RAW WATER FILTRATION TREATMENT SYSTEM, AND METHOD FOR CLEANING FILTRATION DEVICE
20170296975 ยท 2017-10-19
Assignee
Inventors
Cpc classification
C02F1/008
CHEMISTRY; METALLURGY
C02F2209/005
CHEMISTRY; METALLURGY
B01D61/025
PERFORMING OPERATIONS; TRANSPORTING
B01D65/02
PERFORMING OPERATIONS; TRANSPORTING
C02F2209/003
CHEMISTRY; METALLURGY
B01D2321/40
PERFORMING OPERATIONS; TRANSPORTING
C02F2209/001
CHEMISTRY; METALLURGY
International classification
B01D65/02
PERFORMING OPERATIONS; TRANSPORTING
B01D61/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A filtration treatment system of raw water includes a raw water supply line to supply raw water, a filtration device provided on the raw water supply line to filter impurities in the raw water, a separation device provided on a rear side of the filtration device and equipped with a separation membrane to separate filtered raw water into permeated water and concentrated water; an organic substance monitoring device provided on either front or rear or both front and rear of the filtration device to monitor an amount of an organic substance in the raw water, and a control device to execute backwashing of the filtration device with the permeated water as backwashing water in a case in which the amount of the organic substance in the raw water exceeds a reference value as a result of monitoring by the organic substance monitoring device.
Claims
1-12. (canceled)
13. A filtration treatment system of raw water comprising: a raw water supply line that is configured to supply raw water; a filtration device that is provided on the raw water supply line and configured to filter impurities in the raw water; a separation device that is provided on a downstream side of the filtration device and equipped with a separation membrane to separate filtered raw water into permeated water and concentrated water in which a solute including a salt or fine particles are enriched; an organic substance monitoring device that is provided on either an upstream side or a downstream side or both the upstream side and the downstream side of the filtration device and configured to monitor an amount of an organic substance in the raw water; and a control device that is configured to execute backwashing of the filtration device with the raw water or the concentrated water as the backwashing water in a case in which the amount of the organic substance in the raw water is equal to or less than the reference value as a result of monitoring by the organic substance monitoring device.
14. The filtration treatment system of raw water according to claim 13, wherein the organic substance monitoring device includes an organic substance concentration measurement device configured to measure a concentration of the organic substance in the raw water.
15. The filtration treatment system of raw water according to claim 13, wherein the organic substance monitoring device is provided on a downstream side of the filtration device and includes a turbidity measuring device configured to measure a turbidity in raw water from the filtration device.
16. The filtration treatment system of raw water according to claim 13, wherein the control device executes backwashing of the filtration device with the permeated water at every set period.
17. The filtration treatment system of raw water according to claim 13, comprising: a plurality of the separation devices, wherein the plurality of separation devices are connected to permeated water lines to discharge the permeated water in series, the filtration device is connected to a permeated water line of permeated water to be discharged from the separation device provided on an upstream side of the separation device at a final stage, and the control device performs backwashing of the filtration device with permeated water to be discharged from the separation device provided on the upstream side of the separation device at the final stage in a case of executing backwashing of the filtration device with the permeated water.
18. The filtration treatment system of raw water according to claim 13, wherein the filtration device includes: a filtration device main body that has a plurality of filtration layers layered in a vertical axis direction in an interior; a raw water supply line that is configured to supply the raw water from a top portion side of the filtration device main body; a filtered raw water supply line that is configured to discharge filtered raw water filtered from a bottom portion side of the filtration device main body and supply the filtered raw water to the separation device; a backwashing water introduction line that is configured to introduce backwashing water from the bottom portion side of the filtration device main body; an overflow line that is configured to collect the backwashing water overflowed from a top portion side of the filtration layers of the filtration device main body; and a backwashing water discharge line that is configured to discharge the backwashing water of the interior of the filtration device main body from the bottom portion side of the filtration device main body.
19. The filtration treatment system of raw water according to claim 18, wherein the control device executes backwashing of the filtration device by carrying out a treatment in which the backwashing water discharge line is opened, the backwashing water in an interior of the filtration device main body is drained through the backwashing water discharge line, then the backwashing water discharge line is closed, and the backwashing water is introduced into the interior of the filtration device main body through the backwashing water introduction line at least once or more.
20. The filtration treatment system of raw water according to claim 13, wherein the control device executes backwashing with the permeated water after the concentration of the organic substance is decreased to a concentration equal to or less than a threshold concentration lower than a predetermined concentration in a case in which a state in which the concentration of the organic substance exceeds the predetermined concentration continues for a predetermined time or longer through monitoring by the organic substance monitoring device.
21. A method of washing a filtration device that is configured to remove a suspended solid in raw water, the method comprising: an organic substance monitoring step of monitoring an amount of an organic substance in the raw water; and a step of performing backwashing of the filtration device by using the raw water or concentrated water in which a solute including a salt or fine particles are enriched in the raw water as backwashing water in a case in which an amount of an organic substance in the raw water is equal to or less than a reference value, and performing backwashing of the filtration device by using permeated water that the raw water is filtered as the backwashing water in a case in which the amount of the organic substance in the raw water exceeds the reference value as a result of the organic substance monitoring step.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
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[0047]
DESCRIPTION OF EMBODIMENTS
[0048] Hereinafter, the present invention will be described in detail with reference to the drawings. Incidentally, the present invention is not limited to the following embodiments. In addition, the constituent elements in the following embodiments include those that can easily be assumed by those skilled in the art, those that are substantially the same, and so-called equivalents. Furthermore, the constituent elements disclosed in the following embodiments can be appropriately combined.
First Embodiment
[0049] Filtration treatment systems of raw water according to embodiments of the present invention will be described with reference to the drawings. Hereinafter, a desalination treatment system will be described by taking a desalination device equipped with a separation membrane which enriches a solute such as a salt or fine particles as an example of a separation device in the present embodiment.
[0050] As illustrated in
[0051] In
[0052] Here, the raw water 11 of the present invention is, for example, water to be treated that is subjected to a water treatment by the separation device 23 using a separation membrane such as an ultrafiltration membrane (UF membrane), a nanofiltration membrane (NF membrane), and a reverse osmosis membrane (RO membrane), and examples thereof may include seawater, mine wastewater, and cooling tower wastewater.
[0053] The organic substance contained in this raw water 11 is a water-soluble polymer, and it also includes, for example, those caused by metabolism of microorganisms or the like, and examples thereof may include neutral polysaccharides. The molecular weight of this neutral polysaccharide is, for example, 10,000 or more, but it may exceed, for example, one million, or it may exceed, for example, ten millions. In addition, there is also a case in which a polymer component having a molecular weight of 10,000 or less is included.
[0054] Here, in the case of installing the outlet side organic substance monitoring device 25A of the filtration device 12, inorganic substance-based impurities are captured by the filtration layers 12a and 12b of the filtration device 12, and it is thus possible to ascertain the amount of organic substance-based impurities.
[0055] In the filtration device 12, a carbon-based material such as anthracite is used as the filtration layer 12a on the upper layer side, a granular filter medium such as silica sand is used as the filtration layer 12b of a lower layer, the filtration layers 12a and 12b provided in a filtration device main body 12c by being layered, and the raw water 11 is introduced from a top portion 12d side and passes through the filtration layers 12a and 12b so that the suspended solids in the raw water 11 are captured.
[0056] Here, as the organic substance monitoring device of the present invention, it is possible to use an organic substance concentration meter which directly measures the concentration of organic substances in the raw water 11 and a turbidity measuring device which indirectly measures the concentration of organic substances.
[0057] Examples of the organic substance concentration meter may include a total organic carbon (TOC) meter, an ultraviolet visible spectrophotometer, COD (Chemical Oxygen Demand), and SFF (Soluble Fouling Factor. For example, see Japanese Laid-open Patent Publication No. 2012-213676). Incidentally, the measurement may be either online automatic measurement or analysis by sampling.
[0058] Here, in the case of taking the TOC meter as an example, it is desirable that the reference value of the TOC concentration is, for example, 2 mg/kg or more, preferably 2.5 mg/kg or more, and more preferably 3 mg/kg or more.
[0059] Moreover, the part 21a of the permeated water 21 is introduced from a bottom portion 12e of the filtration device 12 as a backwashing water 30 to perform backwashing when the concentration of organic substances is determined to exceed the reference value as a result of measurement by the organic substance concentration meter.
[0060] In other words, in the case of using an organic substance concentration meter as the outlet side organic substance monitoring device 25A, backwashing is carried out by using the part 21a of the permeated water 21 as the backwashing water 30 in a case in which the concentration of organic substances in the raw water 11 exceeds the reference value, but the control device 31 determines and switches the flow path by the flow path switching unit 32 and backwashing is carried out by using the part 22a of the concentrated water 22 for backwashing of the filtration device 12 in a case in which the concentration of organic substances is equal to or less than the reference value.
[0061] In the related art, washing has been performed always by using fresh water as the backwashing water 30 when backwashing is carried out when there is an increase in pressure loss in the filtration device.
[0062] In contrast, in the present embodiment, only in a case in which the amount of organic substances in the raw water 11 is determined to exceed the reference value as a result of measurement by the outlet side organic substance monitoring device 25A, the control device 31 instructs the flow path switching unit 32 to change the flow path so that the fresh water of the part 21a of the permeated water 21 becomes the backwashing water 30, and the part 21a of the permeated water 21 is introduced from the bottom portion 12e of the filtration device 12, and backwashing is performed, and it is thus possible to decrease the amount of permeated water used when carrying out backwashing.
[0063] In addition, as the turbidity measuring device which measures the amount of organic substances, it is preferable to use the SDI value (Silt Density Index) prescribed in ASTM D4189, the FI value (Fouling Index) prescribed in JIS K 3802, and the like.
[0064] Here, in the case of measuring the amount of organic substances by using a turbidity measuring device as the outlet side organic substance monitoring device 25A, the turbidity measuring device is required to be provided on the rear side of the filtration device 12. This is because there are turbidity causing materials which are mostly composed of inorganic substances and turbidity causing materials which are mostly composed of organic substances as the turbidity causing materials which are contained in the raw water 11. Moreover, the turbidity causing materials which are mostly composed of inorganic substances removed by introducing the raw water 11 into the filtration device 12, and the turbidity causing materials in the filtered raw water 11A on the rear side are measured and regarded as the turbidity causing materials which are mostly composed of organic substances.
[0065] In a case in which SDI is used as an index to measure the turbidity causing materials, the backwashing water 30 to be used in backwashing is switched from the concentrated water 22 of seawater to freshwater of the permeated water 21 by the flow path switching unit 32 in a case in which SDI measured at the downstream of the outlet of the filtration device 12 is equal to or more than the reference value (for example, 3 or more, or 3.5 or more, or even 6 or more).
[0066] In this manner, in the present embodiment, backwashing is performed by using fresh water of a part 21a of the permeated water 21 regardless of the value of pressure loss in a case in which the concentration of organic substances is increased to be equal to or more than the reference value as a result of measurement by the outlet side organic substance monitoring device 25A.
[0067] Incidentally, in the related art, it is controlled such that backwashing is performed based on an increase in pressure loss, but in the present embodiment, only a change in pressure loss is not taken into consideration, but when the amount of organic substances is equal to or more than the reference value, it is determined that there is an influence by the organic substances, and backwashing is carried out by using fresh water of the part 21a of the permeated water 21.
[0068] Incidentally, there is a case in which contamination of the filtration layers 12a and 12b of the filtration device 12 occurs in a case in which seawater at the inlet is dirty although the pressure loss does not increase, that case corresponds to a case in which the pretreatment function of the filtration device 12 cannot be sufficiently exerted, and it is thus possible to prevent filtering clogging and the like in advance by carrying out washing through backwashing before the function of the filtration device 12 is greatly decreased by the pressure loss.
[0069] In this manner, it is possible to quickly remove dirt due to the organic substances of the filter medium and to maintain the organic substance removal performance by the filtration device 12 by controlling the washing timing of backwashing based on the amount of organic substances in seawater but not by the pressure loss in the related art.
[0070] In particular, the amount of organic substances to be adsorbed to the filter medium also increases by adsorption equilibrium as the concentration of organic substances in seawater of the raw water 11 increases. Thereafter, the adsorbed organic substances desorb more than usual in a case in which the concentration of organic substances in seawater decreases, and the concentration of organic substances in seawater on the outlet side is thus increased more than on the inlet side in some cases. For that reason, it is required to promote particularly the removal of organic substances through backwashing using fresh water after the concentration of organic substances in seawater is increased.
[0071] According to the present embodiment, a part of the permeated water is not always used at the time of backwashing by using a part of the permeated water for backwashing in a case in which the concentration of organic substances exceeds the reference value, and it is thus possible to efficiently perform recovery of the filtration performance by removing the organic substances of the filtration device while suppressing the amount of the permeated water used.
[0072] In the present embodiment, as a device which monitors this concentration of organic substances, the outlet side organic substance monitoring device 25A of the filtration device 12 is installed, but the present invention is not limited thereto.
[0073] Specifically, as illustrated in a desalination treatment system 10B of
[0074] In addition, in the case of being illustrated in
[0075] In this manner, according to the present embodiment, by a method of washing the filtration device 12 by removing suspended solids and the like in the raw water, including monitoring step of monitoring the organic substances in the raw water 11, and washing the filtration device 12 by using a part of the permeated water 21 obtained by removing the concentrated water 22 in which a solute such as a salt or fine particles are enriched from the filtered raw water for backwashing in a case in which the organic substances in the raw water 11 exceed the reference value, a part of the permeated water 21 is not always used at the time of backwashing, and it is thus possible to efficiently perform recovery of the filtration performance by removing the organic substances of the filtration device 12 while suppressing the amount of the permeated water 21 used.
[0076] In the present embodiment, the filtration treatment system of raw water has been described by taking a desalination treatment system for seawater desalination in which a solute such as a salt or fine particles are enriched as an example, but the present invention is not limited thereto, and the filtration treatment system of raw water can also be applied to water treatment systems, for example, a sewage treatment for removing fine particles in raw water and a wastewater treatment of brackish water (water in which seawater and fresh water are mixed and the amount of salts is smaller than in seawater; brackish water)
[0077] In the present embodiment, washing of the filtration device 12 is performed by using the permeated water 21 and the concentrated water 22 which are separated by the separation device 23, but raw water may also be used as long as it is raw water which can be applied for backwashing.
Second Embodiment
[0078] The method of backwashing a filtration device of a desalination treatment system according to embodiments of the present invention will be described with reference to the drawings. Incidentally, in the present embodiment, it is described based on the desalination treatment system 10A illustrated in
[0079] In the first embodiment, the part 21a of the permeated water 21 of fresh water is used as the backwashing water 30 in a case in which backwashing is carried out based on the concentration of organic substances without considering the pressure loss in the filtration device 12.
[0080] In contrast, in the present embodiment, the backwashing water 30 is switched from the concentrated water 22 of seawater to the permeated water 21 of fresh water after a certain period of time has elapsed even in a case in which the concentration of organic substances in seawater of the raw water 11 does not increase to be equal to or more than the reference value (threshold value).
[0081] Here, the set period to switch the backwashing water can be appropriately changed depending on the quality of seawater of the raw water 11, and for example, it can be prescribed as every day, every other day, every week, every two weeks, every month, and the like.
[0082]
[0083] In addition, as the interval of backwashing, backwashing may be regularly carried out, backwashing may be carried out when the pressure loss exceeds the reference value, or both of them may be concurrently used, and any of them may be employed.
[0084] In the operation in
[0085] Here, in the operation of
[0086] According to the present invention, the amount of organic substances adsorbed to the filtration layers 12a and 12b of the filtration device 12 gradually increases even in a case in which the amount of the organic substances in the raw water 11 does not remarkably increase, and thus the organic substances on the filtration layers 12a and 12b are removed and the accumulation of organic substances is suppressed by performing backwashing by using the part 21a of the permeated water 21 when a certain period of time elapses.
[0087] In contrast, in an example illustrated in
Third Embodiment
[0088] The method of backwashing a filtration device of a desalination treatment system according to embodiments of the present invention will be described with reference to the drawings. Incidentally, in the present embodiment, it is described based on the desalination treatment system 10A illustrated in
[0089] In the present embodiment, as illustrated in
[0090] In such a case, backwashing is not carried out until the concentration of organic substances decreases after the concentration is increased through monitoring by the outlet side organic substance monitoring device 25A, and washing is performed by using fresh water of the part 21a of the permeated water 21 when the concentration of organic substances is decreased to be equal to or less than the normal reference (Z).
[0091] Specifically, as illustrated in
[0092] Moreover, backwashing is carried out by using fresh water of the part 21a of the permeated water 21 as the backwashing water 30 in a case in which the concentration of organic substances decreases to be equal to or less than the normal value (Z) in the middle of the fifth day.
[0093] Incidentally, backwashing is carried out by using a part 22a of the concentrated water 22 as the backwashing water 30 on the fifth day as well in a case in which the concentration of organic substances does not decrease to be equal to or less than the normal value (Z) even on the fifth day.
[0094] The filtration layer of the filtration device 12 is contaminated immediately in the case of restarting the operation after backwashing is performed and the backwashing operation is required again even if the backwashing operation is carried out in a state in which the concentration of organic substances in the raw water 11 is still high. Hence, as in the present embodiment, it is possible to save the amount of permeated water 21 used and to perform effective washing by continuously performing the operation as it is and using the concentrated water for backwashing in a case in which the concentration of organic substances in the raw water 11 exceeds the reference value (Y) and the state continues for a predetermined time and by performing backwashing by using the permeated water 21 after it is detected that the concentration of organic substances in the raw water 11 is decreased to be equal to or less than the reference value (Y) of the threshold value.
Fourth Embodiment
[0095] The desalination treatment system according to embodiments of the present invention will be described with reference to the drawings.
[0096] A desalination treatment system 10C of the present embodiment has the same device configuration as that of the desalination treatment system 10A of
[0097] As illustrated in
[0098] As illustrated in
[0099] In addition, the filtered raw water 11A is discharged from the bottom portion 12e side of the filtration device main body 12c through the filtered raw water supply line L.sub.11. The control device 31 controls the discharge of the filtered raw water 11A from the filtration device 12c by controlling a valve V.sub.11 provided on the filtered raw water supply line L.sub.11.
[0100] In addition, the backwashing water 30 is introduced from the bottom portion 12e side of the filtration device main body 12c through the backwashing water supply line L.sub.21. The control device 31 controls the introduction of the backwashing water 30 into the filtration device main body 12c by controlling a valve V.sub.12 provided on the backwashing water supply line L.sub.21.
[0101] In addition, the overflowed water 30A is discharged from the top portion 12d side of the filtration layer 12a of the filtration device main body 12c through the overflow line L.sub.31. The control device 31 controls the discharge of the overflowed water 30A which has flowed into the overflow line L.sub.31 by controlling a valve V.sub.13 provided on the overflow line L.sub.31.
[0102] Furthermore, the backwashing water 30B which cannot overflow is discharged from the bottom portion 12e side of the filtration device main body 12c through the backwashing water discharge line L.sub.32. The control device 31 controls the discharge and storage of the backwashing water 30B which cannot overflow, namely, the backwashing water 30B stored in the region on the vertically lower side of the overflow line L.sub.31 of the filtration device main body 12 by controlling the opening and closing of a valve V.sub.14 provided on the backwashing water discharge line L.sub.32.
Normal Operation
[0103] The normal operation of the present embodiment is a case in which the raw water 11 is filtered by the filtration device 12.
[0104] In the case of this normal operation, as illustrated in
Backwashing Operation (1)
[0105] Next, as illustrated in
[0106] In the case of this backwashing operation, the control device 31 controls the valves V.sub.12 and V.sub.13 to open and the valves V.sub.10, V.sub.11, and V.sub.14 to close and thus stops the introduction of the raw water 11.
[0107] Moreover, as the backwashing water 30, the flow path switching unit 32 is switched so that a part 21a of the permeated water 21 is introduced from the bottom portion 12e of the filtration device main body 12c. The introduced backwashing water 30 is discharged to the outside as the overflowed water 30A through the overflow line L.sub.31 on the upper side of the filtration layer 12a, and backwashing is performed.
Backwashing Operation (2)
[0108] Thereafter, as illustrated in
[0109] According to the present embodiment, it is possible to decrease the concentration of organic substances in the washing water and to improve the washing effect when the interior of the filtration device 12 is washed by once discharging the backwashing water 30B which is contaminated with the organic substances in the filtration device 12 and cannot overflow and then supplying the permeated water 21.
[0110] This operation that the backwashing water 30B is drained, water in the interior of the filtration device main body 12c is drained, then the backwashing water 30 is introduced again to perform backwashing, and the water is drained again may be repeated at least one time or more.
Fifth Embodiment
[0111] The method of backwashing a filtration device of a desalination treatment system according to embodiments of the present invention will be described with reference to the drawings.
[0112] A desalination treatment system 10D illustrated in
[0113] In the present embodiment, as illustrated in
[0114] Moreover, in the present embodiment, backwashing of the filtration device 12 is performed by using a part 21Aa of the permeated water 21A from the (leading) first salt concentrator 23A on the filtration device 12 side.
[0115] As a result, it is possible to obtain a sufficient backwashing effect, for example, without relatively decreasing the fresh water production efficiency in a desalination plant to desalinate seawater by using the part 21Aa of the permeated water 21A of the first salt concentrator 23A as the backwashing water 30 without using the permeated water 21B of fresh water manufactured by the salt concentrator at the final stage as the backwashing water 30 to be used for backwashing.
[0116] Here, when the desalination treatment is performed by using seawater as the raw water 11, about 90% or more of the organic substances in the seawater is removed when the seawater passes through the first salt concentrator 23A, and a sufficient backwashing effect can be thus obtained even when a part 21Aa of the permeated water 21A of the first salt concentrator 23A is utilized as the backwashing water 30.
[0117] Accordingly, it is possible to save the power required for treating the water to be used for backwashing by the second salt concentrator 23B or the subsequent salt concentrator by using the part 21Aa of the permeated water 21A from the first salt concentrator 23A instead of the finally manufactured fresh water, and the operation efficiency of the desalination plant for seawater is thus improved.
[0118] According to the present embodiment, in a case in which a plurality of salt concentrators 23 (the first salt concentrator 23A, the second salt concentrator 23B, . . . ) to obtain permeated water are installed in series to improve the desalination performance, it is possible to obtain a sufficient backwashing effect without relatively decreasing the treatment efficiency of the salt concentration plant by using a part 21Aa of the permeated water 21A from the first salt concentrator 23A that is on the leading side and has a relatively low salt removal rate instead of using permeated water of the final product as the permeated water to be used for backwashing.
[0119] In the present embodiment, two salt concentrators are illustrated, but in the case of installing a plurality of stages of three or more, it is preferable to perform backwashing of the filtration device 12 by using permeated water from a separation device (for example, the separation device at the first or second stage in a case in which three separation devices are installed in series) provided on the upstream side of a separation device other than the separation device (separation device at the final stage) provided at the position farthest from the filtration device 12.
[0120] In addition, in the case of installing three or more salt concentrators 23 in series, a part of the permeated water 21B or the like from the second or subsequent salt concentrator 23B or the like from the filtration device 12 side is also used in some cases in consideration of the concentration of organic substances and the like.
REFERENCE SIGNS LIST
[0121] 10A to 10D DESALINATION TREATMENT SYSTEM
[0122] 11 RAW WATER
[0123] 12 FILTRATION DEVICE
[0124] 21 PERMEATED WATER
[0125] 22 CONCENTRATED WATER
[0126] 23 SALT CONCENTRATOR
[0127] 23A FIRST SALT CONCENTRATOR
[0128] 23B SECOND SALT CONCENTRATOR
[0129] 25A OUTLET SIDE ORGANIC SUBSTANCE MONITORING DEVICE
[0130] 25B INLET SIDE ORGANIC SUBSTANCE MONITORING DEVICE