Method and apparatus for treating high-hardness water
The method and apparatus for treating high-hardness water using a reverse osmosis membrane system with pH adjustment, crystallization, and coagulation-sedimentation steps efficiently reduce chemical use and prevent scaling/fouling, lowering operating costs and membrane replacement.
Patent Information
- Application Number
- JP2021057910
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-03-30
- Publication Date
- 2025-08-14
- Estimated Expiration
- 2041-03-30
AI Technical Summary
Existing methods for treating high-hardness water, such as desulfurization wastewater, require large amounts of chemicals to prevent scaling and fouling of reverse osmosis membranes, leading to high operating costs and frequent membrane replacements.
A method and apparatus using a reverse osmosis membrane system with pH adjustment, crystallization, and coagulation-sedimentation steps, employing alkali metal hydroxides, inorganic acids, and iron-based flocculants to minimize chemical use while preventing scaling and fouling, including optional seed gypsum addition for enhanced crystallization.
The system achieves effective coagulation and sedimentation with reduced chemical usage, reducing membrane replacement frequency and operating costs by effectively preventing scaling and fouling of the reverse osmosis membrane.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an apparatus and method for treating high-hardness water containing calcium and magnesium, such as wet desulfurization effluent. More specifically, the present invention relates to an apparatus and method for treating high-hardness water using a reverse osmosis membrane, which can perform effective coagulation and sedimentation even with small amounts of added chemicals, and can prevent scaling and fouling of the reverse osmosis membrane, reducing the frequency of membrane replacement and thereby reducing operating costs. [Background technology]
[0002] High-hardness water, such as wastewater from flue gas desulfurization systems (hereinafter referred to as "desulfurization wastewater"), contains various elements and must be treated to reduce its content to below environmental regulation values. One known treatment method involves concentrating the desulfurization wastewater using a reverse osmosis membrane, and then evaporating the resulting concentrated water to dryness to recover the solids. This method requires a large amount of thermal energy for evaporation. Furthermore, chemicals such as alkali agents, coagulants, scale inhibitors, and fouling inhibitors are added to prevent scaling and fouling of the reverse osmosis membrane (see, for example, Patent Document 1). Adding such chemicals increases operating costs.
[0003] In order to reduce the amount of chemicals added, a technique has been proposed in which a portion of the concentrated water obtained by the reverse osmosis membrane is returned to a crystallization reaction tank or a coagulation and sedimentation tank to promote crystallization or coagulation and sedimentation.
[0004] For example, Patent Document 2 discloses a water treatment method in which raw water containing calcium ions and sulfate ions is separated into treated water and concentrated water by a permeable membrane device, the concentrated water being returned to a raw water tank via a crystallization reaction tank and a settling tank, calcium sulfate seed crystals being added to the concentrated solution in the crystallization reaction tank to crystallize the calcium ions and sulfate ions in the concentrated solution as calcium sulfate crystals, the calcium sulfate crystals in the concentrated water sent from the crystallization reaction tank being precipitated in the settling tank, and the supernatant being returned to the raw water tank, a portion of the calcium sulfate crystals precipitated in the settling tank being recovered as calcium sulfate seed crystals in the crystallization reaction tank, and the remainder of the calcium sulfate crystals precipitated in the settling tank being discharged outside the system.
[0005] Patent Document 3 discloses a water treatment method for removing calcium from raw water, which includes a reaction step of obtaining a reaction liquid containing calcium carbonate and no coagulant from the raw water, a membrane separation step of separating the reaction liquid into a permeate liquid and a concentrate using a filtration membrane, and a concentrate discharge step of discharging a portion of the concentrate outside the system, in which in the reaction step, at least a portion of the concentrate obtained in the membrane separation step is circulated and mixed with the reaction liquid, and the reaction liquid is adjusted to be alkaline, thereby controlling the minimum particle size of calcium carbonate in the reaction liquid to be larger than the average pore size of the filtration membrane. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Japanese Patent Application Publication No. 51-93789 [Patent Document 2] JP 2011-200788 A (Patent No. 5303501 A) [Patent Document 3] Japanese Patent Application Laid-Open No. 2017-136570 Summary of the Invention [Problem to be solved by the invention]
[0007] An object of the present invention is to provide an apparatus and method for treating high-hardness water using a reverse osmosis membrane, which can perform effective coagulation and sedimentation even with small amounts of added chemicals, and which can prevent scaling and fouling of the reverse osmosis membrane, thereby reducing the frequency of replacing the reverse osmosis membrane and thereby reducing operating costs. [Means for solving the problem]
[0008] In order to solve the above problems, the present invention has been completed, including the following aspects.
[0009] [1] The raw water is subjected to a separation process using a reverse osmosis membrane to separate it into permeate and concentrated water; adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to high-hardness water containing calcium and magnesium so that the pH is 9.5 to 11.5, and removing the resulting precipitate; The liquid after removing the precipitates had a pH of 2.5. or more, and not more than the pH of the liquid after removing the precipitate from the high hardness water adding an inorganic acid and a part or all of the concentrated water so that the amount of the concentrated water becomes 100%; and removing the resulting crystallized product. An iron-based flocculant is added to the liquid from which the crystallized matter has been removed so that the pH is 2.5 to 4.5, and the resulting first floc is removed. obtaining the raw water; How to treat high hardness water.
[0010] [2] The raw water is subjected to a separation process using a reverse osmosis membrane to separate it into permeate and concentrated water; adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to high-hardness water containing calcium and magnesium so that the pH is 9.5 to 11.5, and removing the resulting precipitate; The liquid after removing the precipitates had a pH of 2.5. or more, and not more than the pH of the liquid after removing the precipitate from the high hardness water adding an inorganic acid and a part or all of the concentrated water so that the amount of the concentrated water becomes 100%; and removing the resulting crystallized product. An iron-based flocculant is added to the liquid from which the crystallized matter has been removed so that the pH is adjusted to 2.5 to 4.5, and the resulting first floc is removed. adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to the liquid from which the first flocs have been removed so that the pH is 4.5 to 6.5, and removing the second flocs obtained thereby; obtaining the raw water; How to treat high hardness water.
[0011] [3] The method according to [1] or [2], further comprising adding seed gypsum to the liquid from which the precipitate has been removed. High hardness water Processing method.
[0012] [4] A reverse osmosis membrane device, a pH adjusting device, a crystallizer, and a first coagulation and sedimentation device, The reverse osmosis membrane device includes a reverse osmosis membrane for promoting separation of raw water into permeate and concentrated water; The pH adjusting device is equipped with a mechanism for adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to high-hardness water containing calcium and magnesium so that the pH is 9.5 to 11.5, and for promoting the removal of the precipitates obtained thereby; The crystallizer adjusts the pH of the liquid after removing the precipitate to 2.5. or more, and not more than the pH of the liquid after removing the precipitate from the high hardness water and adding an inorganic acid and a part or all of the concentrated water so that the amount of the concentrated water is equal to or greater than the amount of the inorganic acid and the concentrated water, and providing a mechanism for promoting the removal of the crystallized product obtained thereby; the first coagulation settling device is equipped with a mechanism for adding an iron-based coagulant to the liquid from which precipitates have been removed so that the pH is adjusted to 2.5 to 4.5, and for promoting the removal of the first flocs obtained thereby; a mechanism for supplying the liquid from which the first flocs have been removed as raw water to the reverse osmosis membrane device; High hardness water treatment equipment.
[0013] [5] A reverse osmosis membrane device, a pH adjusting device, a crystallizer, a first coagulation sedimentation device, and a second coagulation sedimentation device, The reverse osmosis membrane device includes a separation membrane for promoting separation of raw water into permeate and concentrated water, The pH adjusting device is equipped with a mechanism for adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to high-hardness water containing calcium and magnesium so that the pH is 9.5 to 11.5, and for promoting the removal of the precipitates obtained thereby; The crystallizer adjusts the pH of the liquid after removing the precipitate to 2.5. or more, and not more than the pH of the liquid after removing the precipitate from the high hardness water and adding an inorganic acid and a part or all of the concentrated water so that the amount of the concentrated water is equal to or greater than the amount of the inorganic acid and the concentrated water, and providing a mechanism for promoting the removal of the crystallized product obtained thereby; the first coagulation settling device is equipped with a mechanism for adding an iron-based coagulant to the liquid from which precipitates have been removed so that the pH is adjusted to 2.5 to 4.5, and for promoting the removal of the first flocs obtained thereby; the second coagulation settling device is provided with a mechanism for adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to the liquid from which the first flocs have been removed so that the pH is 4.5 to 6.5, thereby promoting the removal of the second flocs obtained; a mechanism for supplying the liquid from which the second flocs have been removed as raw water to the reverse osmosis membrane device; High hardness water treatment equipment.
[0014] [6] The method according to [4] or [5], further comprising a mechanism for adding a scale inhibitor to raw water. High hardness water Processing equipment. [7] The crystallizer according to any one of [4] to [6], further comprising a mechanism for adding an iron-based flocculant to the liquid from which the precipitate has been removed. High hardness water Processing equipment. [8] The crystallizer according to any one of [4] to [7], further comprising a mechanism for adding seed gypsum to the liquid from which the precipitate has been removed. High hardness water Processing equipment. [Effects of the Invention]
[0015] The present invention High hardness water The treatment method and treatment device can perform effective coagulation and sedimentation even with small amounts of added chemicals, and can prevent scaling and fouling of the reverse osmosis membrane, reducing the frequency of reverse osmosis membrane replacement, thereby reducing operating costs. [Brief explanation of the drawings]
[0016] [Figure 1] FIG. 1 is a diagram illustrating an example of a wet desulfurization device. [Figure 2] 1 is a diagram showing an example of a high-hardness water treatment device of the present invention. [Figure 3] FIG. 1 is a diagram showing another example of a high-hardness water treatment device of the present invention. [Figure 4] FIG. 1 is a diagram showing another example of a high-hardness water treatment device of the present invention. [Figure 5] FIG. 1 is a diagram showing another example of a high-hardness water treatment device of the present invention. [Figure 6] FIG. 1 is a diagram showing another example of a high-hardness water treatment device of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0017] The method for treating high-hardness water of the present invention includes a pH adjustment step, a crystallization step, a first coagulation-sedimentation step, a membrane separation step, and, optionally, a second coagulation step.The high-hardness water treatment device of the present invention includes a pH adjustment device, a crystallization device, a first coagulation-sedimentation device, a reverse osmosis membrane device, and, optionally, a second coagulation-sedimentation device.The high-hardness water treatment device of the present invention includes flow paths between each device so that the liquid to be treated flows through the pH adjustment device, the crystallization device, the first coagulation-sedimentation device, the optional second coagulation-sedimentation device, and the reverse osmosis membrane device in that order.In addition, a flow path is provided for supplying part or all of the concentrated water from the reverse osmosis membrane device to the crystallization device.A flow path is provided for supplying the remainder of the concentrated water to an evaporator-drying device, as required.
[0018] Examples of high-hardness water containing calcium and magnesium include desulfurization wastewater, seawater, cooling tower blowdown wastewater, landfill leachate, groundwater, and mine wastewater. From the viewpoint of large treatment volumes, the present invention is preferably applied to desulfurization wastewater. The high-hardness water applicable to the present invention typically has a hardness of 60 mg / L or more, preferably 180 mg / L or more, more preferably 357 mg / L or more, even more preferably 1000 mg / L or more, even more preferably 3000 mg / L or more, and most preferably 5000 mg / L or more. Note that hardness is calculated by converting the amounts of calcium and magnesium into the amount of calcium carbonate (CaCO3) and can be calculated using the following formula: Hardness [mg / L] = (Calcium [mg / L] x 2.5) + (Magnesium [mg / L] x 4.1)
[0019] Flue gas desulfurization is performed by passing the combustion exhaust gas through a wet flue gas desulfurization system. Representative wet flue gas desulfurization methods include the lime-gypsum method, the magnesium hydroxide method, and the soda method. The wet flue gas desulfurization system used in the present invention includes a gas absorption system 15 that can contact the combustion exhaust gas with an aqueous slurry containing limestone (CaCO), slaked lime (Ca(OH)), quicklime (CaO), etc., and further includes a gypsum separation and removal system 26. This gas absorption system can be a packed tower, a wetted-wall tower, a spray tower, etc. In this gas absorption system, sulfur oxides in the combustion exhaust gas react with the limestone, slaked lime, or quicklime in the aqueous slurry to form calcium sulfite, which is then oxidized to calcium sulfate (gypsum). In the gypsum separation and removal system, gypsum is separated and removed from the gypsum slurry (aqueous slurry containing calcium) discharged from the gas absorption system. This separation and removal of gypsum results in the discharge of gypsum dehydration filtrate (aqueous solution containing calcium). Calcium, magnesium, silica, and other elements contained in high-hardness water, such as desulfurization wastewater, solidify and form scale. Furthermore, in desulfurization equipment, for example, water is recycled, and high-hardness water often has high COD and BOD, which makes it prone to fouling in reverse osmosis membranes.
[0020] In the pH adjustment step (I), an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide A is added to high-hardness water, and the resulting precipitate S1 is removed. The pH adjustment device for accelerating the progress of the pH adjustment step includes a reaction tank 1, a solid-liquid separation device (e.g., a settling tank 2), a supply flow path for the alkali metal hydroxide or the water-soluble alkaline earth metal hydroxide A to the reaction tank 1, a supply flow path for the high-hardness water to the reaction tank 1, a flow path for transferring the liquid from the reaction tank 1 to the solid-liquid separation device, and a flow path for discharging the liquid from the solid-liquid separation device. In a device in which the reaction tank 1 and the solid-liquid separation device are integrated, the flow path for transferring the liquid from the reaction tank 1 to the solid-liquid separation device can be omitted.
[0021] Examples of alkali metal hydroxides used in the pH adjustment step (I) include sodium hydroxide and potassium hydroxide. Of these, sodium hydroxide is preferred. Examples of water-soluble alkaline earth metal hydroxides used in the pH adjustment step (I) include calcium hydroxide and strontium hydroxide. Of these, calcium hydroxide is preferred. The alkali metal hydroxide or water-soluble alkaline earth metal hydroxide A can be added in the form of powder, granules, flakes, or an aqueous solution.
[0022] The alkali metal hydroxide or water-soluble alkaline earth metal hydroxide is added in an amount that makes the pH of the high-hardness water 9.5 to 11.5. The addition of alkali metal hydroxide or water-soluble alkaline earth metal hydroxide primarily precipitates magnesium contained in high-hardness water as magnesium hydroxide. It also promotes the precipitation of elements such as Si and Al contained in high-hardness water. The solubility of magnesium hydroxide decreases as the liquid temperature increases, making precipitation easier. However, as the liquid temperature increases, convection tends to occur due to the influence of the surrounding environment, potentially reducing the efficiency of gravity-type solid-liquid separation.
[0023] The precipitate is removed using a solid-liquid separator. Examples of solid-liquid separators include decanters (overflow type, skimming type, etc.), filter cloth bags, screw presses, roller presses, rotary drum screens, belt screens, vibrating screens, multi-plate wave filters, vacuum dehydrators, pressure dehydrators, belt presses, cyclone-type solid-liquid separators (liquid cyclones), centrifugal thickeners, and multi-disk dehydrators. A portion of the removed precipitate may be returned to the reaction vessel 1 as seed crystals. The addition of seed crystals increases the size of the precipitate, facilitating solid-liquid separation. The slurry of precipitate S1 obtained by solid-liquid separation can be evaporated to dryness together with the concentrated water.
[0024] The solution from which the precipitate has been removed contains many calcium compounds that were not removed in the pH adjustment process. It may also contain compounds that are highly soluble at high pH.
[0025] In the crystallization step (II), a portion of the concentrated water described below, an inorganic acid H, and, if necessary, seed gypsum I are added to the liquid from which the precipitate has been removed, and the resulting crystallized product S2 is removed. The concentrated water contains calcium ions and sulfate ions in a supersaturated state. In the crystallization step (II), gypsum (calcium sulfate) precipitates from the supersaturated concentrated water. To promote gypsum precipitation, it is preferable to add seed gypsum, particularly at the beginning of operation. Gypsum (25) produced in a wet flue gas desulfurization system can be used as the seed gypsum. The crystallization apparatus for promoting the progress of the crystallization step includes a reaction tank 3, a solid-liquid separation device (e.g., a settling tank 4), a supply flow path for the inorganic acid to the reaction tank 3, a supply flow path for the liquid from which the precipitate has been removed to the reaction tank 3, a supply flow path for the concentrated water C to the reaction tank 3, a flow path for transferring the liquid from the reaction tank 3 to the solid-liquid separation device, and a flow path for discharging the liquid from the solid-liquid separation device. In an apparatus in which the reaction vessel 3 and the solid-liquid separator are integrated, the flow path for transferring the liquid from the reaction vessel 3 to the solid-liquid separator can be omitted.
[0026] Examples of inorganic acids used in the crystallization step (II) include hydrochloric acid, nitric acid, sulfuric acid, and phosphoric acid. Among these, hydrochloric acid is preferred. The inorganic acid H can be added in the form of an aqueous solution. On the other hand, the concentrated water contains calcium at a high concentration. It is preferred that the concentrated water contains calcium in a supersaturated state.
[0027] The inorganic acid and concentrated water are added in amounts such that the pH of the liquid does not fall below 2.5; in other words, amounts such that the pH of the liquid falls within a range in which the pH of the liquid obtained in the pH adjustment step is the upper limit and 2.5 is the lower limit. This results in the precipitation of a crystallized product S2 containing calcium sulfate as the main component. The crystallized product is removed using a solid-liquid separator. Examples of solid-liquid separators include those described above. A portion of the removed crystallized product may be returned to the reaction tank 3 as seed crystals.
[0028] In the crystallization step, an iron-based flocculant G may be added to the liquid from which the precipitate has been removed, if necessary. Examples of iron-based flocculants include ferric chloride, polyferric sulfate, and polysilica iron. Of these, ferric chloride is preferred. The iron-based flocculant can be added in the form of powder, granules, flakes, a dispersion, or an aqueous solution. The addition of an iron-based flocculant may promote crystallization.
[0029] In the first coagulation-sedimentation step (III), an iron-based coagulant F is added to the liquid from which the crystallized matter has been removed, and the resulting first flocs S3 are removed. The first coagulation-sedimentation device for accelerating the progress of the first coagulation-sedimentation step includes a reaction tank 5, a solid-liquid separation device (e.g., settling tank 6), a supply flow path for the iron-based coagulant to the reaction tank 5, a supply flow path for the liquid from which the crystallized matter has been removed to the reaction tank 5, a flow path for transferring the liquid from the reaction tank 5 to the solid-liquid separation device, and a flow path for discharging the liquid from the solid-liquid separation device. In a device in which the reaction tank 5 and the solid-liquid separation device are integrated, the flow path for transferring the liquid from the reaction tank 5 to the solid-liquid separation device can be omitted. Furthermore, since the first flocs formed in the first coagulation-sedimentation step (III) can be removed together with the second flocs by the solid-liquid separation device in the subsequent second coagulation-sedimentation step (IV), the solid-liquid separation device (e.g., settling tank 6) provided in the first coagulation-sedimentation device may be omitted.
[0030] Examples of iron-based flocculants used in the first flocculation and precipitation step (III) include ferric chloride, polyferric sulfate, and polysilica iron. Of these, ferric chloride is preferred. The iron-based flocculant F can be added in the form of powder, granules, flakes, a dispersion, or an aqueous solution.
[0031] The iron-based flocculant is added in an amount that makes the pH of the liquid 2.5 to 4.5. This causes the fine particles to flocculate, forming first flocs. The first flocs are removed by a solid-liquid separator. Examples of the solid-liquid separator include the same ones as those described above. A portion of the removed first flocs may be returned to the reaction tank 5 as seed crystals.
[0032] In the first flocculation and precipitation step, an inorganic acid may be added to the liquid from which the crystallized product has been removed, if necessary. Examples of inorganic acids include hydrochloric acid, nitric acid, sulfuric acid, and phosphoric acid. Among these, hydrochloric acid is preferred. Addition of an inorganic acid may promote flocculation.
[0033] In the first flocculation and precipitation step, if necessary, a polymer flocculant G may be added to the liquid from which the crystallized material has been removed. Examples of polymer flocculants include anionic polymer flocculants, nonionic polymer flocculants, cationic polymer flocculants, and amphoteric polymer flocculants. The polymer flocculant G can be added in the form of powder, granules, flakes, dispersion, or aqueous solution. The addition of the polymer flocculant may promote coarsening of the first flocs. The liquid from which the first flocs have been removed can be sent as raw water to the membrane separation step (V).
[0034] The liquid from which the first flocs have been removed may contain compounds that are highly soluble at low pH. Furthermore, fine particles that could not be removed in the first coagulation and sedimentation step may remain suspended in the liquid. In such cases, a second coagulation and sedimentation step (IV) may be carried out.
[0035] In the second coagulation-sedimentation step (IV), an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide N is added to the liquid from which the first flocs have been removed, and the resulting second flocs S4 are removed. The second coagulation-sedimentation device for accelerating the progress of the second coagulation-sedimentation step includes a reaction tank 7, a solid-liquid separation device (e.g., a settling tank 8), a supply flow path for the alkali metal hydroxide or the water-soluble alkaline earth metal hydroxide N to the reaction tank 7, a supply flow path for the liquid from which the first flocs have been removed to the reaction tank 7, a flow path for transferring the liquid from the reaction tank 7 to the solid-liquid separation device, and a flow path for discharging the liquid from the solid-liquid separation device. In a device in which the reaction tank 7 and the solid-liquid separation device are integrated, the flow path for transferring the liquid from the reaction tank to the solid-liquid separation device can be omitted.
[0036] Examples of alkali metal hydroxides used in the second coagulation-precipitation step (IV) include sodium hydroxide and potassium hydroxide. Of these, sodium hydroxide is preferred. Examples of water-soluble alkaline earth metal hydroxides used in the second coagulation-precipitation step (IV) include calcium hydroxide and strontium hydroxide. Of these, calcium hydroxide is preferred. The alkali metal hydroxide or water-soluble alkaline earth metal hydroxide N can be added in the form of powder, granules, flakes, or an aqueous solution.
[0037] The alkali metal hydroxide or water-soluble alkaline earth metal hydroxide N can be added in an amount that makes the pH of the liquid 4.5 to 6.5. This causes the fine particles to aggregate and form second flocs. The second flocs are removed by a solid-liquid separator. Examples of the solid-liquid separator include the same ones as those described above. A portion of the removed second flocs may be returned to the reaction tank 7 as seed crystals.
[0038] In the present invention, in order to remove the second flocs, solid-liquid separation (clarification treatment) by filtration using a multi-layer filtration membrane, an ultrafiltration membrane, filter sand 9, or the like may be performed instead of or in addition to the solid-liquid separator (e.g., settling tank 8) in the second coagulation and sedimentation step. This may prevent the reverse osmosis membrane from fouling. Backwashing can be performed when the efficiency of the filtration step decreases. The backwash wastewater can be subjected to solid-liquid separation in a settling tank as necessary, and the supernatant water can be sent to the first coagulation and sedimentation step. The slurry of solids S5 obtained by backwashing can be evaporated to dryness together with the concentrated water. The liquid from which the second flocs have been removed can be sent as raw water to the membrane separation step (V).
[0039] Next, the membrane separation step (V) is carried out. In the membrane separation step, raw water (the liquid from which the first flocs have been removed or the liquid from which the second flocs have been removed) is subjected to a separation treatment using a reverse osmosis membrane 11 to separate it into permeate P and concentrate C. The reverse osmosis membrane device for accelerating the progress of the membrane separation step includes the reverse osmosis membrane 11, a raw water pressurizing device or a permeate suction device, a flow path for supplying raw water to the reverse osmosis membrane, a flow path for discharging concentrate water from the reverse osmosis membrane, and a flow path for discharging permeate water from the reverse osmosis membrane. The amount of water permeating the reverse osmosis membrane decreases as the water temperature decreases, and the differential pressure required to obtain the same amount of water increases. Conversely, as the water temperature increases, the amount of water permeating increases, but the salt rejection rate decreases. Therefore, when performing separation treatment using the reverse osmosis membrane, the temperature of the liquid is preferably adjusted to between 0°C and 85°C, more preferably between 0°C and 45°C, and even more preferably between 5°C and 35°C. To adjust the temperature of the liquid, a temperature control device such as a cooler, cooling tower 10, or heater may be installed, for example, between the second coagulation sedimentation device and the reverse osmosis membrane device, although the installation location is not particularly limited.
[0040] Examples of reverse osmosis membranes include membranes made of cellulose acetate, membranes made of aromatic polyamide, membranes made of polyvinyl alcohol, membranes made of polysulfone, etc. The reverse osmosis membrane is not limited by its structure, and examples thereof include hollow fiber membranes, spiral membranes, and tubular membranes.
[0041] The reverse osmosis membrane is preferably incorporated into a membrane module. A casing-type module is constructed by accommodating a membrane element, which is an integral combination of a reverse osmosis membrane, its support, and a flow path material, in a casing. Examples of casing-type modules include pleated modules, spiral modules, monolith modules, tubular modules, and hollow fiber modules.
[0042] The reverse osmosis membrane uses calcium ions (Ca 2+ ), sodium ions (Na + ), potassium ions (K + ), iron ions (Fe 3+), cations such as sulfate ions (SO4 2- ), chloride ions (Cl - It does not allow anions such as lead (Pb), mercury (Hg), cadmium (Cd), or arsenic (As) to pass through. The water that passes through the reverse osmosis membrane (permeate) has almost all of the impurities contained in high-hardness water removed. If necessary, the permeate can be subjected to sterilization, final filtering, ion exchange, or other processes to make it meet the desired water quality standards. The permeate can be reused in wet flue gas desulfurization, etc.
[0043] The concentration ratio of the concentrated water is preferably 1.1 to 3.0, more preferably 1.15 to 2.0, and even more preferably 1.2 to 1.6. As described above, a portion or all of the concentrated water is utilized in the crystallization process. The remainder of the concentrated water can be evaporated to dryness together with the slurries S1 and S5 to produce a dried solid D. A known evaporation-dryness apparatus, such as an evaporator-dryer 12, can be used for the evaporation-dryness process. The evaporated water can be condensed and reused in wet flue gas desulfurization or the like. Valuable components can be separated and recovered from the dried solid, as needed, and the residue can be disposed of. The concentration ratio is the ratio of the mass of calcium contained per unit mass of the concentrated water to the mass of calcium contained per unit mass of the raw water, and is calculated using the following formula: Concentration rate = (mass of calcium contained per unit mass of concentrated water) / (Mass of calcium contained per unit mass of raw water)
[0044] (Embodiment 1) The high-hardness water treatment device shown in Figure 3 includes a cooling tower 10, pH adjustment reaction tank 1, settling tank 2, crystallization reaction tank 3, settling tank 4, first coagulation-sedimentation reaction tank 5, second coagulation-sedimentation reaction tank 7, filter 9, reverse osmosis membrane 11, and evaporator-dryer 12, and is piped so that the liquid to be treated flows in this order. A pipe is installed to supply a portion of concentrated water C obtained by separation using the reverse osmosis membrane 11 to the crystallization reaction tank 3. A pipe is installed to supply a slurry of precipitate S1 and a slurry of solids S5 together with the concentrated water C to the evaporator-dryer 12. The pH adjustment reaction tank 1 is equipped with a supply pipe for alkali metal hydroxide or water-soluble alkaline earth metal hydroxide A, the crystallization reaction tank 3 is equipped with supply pipes for inorganic acid H and seed gypsum I, the first coagulation-sedimentation reaction tank 5 is equipped with supply pipes for inorganic acid H and iron-based coagulant F, and the second coagulation-sedimentation reaction tank 7 is equipped with a supply pipe for alkali metal hydroxide or water-soluble alkaline earth metal hydroxide N. The pH of the liquid in the pH adjustment reaction tank 1 is controlled to approximately 10, the pH of the liquid in the first coagulation-sedimentation reaction tank 5 is controlled to approximately 4, and the pH of the liquid in the second coagulation-sedimentation reaction tank 7 is controlled to approximately 5. pH control can be performed by measuring the pH and adjusting the flow rate of chemicals. The filter is equipped with a supply pipe for backwash water R, and the waste slurry during backwash is sent to the settling tank 13 for solid-liquid separation. Piping is installed to supply the supernatant water to the first coagulation-sedimentation reaction tank 5.
[0045] (Embodiment 2) The high-hardness water treatment device shown in Figure 4 is the same as the high-hardness water treatment device shown in Figure 3, except that it does not have a pipe for sending the remainder of the concentrated water C obtained by separation using the reverse osmosis membrane 11 to the evaporator / dryer 12, but has a pipe for supplying all of the concentrated water C to the crystallization reaction tank 3, and has a pipe for extracting a portion of the raw water from the pipe between the filter 9 and the reverse osmosis membrane 11 and sending it to the evaporator / dryer 12. The high-hardness water treatment device shown in Figure 4 dilutes the slurry of precipitate S1 with raw water, thereby reducing the risk of scale formation in the pipe for sending the water from the reverse osmosis membrane 11 to the evaporator / dryer 12.
[0046] (Embodiment 3) The high-hardness water treatment apparatus shown in FIG. 5 is the same as the high-hardness water treatment apparatus shown in FIG. 3 except that a pipe for supplying a scale inhibitor is installed between the filter 9 and the reverse osmosis membrane 11. Examples of the scale inhibitor include citric acid. The pH of the liquid in the pH adjustment reaction tank 1 was controlled to approximately 10, the pH of the liquid in the crystallization reaction tank 3 was controlled to approximately 4, the pH of the liquid in the first coagulation-sedimentation reaction tank 5 was controlled to approximately 4, and the pH of the liquid in the second coagulation-sedimentation reaction tank 7 was controlled to approximately 5. Even if the concentration rate in the reverse osmosis membrane is increased, scale formation is suppressed. Scale inhibitors generally become protonated in a low-pH environment, reducing their scale-inhibiting effect. By lowering the pH of the liquid in the crystallization reaction tank 3, gypsum crystallization proceeds without being inhibited by the scale inhibitor, and the supersaturated state of gypsum can be quickly resolved.
[0047] (Embodiment 4) The high-hardness water treatment device shown in FIG. 6 is the same as the high-hardness water treatment device shown in FIG. 4, except that a pipe for supplying an iron-based coagulant is installed in the crystallization reaction tank 3. The scale inhibitor may inhibit crystallization. By supplying the scale inhibitor to the reverse osmosis membrane and the iron-based coagulant to the crystallization reaction tank 3, it is possible to achieve both crystallization by eliminating gypsum supersaturation in the crystallization reaction tank 3 and scale prevention associated with raw water concentration by the reverse osmosis membrane. This embodiment is particularly effective in operations in which the amount of scale inhibitor supplied is increased to increase the concentration rate by the reverse osmosis membrane.
[0048] The high-hardness water treatment device of the present invention can be modified in structure, shape, arrangement, etc., within the scope that does not contradict the spirit of the present invention, and components, mechanisms, etc. that were used in conventional technology can also be added, and it can be understood that such modified or added embodiments fall within the technical scope of the present invention. [Explanation of symbols]
[0049] (I) pH adjustment device (II) Crystallizer (III) First coagulation and sedimentation device (IV) Second coagulation and sedimentation device (V) Reverse osmosis membrane device (VI) Evaporation to dryness apparatus 1: pH adjustment reaction tank 2: Sedimentation tank for pH adjustment 3: Crystallization reactor 4: Crystallization settling tank 5: First coagulation and sedimentation reaction tank 6: First coagulation and sedimentation tank 7: Second coagulation and sedimentation reaction tank 8: Second coagulation and sedimentation tank 9: Filter 10: Cooling tower 11: Reverse osmosis membrane 12: Evaporation / Dryer 15: Wet flue gas desulfurization unit (gas absorption unit) 16: Chimney 17: Flue (combustion exhaust gas supply channel) 18: High hardness water treatment equipment 25: Plaster 26: Gypsum separator (dehydrator) 27: Gypsum dehydration filtrate tank 28: Desulfurization drainage tank 29: Calcium carbonate slurry preparation tank W: High hardness water (desulfurization wastewater, etc.) A: Alkali metal hydroxide or water-soluble alkaline earth metal hydroxide H: Inorganic acid I: Seed gypsum F: Iron-based flocculant G: Polymer flocculant N: Alkali metal hydroxide or water-soluble alkaline earth metal hydroxide P: Permeated water C: Concentrated water D: Dry solids R: Backwash water S1: Precipitate S2: Crystallized substance S3: First Flock S4: Second Flock S5: Backwash sediment B: Scale inhibitor
Claims
1. The raw water is separated into permeate and concentrated water by a reverse osmosis membrane. adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to high-hardness water containing calcium and magnesium so that the pH is 9.5 to 11.5, and removing the resulting precipitate; adding an inorganic acid and part or all of the concentrated water to the liquid from which the precipitate has been removed so that the pH is 2.5 or higher and is equal to or lower than the pH of the liquid from which the precipitate has been removed from the high-hardness water, and removing the crystallized material obtained thereby; an iron-based flocculant is added to the liquid from which the crystallized matter has been removed so that the pH is adjusted to 2.5 to 4.5, and the resulting first flocs are removed; obtaining the raw water; How to treat high hardness water.
2. The raw water is separated into permeate and concentrated water by a reverse osmosis membrane. adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to high-hardness water containing calcium and magnesium so that the pH is 9.5 to 11.5, and removing the resulting precipitate; adding an inorganic acid and part or all of the concentrated water to the liquid from which the precipitate has been removed so that the pH is 2.5 or higher and is equal to or lower than the pH of the liquid from which the precipitate has been removed from the high-hardness water, and removing the crystallized material obtained thereby; an iron-based flocculant is added to the liquid from which the crystallized matter has been removed so that the pH is adjusted to 2.5 to 4.5, and the resulting first flocs are removed; adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to the liquid from which the first flocs have been removed so that the pH is 4.5 to 6.5, and removing the second flocs obtained thereby; obtaining the raw water; How to treat high hardness water.
3. 3. The method for treating high-hardness water according to claim 1, further comprising adding seed gypsum to the liquid from which the precipitate has been removed.
4. The system includes a reverse osmosis membrane device, a pH adjusting device, a crystallizer, and a first coagulation and sedimentation device, The reverse osmosis membrane device includes a reverse osmosis membrane for promoting separation of raw water into permeate and concentrated water; The pH adjusting device is equipped with a mechanism for adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to high-hardness water containing calcium and magnesium so that the pH is adjusted to 9.5 to 11.5, and for promoting the removal of the precipitates obtained thereby; the crystallization apparatus is equipped with a mechanism for adding an inorganic acid and part or all of the concentrated water to the liquid from which the precipitate has been removed so that the pH is 2.5 or higher and equal to or lower than the pH of the liquid from which the precipitate has been removed from the high-hardness water, and for promoting the removal of the crystallized matter obtained thereby; the first coagulation settling device is provided with a mechanism for adding an iron-based coagulant to the liquid from which the precipitates have been removed so that the pH is adjusted to 2.5 to 4.5, and for promoting the removal of the first flocs obtained thereby; The apparatus further includes a mechanism for supplying the liquid from which the first flocs have been removed as raw water to the reverse osmosis membrane device. High hardness water treatment equipment.
5. The system includes a reverse osmosis membrane device, a pH adjusting device, a crystallizer, a first coagulating sedimentation device, and a second coagulating sedimentation device, The reverse osmosis membrane device includes a separation membrane for promoting separation of raw water into permeate and concentrated water, The pH adjusting device is equipped with a mechanism for adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to high-hardness water containing calcium and magnesium so that the pH is adjusted to 9.5 to 11.5, and for promoting the removal of the precipitates obtained thereby; the crystallization apparatus is equipped with a mechanism for adding an inorganic acid and part or all of the concentrated water to the liquid from which the precipitate has been removed so that the pH is 2.5 or higher and equal to or lower than the pH of the liquid from which the precipitate has been removed from the high-hardness water, and for promoting the removal of the crystallized matter obtained thereby; the first coagulation settling device is provided with a mechanism for adding an iron-based coagulant to the liquid from which the precipitates have been removed so that the pH is adjusted to 2.5 to 4.5, and for promoting the removal of the first flocs obtained thereby; the second coagulation settling device is provided with a mechanism for adding an alkali metal hydroxide or a water-soluble alkaline earth metal hydroxide to the liquid from which the first flocs have been removed so that the pH is adjusted to 4.5 to 6.5, thereby promoting the removal of the second flocs obtained; a mechanism for supplying the liquid from which the second flocs have been removed as raw water to the reverse osmosis membrane device; High hardness water treatment equipment.
6. 6. The apparatus for treating high-hardness water according to claim 4, further comprising a mechanism for adding a scale inhibitor to the raw water.
7. 7. The apparatus for treating high-hardness water according to claim 4, wherein the crystallizer further comprises a mechanism for adding an iron-based flocculant to the liquid from which the precipitate has been removed.
8. The high-hardness water treatment device according to any one of claims 4 to 7, wherein the crystallizer further comprises a mechanism for adding seed gypsum to the liquid from which the precipitate has been removed.
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