JP3741219B2 - Simple selection method and apparatus for separation membrane module - Google Patents

Simple selection method and apparatus for separation membrane module Download PDF

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JP3741219B2
JP3741219B2 JP2003283107A JP2003283107A JP3741219B2 JP 3741219 B2 JP3741219 B2 JP 3741219B2 JP 2003283107 A JP2003283107 A JP 2003283107A JP 2003283107 A JP2003283107 A JP 2003283107A JP 3741219 B2 JP3741219 B2 JP 3741219B2
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membrane module
ultrafiltration membrane
dioxins
water
separation membrane
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伸幸 恒岡
瑞彦 南山
啓年 森
正彦 桑原
正憲 松下
幸夫 渡辺
泰 森川
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National Research and Development Agency Public Works Research Institute
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本発明は、排水中のダイオキシン類を確実に基準値以下にして放流できる分離膜モジュールの簡易選定方法及び簡易選定装置に関するものである。   The present invention relates to a simple selection method and a simple selection device for a separation membrane module that can discharge dioxins in waste water with a reference value or less reliably.

ダイオキシン類は水に難溶性であり、水中では主に懸濁物質に吸着されて存在している。このため、ダイオキシン類を除去するには、懸濁物質(以下、「SS」とも言う)の除去が有効であり、例えば凝集沈殿法、砂濾過処理法、生物濾過法又は膜分離処理法などで低減化が図られている(特開2000−210663号公報)。   Dioxins are sparingly soluble in water and are mainly adsorbed by suspended substances in water. For this reason, in order to remove dioxins, it is effective to remove suspended substances (hereinafter also referred to as “SS”). For example, coagulation sedimentation, sand filtration, biological filtration or membrane separation treatment Reduction is achieved (Japanese Patent Laid-Open No. 2000-210663).

従来、ダイオキシン類を含む排水を浄化する分離膜モジュールの選定方法については、土壌や底質の汚染状況などを考慮して分離膜モジュールの選定を行っていた。具体的には、実際にダイオキシン類を含む排水を複数の分離膜モジュールで処理し、濾過水中のSSを完全に除去できる分離膜モジュールが事前実験により選定されていた。
特開2000−210663号公報(請求項1)
Conventionally, as a method for selecting a separation membrane module for purifying wastewater containing dioxins, the separation membrane module has been selected in consideration of the soil and sediment contamination. Specifically, a separation membrane module that can treat waste water containing dioxins with a plurality of separation membrane modules and completely remove SS in the filtered water has been selected by prior experiments.
JP 2000-210663 A (Claim 1)

しかしながら、SSは、水の中に浮遊する水に溶けない浮遊物質と定義され、その浮遊物質の量は通常、昭和46年環境庁告示第59号に規定する方法に従い、1リットルの水を孔径1μmのガラス繊維濾紙を用いて濾過した後、濾紙上に残ったものの質量で表されるものである。このため、従来の事前実験による分離膜モジュールの選定方法においては、その濾過水中のSSがゼロ表示であったとしても、例えば0.1μm以下の超微小懸濁物質に吸着されているダイオキシン類が存在している可能性があり、信頼性が欠けるものであった。また、事前実験を行うことなく、膜孔径が極力小さい限外濾過膜モジュールを選定することも考えられるが、この場合、浄化効率が低減すると共に過剰品質となる恐れがある。   However, SS is defined as suspended matter that is not soluble in water floating in water, and the amount of suspended matter is usually 1 liter of water with a pore size according to the method prescribed in Environmental Agency Notification No. 59 of 1971. It is represented by the mass of what remained on the filter paper after filtration using 1 μm glass fiber filter paper. For this reason, in the conventional method for selecting a separation membrane module based on preliminary experiments, even if the SS in the filtered water is zero, for example, dioxins adsorbed on an ultrafine suspended substance of 0.1 μm or less. May exist and was unreliable. Further, it is conceivable to select an ultrafiltration membrane module having a membrane pore diameter as small as possible without conducting a preliminary experiment. In this case, however, the purification efficiency may be reduced and the quality may be excessive.

従って、本発明の目的は、排水中のダイオキシン類を確実に基準値以下にして放流できる分離膜モジュールの簡易選定方法及び簡易選定装置を提供するものである。   Accordingly, an object of the present invention is to provide a simple selection method and a simple selection apparatus for a separation membrane module that can discharge dioxins in waste water with a reference value or less reliably.

かかる実情において、本発明者らは鋭意検討を行った結果、0.1μm以下の超微小懸濁物質は限外濾過膜で除去できること、ダイオキシン類を含む排水を膜孔径の異なる複数の限外濾過膜モジュールに通水して、膜孔径と濾過水中のダイオキシン類濃度の関係を求め、放流される排水中のダイオキシン類を基準値以下にする限外濾過膜モジュールを選定し、これを浄化装置に装着すれば、ダイオキシン類を確実に除去できること、この選定方法は限外濾過膜モジュール以外の分離膜モジュールにも適用できることなどを見出し、本発明を完成するに至った。   Under such circumstances, the present inventors have conducted intensive studies. As a result, ultra-fine suspended substances of 0.1 μm or less can be removed by ultrafiltration membranes, and wastewater containing dioxins can be removed from a plurality of ultrafine membranes having different membrane pore diameters. Pass the water through the filtration membrane module, find the relationship between the membrane pore size and the dioxin concentration in the filtered water, select the ultrafiltration membrane module that makes the dioxins in the discharged water below the standard value, and purify it It has been found that dioxins can be reliably removed by attaching to the membrane, and that this selection method can be applied to separation membrane modules other than ultrafiltration membrane modules, and the present invention has been completed.

すなわち、本発明は、粒子径0.1μm以下の微小懸濁物質及びダイオキシン類を含む土壌排水の浄化処理に使用する限外濾過膜モジュールの選定方法であって、該ダイオキシン類を含む土壌排水を膜孔径が0.003μm〜0.06μmの範囲であって且つ異なる複数の限外濾過膜モジュールを並列に接続して通水して、膜孔径と濾過水中のダイオキシン類濃度の関係を求め、該濾過水中のダイオキシン類を基準値以下にする限外濾過膜モジュールを選定することを特徴とする分離膜モジュールの簡易選定方法を提供するものである。 That is, the present invention provides a method for selecting a ultrafiltration membrane modules used for purification treatment of soil waste water containing less fine suspended solids and dioxins particle diameter 0.1 [mu] m, the soil drain containing the dioxins A plurality of different ultrafiltration membrane modules having a membrane pore diameter in the range of 0.003 μm to 0.06 μm and connected in parallel to determine the relationship between the membrane pore diameter and the concentration of dioxins in the filtrate, The present invention provides a simple method for selecting a separation membrane module, which comprises selecting an ultrafiltration membrane module that makes dioxins in filtered water below a reference value.

また、本発明は、粒子径0.1μm以下の微小懸濁物質及びダイオキシン類を含む土壌排水が流入する原水供給管と、膜孔径が0.003μm〜0.06μmの範囲であって且つ異なる複数の限外濾過膜モジュールを並列に配置してなる限外濾過膜モジュール群と、各限外濾過膜モジュール毎に付設される濾過水流出管とを備えることを特徴とする分離膜モジュールの簡易選定装置を提供するものである。 In addition, the present invention provides a raw water supply pipe into which soil drainage containing a microsuspended substance having a particle size of 0.1 μm or less and dioxins flows , and a plurality of different pore sizes in the range of 0.003 μm to 0.06 μm. ultrafiltration membrane module group an ultrafiltration membrane module formed by arranging in parallel, simplified selection of the separation membrane module, comprising a filtered water outlet pipe, which is attached to each ultrafiltration membrane module A device is provided.

本発明の分離膜モジュールの簡易選定方法によれば、実際に処理するダイオキシン類を含む排水を用い、膜孔径の異なる複数個の分離膜モジュールを並列に配置した装置で最適分離膜モジュールを選定し、該選定された分離膜モジュールを浄化装置に装着するため、ダイオキシン類濃度が排水基準値以下に確実に低減された排水を放流できる。また、分離膜モジュールの選定の際、個別に1本毎選定する場合は、1サンプル1ヶ月、合計で数ヶ月要し現実的ではないが、本発明の簡易選定方法は複数個のサンプルが同時に採取できる点で選定時間の短縮を図ることができる。本発明の分離膜モジュールの簡易選定装置によれば、バルブの切り替え操作だけで分離膜モジュールの選定が行えるため便利である。   According to the simple method for selecting a separation membrane module of the present invention, an optimum separation membrane module is selected by using an apparatus in which a plurality of separation membrane modules having different membrane pore diameters are arranged in parallel using wastewater containing dioxins to be actually processed. Since the selected separation membrane module is attached to the purification device, the wastewater whose dioxins concentration is reliably reduced below the wastewater reference value can be discharged. In addition, when selecting each separation membrane module individually, it is not practical because it takes several months in total, one sample per month, but the simple selection method of the present invention allows a plurality of samples to be selected simultaneously. Selection time can be shortened in terms of collection. The simple separation membrane module selection apparatus of the present invention is convenient because the separation membrane module can be selected only by switching the valve.

本発明の分離膜モジュールの簡易選定方法は、ダイオキシン類を含む排水の浄化処理に使用する分離膜モジュールの選定方法である。ダイオキシン類を含む排水としては、特に制限されず、ダイオキシン類に汚染された底質や土壌を脱水、減量化する袋詰脱水処理工法の脱水過程で発生する排水、一般的なダイオキシン類汚染土壌対策現場から発生する排水などが挙げられる。   The simple selection method of the separation membrane module of this invention is a selection method of the separation membrane module used for the purification process of the waste_water | drain containing dioxins. Wastewater containing dioxins is not particularly limited, and wastewater generated during the dewatering process of the bagging dewatering method that dehydrates and reduces the soil and soil contaminated with dioxins, and general measures against dioxin-contaminated soil For example, wastewater generated from the site.

分離膜モジュールとしては、限外濾過膜モジュールが挙げられる。限外濾過膜は大きさ0.002μm程度の微小浮遊物質でも除去できる点で好ましい。モジュールとは工業的に利用可能な型式に分離膜を収納した装置を言い、一般的には分離膜と支持構造物から構成される。限外濾過膜モジュール(Ultrafiltration)としては、中空糸型限外濾過膜モジュールが、濾過速度が高く、且つ省スペース化が図れる点で好ましい。   Examples of the separation membrane module include an ultrafiltration membrane module. The ultrafiltration membrane is preferable in that it can remove even minute suspended substances having a size of about 0.002 μm. A module refers to an apparatus in which a separation membrane is housed in an industrially available type, and generally includes a separation membrane and a support structure. As an ultrafiltration membrane module (Ultrafiltration), a hollow fiber type ultrafiltration membrane module is preferable in terms of high filtration speed and space saving.

本発明の分離膜モジュールの簡易選定方法は、該ダイオキシン類を含む排水を膜孔径の異なる複数の分離膜モジュールに通水して、膜孔径と濾過水中のダイオキシン類濃度の関係を求め、該濾過水中のダイオキシン類を基準値以下にする分離膜モジュールを選定する。この簡易選定方法を図1を参照して説明する。図1は本発明の限外濾過膜モジュールの簡易選定方法を実施する簡易選定装置の模式図である。   The simple selection method of the separation membrane module of the present invention is such that drainage containing the dioxins is passed through a plurality of separation membrane modules having different membrane pore sizes, and the relationship between the membrane pore size and the dioxin concentration in the filtrate is obtained. Select a separation membrane module that reduces dioxins in water below the standard value. This simple selection method will be described with reference to FIG. FIG. 1 is a schematic diagram of a simple selection apparatus for carrying out the simple method for selecting an ultrafiltration membrane module of the present invention.

図1中、限外濾過膜モジュールの簡易選定装置10は、膜孔径の異なる4つの限外濾過膜モジュール10a、10b、10c、10dを並列に接続して形成されるものである。すなわち、原水供給管11から分岐した4本の分岐管14a、14b、14c、14dは弁a、b、c、dを介して限外濾過膜モジュール10a、10b、10c、10dの原水流入口にそれぞれ接続されている。濃縮水流出管12から分岐した4本の分岐管15a、15b、15c、15dは弁e、f、g、hを介して限外濾過膜モジュール10a、10b、10c、10dの濃縮水流出口にそれぞれ接続され、濃縮水流出管12の他端は原水供給管11に接続され、限外濾過膜モジュール10a、10b、10c、10dから排出されるそれぞれの濃縮水が原水に戻るようになっている。また、限外濾過膜モジュール10a、10b、10c、10dの濾過水流出口には、濾過水流出管13a、13b、13c、13dがそれぞれ接続されている。簡易選定装置10を形成する限外濾過膜モジュールの設置本数は特に限定されず、膜孔径と濾過水中のダイオキシン類濃度の関係を求め、該濾過水中のダイオキシン類を基準値以下にする限外濾過膜モジュールが選定できれば3本であってもよいし、必要により5本以上となることもある。また、濃縮水流出管12は原水供給管11に戻すことなく、濃縮水は排水として系外へ流してもよい。   In FIG. 1, the ultrafiltration membrane module simple selection device 10 is formed by connecting four ultrafiltration membrane modules 10a, 10b, 10c, and 10d having different membrane pore diameters in parallel. That is, the four branch pipes 14a, 14b, 14c, 14d branched from the raw water supply pipe 11 are connected to the raw water inlets of the ultrafiltration membrane modules 10a, 10b, 10c, 10d via the valves a, b, c, d. Each is connected. The four branch pipes 15a, 15b, 15c, 15d branched from the concentrated water outflow pipe 12 are respectively connected to the concentrated water outlets of the ultrafiltration membrane modules 10a, 10b, 10c, 10d via valves e, f, g, h. The other end of the concentrated water outflow pipe 12 is connected to the raw water supply pipe 11 so that each concentrated water discharged from the ultrafiltration membrane modules 10a, 10b, 10c, and 10d returns to the raw water. In addition, filtrate water outlet pipes 13a, 13b, 13c, and 13d are connected to the filtrate water outlets of the ultrafiltration membrane modules 10a, 10b, 10c, and 10d, respectively. The number of installed ultrafiltration membrane modules forming the simple selection device 10 is not particularly limited, and the relationship between the membrane pore diameter and the dioxin concentration in the filtered water is determined, and the ultrafiltration is performed so that the dioxins in the filtered water are equal to or less than the reference value. If the membrane module can be selected, the number may be three, or may be five or more if necessary. Further, the concentrated water outflow pipe 12 may flow out of the system as drainage without returning to the raw water supply pipe 11.

簡易選定装置10を形成する限外濾過膜モジュール10a、10b、10c、10dは、膜孔径の異なるものであり、例えば順に膜孔径0.06μm、0.01μm、0.005μm、0.003μmのものである。膜孔径は分画分子量に対応する分離対象物質の大きさ(μm)であり、通常限外濾過膜モジュールのメーカーから提示されている。   The ultrafiltration membrane modules 10a, 10b, 10c, and 10d forming the simple selection device 10 have different membrane pore diameters, for example, those having membrane pore sizes of 0.06 μm, 0.01 μm, 0.005 μm, and 0.003 μm in order. It is. The membrane pore size is the size (μm) of the substance to be separated corresponding to the fractional molecular weight, and is usually provided by the manufacturer of the ultrafiltration membrane module.

次に、簡易選定装置10を用いた限外濾過膜モジュールの簡易選定方法を図1を参照して説明する。先ず、浄化の対象となる例えば工事現場から採取したダイオキシン類を含む排水を、原水供給管11を通して供給する。この際、弁a〜hは全て開とする。ダイオキシン類を含む排水は、限外濾過膜モジュール10a、10b、10c、10dで処理され、濃縮水は分岐管15a、15b、15c、15dをそれぞれ通り、濃縮水流出管12に集まり原水供給管11に戻される。一方、膜面を透過した濾過水は、濾過水流出管13a、13b、13c、13dを通り、図では省略する清浄なサンプル瓶に採取される。   Next, a simple method for selecting an ultrafiltration membrane module using the simple selection device 10 will be described with reference to FIG. First, waste water containing dioxins collected from, for example, a construction site to be purified is supplied through the raw water supply pipe 11. At this time, the valves a to h are all opened. The waste water containing dioxins is treated by the ultrafiltration membrane modules 10a, 10b, 10c, and 10d, and the concentrated water passes through the branch pipes 15a, 15b, 15c, and 15d, and gathers in the concentrated water outflow pipe 12 to be the raw water supply pipe 11 Returned to On the other hand, the filtered water that has passed through the membrane surface passes through the filtered water outlet pipes 13a, 13b, 13c, and 13d, and is collected in a clean sample bottle that is omitted in the drawing.

簡易選定装置10を用いた限外濾過膜モジュールの簡易選定方法において、該ダイオキシン類を含む排水を限外濾過膜モジュール10a、10b、10c、10dに同時に通水する方法に代えて、個別に通水する方法を用いてもよい。すなわち、弁a、eを開とし、弁b〜d及び弁f〜hを閉とし、該ダイオキシン類を含む排水を限外濾過膜モジュール10aのみに通水して、濾過水流出管13aから濾過水を得る。次いで、弁b、fを開とし、弁a、c〜e及び弁g、hを閉とし、該ダイオキシン類を含む排水を限外濾過膜モジュール10bのみに通水して、濾過水流出管13bから濾過水を得る。次いでこの操作を順次繰り返して、限外濾過膜モジュール10c、10dの濾過水をそれぞれ得る方法である。   In the simple selection method of the ultrafiltration membrane module using the simple selection device 10, instead of the method of simultaneously passing the wastewater containing the dioxins through the ultrafiltration membrane modules 10a, 10b, 10c, and 10d, the wastewater is individually passed. A watering method may be used. That is, the valves a and e are opened, the valves b to d and the valves f to h are closed, and the wastewater containing the dioxins is passed through only the ultrafiltration membrane module 10a and filtered from the filtrate outlet pipe 13a. Get water. Next, the valves b and f are opened, the valves a, c to e and the valves g and h are closed, and the waste water containing the dioxins is passed through only the ultrafiltration membrane module 10b, and the filtered water outflow pipe 13b. To obtain filtered water. Subsequently, this operation is sequentially repeated to obtain filtrates of the ultrafiltration membrane modules 10c and 10d, respectively.

4つの清浄なサンプル瓶に採取された濾過水は、分析され濾過水中のダイオキシン類濃度が測定される。ダイオキシン類濃度の測定方法は公知の方法が適用され、その表示は毒性等価係数(WHO−1997−TEF)を用いた等価毒性量(pg-TEQ/L)で示される。次いで、膜孔径と濾過水中のダイオキシン類濃度の相関関係を求める。膜孔径と濾過水中のダイオキシン類濃度は通常、関係式により表すことができる。当該関係式にダイオキシン類濃度に係る排水基準値を適用し、該排水基準値以下で該排水基準値に最も近い限外濾過膜モジュールを選定する。このように、事前の簡易選定方法により確認された限外濾過膜モジュールを実際の浄化装置の分離膜モジュールとして用いれば、濾過水のダイオキシン類濃度は排水基準値以下になることが確実である。また、選定された限外濾過膜モジュールは、過剰品質にはならず、経済的である。   The filtered water collected in the four clean sample bottles is analyzed and the concentration of dioxins in the filtered water is measured. A known method is applied as a method for measuring the concentration of dioxins, and the display is shown as an equivalent toxicity amount (pg-TEQ / L) using a toxicity equivalent coefficient (WHO-1997-TEF). Next, the correlation between the membrane pore size and the dioxin concentration in the filtered water is determined. The membrane pore size and the dioxin concentration in the filtered water can usually be expressed by a relational expression. Apply the wastewater standard value related to dioxin concentration to the relational expression, and select the ultrafiltration membrane module closest to the wastewater standard value below the wastewater standard value. Thus, if the ultrafiltration membrane module confirmed by the simple selection method in advance is used as the separation membrane module of the actual purification device, the dioxins concentration of filtrate is surely below the drainage standard value. In addition, the selected ultrafiltration membrane module is economical, not excessive quality.

次に、実施例を挙げて本発明を更に具体的に説明するが、これは単に例示であって、本発明を制限するものではない。   EXAMPLES Next, although an Example is given and this invention is demonstrated more concretely, this is only an illustration and does not restrict | limit this invention.

ダイオキシン類汚染土壌対策現場から得られる排水を、図1に示す限外濾過膜モジュールの簡易選定装置に100リットル供給して浄化処理し、4つの清浄サンプル瓶中に濾過水をそれぞれ得た。なお、限外濾過膜モジュール10aは膜孔径0.06μm(FUS-5082;ダイセン・メンブレン・システムズ社製、以下社名省略)、限外濾過膜モジュール10bは膜孔径0.01μm(FUS-1582)、限外濾過膜モジュール10cは膜孔径0.005μm(FUS-382)、限外濾過膜モジュール10dは膜孔径0.003μm(FUS-0182)を用いた。清浄サンプル瓶中に得られた濾過水を分析してダイオキシン類濃度を測定した。その結果を図2に示す。   100 liters of waste water obtained from a dioxin contaminated soil countermeasure site was supplied to the ultrafiltration membrane module simple selection device shown in FIG. 1 for purification treatment, and filtered water was obtained in each of four clean sample bottles. The ultrafiltration membrane module 10a has a membrane pore size of 0.06 μm (FUS-5082; manufactured by Daisen Membrane Systems Co., Ltd., hereinafter omitted), and the ultrafiltration membrane module 10b has a membrane pore size of 0.01 μm (FUS-1582), The ultrafiltration membrane module 10c used a membrane pore size of 0.005 μm (FUS-382), and the ultrafiltration membrane module 10d used a membrane pore size of 0.003 μm (FUS-0182). The filtered water obtained in the clean sample bottle was analyzed to measure the dioxin concentration. The result is shown in FIG.

図2の結果から明らかなように、限外濾過膜モジュールの膜孔径と濾過水中のダイオキシン類濃度はほぼ一定の相関関係にあった。このダイオキシン類汚染土壌対策現場から放流される排水基準値は10pg-TEQ/Lであるため、該排水基準値を下回ると共に、該排水基準値に近い限外濾過膜モジュール(膜孔径0.01μm;FUS-1582)を選定した。   As is apparent from the results of FIG. 2, the membrane pore size of the ultrafiltration membrane module and the dioxin concentration in the filtrate had a substantially constant correlation. Since the drainage standard value discharged from this dioxin-contaminated soil countermeasure site is 10 pg-TEQ / L, the ultrafiltration membrane module (membrane pore diameter 0.01 μm; close to the drainage standard value and lower than the drainage standard value; FUS-1582) was selected.

本発明の実施の形態における限外濾過膜モジュールの簡易選定装置の模式図である。It is a schematic diagram of the simple selection apparatus of the ultrafiltration membrane module in embodiment of this invention. 実施例1で得られた膜孔径とダイオキシン類濃度との関係を示す図である。It is a figure which shows the relationship between the membrane hole diameter obtained in Example 1, and dioxin density | concentration.

符号の説明Explanation of symbols

10 限外濾過膜モジュールの簡易選定装置
10a〜10d 限外濾過膜モジュール
11 原水供給管
12 濃縮水流出管
13a〜13d 濾過水流出管
14a〜14d、15a〜15d 分岐管
a〜h 弁




DESCRIPTION OF SYMBOLS 10 Simple selection apparatus of ultrafiltration membrane module 10a-10d Ultrafiltration membrane module 11 Raw water supply pipe 12 Concentrated water outflow pipe 13a-13d Filtration water outflow pipe 14a-14d, 15a-15d Branch pipe ah Valve




Claims (2)

粒子径0.1μm以下の微小懸濁物質及びダイオキシン類を含む土壌排水の浄化処理に使用する限外濾過膜モジュールの選定方法であって、該ダイオキシン類を含む土壌排水を膜孔径が0.003μm〜0.06μmの範囲であって且つ異なる複数の限外濾過膜モジュールを並列に接続して通水して、膜孔径と濾過水中のダイオキシン類濃度の関係を求め、該濾過水中のダイオキシン類を基準値以下にする限外濾過膜モジュールを選定することを特徴とする分離膜モジュールの簡易選定方法。 A method for selecting an ultrafiltration membrane module to be used for purification treatment of soil effluent containing fine suspended substances and dioxins having a particle size of 0.1 μm or less , wherein the pore size of the soil effluent containing dioxins is 0.003 μm. A plurality of different ultrafiltration membrane modules in a range of ~ 0.06 μm are connected in parallel to pass water, and the relationship between the membrane pore size and the dioxin concentration in the filtered water is determined, and the dioxins in the filtered water are determined. A simple method for selecting a separation membrane module, wherein an ultrafiltration membrane module is selected to be below a reference value. 粒子径0.1μm以下の微小懸濁物質及びダイオキシン類を含む土壌排水が流入する原水供給管と、膜孔径が0.003μm〜0.06μmの範囲であって且つ異なる複数の限外濾過膜モジュールを並列に配置してなる限外濾過膜モジュール群と、各限外濾過膜モジュール毎に付設される濾過水流出管とを備えることを特徴とする分離膜モジュールの簡易選定装置。 Raw water supply pipe into which soil effluent containing fine suspended substances and dioxins having a particle size of 0.1 μm or less flows , and a plurality of different ultrafiltration membrane modules having a membrane pore size in the range of 0.003 μm to 0.06 μm A device for easily selecting a separation membrane module, comprising a group of ultrafiltration membrane modules formed in parallel with each other and a filtered water outflow pipe attached to each ultrafiltration membrane module .
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