Method of administering the flocculant

By defining the membrane load index and cumulative additional resistance threshold in the membrane separation activated sludge method, the addition and stop of flocculant is automatically controlled, and the problem of difficult to determine the optimal timing is solved, and the membrane filtration efficiency and balanced management of membrane load is improved.

JP7675505B2Active Publication Date: 2025-05-13KUBOTA CORP
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Patent Information

Application Number
JP2020116046
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-07-06
Publication Date
2025-05-13
Estimated Expiration
2040-07-06

AI Technical Summary

Technical Problem

In the membrane separation activated sludge method, it is difficult to determine the optimal time to start and stop adding flocculant, resulting in the problem of too much or too little addition.

Method used

By defining the membrane load index and cumulative additional resistance threshold, the addition and stop of flocculant is automatically controlled to ensure that the use of flocculant is started and ended in time during the membrane filtration process.

Benefits of technology

The optimized addition and stop of flocculant is realized, which improves membrane filtration efficiency and equalization management of membrane loads, and avoids membrane blockage and excessive loading.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a method of administering coagulant capable of starting the administration of coagulant at an optimum timing.SOLUTION: A coagulant administering method in water treatment includes one treatment cycle consisting of a filtration process which filters the treated water in a filtration tank using a filtration membrane and a filtration pause process which stops the filtration, and the treatment cycle is repeated to treat the treated water. The amount of increase in the differential pressure between membranes per hour during the filtration process is defined as a membrane load index, and when the membrane load index becomes equal to or higher than a first threshold, the coagulant is started to be administered into the filtration tank.SELECTED DRAWING: Figure 2
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Description

[Technical field]

[0001] The present invention relates to a method for administering a coagulant to water to be treated when the water is filtered through a filtration membrane for water treatment. [Background technology]

[0002] Conventionally, as this type of water treatment, for example, a membrane separation activated sludge process is known. In the membrane separation activated sludge process, a treatment device 103 having a membrane separation device 102 provided in a filtration tank 101 is used, as shown in FIG.

[0003] The membrane separation device 102 has a plurality of membrane elements 105 arranged in a casing 104 and an air diffuser 106 that diffuses air from below the membrane elements 105 .

[0004] The membrane element 105 has a filtration membrane welded to both the front and back sides of a filter plate, and the permeated water (treated water) that permeates the filtration membrane from the primary side to the secondary side is sent out of the filtration tank 101 through a permeated water extraction flow path 107. In addition, water to be treated 108 such as wastewater is supplied into the filtration tank 101 through a supply flow path 109, and a flocculant 110 is administered to the water to be treated 108 in the filtration tank 101 through a flocculant administration flow path 111.

[0005] According to this, water 108 to be treated is supplied from a supply flow path 109 into the filtration tank 101, and the water 108 to be treated in the filtration tank 101 is filtered by the membrane element 105, whereby the water 108 is separated into solid-liquid components, sludge and permeated water, and the permeated water is taken out of the filtration tank 101 from a permeated water discharge flow path 107. At this time, the surface of the filtration membrane of the membrane element 105 is cleaned by diffusing air with an air diffuser 106.

[0006] In addition, by administering the coagulant 110 from the coagulant administration flow path 111 to the water to be treated 108 in the filtration tank 101, the coagulant 110 is adsorbed onto the sludge surface and also adsorbs organic matter such as difficult-to-decompose substances, thereby preventing membrane blockage of the filtration membrane of the membrane element 105.

[0007] The processing device 103 as described above is described in, for example, Patent Document 1 below. [Prior art documents] [Patent documents]

[0008] [Patent Document 1] Patent Publication 2015-163388 Summary of the Invention [Problem to be solved by the invention]

[0009] However, in the above-mentioned conventional system, when the coagulant 110 is administered to the water 108 to be treated in the filtration tank 101, the optimal timing for starting administration of the coagulant 110 is not clear, and there is a risk that the optimal timing for starting administration of the coagulant 110 is too early, resulting in excessive administration of the coagulant 110, or that the optimal timing for starting administration of the coagulant 110 is too late, resulting in an insufficient amount of the coagulant 110 being administered.

[0010] In addition, since the optimal timing for stopping the administration of the flocculant 110 after the administration of the flocculant 110 has started is not clear, there is a risk that the optimal timing for stopping the administration of the flocculant 110 will be too late, resulting in an excessive administration of the flocculant 110, or that the optimal timing for stopping the administration of the flocculant 110 will be too early, resulting in an insufficient amount of the flocculant 110 being administered.

[0011] The present invention aims to provide a method for administering a flocculant, which enables administration of a flocculant to be started at an optimal timing and, after administration of the flocculant has started, enables administration of the flocculant to be stopped at an optimal timing. [Means for solving the problem]

[0012] In order to achieve the above object, the first invention is a method for administering a coagulant in water treatment, in which a filtration process for filtering water to be treated in a filtration tank using a filtration membrane and a filtration suspension process for pausing filtration are set as one treatment cycle, and the treatment cycle is repeated to treat the water to be treated, The increase in transmembrane pressure per unit time during the filtration process is defined as the membrane load index. The difference between the transmembrane pressure at a first point in time when the amount of membrane filtrate per hour after the start of the filtration process of the current treatment cycle has stabilized and the transmembrane pressure at a second point in time when the amount of membrane filtrate per hour after the start of the filtration process of the treatment cycle immediately preceding the current treatment cycle has stabilized is defined as the cumulative added resistance; When the membrane load index is equal to or greater than a first threshold and the cumulative load resistance is equal to or greater than a second threshold, This starts the administration of coagulant into the filtration tank.

[0013] According to this, the higher the membrane load index, the greater the amount of foulants (soluble organic matter, etc.) contained in the treated water, or the greater the specific resistance to permeation when foulants adhere to the filtration membrane surface. Therefore, the permeation resistance when passing through the filtration membrane increases, and the load on the filtration membrane becomes greater.

[0014] Conversely, the smaller the membrane load index, the smaller the amount of foulants contained in the water being treated, or the smaller the specific resistance to permeation when foulants adhere to the filtration membrane surface. Therefore, the permeation resistance when passing through the filtration membrane decreases, and the load on the filtration membrane becomes smaller. In this way, the load on the filtration membrane can be objectively evaluated based on the membrane load index during the filtration process, and the administration of the coagulant is started using this membrane load index as an indicator, so that the administration of the coagulant can be started at the optimal timing.

[0016] This 2 The invention is a method for administering a coagulant in water treatment, in which one treatment cycle is a filtration process in which the water to be treated in a filtration tank is filtered using a filtration membrane and a filtration suspension process in which the filtration is suspended, and this treatment cycle is repeated to treat the water to be treated, The increase in transmembrane pressure per unit time during the filtration process is defined as the membrane load index. The difference between the transmembrane pressure at a first time point at which the amount of membrane filtered water per hour after the start of the filtration process of the current treatment cycle has stabilized and the transmembrane pressure at a second time point at which the amount of membrane filtered water per hour after the start of the filtration process of the treatment cycle immediately preceding the current treatment cycle has stabilized is divided by the time from the second time point to the first time point, and is defined as the cumulative added resistance; When the membrane load index becomes equal to or greater than a first threshold value and the cumulative added resistance becomes equal to or greater than a second threshold value, administration of a coagulant into the filtration tank is started.

[0017] This 3 The invention is a method for administering a coagulant in water treatment, in which one treatment cycle is a filtration process in which the water to be treated in a filtration tank is filtered using a filtration membrane and a filtration suspension process in which the filtration is suspended, and this treatment cycle is repeated to treat the water to be treated, The increase in transmembrane pressure per unit time during the filtration process is defined as the membrane load index. The value obtained by dividing the transmembrane pressure difference at a first time point at which the amount of water filtered through the membrane per hour after the start of the filtration process of the current treatment cycle is stable by the amount of water filtered through the membrane per hour per membrane area is defined as a first filtration resistance value; The second filtration resistance value is obtained by dividing the transmembrane pressure difference at a second time point when the amount of membrane filtrate per hour after the start of the filtration step of the treatment cycle immediately before the current treatment cycle has stabilized by the amount of membrane filtrate per hour per membrane area. The difference between the first filtering resistance value and the second filtering resistance value is defined as a cumulative added resistance; When the membrane load index becomes equal to or greater than a first threshold value and the cumulative added resistance becomes equal to or greater than a second threshold value, administration of a coagulant into the filtration tank is started.

[0018] This 4 The invention is a method for administering a coagulant in water treatment, in which one treatment cycle is a filtration process in which the water to be treated in a filtration tank is filtered using a filtration membrane and a filtration suspension process in which the filtration is suspended, and this treatment cycle is repeated to treat the water to be treated, The increase in transmembrane pressure per unit time during the filtration process is defined as the membrane load index. The value obtained by dividing the transmembrane pressure difference at a first time point at which the amount of water filtered through the membrane per hour after the start of the filtration process of the current treatment cycle is stable by the amount of water filtered through the membrane per hour per membrane area is defined as a first filtration resistance value; The second filtration resistance value is obtained by dividing the transmembrane pressure difference at a second time point when the amount of membrane filtrate per hour after the start of the filtration step of the treatment cycle immediately before the current treatment cycle has stabilized by the amount of membrane filtrate per hour per membrane area. The difference between the first filtering resistance value and the second filtering resistance value divided by the time from the second time point to the first time point is defined as the cumulative added resistance; When the membrane load index becomes equal to or greater than a first threshold value and the cumulative added resistance becomes equal to or greater than a second threshold value, administration of a coagulant into the filtration tank is started.

[0019] According to this, the higher the membrane load index, the greater the amount of foulants (soluble organic matter, etc.) contained in the treated water, or the greater the specific resistance to permeation when foulants adhere to the filtration membrane surface. Therefore, the permeation resistance when passing through the filtration membrane increases, and the load on the filtration membrane becomes greater.

[0020] Conversely, the smaller the membrane load index, the smaller the amount of foulants contained in the water being treated, or the smaller the specific resistance to permeation when foulants adhere to the filtration membrane surface. Therefore, the permeation resistance when passing through the filtration membrane decreases, and the load on the filtration membrane becomes smaller.

[0021] In this way, the load on the filtration membrane can be objectively evaluated based on the membrane load index during the filtration process.

[0022] In addition, by diffusing air from below the filtration membrane during the filtration pause step, foulants adhering to the membrane surface of the filtration membrane can be removed and the filtration membrane can be cleaned.

[0023] In this case, the larger the cumulative added resistance, the smaller the amount of foulants removed from the filtration membrane in the filtration pause step of the treatment cycle immediately preceding the current treatment cycle (hereinafter referred to as the previous treatment cycle), and the lower the cleaning effect of the filtration membrane. Therefore, at the start of the filtration step of the current treatment cycle, the amount of foulants remaining attached to the filtration membrane increases, and the permeability of the filtration membrane decreases.

[0024] Conversely, the smaller the cumulative added resistance, the greater the amount of foulants removed from the membrane during the filtration pause step of the previous treatment cycle, and the greater the cleaning effect of the membrane. Therefore, at the start of the filtration step of the current treatment cycle, the amount of foulants remaining on the membrane is reduced, and the permeability of the membrane is maintained.

[0025] This makes it possible to objectively evaluate the cleaning effect of the filtration membrane during the filtration pause step of the previous treatment cycle based on the cumulative added resistance.

[0026] In this way, since the administration of the flocculant is started using the membrane load index and the cumulative added resistance as indicators, the administration of the flocculant can be started at an optimal timing.

[0027] This 5 The method of administering the coagulant in the invention is such that, when the amount of membrane filtrate per membrane area and per time falls below a third threshold value in the filtration step, administration of the coagulant into the filtration tank is stopped.

[0028] According to this, the smaller the amount of membrane filtered water per membrane area and per time, i.e., the flux (filtration flux), the smaller the load on the filtration membrane becomes, and the larger the amount of membrane filtered water becomes, the greater the load on the filtration membrane becomes.

[0029] In this way, since the administration of the flocculant is stopped using the membrane filtered water amount per membrane area and per time as indicators, administration of the flocculant can be stopped at an optimal timing after administration of the flocculant is started.

[0037] This 6 The invention is A treatment tank having a filtration tank equipped with a filtration membrane and into which water to be treated supplied from the outside flows, and a monitoring tank adjacent to the filtration tank and into which water to be treated that overflows from the filtration tank flows, A method for administering a coagulant in water treatment, in which a filtration process for filtering water to be treated using a filtration membrane and a filtration suspension process for pausing filtration are defined as one treatment cycle, and the treatment cycle is repeated to treat the water to be treated, In the filtration process, The untreated water that overflows from the filtration tank flows into the monitoring tank, and part of the untreated water in the monitoring tank is sent to the filtration tank. When the transmembrane pressure reaches or exceeds the sixth threshold, the administration of coagulant into the filtration tank begins. death, When a predetermined time has elapsed after the start of administration of the flocculant, administration of the flocculant is stopped, The predetermined time is the actual residence time of the filtration tank in which the filtration membrane is immersed multiplied by the circulation ratio plus 1. The actual residence time is the time required for the coagulant administered at a specific administration position in the filtration tank to flow from the filtration tank through the monitoring tank and return to the original administration position in the filtration tank. The circulation ratio is the value obtained by dividing the circulation amount by the inflow amount of the water to be treated that is supplied to the filtration tank from the outside. The circulation volume is the flow rate of treated water per hour flowing from the filtration tank to the monitoring tank. It is something.

[0038] According to this, the greater the transmembrane pressure difference, the greater the load on the filtration membrane. Therefore, the load on the filtration membrane can be objectively evaluated based on the transmembrane pressure difference, and since administration of the coagulant is started using this transmembrane pressure difference as an indicator, administration of the coagulant can be started at the optimal timing.

[0041] Also, By stopping the administration of the coagulant into the filtration tank after a predetermined time has elapsed since the administration of the coagulant began, the administration of the coagulant can be stopped at the optimal timing after the administration of the coagulant has begun.

[0042] This 7 The invention is A method for administering a coagulant in water treatment, in which a treatment cycle is defined as a filtration step in which the water to be treated is filtered using a filtration membrane and a filtration pause step in which filtration is paused, in a treatment tank having a filtration tank equipped with a filtration membrane and a monitoring tank adjacent to the filtration tank into which water to be treated that has overflowed from the filtration tank flows, and the treatment cycle is repeated to treat the water to be treated, In the filtration process, when the untreated water overflowing from the filtration tank flows into the monitoring tank and a portion of the untreated water in the monitoring tank is sent to the filtration tank and the transmembrane pressure difference becomes equal to or greater than a sixth threshold value, administration of a coagulant into the filtration tank is started; When a predetermined time has elapsed after the start of administration of the flocculant, administration of the flocculant is stopped, The predetermined time is the actual residence time of the filtration tank in which the filtration membrane is immersed multiplied by the circulation ratio plus 1. The actual residence time is the time required for the coagulant administered at a specific administration position in the filtration tank to flow from the filtration tank through the monitoring tank and return to the original administration position in the filtration tank. The circulation ratio is the value obtained by dividing the circulation amount by the inflow amount of the water to be treated that is supplied to the monitoring tank from the outside. The circulation volume is the flow rate of treated water per hour flowing from the filtration tank to the monitoring tank. It is something. Effect of the Invention

[0052] As described above, according to the present invention, administration of the flocculant can be started at an optimal timing, and after administration of the flocculant has started, administration of the flocculant can be stopped at an optimal timing. [Brief description of the drawings]

[0053] [Figure 1] FIG. 1 is a schematic diagram of a water treatment device according to first to fifth embodiments of the present invention. [Diagram 2] 4 is a graph showing the change in transmembrane pressure over time in the method for administering a coagulant using the water treatment device of the first embodiment. [Diagram 3] 13 is a graph showing the change in permeability over time in the method of administering a coagulant using the water treatment device of the first embodiment. [Figure 4] FIG. 2 is a schematic diagram of a water treatment device according to sixth to tenth embodiments of the present invention. [Diagram 5]FIG. 23 is a schematic diagram of a water treatment device according to an eleventh embodiment of the present invention. [Figure 6] FIG. 26 is a schematic diagram of a water treatment device according to a twelfth embodiment of the present invention. [Figure 7] FIG. 1 is a schematic diagram of a conventional water treatment device. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0054] Hereinafter, an embodiment of the present invention will be described with reference to the drawings.

[0055] (First embodiment) In the first embodiment, as shown in Fig. 1, reference numeral 1 denotes a treatment tank for treating wastewater 2 (an example of water to be treated) containing organic matter, etc. This treatment tank 1 has a filtration tank 3 and a monitoring tank 4 adjacent to the filtration tank 3. The filtration tank 3 and the monitoring tank 4 are separated by an overflow weir 5.

[0056] Wastewater 2 is supplied to the filtration tank 3 through a supply flow path 7. The wastewater 2 supplied to the filtration tank 3 overflows overflow weir 5 and flows into the adjacent monitoring tank 4. A pump 8 is provided in the monitoring tank 4. A return flow path 9 that returns the wastewater 2 in the monitoring tank 4 to the filtration tank 3 is connected to the pump 8.

[0057] A submerged membrane separation device 11 is installed in the filtration tank 3. The membrane separation device 11 has a plurality of membrane elements 13 provided in a casing 12 and an aeration device 14 provided below the membrane elements 13.

[0058] The membrane element 13 has a filter plate and a filtration membrane welded to both the front and back surfaces of the filter plate. The wastewater 2 that has permeated the filtration membrane from the primary side to the secondary side is sent out of the treatment tank 1 as permeated water 16 through a permeated water extraction flow path 17. In addition, a flocculant 19 is administered to the wastewater 2 in the filtration tank 3 through a flocculant administration flow path 20.

[0059] The wastewater 2 is treated by a membrane separation activated sludge process using the treatment tank 1 as described above. In this process, one treatment cycle consists of a filtration step in which the wastewater 2 in the filtration tank 3 is filtered using the membrane element 13 and a filtration suspension step in which the filtration is suspended, and this treatment cycle is repeated to treat the wastewater 2.

[0060] In the filtration process, wastewater 2 is supplied to the filtration tank 3 from the supply flow path 7, and while aeration is performed from the air diffuser 14 of the membrane separation device 11, the pressure on the secondary side of the filtration membrane of the membrane element 13 is reduced, so that a portion of the wastewater 2 in the filtration tank 3 permeates the filtration membrane and is sent out of the treatment tank 1 from the permeate extraction flow path 17 as permeate 16.

[0061] Moreover, the wastewater 2 in the filtration tank 3 overflows the overflow weir 5 and flows into the adjacent monitoring tank 4. Furthermore, by driving the pump 8, the wastewater 2 in the monitoring tank 4 is returned to the filtration tank 3 through the return flow path 9. Moreover, in the filtration suspension step, filtration by the membrane element 13 is stopped while air diffusion from the air diffuser 14 continues. When the wastewater 2 is treated by repeating the above-mentioned treatment cycle, the flocculant 19 is administered from the flocculant administration flow path 20 to the wastewater 2 in the filtration tank 3, whereby the flocculant 19 is adsorbed onto the activated sludge in the wastewater 2, forming coarse flocs. A method for administering such aggregating agent 19 will be described below.

[0062] 2 is a graph showing the change in transmembrane pressure of the membrane element 13 for each treatment cycle, with the vertical axis showing the transmembrane pressure and the horizontal axis showing the time when treatment cycles C1, C2, C3, ... are being performed. Here, the increase in transmembrane pressure per unit time during the filtration process is defined as the membrane load index A. That is, as shown in FIG. 2, if Δp is the difference between the transmembrane pressure p1 at time t1 when the amount of membrane filtrate per unit time has stabilized immediately after the start of the filtration process, and the transmembrane pressure p2 at time t2 immediately before the end of the filtration process (i.e., p2-p1), and Δt is the time between the above two times t1 and t2, then the above membrane load index A [Pa / min] is given by A=Δp / Δt This is expressed by the following relationship.

[0063] The time point t1 at which the amount of membrane filtered water per hour becomes stable immediately after the start of the filtration process means the time point at which the amount of membrane filtered water per hour becomes stable at a predetermined flux that has been set in advance.

[0064] Then, when the treatment cycle is repeated multiple times, for example, as shown in Figure 2, in treatment cycle C3, if the membrane load index A calculated as described above becomes equal to or greater than a predetermined membrane load index A1 (an example of a first threshold value), administration of coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is started.

[0065] At the start of administration of the flocculant 19, the flocculant 19 is administered at an initial dosage D [mg / L]. The initial dosage D is D = E1 × exp(E2 × F) This is expressed by the following relationship. Here, E1 and E2 are constants, and F is the amount of water filtered through the membrane per unit membrane area and per unit time (i.e., flux [m 3 / m 2 / min].

[0066] Thereafter, when the membrane load index A falls below the target membrane load index A2, the dosage of the coagulant 19 is reduced by a predetermined percentage from the initial dosage D. The target membrane load index A2 is set to a value smaller than the predetermined membrane load index A1.

[0067] Thereafter, in the filtration process, when the membrane filtrate water volume F (flux) per unit membrane area and per unit time becomes less than a predetermined membrane filtrate water volume Fs (an example of a third threshold value), the administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is stopped.

[0068] According to the method of administering the coagulant 19 as described above, the larger the membrane load index A, the larger the amount of foulants (soluble organic matter, etc.) contained in the wastewater 2, or the larger the specific permeation resistance when the foulants adhere to the filtration membrane surface. Therefore, the permeation resistance when passing through the filtration membrane of the membrane element 13 increases, and the load on the filtration membrane increases.

[0069] Conversely, the smaller the membrane load index A, the smaller the amount of foulants contained in the wastewater 2, or the smaller the specific resistance to permeation when foulants adhere to the filtration membrane surface. Therefore, the permeation resistance when passing through the filtration membrane decreases, and the load on the filtration membrane becomes smaller.

[0070] In this way, the load on the filtration membrane of the membrane element 13 can be objectively evaluated based on the membrane load index A during the filtration process, and administration of the flocculant 19 is started using this membrane load index A as an indicator, so that administration of the flocculant 19 can be started at the optimal timing.

[0071] In addition, the smaller the amount of membrane filtrate F during the filtration process, the smaller the load on the filtration membrane of the membrane element 13, and the larger the amount of membrane filtrate F, the greater the load on the filtration membrane. Since the administration of the coagulant 19 is stopped using the amount of membrane filtrate F as an index in this manner, administration of the coagulant 19 can be stopped at an optimal timing after administration of the coagulant 19 is started.

[0072] (Second embodiment) In the method of administering the flocculant 19 in the second embodiment, administration of the flocculant 19 is started using the cumulative added resistance B as an index in addition to the membrane load index A shown in the first embodiment.

[0073] The cumulative load resistance B is calculated as follows:

[0074] 3 is a graph showing the change in permeability of a filtration membrane, where the vertical axis indicates permeability and the horizontal axis indicates the time during which a treatment cycle is performed. Permeability is expressed by the following relational expression. Permeability = Flux / Transmembrane Pressure Here, the permeability at the first time T1 when the amount of membrane filtrate per hour after the start of the filtration process of the current treatment cycle is stable is defined as the first permeability Prm1. Also, the permeability at the second time T2 when the amount of membrane filtrate per hour after the start of the filtration process of the treatment cycle one before the current treatment cycle (hereinafter referred to as the previous treatment cycle) is stable is defined as the second permeability Prm2. If the inverse of the first permeability Prm1 is defined as the first permeation resistance value, the inverse of the second permeability Prm2 is defined as the second permeation resistance value, and the time from the second time T2 to the first time T1 is defined as ΔT, the cumulative additional resistance B is defined as "the difference between the first permeation resistance value and the second permeation resistance value divided by the time from the second time T2 to the first time T1". That is, the cumulative additional resistance B is expressed by the following relational expression. B = (first permeation resistance value - second permeation resistance value) / ΔT =(1 / Prm1-1 / Prm2) / ΔT Then, when the membrane load index A becomes equal to or greater than a predetermined membrane load index A1 (an example of a first threshold value) and the cumulative added resistance B calculated as described above becomes equal to or greater than a predetermined cumulative added resistance B1 (an example of a second threshold value), administration of coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is started.

[0075] At the start of administration of the coagulant 19, only an initial dosage D of the coagulant 19 is administered, and thereafter, when the membrane load index A falls below the target membrane load index A2, the dosage of the coagulant 19 is reduced from the initial dosage D by a predetermined percentage.

[0076] Thereafter, in the filtration process, when the membrane filtrate amount F per unit membrane area and per unit time becomes less than a predetermined membrane filtrate amount Fs, the administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is stopped.

[0077] According to the method of administering the flocculant 19 as described above, the load on the filtration membrane can be objectively evaluated based on the membrane load index A during the filtration process.

[0078] In addition, during the filtration suspension step, the air diffuser 14 diffuses air from below the membrane element 13, so that foulants adhering to the membrane surface of the filtration membrane can be removed and the filtration membrane can be cleaned.

[0079] In this case, the larger the cumulative additional resistance B, the smaller the amount of foulants removed from the filtration membrane during the filtration pause step of the previous treatment cycle, and the lower the cleaning effect of the filtration membrane. Therefore, at the start of the filtration step of the current treatment cycle, the amount of foulants remaining attached to the filtration membrane increases, and the permeability of the filtration membrane decreases.

[0080] Conversely, the smaller the cumulative additional resistance B, the greater the amount of foulants removed from the filtration membrane during the filtration pause step of the previous treatment cycle, and the greater the cleaning effect of the filtration membrane. Therefore, at the start of the filtration step of the current treatment cycle, the amount of foulants remaining on the filtration membrane is reduced, and the permeability of the filtration membrane is improved.

[0081] This makes it possible to objectively evaluate the cleaning effect of the filtration membrane during the filtration pause step of the previous treatment cycle based on the cumulative added resistance B.

[0082] In this way, since the administration of the flocculant 19 is started using the membrane load index A and the cumulative added resistance B as indicators, the administration of the flocculant 19 can be started at an optimal timing.

[0083] In addition, since the administration of the flocculant 19 is stopped using the membrane filtered water volume F as an index, the administration of the flocculant 19 can be stopped at an optimal timing after the administration of the flocculant 19 is started.

[0084] In the second embodiment, the cumulative additional resistance B is described using the difference between the first permeation resistance value and the second permeation resistance value divided by the time from the second time point T2 to the first time point T1, but the difference between the first permeation resistance value and the second permeation resistance value may be defined as the cumulative additional resistance B. Alternatively, the cumulative additional resistance B may be defined as the difference between the transmembrane pressure at the first time point T1 at which the amount of membrane filtrate per hour after the start of the filtration process of the current treatment cycle is stable and the transmembrane pressure at the second time point T2 at which the amount of membrane filtrate per hour after the start of the filtration process of the previous treatment cycle is stable divided by the time from the second time point T2 to the first time point T1. Also, the difference between the transmembrane pressure at the first time point T1 and the transmembrane pressure at the second time point T2 may be defined as the cumulative additional resistance B.

[0085] (Third embodiment) In the method of administering the flocculant 19 according to the third embodiment, administration of the flocculant 19 is started and stopped using the water level of the wastewater 2 in the monitoring tank 4 as an index, as shown in FIG.

[0086] In the filtration step, the wastewater 2 is filtered using the membrane element 13 while being circulated between the filtration tank 3 and the monitoring tank 4 .

[0087] For example, the inflow rate per unit time of the wastewater 2 supplied from the supply flow path 7 to the filtration tank 3 is Q [m 3 / min], the extraction flow rate per unit time of the permeated water 16 extracted from the permeated water extraction flow path 17 is Q [m 3 / min], and the flow rate per hour of wastewater 2 returning from monitoring tank 4 through return flow path 9 to filtration tank 3 is 3Q [m 3 / min], and as a result, the flow rate per unit time of the wastewater 2 that overflows the overflow weir 5 from the filtration tank 3 and flows into the monitoring tank 4 is 3Q [m 3 / min.

[0088] At this time, the water level of the wastewater 2 in the monitoring tank 4 is maintained between a first water level L1 (an example of a fourth threshold value) and a second water level L2 (an example of a fifth threshold value) that are preset. The second water level L2 is lower than the first water level L1.

[0089] Thereafter, the inflow rate per unit time of the wastewater 2 supplied from the supply flow path 7 to the filtration tank 3 is Q [m 3 / min] to, for example, 2Q[m 3 / min], the increase in the filtration rate cannot keep up with the increase in the inflow rate, and the water level of the wastewater 2 in the monitoring tank 4 rises.

[0090] Therefore, when the water level of the wastewater 2 in the monitoring tank 4 reaches or exceeds the first water level L1, the amount of membrane filtered water (flux) per membrane area and per time is increased to the maximum membrane filtered water amount (maximum flux) in design so that the amount of membrane filtered water taken out from the permeate extraction flow path 17 exceeds the inflow amount of wastewater 2 supplied to the filtration tank 3 from the supply flow path 7. Adjusting the amount of membrane filtered water in this way increases the load on the filtration membrane.

[0091] Therefore, when the water level of the wastewater 2 in the monitoring tank 4 becomes equal to or higher than the first water level L1 as described above, administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is started, so that administration of the coagulant 19 can be started at an optimal timing. In this case, the maximum membrane filtrate amount has a certain upper limit, but is set to an amount larger than the inflow amount 2Q, for example.

[0092] As described above, filtration is continued with the membrane filtrate amount set to the designed maximum membrane filtrate amount, and when the water level of the wastewater 2 in the monitoring tank 4 drops below the second water level L2, filtration is continued by lowering the membrane filtrate amount (flux) per membrane area and per time from the maximum membrane filtrate amount to the original extraction flow rate Q. By adjusting the membrane filtrate amount in this way, the load on the filtration membrane is reduced.

[0093] Therefore, as described above, when the water level of the wastewater 2 in the monitoring tank 4 falls below the second water level L2, the administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is stopped, so that the administration of the coagulant 19 can be stopped at the optimal timing after the administration of the coagulant 19 has started.

[0094] (Fourth embodiment) In the method of administering the flocculant 19 according to the fourth embodiment, administration of the flocculant 19 is started and stopped using the transmembrane pressure difference of the filtration membrane of the membrane element 13 and the passage of a predetermined time as indicators. An example of the predetermined time is the residence time Ts. The residence time Ts is defined as the actual residence time x (circulation ratio + 1).

[0095] Here, the actual residence time is the time required for the coagulant 19 administered at a designated dosing position 23 in the filtration tank 3 to flow from the filtration tank 3 over the overflow weir 5 into the monitoring tank 4, and then return from the monitoring tank 4 through the return flow path 9 to the original dosing position 23 in the filtration tank 3, as shown by the dotted arrow in Figure 1.

[0096] The circulation ratio is the value obtained by dividing the circulation amount by the inflow amount of wastewater 2 per hour (i.e., circulation amount / inflow amount of wastewater 2 per hour). The inflow amount of wastewater 2 is the amount of wastewater 2 flowing from the supply flow path 7 into the filtration tank 3. The circulation amount is the flow rate per hour of wastewater 2 flowing from the filtration tank 3 over the overflow weir 5 into the monitoring tank 4.

[0097] In the filtration step, the wastewater 2 is filtered using the membrane element 13 while circulating between the filtration tank 3 and the monitoring tank 4. In this case, for example, the inflow rate per unit time of the wastewater 2 supplied from the supply flow passage 7 to the filtration tank 3 is Q [m 3 / min], and the flow rate per unit time of the permeated water 16 taken out from the permeated water taking-out passage 17 is Q [m 3 / min], and the flow rate per unit time of the wastewater 2 that overflows the overflow weir 5 from the filtration tank 3 and flows into the monitoring tank 4 is 3Q [m 3 / min], and the flow rate per hour of wastewater 2 flowing from monitoring tank 4 through return flow path 9 into filtration tank 3 is 3Q [m 3 / min] and the actual residence time is 70 [min], the circulation volume is 3Q [m 3 / min], and the amount of membrane filtered water per unit time (i.e., the flow rate per unit time of the permeated water 16 taken out from the permeated water taking-out passage 17) is Q [m 3 This results in a circulation ratio of 3Q / Q=3, and a residence time Ts of 70×(3+1)=280 [min].

[0098] In the filtration process, when the transmembrane pressure difference of the filtration membrane of the membrane element 13 becomes equal to or greater than a predetermined transmembrane pressure difference (an example of a sixth threshold value), administration of the flocculant 19 from the flocculant administration flow path 20 into the filtration tank 3 begins.

[0099] According to this, the greater the transmembrane pressure difference, the greater the load on the filtration membrane. Therefore, the load on the filtration membrane can be objectively evaluated based on the transmembrane pressure difference, and since administration of the flocculant 19 is started using this transmembrane pressure difference as an indicator, administration of the flocculant 19 can be started at the optimal timing.

[0100] After starting the administration of the flocculant 19 in this manner, when the residence time Ts (an example of a predetermined time) has elapsed, the administration of the flocculant 19 into the filtration tank 3 is stopped. This makes it possible to stop the administration of the flocculant 19 at an optimal timing after the administration of the flocculant 19 has started.

[0101] (Fifth embodiment) In the method for dosing the coagulant 19 according to the fifth embodiment, the amount of membrane filtrate per unit membrane area and time of the filtration membrane of the membrane element 13 (i.e., flux [m 3 / m 2 The administration of the flocculant 19 is started and stopped using the time (time (hr) / min) as an indicator.

[0102] That is, in the filtration process, when the amount of the membrane filtered water becomes equal to or greater than a predetermined first membrane filtered water amount (an example of a seventh threshold value), administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is started.

[0103] According to this, the greater the amount of membrane filtered water, the greater the load on the filtration membrane. Therefore, by starting the administration of coagulant 19 using this membrane filtered water amount as an indicator, the administration of coagulant 19 can be started at the optimal timing.

[0104] Thereafter, in the filtration process, when the amount of membrane-filtered water becomes less than a preset second membrane-filtered water amount (an example of an eighth threshold value), the administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is stopped. Note that the second membrane-filtered water amount is set to a water amount less than the first membrane-filtered water amount.

[0105] According to this, the smaller the amount of membrane filtered water is, the smaller the load on the filtration membrane is. Therefore, by using this membrane filtered water amount as an indicator to stop the administration of coagulant 19, it is possible to stop the administration of coagulant 19 at the optimal timing after the administration of coagulant 19 has started.

[0106] (Sixth embodiment) A water treatment device according to the sixth embodiment will be described with reference to Fig. 4. The same members as those in the first to fifth embodiments described above are given the same reference numerals, and detailed description thereof will be omitted.

[0107] The treatment tank 50 has a filtration tank 3 (aerobic tank) and an anoxic tank 51 (an example of a monitoring tank) adjacent to the filtration tank 3. The filtration tank 3 and the anoxic tank 51 are separated by an overflow weir 5. A pump 8 is provided in the anoxic tank 51. A feed flow path 52 that sends the wastewater 2 in the anoxic tank 51 to the filtration tank 3 is connected to the pump 8.

[0108] Wastewater 2 is supplied from a supply passage 7 to an anoxic tank 51, and is transported from the anoxic tank 51 through a feed passage 52 by a pump 8 into the filtration tank 3. A portion of the wastewater then overflows from the filtration tank 3 through an overflow weir 5 and is returned to the anoxic tank 51.

[0109] In the filtration tank 3, a submerged membrane separation device 11 is installed.

[0110] The wastewater 2 is treated by a membrane separation activated sludge process using the treatment tank 50 as described above. In this case, a filtration step and a filtration rest step constitute one treatment cycle, and the wastewater 2 is treated by repeating this treatment cycle.

[0111] In the filtration process, wastewater 2 is supplied from the supply flow passage 7 to the anoxic tank 51, and the pump 8 is driven to send the wastewater 2 in the anoxic tank 51 through the delivery flow passage 52 into the filtration tank 3. The secondary side of the filtration membrane of the membrane element 13 is depressurized while air is diffused from the air diffuser 14 of the membrane separation device 11. As a result, part of the wastewater 2 in the filtration tank 3 permeates the filtration membrane and is sent out of the treatment tank 1 as permeated water 16 from the permeated water discharge flow passage 17.

[0112] Moreover, the wastewater 2 in the filtration tank 3 overflows the overflow weir 5 and is returned to the adjacent anoxic tank 51. This causes the wastewater 2 to circulate between the filtration tank 3 and the anoxic tank 51, and the ammoniacal nitrogen in the wastewater 2 is nitrified to nitric acid in the filtration tank 3, and the nitric acid is denitrified to nitrogen gas in the anoxic tank 51.

[0113] In the filtration suspension step, filtration by the membrane element 13 is suspended while air diffusion from the air diffuser 14 continues. When the wastewater 2 is treated by repeating the above-mentioned treatment cycle, the flocculant 19 is administered from the flocculant administration flow path 20 to the wastewater 2 in the filtration tank 3, whereby the flocculant 19 is adsorbed onto the activated sludge in the wastewater 2, forming coarse flocs. As a method of administering the coagulant 19, similarly to the first embodiment described above, when the membrane load index A becomes equal to or greater than a predetermined membrane load index A1 (an example of a first threshold value), administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is started. At the start of administration of the coagulant 19, only an initial dosage D of the coagulant 19 is administered.

[0114] Thereafter, when the membrane load index A falls below the target membrane load index A2, the dosage of the coagulant 19 is reduced by a predetermined percentage from the initial dosage D. The target membrane load index A2 is set to a value smaller than the predetermined membrane load index A1.

[0115] Thereafter, in the filtration process, when the membrane filtrate water volume F (flux) per unit membrane area and per unit time becomes less than a predetermined membrane filtrate water volume Fs (an example of a third threshold value), the administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is stopped.

[0116] According to the method of administering the coagulant 19 as described above, the load on the filtration membrane of the membrane element 13 can be objectively evaluated based on the membrane load index A during the filtration process, and administration of the coagulant 19 is started using this membrane load index A as an indicator, so that administration of the coagulant 19 can be started at the optimal timing.

[0117] In addition, since the administration of the flocculant 19 is stopped using the membrane filtered water volume F as an index, the administration of the flocculant 19 can be stopped at an optimal timing after the administration of the flocculant 19 is started.

[0118] (Seventh embodiment) In the seventh embodiment, as a method of administering the coagulant 19, in the water treatment device shown in FIG. 4, administration of the coagulant 19 is started using the membrane load index A and the cumulative added resistance B as indicators, as in the second embodiment described above.

[0119] In other words, when the membrane load index A becomes equal to or greater than a predetermined membrane load index A1 (an example of a first threshold value) and the cumulative added resistance B becomes equal to or greater than a predetermined cumulative added resistance B1 (an example of a second threshold value), administration of coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is started.

[0120] At the start of administration of the coagulant 19, only an initial dosage D of the coagulant 19 is administered, and thereafter, when the membrane load index A falls below the target membrane load index A2, the dosage of the coagulant 19 is reduced from the initial dosage D by a predetermined percentage.

[0121] Thereafter, in the filtration process, when the membrane filtrate amount F per unit membrane area and per unit time becomes less than a predetermined membrane filtrate amount Fs, the administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is stopped.

[0122] According to the method of administering the coagulant 19 as described above, the load on the filtration membrane can be objectively evaluated based on the membrane load index A during the filtration process, and the cleaning effect of the filtration membrane during the filtration pause process of the previous treatment cycle can be objectively evaluated based on the cumulative added resistance B.

[0123] In this way, since the administration of the flocculant 19 is started using the membrane load index A and the cumulative added resistance B as indicators, the administration of the flocculant 19 can be started at an optimal timing.

[0124] In addition, since the administration of the flocculant 19 is stopped using the membrane filtered water volume F as an index, the administration of the flocculant 19 can be stopped at an optimal timing after the administration of the flocculant 19 is started.

[0125] (Eighth embodiment) In the eighth embodiment, as a method of administering the coagulant 19 in the water treatment device shown in FIG. 4, administration of the coagulant 19 is started and stopped using the water level of the wastewater 2 in the anoxic tank 51 (monitoring tank) as an indicator, similar to the third embodiment described above.

[0126] In the filtration step, the wastewater 2 is filtered using the membrane element 13 while being circulated between the filtration tank 3 and the anoxic tank 51 .

[0127] For example, the inflow rate per unit time of the wastewater 2 supplied from the supply flow path 7 to the anoxic tank 51 is Q [m 3 / min], the flow rate per unit time of the wastewater 2 sent from the anoxic tank 51 through the feed flow path 52 to the filtration tank 3 is 4Q [m 3 / min], and the extraction flow rate per unit time of the permeated water 16 extracted from the permeated water extraction flow path 17 is Q [m 3 / min], and the flow rate per unit time of the wastewater 2 that overflows the overflow weir 5 from the filtration tank 3 and is returned to the anoxic tank 51 is 3Q [m 3 / min.

[0128] At this time, the water level of the wastewater 2 in the anoxic tank 51 is kept between a first water level L1 (an example of a fourth threshold value) and a second water level L2 (an example of a fifth threshold value) that are preset. The second water level L2 is lower than the first water level L1.

[0129] Thereafter, the inflow rate per unit time of the wastewater 2 supplied from the supply flow path 7 to the anoxic tank 51 is Q [m 3 / min] to, for example, 2Q[m 3 / min], the increase in the amount of filtration cannot keep up with the increase in the amount of inflow, and the water level of the wastewater 2 in the anoxic tank 51 rises.

[0130] Therefore, when the water level of the wastewater 2 in the anoxic tank 51 reaches or exceeds the first water level L1, the amount of membrane filtered water (flux) per membrane area and per time is increased to the maximum membrane filtered water amount (maximum flux) in design so that the amount of membrane filtered water taken out from the permeate extraction flow path 17 exceeds the inflow amount of wastewater 2 supplied to the anoxic tank 51 from the supply flow path 7. Adjusting the amount of membrane filtered water in this way increases the load on the filtration membrane.

[0131] Therefore, when the water level of the wastewater 2 in the anoxic tank 51 becomes equal to or higher than the first water level L1 as described above, administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is started, so that administration of the coagulant 19 can be started at an optimal timing. In this case, the maximum membrane filtrate amount has a certain upper limit, but is set to an amount larger than the inflow amount 2Q, for example.

[0132] As described above, filtration is continued with the membrane filtrate amount set to the designed maximum membrane filtrate amount, and when the water level of the wastewater 2 in the anoxic tank 51 drops to below the second water level L2, filtration is continued by lowering the membrane filtrate amount (flux) per membrane area and per time from the maximum membrane filtrate amount to the original extraction flow rate Q. By adjusting the membrane filtrate amount in this way, the load on the filtration membrane is reduced.

[0133] Therefore, when the water level of the wastewater 2 in the anoxic tank 51 falls below the second water level L2 as described above, the administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is stopped, so that the administration of the coagulant 19 can be stopped at the optimal timing after the administration of the coagulant 19 has started.

[0134] Ninth embodiment In the ninth embodiment, as a method of administering the flocculant 19 in the water treatment device shown in Fig. 4, administration of the flocculant 19 is started and stopped using the transmembrane pressure difference of the filtration membrane of the membrane element 13 and the passage of a predetermined time as indicators, as in the previously described fourth embodiment. An example of the predetermined time is the residence time Ts. The residence time Ts is defined as the actual residence time x (circulation ratio + 1).

[0135] Here, the actual residence time is the time required for the coagulant 19 administered at a predetermined dosing position 23 in the filtration tank 3 to circulate within the filtration tank 3, flow from the filtration tank 3 over the overflow weir 5 into the anoxic tank 51, and then return from the anoxic tank 51 through the feed flow path 52 to the original dosing position 23 in the filtration tank 3, as shown by the dotted arrow in Figure 4.

[0136] The circulation ratio is the amount of wastewater 2 flowing in per unit time. The amount of wastewater 2 flowing in is the amount of wastewater 2 flowing from the supply passage 7 into the anoxic tank 51. The amount of circulation is the flow rate of wastewater 2 flowing in from the filtration tank 3 over the overflow weir 5 into the anoxic tank 51 per unit time.

[0137] In the filtration step, the wastewater 2 is filtered using the membrane element 13 while circulating the wastewater 2 between the filtration tank 3 and the anoxic tank 51. In this case, for example, the inflow rate per unit time of the wastewater 2 supplied from the supply flow passage 7 to the anoxic tank 51 is Q [m 3 / min], and the flow rate per unit time of the permeated water 16 taken out from the permeated water taking-out passage 17 is Q [m 3 / min], and the flow rate per hour of the wastewater 2 sent from the anoxic tank 51 through the feed flow path 52 to the filtration tank 3 is 4Q [m 3 / min], and the flow rate per unit time of the wastewater 2 that overflows the overflow weir 5 from the filtration tank 3 and is returned to the anoxic tank 51 is 3Q [m 3 / min] and the actual residence time is 70 [min], the circulation volume is 3Q [m 3 / min], and the amount of membrane filtered water per unit time (i.e., the flow rate per unit time of the permeated water 16 taken out from the permeated water taking-out passage 17) is Q [m 3This results in a circulation ratio of 3Q / Q=3, and a residence time Ts of 70×(3+1)=280 [min].

[0138] In the filtration process, when the transmembrane pressure difference of the filtration membrane of the membrane element 13 becomes equal to or greater than a predetermined transmembrane pressure difference (an example of a sixth threshold value), administration of the flocculant 19 from the flocculant administration flow path 20 into the filtration tank 3 begins.

[0139] According to this, the greater the transmembrane pressure difference, the greater the load on the filtration membrane. Therefore, the load on the filtration membrane can be objectively evaluated based on the transmembrane pressure difference, and since administration of the flocculant 19 is started using this transmembrane pressure difference as an indicator, administration of the flocculant 19 can be started at the optimal timing.

[0140] After starting the administration of the flocculant 19 in this manner, when the residence time Ts (an example of a predetermined time) has elapsed, the administration of the flocculant 19 into the filtration tank 3 is stopped. This makes it possible to stop the administration of the flocculant 19 at an optimal timing after the administration of the flocculant 19 has started.

[0141] (Tenth embodiment) In the tenth embodiment, the method of dosing the coagulant 19 is the same as in the fifth embodiment described above, in the water treatment device shown in FIG. 4, in which the amount of membrane filtrate per unit membrane area and time of the filtration membrane of the membrane element 13 (i.e., flux [m 3 / m 2 The administration of the flocculant 19 is started and stopped using the time (time (hr) / min) as an indicator.

[0142] That is, in the filtration process, when the amount of the membrane filtered water becomes equal to or greater than a predetermined first membrane filtered water amount (an example of a seventh threshold value), administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is started.

[0143] According to this, the greater the amount of membrane filtered water, the greater the load on the filtration membrane. Therefore, by starting the administration of coagulant 19 using this membrane filtered water amount as an indicator, the administration of coagulant 19 can be started at the optimal timing.

[0144] Thereafter, in the filtration process, when the amount of membrane-filtered water becomes less than a preset second membrane-filtered water amount (an example of an eighth threshold value), the administration of the coagulant 19 from the coagulant administration flow path 20 into the filtration tank 3 is stopped. Note that the second membrane-filtered water amount is set to a water amount less than the first membrane-filtered water amount.

[0145] According to this, the smaller the amount of membrane filtered water is, the smaller the load on the filtration membrane is. Therefore, by using this membrane filtered water amount as an indicator to stop the administration of coagulant 19, it is possible to stop the administration of coagulant 19 at the optimal timing after the administration of coagulant 19 has started.

[0146] (Eleventh embodiment) The eleventh embodiment will be described with reference to Fig. 5. The same members as those in the first to tenth embodiments described above are given the same reference numerals, and detailed description thereof will be omitted.

[0147] In the eleventh embodiment, as shown in FIG. 5 , the treatment tank 1 does not have the monitoring tank 4 of the first to fifth embodiments or the anoxic tank 51 of the sixth to tenth embodiments described above, and a submerged membrane separation device 11 is installed in the treatment tank 1.

[0148] Wastewater 2 is supplied to the treatment tank 1 through a supply flow path 7. A flocculant 19 is administered to the wastewater 2 in the treatment tank 1 through a flocculant administration flow path 20.

[0149] The wastewater 2 is treated by a membrane separation activated sludge process using the treatment tank 1 as described above. In this process, one treatment cycle consists of a filtration step in which the wastewater 2 in the treatment tank 1 is filtered using the membrane element 13 and a filtration suspension step in which the filtration is suspended, and this treatment cycle is repeated to treat the wastewater 2.

[0150] In the filtration process, wastewater 2 is supplied to the treatment tank 1 from the supply flow path 7, and while aeration is performed from the air diffuser 14 of the membrane separation device 11, the pressure on the secondary side of the filtration membrane of the membrane element 13 is reduced, so that a portion of the wastewater 2 in the treatment tank 1 permeates the filtration membrane and is sent out of the treatment tank 1 as permeated water 16 from the permeated water extraction flow path 17.

[0151] In the filtration suspension step, filtration by the membrane element 13 is stopped while air diffusion from the air diffuser 14 continues.

[0152] When the wastewater 2 is treated by repeating the above-mentioned treatment cycle, the flocculant 19 is administered from the flocculant administration flow path 20 to the wastewater 2 in the treatment tank 1, whereby the flocculant 19 is adsorbed onto the activated sludge in the wastewater 2, forming coarse flocs. A method for administering such aggregating agent 19 will be described below.

[0153] For example, the inflow rate per unit time of the wastewater 2 supplied from the supply flow path 7 to the treatment tank 1 is Q [m 3 / min], the extraction flow rate per unit time of the permeate 16 that permeates the membrane element 13 and is extracted from the permeate extraction flow path 17 to the outside of the treatment tank 1 is Q [m 3 / min.

[0154] At this time, the water level of the wastewater 2 in the treatment tank 1 is maintained between a first water level L1 (an example of a ninth threshold value) and a second water level L2 (an example of a tenth threshold value) that are preset. The second water level L2 is lower than the first water level L1.

[0155] Thereafter, the inflow rate per unit time of the wastewater 2 supplied from the supply flow path 7 to the treatment tank 1 is Q [m 3 / min] to, for example, 2Q[m 3 / min], the increase in the filtration rate cannot keep up with the increase in the inflow rate, and the amount of wastewater 2 flowing into the treatment tank 1 exceeds the amount of permeate 16 extracted from the permeate extraction flow path 17 to the outside of the treatment tank 1, causing the level of the wastewater 2 in the treatment tank 1 to rise.

[0156] Therefore, when the water level of the wastewater 2 in the treatment tank 1 reaches or exceeds the first water level L1, the membrane filtrate water volume (flux) per membrane area and per time is raised to the maximum membrane filtrate water volume (maximum flux) in design, and filtration is performed, and administration of the coagulant 19 from the coagulant administration flow path 20 into the treatment tank 1 is started. In this way, administration of the coagulant 19 is started using the water level of the wastewater 2 in the treatment tank 1 as an index, so that administration of the coagulant 19 can be started at an optimal timing. In this case, the maximum membrane filtrate water volume has a certain upper limit, but is set to an amount greater than the inflow amount 2Q, for example.

[0157] As described above, by continuing filtration with the membrane filtered water volume set to the designed maximum membrane filtered water volume, the amount of permeate 16 taken out of the treatment tank 1 from the permeate extraction flow path 17 exceeds the amount of wastewater 2 flowing into the treatment tank 1, and the level of the wastewater 2 in the treatment tank 1 gradually drops. When the level of the wastewater 2 in the treatment tank 1 falls below the second water level L2, the administration of the coagulant 19 from the coagulant administration flow path 20 into the treatment tank 1 is stopped, and the membrane filtered water volume is returned from the maximum membrane filtered water volume to the original extraction flow rate Q.

[0158] In this way, by stopping the administration of the flocculant 19 using the water level of the wastewater 2 in the treatment tank 1 as an indicator, the administration of the flocculant 19 can be stopped at the optimal timing after the administration of the flocculant 19 has started.

[0159] (Twelfth embodiment) The twelfth embodiment is a modification of the eleventh embodiment described above, and as shown in Fig. 6, the membrane separation device 11 is installed outside the treatment tank 1. The membrane separation device 11 has a plurality of membrane elements 13 provided in a casing 12. The membrane elements 13 have filtration membranes such as hollow fiber membranes.

[0160] A pump 66 for supplying wastewater 2 to the inlet of the membrane separation device 11 is installed at the bottom of the treatment tank 1 , and an inlet-side flow path 67 is connected between the pump 66 and the inlet of the membrane separation device 11 .

[0161] In addition, an outlet side flow path 68 for returning the wastewater 2 concentrated in the membrane separation device 11 to the treatment tank 1 is connected to the outlet of the membrane separation device 11 .

[0162] The wastewater 2 is treated by a membrane separation activated sludge process using the treatment tank 1 as described above. In this process, one treatment cycle consists of a filtration step in which the wastewater 2 in the treatment tank 1 is filtered using the membrane element 13 and a filtration suspension step in which the filtration is suspended, and this treatment cycle is repeated to treat the wastewater 2.

[0163] In the filtration step, wastewater 2 is supplied from the supply flow passage 7 to the treatment tank 1, and the pump 66 is driven to supply the wastewater 2 in the treatment tank 1 from the inlet flow passage 67 to the inlet of the membrane separation device 11. By reducing the pressure on the secondary side of the filtration membrane of the membrane element 13, a part of the wastewater 2 permeates the filtration membrane and is sent out of the treatment tank 1 as permeated water 16 from the permeated water discharge flow passage 17. At this time, the wastewater 2 that did not permeate the filtration membrane is concentrated and returned to the treatment tank 1 from the outlet flow passage 68.

[0164] In the filtration suspension step, filtration by the membrane element 13 is stopped.

[0165] When the wastewater 2 is treated by repeating the above-mentioned treatment cycle, the flocculant 19 is administered from the flocculant administration flow path 20 to the wastewater 2 in the treatment tank 1, whereby the flocculant 19 is adsorbed onto the activated sludge in the wastewater 2, forming coarse flocs.

[0166] A method for administering such aggregating agent 19 will be described below.

[0167] For example, the inflow rate per unit time of the wastewater 2 supplied from the supply flow path 7 to the treatment tank 1 is Q [m 3 / min], the extraction flow rate per unit time of the permeated water 16 extracted from the permeated water extraction flow path 17 is Q [m 3 / min], and the flow rate per hour of the wastewater 2 supplied from the treatment tank 1 through the inlet side flow path 67 to the inlet of the membrane separation device 11 is 3Q [m 3 / min], and as a result, the flow rate per unit time of the wastewater 2 returning from the outlet of the membrane separation device 11 through the outlet side flow path 68 into the treatment tank 1 is 2Q [m 3 / min.

[0168] At this time, the water level of the wastewater 2 in the treatment tank 1 is maintained between a first water level L1 (an example of a ninth threshold value) and a second water level L2 (an example of a tenth threshold value) that are preset. The second water level L2 is lower than the first water level L1.

[0169] Thereafter, the inflow rate per unit time of the wastewater 2 supplied from the supply flow path 7 to the treatment tank 1 is Q [m 3 / min] to, for example, 2Q[m 3 / min], the increase in the filtration rate cannot keep up with the increase in the inflow rate, and the amount of wastewater 2 flowing into the treatment tank 1 exceeds the amount of permeate 16 extracted from the permeate extraction flow path 17 to the outside of the treatment tank 1, causing the level of the wastewater 2 in the treatment tank 1 to rise.

[0170] Therefore, when the water level of the wastewater 2 in the treatment tank 1 reaches or exceeds the first water level L1, the membrane filtrate water volume (flux) per membrane area and per time is raised to the maximum membrane filtrate water volume (maximum flux) in design, and filtration is performed, and administration of the coagulant 19 from the coagulant administration flow path 20 into the treatment tank 1 is started. In this way, administration of the coagulant 19 is started using the water level of the wastewater 2 in the treatment tank 1 as an index, so that administration of the coagulant 19 can be started at an optimal timing. In this case, the maximum membrane filtrate water volume has a certain upper limit, but is set to an amount greater than the inflow amount 2Q, for example.

[0171] As described above, by continuing filtration with the membrane filtered water volume set to the designed maximum membrane filtered water volume, the amount of permeate 16 taken out of the treatment tank 1 from the permeate extraction flow path 17 exceeds the amount of wastewater 2 flowing into the treatment tank 1, and the level of the wastewater 2 in the treatment tank 1 gradually drops. When the level of the wastewater 2 in the treatment tank 1 falls below the second water level L2, the administration of the coagulant 19 from the coagulant administration flow path 20 into the treatment tank 1 is stopped, and the membrane filtered water volume is returned from the maximum membrane filtered water volume to the original extraction flow rate Q.

[0172] In this way, by stopping the administration of the flocculant 19 using the water level of the wastewater 2 in the treatment tank 1 as an indicator, the administration of the flocculant 19 can be stopped at the optimal timing after the administration of the flocculant 19 has started.

[0173] In the above-described embodiments, the wastewater 2 is given as an example of the water to be treated, but the water to be treated may be water other than the wastewater 2 that contains organic matter or the like. [Explanation of symbols]

[0174] 1 Treatment tank 2 Wastewater (untreated water) 3. Filtration tank 4 Monitoring tank 19 Flocculants 23 Prescribed administration location 51 Anoxic tank (monitoring tank) C1~C5 Processing cycle L1 First water level (fourth threshold, ninth threshold) L2 Second water level (5th threshold, 10th threshold) Prm1 First Permeability Prm2 Second Permeability T1 First time point T2 Second time point p1,p2 transmembrane pressure

Claims

1. A method for administering a coagulant in water treatment, in which a filtration process in which a filtration membrane is used to filter water in a filtration tank and a filtration pause process in which filtration is paused are defined as one treatment cycle, and the treatment cycle is repeated to treat the water to be treated, The increase in transmembrane pressure per unit time during the filtration process is defined as the membrane load index. The difference between the transmembrane pressure at a first point in time when the amount of membrane filtrate per hour after the start of the filtration process of the current treatment cycle is stable and the transmembrane pressure at a second point in time when the amount of membrane filtrate per hour after the start of the filtration process of the treatment cycle immediately preceding the current treatment cycle is stable is defined as the cumulative added resistance; A method for administering a coagulant, characterized in that administration of a coagulant into a filtration tank is started when a membrane load index becomes equal to or greater than a first threshold value and a cumulative added resistance becomes equal to or greater than a second threshold value.

2. A method for administering a coagulant in water treatment, in which a filtration process in which a filtration membrane is used to filter water in a filtration tank and a filtration pause process in which filtration is paused are defined as one treatment cycle, and the treatment cycle is repeated to treat the water to be treated, The increase in transmembrane pressure per unit time during the filtration process is defined as the membrane load index. The difference between the transmembrane pressure at a first time point at which the amount of membrane filtrate per hour after the start of the filtration process of the current treatment cycle is stable and the transmembrane pressure at a second time point at which the amount of membrane filtrate per hour after the start of the filtration process of the treatment cycle immediately preceding the current treatment cycle is stable is divided by the time from the second time point to the first time point, and is defined as the cumulative added resistance; A method for administering a coagulant, characterized in that administration of a coagulant into a filtration tank is started when a membrane load index becomes equal to or greater than a first threshold value and a cumulative added resistance becomes equal to or greater than a second threshold value.

3. A method for administering a coagulant in water treatment, in which a filtration process in which a filtration membrane is used to filter water in a filtration tank and a filtration pause process in which filtration is paused are defined as one treatment cycle, and the treatment cycle is repeated to treat the water to be treated, The increase in transmembrane pressure per unit time during the filtration process is defined as the membrane load index. The value obtained by dividing the transmembrane pressure difference at a first time point at which the amount of water filtered through the membrane per hour after the start of the filtration process of the current treatment cycle is stable by the amount of water filtered through the membrane per hour per membrane area is defined as a first filtration resistance value; The second filtration resistance value is obtained by dividing the transmembrane pressure difference at a second time point when the amount of membrane filtrate per hour after the start of the filtration step of the treatment cycle immediately before the current treatment cycle is stabilized by the amount of membrane filtrate per hour per membrane area; The difference between the first filtered resistance value and the second filtered resistance value is defined as a cumulative added resistance; A method for administering a coagulant, characterized in that administration of a coagulant into a filtration tank is started when a membrane load index becomes equal to or greater than a first threshold value and a cumulative added resistance becomes equal to or greater than a second threshold value.

4. A method for administering a coagulant in water treatment, in which a filtration process in which a filtration membrane is used to filter water in a filtration tank and a filtration pause process in which filtration is paused are defined as one treatment cycle, and the treatment cycle is repeated to treat the water to be treated, The increase in transmembrane pressure per unit time during the filtration process is defined as the membrane load index. The value obtained by dividing the transmembrane pressure difference at a first time point at which the amount of water filtered through the membrane per hour after the start of the filtration process of the current treatment cycle is stable by the amount of water filtered through the membrane per hour per membrane area is defined as a first filtration resistance value; The second filtration resistance value is obtained by dividing the transmembrane pressure difference at a second time point when the amount of membrane filtrate per hour after the start of the filtration step of the treatment cycle immediately before the current treatment cycle is stabilized by the amount of membrane filtrate per hour per membrane area; The difference between the first filtering resistance value and the second filtering resistance value divided by the time from the second time point to the first time point is defined as a cumulative added resistance; A method for administering a coagulant, characterized in that administration of a coagulant into a filtration tank is started when a membrane load index becomes equal to or greater than a first threshold value and a cumulative added resistance becomes equal to or greater than a second threshold value.

5. A method of administering a coagulant described in any one of claims 1 to 4, characterized in that, during the filtration process, when the amount of membrane filtered water per membrane area and per time becomes less than a third threshold value, administration of the coagulant into the filtration tank is stopped.

6. A method for administering a coagulant in water treatment, in which a treatment tank has a filtration tank equipped with a filtration membrane and into which water to be treated supplied from outside flows, and a monitoring tank adjacent to the filtration tank and into which water to be treated that has overflowed from the filtration tank flows, the treatment cycle consisting of a filtration process in which the water to be treated is filtered using a filtration membrane and a filtration suspension process in which filtration is suspended, is repeated to treat the water to be treated, In the filtration step, when the untreated water overflowing from the filtration tank flows into the monitoring tank and a portion of the untreated water in the monitoring tank is sent to the filtration tank and the transmembrane pressure difference becomes equal to or greater than a sixth threshold value, administration of a coagulant into the filtration tank is started; When a predetermined time has elapsed after the start of administration of the flocculant, administration of the flocculant is stopped, The predetermined time is the actual residence time of the filtration tank in which the filtration membrane is immersed multiplied by the circulation ratio plus 1, The actual residence time is the time required for the coagulant administered at a specific administration position in the filtration tank to flow from the filtration tank through the monitoring tank and return to the original administration position in the filtration tank. The circulation ratio is the value obtained by dividing the circulation amount by the inflow amount of the water to be treated that is supplied to the filtration tank from the outside. A method for administering a coagulant, characterized in that the circulation amount is the flow rate per hour of the water to be treated flowing from the filtration tank to the monitoring tank.

7. A method for administering a coagulant in water treatment, in which a treatment tank having a filtration tank equipped with a filtration membrane and a monitoring tank adjacent to the filtration tank and into which water to be treated supplied from outside and water to be treated overflowing from the filtration tank flow, is defined as one treatment cycle consisting of a filtration process in which the water to be treated is filtered using a filtration membrane and a filtration suspension process in which filtration is suspended, and this treatment cycle is repeated to treat the water to be treated, In the filtration step, when the untreated water overflowing from the filtration tank flows into the monitoring tank and a portion of the untreated water in the monitoring tank is sent to the filtration tank and the transmembrane pressure difference becomes equal to or greater than a sixth threshold value, administration of a coagulant into the filtration tank is started; When a predetermined time has elapsed after the start of administration of the flocculant, administration of the flocculant is stopped, The predetermined time is the actual residence time of the filtration tank in which the filtration membrane is immersed multiplied by the circulation ratio plus 1, The actual residence time is the time required for the coagulant administered at a specific administration position in the filtration tank to flow from the filtration tank through the monitoring tank and return to the original administration position in the filtration tank. The circulation ratio is the value obtained by dividing the circulation amount by the inflow amount of the water to be treated that is supplied to the monitoring tank from the outside. A method for administering a coagulant, characterized in that the circulation amount is the flow rate per hour of the water to be treated flowing from the filtration tank to the monitoring tank.

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