱窒手段4に供給される飼育水Wが、飼育水槽Tから取水される飼育水の水量の1%を下回ると、脱窒処理が追い付かなくなる可能性が高まり、20%を上回ると、脱窒手段4における水理学的滞留時間(HRT)が短くなって脱窒処理が十分に行われなくなる可能性が高まるとともに、装置が過大なものになる可能性が高まる。ただし、この数値は飼育水Wの水質をどのレベルに維持するかによっても変わる。なお、脱窒手段4に供給される飼育水Wの水量を硝化手段1に供給される飼育水Wよりも少なくするためには、例えば、脱窒用流路92のポンプ99の吐出量を循環流路91のポンプ97の吐出量よりも小さくするか、あるいは、ポンプ99を間歇的に作動させればよい。 The breeding water W 0 supplied to the denitrification means 4 is the total amount of breeding water W 0 supplied to the nitrification means 1, the denitrification means 4 and the physical filtration means 5 (that is, the breeding water taken from the breeding aquarium T). 1 to 20% of the amount of water). By the way, if the breeding water W 0 supplied to the denitrification means 4 is less than 1% of the amount of breeding water taken from the breeding aquarium T, the possibility that the denitrification process cannot catch up increases and exceeds 20%. In addition, the hydraulic residence time (HRT) in the denitrification means 4 is shortened and the possibility that the denitrification treatment is not sufficiently performed increases, and the possibility that the apparatus becomes excessive increases. However, this value varies depending on which level the quality of the breeding water W 0 is maintained. In order to make the amount of the breeding water W 0 supplied to the denitrification means 4 smaller than the breeding water W 0 supplied to the nitrification means 1, for example, the discharge amount of the pump 99 of the denitrification flow path 92. May be made smaller than the discharge amount of the pump 97 in the circulation channel 91 or the pump 99 may be operated intermittently.

なお、脱窒槽41,41,…の総容積は、水理学的滞留時間(HRT)や目標とすべき硝酸態窒素濃度に応じて設定すればよい。   The total volume of the denitrification tanks 41, 41,... May be set according to the hydraulic residence time (HRT) and the nitrate nitrogen concentration to be targeted.

飼育水W中の硝酸態窒素濃度の目標値は、飼育生物の種類等に応じて適宜設定すればよいが、25(NO3 −N mg/L)以下を目標とするならば、脱窒槽41の総容量を、飼育水槽T中の飼育水Wの容積の2%以上とし、脱窒手段4に供給される飼育水Wの割合を飼育水槽Tから取水される飼育水の5〜20%に設定することが望ましい。なお、脱窒手段4の省スペース化を図るためには、脱窒槽41の総容量を、飼育水槽T中の飼育水Wの容積の5%未満とすることが望ましいので、脱窒手段4の省スペース化を図りながらも飼育水W中の硝酸態窒素濃度を25(NO3 −N mg/L)以下に維持するためには、脱窒手段4に供給される飼育水Wの割合を飼育水槽Tから取水される飼育水の5〜10%に設定することが望ましい。 Target value of the concentration of nitrate nitrogen in breeding water W 0 may be appropriately set according to the type of breeding an organism, but 25 - if the target (NO 3 -N mg / L) or less, de the total capacity of the denitrification tank 41, and at least 2% of the volume of the breeding water W 0 in the breeding aquarium T, 5 a proportion of the breeding water W 0 to be supplied to the denitrification unit 4 from the breeding aquarium T of breeding water is water intake It is desirable to set it to ˜20%. In order to save the space of the denitrification means 4, it is desirable that the total capacity of the denitrification tank 41 is less than 5% of the volume of the breeding water W 0 in the breeding water tank T. while achieving space saving also in the rearing water W 0 nitrate nitrogen concentration of 25 - in order to maintain the (NO 3 -N mg / L) or less, breeding water W 0 to be supplied to the denitrification unit 4 It is desirable to set the ratio of 5 to 10% of the breeding water taken from the breeding tank T.

脱窒槽41内における脱窒菌の優占種は、Thauera属、Sedimenticola属、Arcobactor属などである。なお、タウエラ(Thauera)属は、酢酸資化性脱窒細菌で芳香族化合物の分解菌としても知られている。   The dominant species of denitrifying bacteria in the denitrification tank 41 are the genus Thauera, the genus Sedimenticola, the genus Arcobactor, and the like. The genus Thauera is an acetic acid-assimilating denitrifying bacterium and is also known as an aromatic compound-degrading bacterium.

物理濾過手段5は、タンパク質などの有機物を物理的に捕捉するものである。物理濾過手段5は、硝化手段1と並列に設けられている。すなわち、物理濾過手段5は、硝化手段1を迂回する物理濾過用流路93の途中に設けられていて、物理濾過手段5を通過した飼育水Wは、水温調整手段6に供給される。 The physical filtration means 5 physically captures organic substances such as proteins. The physical filtration means 5 is provided in parallel with the nitrification means 1. That is, the physical filtration means 5 is provided in the middle of a physical filtration flow path 93 that bypasses the nitrification means 1, and the breeding water W 5 that has passed through the physical filtration means 5 is supplied to the water temperature adjustment means 6.

本実施形態の物理濾過手段5は、プロテインスキマー51と、入口弁52と、出口弁53とを備えて構成されている。   The physical filtration means 5 of this embodiment includes a protein skimmer 51, an inlet valve 52, and an outlet valve 53.

プロテインスキマー51は、その内部に発生させた微細な泡を溶存有機物や浮遊懸濁物質に取り付かせ、この泡を浮上させることにより、飼育水Wに含まれる有機物等を除去するものである。すなわち、プロテインスキマー51は、有機物等を物理的に捕捉するものである。 The protein skimmer 51 removes organic substances contained in the breeding water W 0 by attaching fine bubbles generated inside to dissolved organic substances or suspended suspended substances and floating the bubbles. That is, the protein skimmer 51 physically captures organic matter and the like.

入口弁52は、プロテインスキマー51に流入する飼育水Wの水量を調整するものであり、出口弁53は、プロテインスキマー51から物理濾過用流路93に流出する飼育水Wの水量を調整するものである。 The inlet valve 52 adjusts the amount of breeding water W 0 flowing into the protein skimmer 51, and the outlet valve 53 regulates the amount of breeding water W 5 flowing out from the protein skimmer 51 into the physical filtration channel 93. To do.

水温調整手段6は、硝化手段1および物理濾過手段5を通過した飼育水W,Wの水温を適温に調整するものであり、硝化手段1および物理濾過手段5の下流に設けられている。本実施形態の水温調整手段6は、循環流路91の途中に設けられていて、水温調整手段6を通過した飼育水Wは、殺菌手段7に供給される。なお、水温調整手段6の構成に制限はなく、ヒータ、クーラー、熱交換器などにて構成することができる。水温調整を行わない場合には、水温調整手段6を省略してもよい。 The water temperature adjusting means 6 adjusts the water temperature of the breeding water W 1 , W 5 that has passed through the nitrification means 1 and the physical filtration means 5 to an appropriate temperature, and is provided downstream of the nitrification means 1 and the physical filtration means 5. . The water temperature adjusting means 6 of the present embodiment is provided in the middle of the circulation channel 91, and the breeding water W 6 that has passed through the water temperature adjusting means 6 is supplied to the sterilizing means 7. In addition, there is no restriction | limiting in the structure of the water temperature adjustment means 6, It can comprise with a heater, a cooler, a heat exchanger etc. When the water temperature is not adjusted, the water temperature adjusting means 6 may be omitted.

殺菌手段7は、水温調整手段6を通過した飼育水Wに含まれる微生物、細菌、ウイルスなどを死滅させるものであり、水温調整手段6の下流に設けられている。本実施形態の殺菌手段7は、循環流路91の途中に設けられていて、殺菌手段7を通過した飼育水Wは、酸素供給手段8に供給される。なお、殺菌方法に制限はなく、例えば、紫外線、オゾン、塩素などを使用することができる。殺菌を行わない場合には、殺菌手段7を省略してもよい。 The sterilizing means 7 is used to kill microorganisms, bacteria, viruses and the like contained in the breeding water W 6 that has passed through the water temperature adjusting means 6, and is provided downstream of the water temperature adjusting means 6. The sterilizing means 7 of this embodiment is provided in the middle of the circulation channel 91, and the breeding water W 7 that has passed through the sterilizing means 7 is supplied to the oxygen supply means 8. In addition, there is no restriction | limiting in the sterilization method, For example, an ultraviolet-ray, ozone, chlorine etc. can be used. If sterilization is not performed, the sterilization means 7 may be omitted.

酸素供給手段8は、殺菌手段7を通過した飼育水Wに酸素を供給するものであり、殺菌手段7の下流に設けられている。すなわち、酸素供給手段8は、飼育水槽Tに戻すべき飼育水Wの溶存酸素量(DO)や酸化還元電位(ORP)を調整するものである。酸素供給手段8の構成に制限はなく、曝気方式としてもよいし、エアレーション方式としてもよい。なお、酸素供給手段8は、殺菌手段7を通過した飼育水Wが嫌気的である場合に必要な手段であるので、好気的な飼育水Wが安定的に得られるような場合は、省略してもよい。 The oxygen supply means 8 supplies oxygen to the breeding water W 7 that has passed through the sterilization means 7, and is provided downstream of the sterilization means 7. That is, the oxygen supply means 8 is for adjusting the dissolved oxygen amount of breeding water W 8 should be returned to the rearing water tank T (DO) and redox potential (ORP). There is no restriction | limiting in the structure of the oxygen supply means 8, It is good also as an aeration system and it is good also as an aeration system. The oxygen supply means 8 is a means necessary when the breeding water W 7 that has passed through the sterilization means 7 is anaerobic, so that the aerobic breeding water W 7 can be stably obtained. , May be omitted.

循環手段は、流路91〜96と、ポンプ97〜99とを備えて構成されている。なお、本実施形態では、循環流路91の途中(本実施形態では硝化手段1の上流と酸素供給手段8の下流)にポンプ97,98を設け、脱窒用流路92の途中(本実施形態では脱窒手段4の上流)にポンプ99を設けているが、ポンプの位置や個数を限定する趣旨ではない。また、流路91〜96の分岐位置や合流位置も適宜変更することができる。   The circulation means includes flow paths 91 to 96 and pumps 97 to 99. In this embodiment, pumps 97 and 98 are provided in the middle of the circulation passage 91 (in the present embodiment, upstream of the nitrification means 1 and downstream of the oxygen supply means 8), and in the middle of the denitrification passage 92 (this embodiment). Although the pump 99 is provided upstream of the denitrification means 4 in the form, it is not intended to limit the position and number of pumps. Moreover, the branch position and the merge position of the flow paths 91 to 96 can be changed as appropriate.

以上説明した本実施形態に係る水処理装置Aは、硝化菌による硝化と脱窒菌による脱窒とを利用して飼育水を浄化するものであるところ、この水処理装置Aによれば、脱窒手段4を通過した飼育水Wが硝化手段1に供給されるので、安定的・連続的にアンモニア態窒素や硝酸態窒素等を除去することが可能になる。すなわち、水処理装置Aによれば、水換えや水補給の頻度を削減することが可能になり、ひいては、飼育水槽Tの維持管理費用(例えば、海水の取水・運搬費用など)を削減することが可能となる。 The water treatment apparatus A according to this embodiment described above purifies the breeding water using nitrification by nitrifying bacteria and denitrification by denitrifying bacteria. According to this water treatment apparatus A, denitrification is performed. since breeding water W 4 which has passed through the unit 4 is supplied to the nitrification unit 1, it is possible to stably removed, continuously ammonium nitrogen and nitrate nitrogen and the like. That is, according to the water treatment apparatus A, it is possible to reduce the frequency of water change and replenishment, and as a result, to reduce the maintenance cost of the breeding aquarium T (for example, the cost of taking and transporting seawater). Is possible.

また、水処理装置Aによれば、予期せぬ不具合により脱窒手段4において亜硝酸態窒素やアンモニア態窒素が発生した場合であっても、硝化手段1において硝化されるので、亜硝酸態窒素やアンモニア態窒素が飼育水槽Tや排水に流入するリスクを下げることができる。また、硝化菌による硝化は、好気性条件下で行われるため、脱窒手段4において溶存酸素濃度が低下しても、これを回復することができ、したがって、溶存酸素濃度の低い水が飼育水槽Tや排水に流入するリスクを下げることができる。   Further, according to the water treatment apparatus A, even if nitrite nitrogen or ammonia nitrogen is generated in the denitrification means 4 due to an unexpected failure, it is nitrified in the nitrification means 1, so nitrite nitrogen The risk of ammonia nitrogen flowing into the rearing tank T or drainage can be reduced. Further, since nitrification by nitrifying bacteria is carried out under aerobic conditions, even if the dissolved oxygen concentration is lowered in the denitrification means 4, it can be recovered, and therefore water with a low dissolved oxygen concentration is kept in the breeding aquarium. T and the risk of entering wastewater can be reduced.

本実施形態では、硝化手段1を循環流路91の途中に設け、硝化手段1を通過した飼育水の全部を飼育水槽Tに環流させているので、海水の補給量を削減あるいはゼロにすることが可能となる。また、循環流路91とは異なる流路に脱窒手段4を設けているので、脱窒手段4のメンテナンス中においても硝化手段1による飼育水の浄化を継続することができる。このようにすると、脱窒手段のメンテナンス中においても硝化手段1による飼育水Wの浄化を継続することができる。 In this embodiment, the nitrification means 1 is provided in the middle of the circulation channel 91, and all the breeding water that has passed through the nitrification means 1 is circulated to the breeding aquarium T, so that the amount of seawater replenishment is reduced or zero. Is possible. Further, since the denitrification means 4 is provided in a flow path different from the circulation flow path 91, the purification of the breeding water by the nitrification means 1 can be continued even during maintenance of the denitrification means 4. In this way, it is possible to continue the purification of the rearing water W 0 by nitrification unit 1 during maintenance denitrification unit.

また、水処理装置Aによれば、硝化菌担体12に捕捉された有機物を回収し、回収した有機物を脱窒菌の炭素源(餌)として利用することができるので、硝化菌担体12の逆洗に伴って発生する汚濁水を下水処理する手間を省略あるいは軽減することが可能になり、さらには、脱窒菌に必要な有機物や電子供与体の節約につながるので、飼育水Wの浄化にかかるコストを削減することが可能になる。 Moreover, according to the water treatment apparatus A, the organic matter captured by the nitrifying bacteria carrier 12 can be recovered, and the recovered organic matter can be used as a carbon source (food) for denitrifying bacteria. it is possible to omit or reduce the trouble of sewage polluted water generated with the news, because leads to savings of organic materials and electron donor required for denitrifying bacteria, according to the purifying breeding water W 0 Costs can be reduced.

しかも、水処理装置Aでは、硝化菌担体12を逆洗して得た有機物が分解手段3において分解され、可溶化された有機物が脱窒手段4に供給されるので、脱窒菌に取り込まれ易くなり、ひいては、脱窒菌の活動・増殖が活発になる。   Moreover, in the water treatment apparatus A, the organic matter obtained by back-washing the nitrifying bacteria carrier 12 is decomposed by the decomposition means 3 and the solubilized organic matter is supplied to the denitrification means 4, so that it is easily taken into the denitrification bacteria. As a result, the activity and proliferation of denitrifying bacteria become active.

また、水処理装置Aによれば、複数の脱窒槽41,41,…を並列に設けたので、単一の脱窒槽41を設けた場合に比べて、脱窒処理量を増やすことが可能となる。   Moreover, according to the water treatment apparatus A, since a plurality of denitrification tanks 41, 41,... Are provided in parallel, it is possible to increase the amount of denitrification compared to the case where a single denitrification tank 41 is provided. Become.

また、本実施形態では、飼育水槽Tから取水される飼育水の水量の1〜20%を脱窒手段4に供給したが、このようにすると、飼育水槽T中の窒素化合物の濃度を、飼育生物の生育に適した濃度に保つことができる。   In this embodiment, 1 to 20% of the amount of breeding water taken from the breeding aquarium T is supplied to the denitrification means 4. In this way, the concentration of the nitrogen compound in the breeding aquarium T is raised. It can be kept at a concentration suitable for the growth of organisms.

なお、本実施形態では、硝化手段1内の硝化菌担体12を逆洗する場合を例示したが、硝化菌担体12とともに、若しくは硝化菌担体12に代えて、物理濾過手段5を逆洗してもよい。例えば、図示は省略するが、物理濾過手段5に逆洗水供給手段2と分解手段3とを接続すれば、逆洗水供給手段2から送り出された逆洗水により、物理濾過手段5のプロテインスキマー51が逆洗され、プロテインスキマー51を通過した逆洗水が分解手段3に供給されるようになる。なお、プロテインスキマー51を逆洗する際には、入口弁52および出口弁53を閉弁する。   In this embodiment, the case where the nitrifying carrier 12 in the nitrifying unit 1 is backwashed is illustrated, but the physical filtering unit 5 is backwashed together with or in place of the nitrifying carrier 12. Also good. For example, although illustration is omitted, if the backwash water supply means 2 and the decomposition means 3 are connected to the physical filtration means 5, the protein of the physical filtration means 5 is obtained by the backwash water sent from the backwash water supply means 2. The skimmer 51 is backwashed, and the backwash water that has passed through the protein skimmer 51 is supplied to the decomposition means 3. When the protein skimmer 51 is backwashed, the inlet valve 52 and the outlet valve 53 are closed.

また、本実施形態では、飼育水槽Tから取水した飼育水Wの一部を脱窒手段4に供給し、脱窒手段4を通過した飼育水Wを飼育水槽Tから取水した飼育水Wとともに硝化手段1に供給する場合を例示したが、図2に示す水処理装置A’のように、硝化槽11の下流側から硝化槽11の上流側に至る脱窒用流路92’に脱窒手段4を設け、硝化手段1を通過した飼育水Wの一部を脱窒手段4に供給し、脱窒手段4を通過した飼育水Wの全量を飼育水槽Tから取水した飼育水Wとともに硝化手段1に再び供給してもよい。水処理装置A’における脱窒手段4は、硝化手段1を介して飼育水槽T中の飼育水Wの供給を受け、硝化手段1は、飼育水槽T中の飼育水Wの供給を直接的に受けるとともに、脱窒手段4を通過した飼育水W(脱窒菌による脱窒処理がなされた飼育水W)の供給を受ける。硝化手段1を通過した飼育水W(硝化菌による硝化処理がなされた飼育水W)の一部は、脱窒手段4に供給され、残部は、飼育水槽Tに環流する。なお、脱窒用流路92’は、循環流路91と物理濾過用流路93との分岐点よりも下流側において循環流路91に合流するので、脱窒手段4を通過した飼育水Wの全部が硝化手段1に供給される。 In the present embodiment, a part of the breeding water W 0 taken from the breeding water tank T is supplied to the denitrification means 4, and the breeding water W 4 that has passed the denitrification means 4 is taken from the breeding water tank T. Although the case of supplying to the nitrification means 1 together with 0 is illustrated, the denitrification flow path 92 ′ extending from the downstream side of the nitrification tank 11 to the upstream side of the nitrification tank 11 as in the water treatment apparatus A ′ shown in FIG. the denitrification unit 4 is provided, a part of the breeding water W 1 which has passed through the nitrification means 1 is supplied to the denitrification unit 4, and intake from breeding aquarium T the total amount of breeding water W 4 which has passed through the denitrification device 4 rearing with water W 0 may be supplied again to the nitrification unit 1. The denitrification means 4 in the water treatment apparatus A ′ is supplied with the breeding water W 0 in the breeding tank T through the nitrification means 1, and the nitrification means 1 directly supplies the breeding water W 0 in the breeding tank T manner with receiving a supplied with breeding water W 4 which has passed through the denitrification device 4 (rearing water W 4 denitrification treatment by denitrifying bacteria was made). Some of nitrifying means 1 breeding water W 1 which has passed through the (breeding water nitrification treatment by nitrification bacteria is made W 1) is supplied to the denitrification unit 4, the balance is reflux breeding aquarium T. The denitrification flow path 92 ′ joins the circulation flow path 91 on the downstream side of the branch point between the circulation flow path 91 and the physical filtration flow path 93. Therefore, the breeding water W that has passed through the denitrification means 4 is used. All of 4 is supplied to the nitrification means 1.

脱窒手段4に供給される飼育水Wの量は、硝化手段1を通過した飼育水Wの1〜20%、より好ましくは5〜10%に設定することが望ましい。すなわち、硝化手段1を通過した飼育水Wの1〜20%、より好ましくは5〜10%を脱窒手段4に供給し、残りを水温調整手段6に供給することが望ましい。このようにすると、飼育水槽T中の窒素化合物の濃度を、飼育生物の生育に適した濃度に保つことができる。 The amount of the breeding water W 1 supplied to the denitrification unit 4 is desirably set to 1 to 20%, more preferably 5 to 10% of the breeding water W 1 that has passed through the nitrification unit 1. That is, it is desirable to supply 1 to 20%, more preferably 5 to 10%, of the breeding water W 1 that has passed through the nitrification means 1 to the denitrification means 4 and supply the rest to the water temperature adjustment means 6. If it does in this way, the density | concentration of the nitrogen compound in the breeding water tank T can be kept at the density | concentration suitable for growth of a breeding organism.

A,A’ 水処理装置
1 硝化手段
2 逆洗水供給手段
3 分解手段
4 脱窒手段
5 物理濾過手段
91 循環流路
92 脱窒用流路
T 飼育水槽
飼育水
A, A 'Water treatment apparatus 1 Nitrification means 2 Backwash water supply means 3 Decomposition means 4 Denitrification means 5 Physical filtration means 91 Circulation flow path 92 Denitrification flow path T Breeding water tank W 0 Breeding water

Claims (2)

飼育水槽から始まり前記飼育水槽に戻る循環流路と、
前記循環流路の途中に設けられ、硝化菌による硝化が行われる硝化手段と、
前記飼育水槽から前記硝化手段の上流側に至る脱窒用流路と、
前記脱窒用流路に設けられ、脱窒菌による脱窒が行われる脱窒手段と、を具備する水処理装置であって、
前記脱窒手段は、前記硝化手段を介さないで飼育水槽中の飼育水の供給を受け、
前記硝化手段は、前記飼育水槽中の飼育水の供給を受けるとともに、前記脱窒菌による脱窒処理がなされた飼育水の供給を受け、
前記硝化菌による硝化処理がなされた飼育水の全部が前記飼育水槽に環流することを特徴とする水処理装置。
A circulation channel starting from the rearing tank and returning to the rearing tank;
Nitrification means provided in the middle of the circulation flow path for nitrification by nitrifying bacteria,
A flow path for denitrification from the rearing tank to the upstream side of the nitrification means,
A denitrification means provided in the denitrification flow path and denitrifying by denitrifying bacteria, and a water treatment device comprising:
The denitrification unit is supplied with breeding water breeding water tank without going through the nitrification unit,
The nitrification means receives the supply of breeding water in the breeding aquarium, and receives breeding water that has been denitrified by the denitrifying bacteria,
A water treatment apparatus, wherein all of the breeding water that has been nitrified by the nitrifying bacteria is circulated to the breeding aquarium.
飼育水槽から始まり前記飼育水槽に戻る循環流路と、
前記循環流路の途中に設けられ、硝化菌による硝化が行われる硝化手段と、
前記硝化手段の下流側から前記硝化手段の上流側に至る脱窒用流路と、
前記脱窒用流路に設けられ、脱窒菌による脱窒が行われる脱窒手段と、を具備する水処理装置であって、
前記脱窒手段は、前記硝化手段を介して飼育水槽中の飼育水の供給を受け、
前記硝化手段は、前記飼育水槽中の飼育水の供給を受けるとともに、前記脱窒菌による脱窒処理がなされた飼育水の供給を受け、
前記硝化菌による硝化処理がなされた飼育水の一部が前記脱窒手段に供給され、残部が前記飼育水槽に環流することを特徴とする水処理装置。
A circulation channel starting from the rearing tank and returning to the rearing tank;
Nitrification means provided in the middle of the circulation flow path for nitrification by nitrifying bacteria,
A flow path for denitrification from the downstream side of the nitrification means to the upstream side of the nitrification means,
A denitrification means provided in the denitrification flow path and denitrifying by denitrifying bacteria, and a water treatment device comprising:
The denitrification unit is supplied with breeding water of rearing water tank via the nitrification unit,
The nitrification means receives the supply of breeding water in the breeding aquarium, and receives breeding water that has been denitrified by the denitrifying bacteria,
A water treatment apparatus characterized in that part of the breeding water that has been nitrified by the nitrifying bacteria is supplied to the denitrification means, and the remainder is circulated to the breeding aquarium.
JP2012058107A 2012-03-15 2012-03-15 Water treatment equipment Active JP5935076B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP2012058107A JP5935076B2 (en) 2012-03-15 2012-03-15 Water treatment equipment

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP2012058107A JP5935076B2 (en) 2012-03-15 2012-03-15 Water treatment equipment

Publications (2)

Publication Number Publication Date
JP2013188719A JP2013188719A (en) 2013-09-26
JP5935076B2 true JP5935076B2 (en) 2016-06-15

Family

ID=49389558

Family Applications (1)

Application Number Title Priority Date Filing Date
JP2012058107A Active JP5935076B2 (en) 2012-03-15 2012-03-15 Water treatment equipment

Country Status (1)

Country Link
JP (1) JP5935076B2 (en)

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104118945B (en) * 2013-04-24 2016-01-20 广州金水动物保健品有限公司 A kind of compound micro-ecological preparation of degrading cultivation water nitrite and application
JP6219126B2 (en) * 2013-10-29 2017-10-25 株式会社Frdジャパン Filtration system for closed water area and method for filtering closed water area using the same
CN104322419B (en) * 2014-11-10 2017-01-11 中国水产科学研究院黄海水产研究所 Factorized totally-closed circulating aquaculture system of sea cucumbers
CN105540867B (en) * 2015-12-14 2018-12-21 中国水产科学研究院黄海水产研究所 Cultivate floc sedimentation nutrients formula and preparation method and the application of biological flocculation and beneficial bacterium

Family Cites Families (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS60257900A (en) * 1984-06-04 1985-12-19 Shimizu Constr Co Ltd Treatment of nitrogen-containing waste water
JPH05309391A (en) * 1992-05-12 1993-11-22 Kubota Corp Water treatment method
JPH05337494A (en) * 1992-06-08 1993-12-21 Kubota Corp Biological nitrogen removing equipment
JP3155458B2 (en) * 1996-03-26 2001-04-09 日本碍子株式会社 Nitrification and denitrification treatment method of organic wastewater
JPH10277590A (en) * 1997-04-10 1998-10-20 Nkk Corp Bio-membrane filtering type dinitrification-nitrification apparatus
JPH11123034A (en) * 1997-10-22 1999-05-11 Mitsubishi Heavy Ind Ltd Aquatic life-rearing system
JP3794838B2 (en) * 1998-10-28 2006-07-12 三菱重工業株式会社 Minamata creature breeding equipment and breeding water purification method
JP4092454B2 (en) * 2000-12-20 2008-05-28 日立造船株式会社 Water treatment method
JP5414056B2 (en) * 2010-02-26 2014-02-12 大成建設株式会社 Water treatment apparatus and water treatment method

Also Published As

Publication number Publication date
JP2013188719A (en) 2013-09-26

Similar Documents

Publication Publication Date Title
JP5847376B2 (en) Closed circulation culture method for seafood
CN112209573B (en) Breeding tail water treatment system
TWI568683B (en) Water treatment method and method for producing ultrapure water
KR20130041615A (en) Method for simultaneous removal of nitrogend and organic in the waste water using membrane bioreactor
JP5935076B2 (en) Water treatment equipment
CN112616766B (en) Improved circulating water aquaculture system and tail water treatment method thereof
JP6129709B2 (en) Water purification system for aquarium
Singer et al. A novel approach to denitrification processes in a zero-discharge recirculating system for small-scale urban aquaculture
US9085475B2 (en) Ultrapure water producing method and apparatus
JP2003047990A (en) Biological denitrifier
JP5414056B2 (en) Water treatment apparatus and water treatment method
JP4092454B2 (en) Water treatment method
JP3887214B2 (en) Circulating aquaculture equipment
JP3887329B2 (en) Seafood farming equipment
JP6742128B2 (en) Closed circulation type land aquaculture system coexisting with ozone treatment and biological filtration treatment and its control method
JP2008200637A (en) Water treatment plant, water treatment facility, and water treating method
JP2000126794A (en) Aquatic organism feeding apparatus and method for purifying feeding water
JP3887256B2 (en) Closed circulation aquaculture system
JP3316487B2 (en) Aquatic breeding water purification system
JP2635432B2 (en) Breeding equipment
JP2002223667A (en) Rearing equipment for fish and shell fish
JP2002034385A (en) Overland culture method by circulating culture water and apparatus therefor
KR100753993B1 (en) Advanced swage and waste water treatment method and apparatus use of selected and cultured bacillus species bacteria etc
KR102663413B1 (en) Method and system for supplying and filtering aquaculture water
JP2005218995A (en) Biological treatment method for organic waste water

Legal Events

Date Code Title Description
A621 Written request for application examination

Free format text: JAPANESE INTERMEDIATE CODE: A621

Effective date: 20150116

A521 Written amendment

Free format text: JAPANESE INTERMEDIATE CODE: A821

Effective date: 20150116

A131 Notification of reasons for refusal

Free format text: JAPANESE INTERMEDIATE CODE: A131

Effective date: 20151117

A521 Written amendment

Free format text: JAPANESE INTERMEDIATE CODE: A523

Effective date: 20160115

TRDD Decision of grant or rejection written
A01 Written decision to grant a patent or to grant a registration (utility model)

Free format text: JAPANESE INTERMEDIATE CODE: A01

Effective date: 20160329

A61 First payment of annual fees (during grant procedure)

Free format text: JAPANESE INTERMEDIATE CODE: A61

Effective date: 20160408

R150 Certificate of patent or registration of utility model

Ref document number: 5935076

Country of ref document: JP

Free format text: JAPANESE INTERMEDIATE CODE: R150

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250