WO2014158885A1 - Polymer dissolution system - Google Patents

Polymer dissolution system Download PDF

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Publication number
WO2014158885A1
WO2014158885A1 PCT/US2014/020672 US2014020672W WO2014158885A1 WO 2014158885 A1 WO2014158885 A1 WO 2014158885A1 US 2014020672 W US2014020672 W US 2014020672W WO 2014158885 A1 WO2014158885 A1 WO 2014158885A1
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WO
WIPO (PCT)
Prior art keywords
polymers
strainer
conduit
polymer
screen
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Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2014/020672
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French (fr)
Inventor
Mayur Patel
Jeffrey R. Cramm
Stephen B. Smith
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Ecolab USA Inc
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Ecolab USA Inc
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Filing date
Publication date
Application filed by Ecolab USA Inc filed Critical Ecolab USA Inc
Priority to CN201480013292.0A priority Critical patent/CN105142767B/en
Priority to RU2015143668A priority patent/RU2613952C1/en
Priority to AU2014241826A priority patent/AU2014241826B2/en
Priority to CA2904587A priority patent/CA2904587C/en
Publication of WO2014158885A1 publication Critical patent/WO2014158885A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F21/00Dissolving
    • B01F21/30Workflow diagrams or layout of plants, e.g. flow charts; Details of workflow diagrams or layout of plants, e.g. controlling means
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/52Treatment of water, waste water, or sewage by flocculation or precipitation of suspended impurities
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D21/00Separation of suspended solid particles from liquids by sedimentation
    • B01D21/01Separation of suspended solid particles from liquids by sedimentation using flocculating agents
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D29/00Filters with filtering elements stationary during filtration, e.g. pressure or suction filters, not covered by groups B01D24/00 - B01D27/00; Filtering elements therefor
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D29/00Filters with filtering elements stationary during filtration, e.g. pressure or suction filters, not covered by groups B01D24/00 - B01D27/00; Filtering elements therefor
    • B01D29/96Filters with filtering elements stationary during filtration, e.g. pressure or suction filters, not covered by groups B01D24/00 - B01D27/00; Filtering elements therefor in which the filtering elements are moved between filtering operations; Particular measures for removing or replacing the filtering elements; Transport systems for filters
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F23/00Mixing according to the phases to be mixed, e.g. dispersing or emulsifying
    • B01F23/50Mixing liquids with solids
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F23/00Mixing according to the phases to be mixed, e.g. dispersing or emulsifying
    • B01F23/50Mixing liquids with solids
    • B01F23/53Mixing liquids with solids using driven stirrers
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F23/00Mixing according to the phases to be mixed, e.g. dispersing or emulsifying
    • B01F23/50Mixing liquids with solids
    • B01F23/59Mixing systems, i.e. flow charts or diagrams
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F25/00Flow mixers; Mixers for falling materials, e.g. solid particles
    • B01F25/50Circulation mixers, e.g. wherein at least part of the mixture is discharged from and reintroduced into a receptacle
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F27/00Mixers with rotary stirring devices in fixed receptacles; Kneaders
    • B01F27/80Mixers with rotary stirring devices in fixed receptacles; Kneaders with stirrers rotating about a substantially vertical axis
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/52Treatment of water, waste water, or sewage by flocculation or precipitation of suspended impurities
    • C02F1/5227Processes for facilitating the dissolution of solid flocculants in water
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/52Treatment of water, waste water, or sewage by flocculation or precipitation of suspended impurities
    • C02F1/54Treatment of water, waste water, or sewage by flocculation or precipitation of suspended impurities using organic material
    • C02F1/56Macromolecular compounds
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D35/00Filtering devices having features not specifically covered by groups B01D24/00 - B01D33/00, or for applications not specifically covered by groups B01D24/00 - B01D33/00; Auxiliary devices for filtration; Filter housing constructions
    • B01D35/02Filters adapted for location in special places, e.g. pipe-lines, pumps, stop-cocks
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/68Treatment of water, waste water, or sewage by addition of specified substances, e.g. trace elements, for ameliorating potable water
    • C02F1/685Devices for dosing the additives
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/68Treatment of water, waste water, or sewage by addition of specified substances, e.g. trace elements, for ameliorating potable water
    • C02F1/685Devices for dosing the additives
    • C02F1/686Devices for dosing liquid additives

Definitions

  • the present disclosure relates to the development and use of polymer dissolution systems and methods of dissolving polymers.
  • Flocculant polymers can be dissolved in water to form an activated solution.
  • the activated solution can be useful in a variety of systems, e.g., for treating wastewater.
  • the starting material for the polymers is typically
  • the starting material may be in a form of a wet gel including sticky or cohesive particles, which can be difficult to handle. Even if dissolved, the polymers are subject to undesirable shear or rupture degradation.
  • a polymer dissolution system that can rapidly and efficiently dissolve polymers in water, substantially without shear degradation.
  • the present disclosure is directed to a polymer dissolution system comprising a mix tank, a strainer, and a pump.
  • the mix tank is configured to receive polymers, water, and an inlet stream, to form a polymer solution including swollen polymers, and to discharge the polymer solution.
  • the strainer is configured to receive the polymer solution, and to withdraw at least a portion of the swollen polymers therethrough substantially without shear degradation, thereby forming a resultant solution, wherein the swollen polymers are dissolved at least in part.
  • the pump is configured to receive the resultant solution, and to return the resultant solution to the inlet stream.
  • the strainer and the pump cooperate together to maintain a viscosity of the resultant solution substantially within a predetermined range.
  • the present disclosure is also directed to a strainer comprising a first conduit, a second conduit branching from the first conduit, and a screen in the second conduit.
  • the screen includes openings dimensioned so as to allow high-molecular- weight polymers to pass through substantially without shear degradation.
  • the present disclosure is also directed to a method of dissolving high- molecular- weight polymers.
  • the method comprises supplying high-molecular- weight polymers, water, and an inlet stream.
  • a polymer solution including swollen polymers is formed.
  • At least a portion of the swollen polymers is withdrawn through a strainer substantially without shear degradation, thereby forming a resultant solution.
  • the resultant solution is returned to the inlet stream.
  • FIG. 1 Schematic illustration of a polymer dissolution system according to one embodiment of the invention, illustrating a strainer in fluid communication with a mix tank and a pump.
  • Figure 3 Graph plotting dissolution times of a 10 mole cationic wet polymer in a 2,839 liter batch size.
  • Figure 4 Graph plotting dissolution times of a 50 mole cationic wet polymer in a 379 liter batch size.
  • a polymer dissolution system comprising a strainer in fluid communication with a mix tank and a pump.
  • This system is advantageous in preparing a highly activated solution of water-soluble dry polymers for use as flocculants without shear degradation.
  • the strainer comprises a first conduit, a second conduit branching from the first conduit, and a screen in the second conduit.
  • the screen includes openings dimensioned so as to allow high-molecular- weight polymers to pass through substantially without shear degradation.
  • the strainer is configured to receive a polymer solution, and to withdraw at least a portion of the polymers from the polymer solution, thereby forming a resultant solution.
  • the resultant solution is returned to an inlet stream of the polymer dissolution system.
  • the strainer and the pump cooperate together to maintain a viscosity of the resultant solution substantially within a predetermined range.
  • the polymer dissolution system enables the use of wet gels as flocculants or viscosifying agents.
  • Wet gels are generally lower in cost compared to dry polymer powders, because dry polymer powders typically require additional equipments in production for drying, grinding, and sieving.
  • wet gels can include sticky polymer particles, and therefore can be difficult to handle.
  • the sticky polymer particles in the wet gels can measure up to about 10 mm in the longest dimension. Wet gels that include such particles can be slow to dissolve in water.
  • the polymer particles are uncoiled, unfolded, or expanded at least in part as they pass through the strainer. As such, the polymer dissolution enables a rapid and efficient dissolution of wet gels substantially without causing shear degradation. Definitions
  • Copolymer as used herein may mean a polymer derived from two or more structural units or monomeric species, as opposed to a homopolymer, which is derived from only one structural unit or monomer.
  • the present invention is directed to a polymer dissolution system that rapidly dissolves polymers to a fully activated solution while preventing shear degradation of these polymers.
  • Fig. 1 illustrates a polymer dissolution system 10 comprising a mix tank or vessel 20, a strainer 30, and a pump 40.
  • the mix tank 20 includes a cavity 24 and is configured to receive polymers and water therein.
  • the polymers include at least one of a dry polymer powder (e.g., containing no more than 15% water) and a wet gel or hydrated solid gel (e.g., containing from about 15% to about 80% water).
  • the polymers are produced from water soluble monomers by free radical polymerization.
  • the monomers can include, but are not limited to, acrylamide, acrylic acid (and salts of acrylic acid), sodium 2-acrylamid-2- methylpropane-1- sulfonate, and 2-(acryloyloxy)-N,N,N-trimethylethanaminium chloride to make anionic, cationic, and nonionic water soluble polymers.
  • the polymers may be produced in other manners from other materials.
  • a dry polymer powder particle may measure no more than about 2.0 mm, no more than about 1.9 mm, no more than about 1.8 mm, no more than about 1.7 mm, no more than about 1.6 mm, no more than about 1.5 mm, no more than about 1.4 mm, no more than about 1.3 mm, no more than about 1.2 mm, no more than about 1.1 mm, no more than about 1.0 mm, no more than about 0.9 mm, no more than about 0.8 mm, no more than about 0.8 mm, no more than about 0.7 mm, no more than about 0.6 mm, no more than about 0.5 mm, no more than about 0.4 mm, no more than about 0.3 mm, no more than about 0.2 mm, or no more than about 0.1 mm in the longest dimension.
  • the wet gel can include sticky or cohesive particles that measure up to about 20 mm in the longest dimension.
  • the sticky particles in the polymers measure up to about 1 mm, up to about 2 mm, up to about 3 mm, up to about 4 mm, up to about 5 mm, up to about 6 mm, up to about 7 mm, up to about 8 mm, up to about 9 mm, up to about 10 mm, up to about 11 mm, up to about 12 mm, up to about 13 mm, up to about 14 mm, up to about 15 mm, up to about 16 mm, up to about 17 mm, up to about 18 mm, up to about 19 mm, or up to about 20 mm in the longest dimension.
  • the polymers have a high average molecular weight.
  • the polymers may have an average molecular weight of at least about 1 million, at least about 2 million, at least about 3 million, at least about 3 million, at least about 4 million, at least about 5 million, at least about 6 million, at least about 7 million, at least about 8 million, at least about 9 million, at least about 10 million, at least about 11 million, at least about 12 million, at least about 13 million, at least about 14 million, at least about 15 million, or at least about 16 million. This includes average molecular weights of about 6 million to about 18 million, about 10 million to about 17 million, and about 14 million to about 16 million for the polymers.
  • the polymers are supplied into the mix tank 20 through a feeder or hopper 50.
  • the feeder 50 may include a funnel. In other embodiments, however, the polymers may be supplied into the mix tank 20 through other mechanisms.
  • the mix tank 20 receives an inlet stream 60, and forms a polymer solution including swollen polymers (not shown).
  • the system 10 includes an agitator or screw 70 in the mix tank 20.
  • the agitator 70 includes blades 74 and is configured to suitably mix, stir, or disperse the polymers in the mix tank 20. In case the polymers include long-chain molecules, an excessive agitation may undesirably rupture molecular bonds of the polymers.
  • the agitator 70 is configured to mix the polymers at a suitable rate substantially without rupturing the molecular bonds of the polymers.
  • an eductor (not shown) may be used between the agitator 70 and the mix tank 20 to improve particle dispersion.
  • the polymer solution is discharged from the mix tank 20, e.g., from the bottom or bottom side of the tank 20.
  • the terms “top,” “bottom,” “front,” “rear,” “side,” and other directional terms are not intended to require any particular orientation, but are instead used fro purposes of description only.
  • the polymer solution discharged from the mix tank 20 is received in the strainer 30.
  • the strainer 30 withdraws, extrudes, or strips at least a portion of the swollen polymers therethrough substantially without shear degradation, thereby forming a resultant solution.
  • the pump 40 is configured to receive the resultant solution, and to return the resultant solution to the inlet stream 60.
  • the pump 40 recirculates the polymer- lean solution to the top of the tank 20.
  • a flow loop is generated from the bottom of the tank 20 to the top of the tank 20.
  • the pump 40 includes a diaphragm (not shown). The diaphragm of the pump 40 can pulsate to create a vacuum through the flow loop. In the polymer solution upstream to the pump 40, the swollen polymers are expanded due to the vacuum created in the flow loop.
  • the swollen polymers are fragmentized or compressed, without rupturing, before the resultant solution is returned to the inlet stream 60.
  • the pulsation from the pump 40 can accelerate the dissolution of the polymers, without the shear degradation caused by prior art pump designs.
  • the pump 40 can move high-viscosity fluids, thereby allowing the use of concentrated solutions in the polymer dissolution system 10.
  • the pump 40 may be an air-operated double-diaphragm pump, for example, the N25 Full Flow High Pressure Pump manufactured by
  • the pump 40 has two liquid chambers, two air chambers, and first and second diaphragms 44, 48, which are connected by a common rod or shaft (not shown).
  • a common rod or shaft not shown.
  • an inner side of one diaphragm chamber is pressurized by compressed air while another inner chamber is exhausted.
  • the compressed air is directed to a back of the diaphragm 44, thus moving the diaphragm 44 away from a center section. This causes a discharge stroke, moving the remaining polymer solution out of the pump 40.
  • the diaphragm 48 performs a suction stroke, pushing the air behind the diaphragm 48 out to the atmosphere and allowing the remaining polymer solution to flow into the inner chamber.
  • the compressed air in the pump 40 moves the diaphragms 44, 48 in a reciprocating action.
  • compressed air is directed to diaphragm 44 again, pushing it away from its center section, and thereby restarting a cycle.
  • the pump 40 may further include ball valves that open and close alternatively to achieve the discharge and suction strokes.
  • the polymer dissolution system 10 optionally includes a check valve 80 (see Fig. 2).
  • the check valve 80 can facilitate moving at least one of the polymer solution and the resultant solution in one direction only and/or toward a predetermined direction.
  • the polymer dissolution system 10 includes the strainer 30 to withdraw or strip at least a portion of the swollen polymers from the polymer solution substantially without shear degradation.
  • the strainer 30 comprises a first conduit 90, a second conduit 100 branching from the first conduit 90, and a filter, mesh, or screen 110 in the second conduit 100.
  • the first and second conduits 90, 100 define an acute angle ⁇ .
  • the strainer 30 generally gives the appearance of a y shape.
  • the first conduit 90 defines an inlet 94 and an outlet 98, and the screen 110 is positioned therebetween.
  • the illustrated screen 110 is substantially cylindrical.
  • the screen 110 may assume any geometric form, including but not limited to, a conical, a pyramidal, an ellipsoidal, a regular polyhedral, and an irregular polyhedral shape, derivatives thereof, and combinations thereof.
  • the screen 110 may be made of stainless steel or other corrosion-resistant materials.
  • Stainless steels may be commonly grouped according to their chemical compositions into the following allow designations: a 302-type stainless steel, a 303-type stainless steel, a 304-type stainless steel, a 309-type stainless steel, a 310-type stainless steel, a 314-type stainless steel, a 316-type stainless steel, a 321-type stainless steel, a 347-type stainless steel, a 430-type stainless steel, 446-type stainless steel, and other precipitation-hardened stainless steels.
  • carbon steel may not provide suitable protection against corrosion. Nonetheless, the apparatus, methods, and articles of manufacture described herein are not limited in this regard.
  • the screen 110 includes openings 120 dimensioned so as to allow high- molecular-weight polymers or gel particles to pass through substantially without shear degradation.
  • each opening 120 may measure no more than about 4.0 mm, no more than about 3.9 mm, no more than about 3.8 mm, no more than about 3.7 mm, no more than about 3.6 mm, no more than about 3.5 mm, no more than about 3.4 mm, no more than about 3.3 mm, no more than about 3.2 mm, no more than about 3.1 mm, no more than about 3.0 mm, no more than about 2.9 mm, no more than about 2.8 mm, no more than about 2.7 mm, no more than about 2.6 mm, no more than about 2.5 mm, no more than about 2.4 mm, no more than about 2.3 mm, no more than about 2.2 mm, no more than about 2.1 mm, no more than about 2.0 mm, no more than about 1.9 mm, no more than about 1.8 mm, no
  • the swollen polymers or particles are distorted as they pass through the screen 110, thereby substantially avoiding shear degradation.
  • the polymer particles or molecules may stretch, uncoil, unfold, or expand at least in part as they pass through the openings 120 of the screen 110. This is achieved by the vacuum generated by the pump 40, which is in fluid communication with the strainer 30.
  • the vacuum from the pump 40 applies a suction force to withdraw the swollen polymers through the screen 110, thereby distorting the polymers as they pass through the screen 110.
  • the distortion of the polymers may also accelerate the polymer dissolution process.
  • a smaller sized opening 120 may stretch the polymer particles more compared to a larger sized opening 120.
  • an opening 120 that is sized too small may require a stronger suction force from the pump 40, and/or become plugged up from time to time.
  • an opening 120 that is sized too large may not provide a rapid dissolution of polymers.
  • the strainer and pump cooperate together to maintain a viscosity of the remaining polymer solution substantially within a predetermined range.
  • a "gel number" test may be used to measure progress of the dissolution process. The gel number roughly represents the percent coverage left on a 7.6 cm diameter, 100 mesh screen after 200 grams of a 0.25% polymer solution is poured through it. A lower gel number can indicate that the dissolution is more complete.
  • a target gel number for a solution of a copolymer of acrylamide and 2-(acryloyloxy)-N,N,N-trimethylethanaminium chloride in a 9: 1 molar ratio can be 0 G to about 1 G.
  • a target gel number for a solution of a solution of a copolymer of acrylamide and 2-(acryloyloxy)-N,N,N- trimethylethanaminium chloride in a 1: 1 molar ratio can be 0 G.
  • a reduced specific viscosity may be used as a measure of polymer quality. This number indicates whether the process of dissolving the polymer has degraded the molecular weight of the polymer.
  • the target RSV may be different for each polymer. For example, for a solution of a copolymer of acrylamide and 2-(acryloyloxy)-N,N,N-trimethylethanaminium chloride in a 9: 1 molar ratio, the target RSV may be 18 dL/g or higher.
  • the target RSV may be 15 dL/g or higher. Lower RSVs can indicate degradation of molecular weight, which may be detrimental to the performance of the polymer solution.
  • the screen 110 is removably coupled to the second conduit 100. In other embodiments, however, the screen 110 may be permanently attached to the second conduit 100.
  • the strainer 30 includes a screen-retaining cap or filter-retaining cap 130 in the second conduit 90.
  • the strainer 30 is positioned downstream from the mix tank 20 to receive the polymer solution and withdraw or strip swollen polymers from the polymer solution substantially without shear degradation.
  • the polymer solution passes through the first conduit 90 of the strainer 30.
  • the screen 110 in the second conduit 100 allows high-molecular- weight polymers or gel particles to pass through substantially without shear degradation. Therefore, an activated solution with dissolved polymers is discharged.
  • a polymer-lean solution returns to the mix tank 20 via the first conduit 90 so that more polymers can be dissolved to continuously form an activated solution.
  • the present disclosure is also directed to a method of dissolving high- molecular- weight polymers.
  • the method comprises supplying high-molecular- weight polymers, water, and the inlet stream 60.
  • a polymer solution including swollen polymers is formed.
  • At least a portion of the swollen polymers is withdrawn or stripped through a strainer substantially without shear degradation, thereby forming a resultant solution.
  • the resultant solution is returned to the inlet stream 60, and may be electrochemically activated.
  • the polymer solution forms in the mix tank 20, and flows from the mix tank 20 toward the strainer 30 in the direction 150.
  • the polymer solution passes through the first conduit 90 in the direction 160.
  • a resultant solution flows from the first conduit 90 to the pump 40, and then flows toward the mix tank 20 in the direction 180, thereby completing a cycle.
  • the polymers are used as flocculants.
  • wastewater or aqueous slurries can be contacted with the resultant solution of the polymer dissolution system 10.
  • the wastewater may come from various sources, including pulp and paper mills, and civil engineering and construction works such as mining, and dredging rivers, harbors, and fish farms.
  • the polymers in the resultant solution of the polymer dissolution system 10 are used as polyelectrolytic flocculants.
  • the flocculants contact solids in the wastewater to form agglomerates, which precipitate out from the wastewater. Thus, the solids are removed from the wastewater. Examples
  • Polymer dissolution systems were made using various polymer forms for 10 mole cationic polymers and pumps, with or without a y-strainer.
  • the target gel number for this polymer was 0 G-l G, and the target RSV was 18 dL/g or greater.
  • parameters such as polymer solution flow rate, time to reach the target gel number, and RSV were measured.
  • Table 1 summarizes the measurements.
  • Ref. Nos. 5, 7, 9, and 10 are control examples for wet gels in a 189 liter or 379 liter batch size, with no recycle pump or y-strainer.
  • Ref. Nos. 1 and 2 indicated that a homogenizer pump using high pressure/high shear, namely, the Tekmar pump, can reduce the time to reach the target gel number.
  • the RSV resulting from use of the Tekmar pump in each case was lower compared to the control examples, indicating that the polymer molecular weight had undesirably degraded.
  • Ref. Nos. 16 and 20 indicated that an air double diaphragm pump, namely, the Welden pump, coupled with a y-strainer, reduced the time to reach the target gel number compared to the control example, without the polymer degradation shown in Ref. Nos. 1-4.
  • Ref. Nos. 6, 8, and 14 are control examples for wet gels in a 2,839 liter batch size with no recycle pump or y-strainer. Compared to these control examples, Ref. Nos. 12, 13, and 15 indicated that the Welden pump with a y-strainer can reduce the time to reach the target gel number without polymer degradation. Likewise, Ref. Nos. 18, 19, and 21 indicated that the 7.6 cm Welden pump (having a high flow rate), together with a y-strainer, can reduce the time to reach the target gel number without polymer degradation. Fig. 3 compares the dissolution times of Ref. Nos. 8 (no recycle pump or y-strainer) and 19 (air double diaphragm pump with a y-strainer).
  • Ref. No. 11 is a control example for dry particles (measuring no more than about 1.6 mm in the longest dimension) in a 379 liter batch size, with no recycle pump or y-strainer.
  • Ref. Nos. 17 and 23 indicated that a gear pump, namely, the Chem Flow Feeder, can reduce the time to reach the target gel number; however, the RSV in each case was lower compared to the control example, indicating that the polymer molecular weight had undesirably degraded.
  • Ref. No. 24 indicated that the Welden pump with a y-strainer can reduce the time to reach the target gel number, without the polymer degradation shown in Ref. Nos. 17 and 23.
  • Ref. Nos. 22 and 25 indicated that for dry particles (measuring no more than about 1.6 mm in the longest dimension) in a 2,839 liter batch size, the Welden pump with a y-strainer can reduce the time to reach the target gel number, without polymer degradation.
  • Polymer dissolution systems were made using various polymer forms for 50 mole cationic polymers and pumps, with or without a y-strainer.
  • the target gel number for this polymer was 0 G, and the target RSV was 15 dL/g or greater.
  • parameters such as polymer solution flow rate, time to reach a target gel number, and RSV were measured.
  • Table 2 summarizes the measurements.
  • Refs. A and B are control examples for wet gels in a 189 liter or 379 liter batch size, with no recycle pump or y-strainer.
  • Refs. H, K, and L indicated the Welden pump, coupled with a y-strainer, reduced the time to reach the target gel number, without polymer degradation.
  • Refs. I and M indicated that a screen would be required for fast dissolution of polymers.
  • Fig. 4 compares the dissolution times of Refs. H (air double diaphragm pump with a y- strainer) and M (air double diaphragm pump without a y-strainer).
  • Refs. E, F, and O are control examples for wet gels in a 2,839 liter batch size with no recycle pump or y-strainer.
  • Refs. N and P indicated that the Welden pump with a y-strainer can reduce the time to reach the target gel number without polymer degradation.
  • Ref. Q indicated that small screen openings (e.g., 1.6 mm or less) can get undesirably plugged with gel particles.
  • Refs. C and D are control example for dry particles (measuring no more than about 1.6 mm in the longest dimension) in a 189 liter-757 liter batch size, with no recycle pump or y-strainer.
  • Ref. S indicated that the Chem Flow Feeder can reduce the time to reach the target gel number; however, the RSV was lower compared to the control example, indicating that the polymer molecular weight had undesirably degraded.
  • Ref. R indicated that the Welden pump with a y- strainer can reduce the time to reach the target gel number, with less polymer degradation.
  • the examples using a Welden pump coupled with a y- strainer indicated that the dissolution time can be reduced from about 3-5 hours to about 1.5- 2 hours. In case of dry particles, the dissolution times can be reduced from about 4-6 hours to about 2.5 hours.

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  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
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Abstract

The present invention is directed to a polymer dissolution system comprising a mix tank, a strainer, and a pump. The mix tank is configured to receive polymers, water, and an inlet stream, to form a polymer solution including swollen polymers, and to discharge the polymer solution. The strainer is configured to receive the polymer solution, and to withdraw at least a portion of the swollen polymers therethrough substantially without shear degradation, thereby forming a resultant solution, wherein the swollen polymers are dissolved at least in part. The pump is configured to receive the resultant solution, and to return the resultant solution to the inlet stream. In some embodiments, the strainer and the pump cooperate together to maintain a viscosity of the resultant solution substantially within a predetermined range.

Description

POLYMER DISSOLUTION SYSTEM
FIELD OF THE INVENTION
[0001] The present disclosure relates to the development and use of polymer dissolution systems and methods of dissolving polymers.
BACKGROUND OF THE INVENTION
[0002] Flocculant polymers can be dissolved in water to form an activated solution. The activated solution can be useful in a variety of systems, e.g., for treating wastewater. The starting material for the polymers, however, is typically
cumbersome to handle. For example, it may be time-consuming to dissolve the starting material. Moreover, the starting material may be in a form of a wet gel including sticky or cohesive particles, which can be difficult to handle. Even if dissolved, the polymers are subject to undesirable shear or rupture degradation. Thus, there has developed a need for a polymer dissolution system that can rapidly and efficiently dissolve polymers in water, substantially without shear degradation.
SUMMARY OF THE INVENTION
[0003] The present disclosure is directed to a polymer dissolution system comprising a mix tank, a strainer, and a pump. The mix tank is configured to receive polymers, water, and an inlet stream, to form a polymer solution including swollen polymers, and to discharge the polymer solution. The strainer is configured to receive the polymer solution, and to withdraw at least a portion of the swollen polymers therethrough substantially without shear degradation, thereby forming a resultant solution, wherein the swollen polymers are dissolved at least in part. The pump is configured to receive the resultant solution, and to return the resultant solution to the inlet stream. In some embodiments, the strainer and the pump cooperate together to maintain a viscosity of the resultant solution substantially within a predetermined range.
[0004] The present disclosure is also directed to a strainer comprising a first conduit, a second conduit branching from the first conduit, and a screen in the second conduit. The screen includes openings dimensioned so as to allow high-molecular- weight polymers to pass through substantially without shear degradation.
[0005] The present disclosure is also directed to a method of dissolving high- molecular- weight polymers. The method comprises supplying high-molecular- weight polymers, water, and an inlet stream. A polymer solution including swollen polymers is formed. At least a portion of the swollen polymers is withdrawn through a strainer substantially without shear degradation, thereby forming a resultant solution. The resultant solution is returned to the inlet stream.
[0006] Other aspects of the invention will become apparent by consideration of the detailed description and accompanying drawings.
BRIEF DESCRIPTION OF THE FIGURES
[0007] Figure 1. Schematic illustration of a polymer dissolution system according to one embodiment of the invention, illustrating a strainer in fluid communication with a mix tank and a pump.
[0008] Figure 2. Partial enlarged perspective view of the strainer of Fig. 1.
[0009] Figure 3. Graph plotting dissolution times of a 10 mole cationic wet polymer in a 2,839 liter batch size.
[0010] Figure 4. Graph plotting dissolution times of a 50 mole cationic wet polymer in a 379 liter batch size.
DETAILED DESCRIPTION
[0011] Described herein is a polymer dissolution system comprising a strainer in fluid communication with a mix tank and a pump. This system is advantageous in preparing a highly activated solution of water-soluble dry polymers for use as flocculants without shear degradation. The strainer comprises a first conduit, a second conduit branching from the first conduit, and a screen in the second conduit. The screen includes openings dimensioned so as to allow high-molecular- weight polymers to pass through substantially without shear degradation. The strainer is configured to receive a polymer solution, and to withdraw at least a portion of the polymers from the polymer solution, thereby forming a resultant solution. The resultant solution is returned to an inlet stream of the polymer dissolution system. The strainer and the pump cooperate together to maintain a viscosity of the resultant solution substantially within a predetermined range.
[0012] The polymer dissolution system enables the use of wet gels as flocculants or viscosifying agents. Wet gels are generally lower in cost compared to dry polymer powders, because dry polymer powders typically require additional equipments in production for drying, grinding, and sieving. However, wet gels can include sticky polymer particles, and therefore can be difficult to handle. The sticky polymer particles in the wet gels can measure up to about 10 mm in the longest dimension. Wet gels that include such particles can be slow to dissolve in water. In the polymer dissolution system, the polymer particles are uncoiled, unfolded, or expanded at least in part as they pass through the strainer. As such, the polymer dissolution enables a rapid and efficient dissolution of wet gels substantially without causing shear degradation. Definitions
[0013] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting. As used in the specification and the appended claims, the singular forms "a," "and" and "the" include plural references unless the context clearly dictates otherwise.
[0014] "Copolymer" as used herein may mean a polymer derived from two or more structural units or monomeric species, as opposed to a homopolymer, which is derived from only one structural unit or monomer.
[0015] For the recitation of numeric ranges herein, each intervening number therebetween with the same degree of precision is explicitly contemplated. For example, for the range of 6-9, the numbers 7 and 8 are contemplated in addition to 6 and 9, and for the range 6.0-7.0, the numbers 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, 6.9, and 7.0 are explicitly contemplated. Polymer Dissolution System
[0016] The present invention is directed to a polymer dissolution system that rapidly dissolves polymers to a fully activated solution while preventing shear degradation of these polymers. Fig. 1 illustrates a polymer dissolution system 10 comprising a mix tank or vessel 20, a strainer 30, and a pump 40. The mix tank 20 includes a cavity 24 and is configured to receive polymers and water therein. The polymers include at least one of a dry polymer powder (e.g., containing no more than 15% water) and a wet gel or hydrated solid gel (e.g., containing from about 15% to about 80% water). In some embodiments, the polymers are produced from water soluble monomers by free radical polymerization. The monomers can include, but are not limited to, acrylamide, acrylic acid (and salts of acrylic acid), sodium 2-acrylamid-2- methylpropane-1- sulfonate, and 2-(acryloyloxy)-N,N,N-trimethylethanaminium chloride to make anionic, cationic, and nonionic water soluble polymers. In other embodiments, the polymers may be produced in other manners from other materials.
[0017] The dry polymer powder is soluble in water. In some embodiments, a dry polymer powder particle may measure no more than about 2.0 mm, no more than about 1.9 mm, no more than about 1.8 mm, no more than about 1.7 mm, no more than about 1.6 mm, no more than about 1.5 mm, no more than about 1.4 mm, no more than about 1.3 mm, no more than about 1.2 mm, no more than about 1.1 mm, no more than about 1.0 mm, no more than about 0.9 mm, no more than about 0.8 mm, no more than about 0.8 mm, no more than about 0.7 mm, no more than about 0.6 mm, no more than about 0.5 mm, no more than about 0.4 mm, no more than about 0.3 mm, no more than about 0.2 mm, or no more than about 0.1 mm in the longest dimension.
[0018] The wet gel can include sticky or cohesive particles that measure up to about 20 mm in the longest dimension. In some embodiments, the sticky particles in the polymers measure up to about 1 mm, up to about 2 mm, up to about 3 mm, up to about 4 mm, up to about 5 mm, up to about 6 mm, up to about 7 mm, up to about 8 mm, up to about 9 mm, up to about 10 mm, up to about 11 mm, up to about 12 mm, up to about 13 mm, up to about 14 mm, up to about 15 mm, up to about 16 mm, up to about 17 mm, up to about 18 mm, up to about 19 mm, or up to about 20 mm in the longest dimension. This includes polymer particle sizes of about 6 mm to about 7 mm or about 7 mm to about 8 m in the longest dimension.
[0019] An increased molecular mass can increase the efficiency of the flocculation process. Thus, in some embodiments, the polymers have a high average molecular weight. In some embodiments, the polymers may have an average molecular weight of at least about 1 million, at least about 2 million, at least about 3 million, at least about 3 million, at least about 4 million, at least about 5 million, at least about 6 million, at least about 7 million, at least about 8 million, at least about 9 million, at least about 10 million, at least about 11 million, at least about 12 million, at least about 13 million, at least about 14 million, at least about 15 million, or at least about 16 million. This includes average molecular weights of about 6 million to about 18 million, about 10 million to about 17 million, and about 14 million to about 16 million for the polymers.
[0020] In the illustrated embodiment, the polymers are supplied into the mix tank 20 through a feeder or hopper 50. The feeder 50 may include a funnel. In other embodiments, however, the polymers may be supplied into the mix tank 20 through other mechanisms. Additionally, the mix tank 20 receives an inlet stream 60, and forms a polymer solution including swollen polymers (not shown). In the illustrated embodiment, the system 10 includes an agitator or screw 70 in the mix tank 20. The agitator 70 includes blades 74 and is configured to suitably mix, stir, or disperse the polymers in the mix tank 20. In case the polymers include long-chain molecules, an excessive agitation may undesirably rupture molecular bonds of the polymers. Thus, in some embodiments, the agitator 70 is configured to mix the polymers at a suitable rate substantially without rupturing the molecular bonds of the polymers. In some embodiments, an eductor (not shown) may be used between the agitator 70 and the mix tank 20 to improve particle dispersion.
[0021] The polymer solution is discharged from the mix tank 20, e.g., from the bottom or bottom side of the tank 20. As used herein, the terms "top," "bottom," "front," "rear," "side," and other directional terms are not intended to require any particular orientation, but are instead used fro purposes of description only. The polymer solution discharged from the mix tank 20 is received in the strainer 30. The strainer 30 withdraws, extrudes, or strips at least a portion of the swollen polymers therethrough substantially without shear degradation, thereby forming a resultant solution.
[0022] The pump 40 is configured to receive the resultant solution, and to return the resultant solution to the inlet stream 60. In some embodiments, the pump 40 recirculates the polymer- lean solution to the top of the tank 20. As such, a flow loop is generated from the bottom of the tank 20 to the top of the tank 20. In the illustrated embodiment, the pump 40 includes a diaphragm (not shown). The diaphragm of the pump 40 can pulsate to create a vacuum through the flow loop. In the polymer solution upstream to the pump 40, the swollen polymers are expanded due to the vacuum created in the flow loop. On the other hand, in the resultant solution downstream to the pump 40, the swollen polymers are fragmentized or compressed, without rupturing, before the resultant solution is returned to the inlet stream 60. In some embodiments, the pulsation from the pump 40 can accelerate the dissolution of the polymers, without the shear degradation caused by prior art pump designs. In some embodiments, the pump 40 can move high-viscosity fluids, thereby allowing the use of concentrated solutions in the polymer dissolution system 10.
[0023] In some embodiments, the pump 40 may be an air-operated double-diaphragm pump, for example, the N25 Full Flow High Pressure Pump manufactured by
Blagdon Pump in Export, Pennsylvania or the Wilden® PX1500 pump manufactured by Air Pumping Ltd. in London, United Kingdom. The pump 40 has two liquid chambers, two air chambers, and first and second diaphragms 44, 48, which are connected by a common rod or shaft (not shown). In operation, an inner side of one diaphragm chamber is pressurized by compressed air while another inner chamber is exhausted. In particular, the compressed air is directed to a back of the diaphragm 44, thus moving the diaphragm 44 away from a center section. This causes a discharge stroke, moving the remaining polymer solution out of the pump 40. Simultaneously, the diaphragm 48 performs a suction stroke, pushing the air behind the diaphragm 48 out to the atmosphere and allowing the remaining polymer solution to flow into the inner chamber. In short, the compressed air in the pump 40 moves the diaphragms 44, 48 in a reciprocating action. As the diaphragm 48 completes the suction stroke, compressed air is directed to diaphragm 44 again, pushing it away from its center section, and thereby restarting a cycle. The pump 40 may further include ball valves that open and close alternatively to achieve the discharge and suction strokes.
[0024] The polymer dissolution system 10 optionally includes a check valve 80 (see Fig. 2). The check valve 80 can facilitate moving at least one of the polymer solution and the resultant solution in one direction only and/or toward a predetermined direction. Strainer
[0025] As described above, the polymer dissolution system 10 includes the strainer 30 to withdraw or strip at least a portion of the swollen polymers from the polymer solution substantially without shear degradation. Referring also to Fig. 2, the strainer 30 comprises a first conduit 90, a second conduit 100 branching from the first conduit 90, and a filter, mesh, or screen 110 in the second conduit 100. The first and second conduits 90, 100 define an acute angle Θ. As such, in some embodiments the strainer 30 generally gives the appearance of a y shape. In the illustrated embodiment, the first conduit 90 defines an inlet 94 and an outlet 98, and the screen 110 is positioned therebetween. The illustrated screen 110 is substantially cylindrical. In other embodiments, however, the screen 110 may assume any geometric form, including but not limited to, a conical, a pyramidal, an ellipsoidal, a regular polyhedral, and an irregular polyhedral shape, derivatives thereof, and combinations thereof.
[0026] In some embodiments, the screen 110 may be made of stainless steel or other corrosion-resistant materials. Stainless steels may be commonly grouped according to their chemical compositions into the following allow designations: a 302-type stainless steel, a 303-type stainless steel, a 304-type stainless steel, a 309-type stainless steel, a 310-type stainless steel, a 314-type stainless steel, a 316-type stainless steel, a 321-type stainless steel, a 347-type stainless steel, a 430-type stainless steel, 446-type stainless steel, and other precipitation-hardened stainless steels. Depending on the usage requirements or preferences for the particular polymer dissolution system 10, carbon steel may not provide suitable protection against corrosion. Nonetheless, the apparatus, methods, and articles of manufacture described herein are not limited in this regard.
[0027] The screen 110 includes openings 120 dimensioned so as to allow high- molecular-weight polymers or gel particles to pass through substantially without shear degradation. In some embodiments, each opening 120 may measure no more than about 4.0 mm, no more than about 3.9 mm, no more than about 3.8 mm, no more than about 3.7 mm, no more than about 3.6 mm, no more than about 3.5 mm, no more than about 3.4 mm, no more than about 3.3 mm, no more than about 3.2 mm, no more than about 3.1 mm, no more than about 3.0 mm, no more than about 2.9 mm, no more than about 2.8 mm, no more than about 2.7 mm, no more than about 2.6 mm, no more than about 2.5 mm, no more than about 2.4 mm, no more than about 2.3 mm, no more than about 2.2 mm, no more than about 2.1 mm, no more than about 2.0 mm, no more than about 1.9 mm, no more than about 1.8 mm, no more than about 1.7 mm, or no more than about 1.6 mm. This includes opening 120 sizes of about 3.1 mm to about 3.2 mm and about 1.5 mm to about 1.6 mm.
[0028] The swollen polymers or particles are distorted as they pass through the screen 110, thereby substantially avoiding shear degradation. For example, the polymer particles or molecules may stretch, uncoil, unfold, or expand at least in part as they pass through the openings 120 of the screen 110. This is achieved by the vacuum generated by the pump 40, which is in fluid communication with the strainer 30. The vacuum from the pump 40 applies a suction force to withdraw the swollen polymers through the screen 110, thereby distorting the polymers as they pass through the screen 110. The distortion of the polymers may also accelerate the polymer dissolution process. In general, a smaller sized opening 120 may stretch the polymer particles more compared to a larger sized opening 120. However, an opening 120 that is sized too small may require a stronger suction force from the pump 40, and/or become plugged up from time to time. On the other hand, an opening 120 that is sized too large may not provide a rapid dissolution of polymers.
[0029] In some embodiments, the strainer and pump cooperate together to maintain a viscosity of the remaining polymer solution substantially within a predetermined range. For example, a "gel number" test may be used to measure progress of the dissolution process. The gel number roughly represents the percent coverage left on a 7.6 cm diameter, 100 mesh screen after 200 grams of a 0.25% polymer solution is poured through it. A lower gel number can indicate that the dissolution is more complete. For example, a target gel number for a solution of a copolymer of acrylamide and 2-(acryloyloxy)-N,N,N-trimethylethanaminium chloride in a 9: 1 molar ratio can be 0 G to about 1 G. On the other hand, a target gel number for a solution of a solution of a copolymer of acrylamide and 2-(acryloyloxy)-N,N,N- trimethylethanaminium chloride in a 1: 1 molar ratio can be 0 G.
[0030] Furthermore, a reduced specific viscosity (RSV) may be used as a measure of polymer quality. This number indicates whether the process of dissolving the polymer has degraded the molecular weight of the polymer. The target RSV may be different for each polymer. For example, for a solution of a copolymer of acrylamide and 2-(acryloyloxy)-N,N,N-trimethylethanaminium chloride in a 9: 1 molar ratio, the target RSV may be 18 dL/g or higher. On the other hand, for a solution of a copolymer of acrylamide and 2-(acryloyloxy)-N,N,N-trimethylethanaminium chloride in a 1: 1 molar ratio, the target RSV may be 15 dL/g or higher. Lower RSVs can indicate degradation of molecular weight, which may be detrimental to the performance of the polymer solution.
[0031] In some embodiments, the screen 110 is removably coupled to the second conduit 100. In other embodiments, however, the screen 110 may be permanently attached to the second conduit 100. In the illustrated embodiment, the strainer 30 includes a screen-retaining cap or filter-retaining cap 130 in the second conduit 90. Method of Using the Strainer
[0032] In operation, the strainer 30 is positioned downstream from the mix tank 20 to receive the polymer solution and withdraw or strip swollen polymers from the polymer solution substantially without shear degradation. The polymer solution passes through the first conduit 90 of the strainer 30. The screen 110 in the second conduit 100 allows high-molecular- weight polymers or gel particles to pass through substantially without shear degradation. Therefore, an activated solution with dissolved polymers is discharged. A polymer-lean solution returns to the mix tank 20 via the first conduit 90 so that more polymers can be dissolved to continuously form an activated solution. Method of Dissolving High-Molecular- Weight Polymers
[0033] The present disclosure is also directed to a method of dissolving high- molecular- weight polymers. The method comprises supplying high-molecular- weight polymers, water, and the inlet stream 60. A polymer solution including swollen polymers is formed. At least a portion of the swollen polymers is withdrawn or stripped through a strainer substantially without shear degradation, thereby forming a resultant solution. The resultant solution is returned to the inlet stream 60, and may be electrochemically activated.
[0034] In operation, the polymer solution forms in the mix tank 20, and flows from the mix tank 20 toward the strainer 30 in the direction 150. At the strainer 30, the polymer solution passes through the first conduit 90 in the direction 160. A resultant solution flows from the first conduit 90 to the pump 40, and then flows toward the mix tank 20 in the direction 180, thereby completing a cycle.
[0035] In some embodiments, the polymers are used as flocculants. For example, wastewater or aqueous slurries can be contacted with the resultant solution of the polymer dissolution system 10. The wastewater may come from various sources, including pulp and paper mills, and civil engineering and construction works such as mining, and dredging rivers, harbors, and fish farms. To treat the wastewater, the polymers in the resultant solution of the polymer dissolution system 10 are used as polyelectrolytic flocculants. The flocculants contact solids in the wastewater to form agglomerates, which precipitate out from the wastewater. Thus, the solids are removed from the wastewater. Examples
EXAMPLE 1
[0036] Polymer dissolution systems were made using various polymer forms for 10 mole cationic polymers and pumps, with or without a y-strainer. The target gel number for this polymer was 0 G-l G, and the target RSV was 18 dL/g or greater. For each system, parameters such as polymer solution flow rate, time to reach the target gel number, and RSV were measured. The following Table 1 summarizes the measurements.
[0037] Ref. Nos. 5, 7, 9, and 10 are control examples for wet gels in a 189 liter or 379 liter batch size, with no recycle pump or y-strainer. Compared to these control examples, Ref. Nos. 1 and 2 indicated that a homogenizer pump using high pressure/high shear, namely, the Tekmar pump, can reduce the time to reach the target gel number. However, the RSV resulting from use of the Tekmar pump in each case was lower compared to the control examples, indicating that the polymer molecular weight had undesirably degraded. Likewise, Ref. Nos. 3 and 4 indicated that a centrifugal pump, namely, the Deming pump, can reduce the time to reach the target gel number compared to the control example; however, the RSV was lower in each case, indicating that the polymer molecular weight had undesirably degraded. In contrast, Ref. Nos. 16 and 20 indicated that an air double diaphragm pump, namely, the Welden pump, coupled with a y-strainer, reduced the time to reach the target gel number compared to the control example, without the polymer degradation shown in Ref. Nos. 1-4.
[0038] Ref. Nos. 6, 8, and 14 are control examples for wet gels in a 2,839 liter batch size with no recycle pump or y-strainer. Compared to these control examples, Ref. Nos. 12, 13, and 15 indicated that the Welden pump with a y-strainer can reduce the time to reach the target gel number without polymer degradation. Likewise, Ref. Nos. 18, 19, and 21 indicated that the 7.6 cm Welden pump (having a high flow rate), together with a y-strainer, can reduce the time to reach the target gel number without polymer degradation. Fig. 3 compares the dissolution times of Ref. Nos. 8 (no recycle pump or y-strainer) and 19 (air double diaphragm pump with a y-strainer).
TABLE 1
Figure imgf000013_0001
11 379 dry none N/A 0 6 17
12 2,839 7.9 mm Welden 3.2 mm 265 3 18 wet
13 2,839 7.9 mm Welden 3.2 mm 265 2.5 19 wet
14 2,839 7.9 mm none N/A 0 4 20 wet
15 2,839 6.4 mm Welden 3.2 mm 265 2.5 21 wet
16 379 6.4 mm Welden 3.2 mm 2.5 20 wet
17 757 dry Chem Flow Feeder 3 14
18 2,839 7.9 mm 7.6 cm 1.6 mm 1,363 2 20 wet Welden
19 2,839 7.9 mm 7.6 cm 1.6 mm 1,363 2 19 wet Welden
20 379 7.9 mm Welden 1.6 mm 121 2 18 wet
21 2,839 7.9 mm 7.6 cm 3.2 mm 1,363 2 19 wet Welden
22 2,839 dry 7.6 cm 3.2 mm 1,363 2 20
Welden
23 757 dry Chem Flow Feeder 3 14
24 379 dry Welden 3.2 mm 121 3 19
25 2,839 dry 7.6 cm 3.2 mm 1,363 2 18
Welden
[0039] Ref. No. 11 is a control example for dry particles (measuring no more than about 1.6 mm in the longest dimension) in a 379 liter batch size, with no recycle pump or y-strainer. Compared to this control example, Ref. Nos. 17 and 23 indicated that a gear pump, namely, the Chem Flow Feeder, can reduce the time to reach the target gel number; however, the RSV in each case was lower compared to the control example, indicating that the polymer molecular weight had undesirably degraded. In contrast, Ref. No. 24 indicated that the Welden pump with a y-strainer can reduce the time to reach the target gel number, without the polymer degradation shown in Ref. Nos. 17 and 23. Likewise, Ref. Nos. 22 and 25 indicated that for dry particles (measuring no more than about 1.6 mm in the longest dimension) in a 2,839 liter batch size, the Welden pump with a y-strainer can reduce the time to reach the target gel number, without polymer degradation.
[0040] In sum, the examples using a Welden pump coupled with a y-strainer indicated that the dissolution time can be reduced from about 4-6 hours to about 2 hours. The high flow-rates achieved through a 7.6 cm Welden pump (an air double diaphragm pump) did not appear to degrade the polymer molecular weight. In addition, screen openings as small as 1.6 mm did not appear to degrade the polymer molecular weight.
EXAMPLE 2
[0041] Polymer dissolution systems were made using various polymer forms for 50 mole cationic polymers and pumps, with or without a y-strainer. The target gel number for this polymer was 0 G, and the target RSV was 15 dL/g or greater. For each system, parameters such as polymer solution flow rate, time to reach a target gel number, and RSV were measured. The following Table 2 summarizes the measurements.
[0042] Refs. A and B are control examples for wet gels in a 189 liter or 379 liter batch size, with no recycle pump or y-strainer. Compared to these control examples, Refs. H, K, and L indicated the Welden pump, coupled with a y-strainer, reduced the time to reach the target gel number, without polymer degradation. Refs. I and M indicated that a screen would be required for fast dissolution of polymers. Fig. 4 compares the dissolution times of Refs. H (air double diaphragm pump with a y- strainer) and M (air double diaphragm pump without a y-strainer).
[0043] Refs. E, F, and O are control examples for wet gels in a 2,839 liter batch size with no recycle pump or y-strainer. Compared to these control examples, Refs. N and P indicated that the Welden pump with a y-strainer can reduce the time to reach the target gel number without polymer degradation. Ref. Q indicated that small screen openings (e.g., 1.6 mm or less) can get undesirably plugged with gel particles.
[0044] Refs. C and D are control example for dry particles (measuring no more than about 1.6 mm in the longest dimension) in a 189 liter-757 liter batch size, with no recycle pump or y-strainer. Compared to this control example, Ref. S indicated that the Chem Flow Feeder can reduce the time to reach the target gel number; however, the RSV was lower compared to the control example, indicating that the polymer molecular weight had undesirably degraded. In contrast, Ref. R indicated that the Welden pump with a y- strainer can reduce the time to reach the target gel number, with less polymer degradation.
TABLE 2
Figure imgf000016_0001
[0045] In sum, the examples using a Welden pump coupled with a y- strainer indicated that the dissolution time can be reduced from about 3-5 hours to about 1.5- 2 hours. In case of dry particles, the dissolution times can be reduced from about 4-6 hours to about 2.5 hours.
[0046] Although the invention has been described in detail with reference to certain preferred embodiments, variations and modifications exist within the scope and spirit of one or more independent aspects of the invention as described.

Claims

CLAIMS What is claimed is:
1. A polymer dissolution system comprising:
a mix tank configured to receive polymers, water, and an inlet stream, to form a polymer solution including swollen polymers, and to discharge the polymer solution; a strainer configured to receive the polymer solution, and to withdraw at least a portion of the swollen polymers therethrough substantially without shear degradation, thereby forming a resultant solution, wherein the swollen polymers are dissolved at least in part; and
a pump configured to receive the resultant solution, and to return the resultant polymer solution to the inlet stream.
2. The system of claim 1, further comprising a hopper, the hopper supplying the polymers into the mix tank.
3. The system of claim 1, further comprising an agitator in the mix tank, the agitator configured to disperse the polymers in the mix tank.
4. The system of claim 1, wherein the strainer includes a first conduit, a second conduit branching from the first conduit, and a screen insertable into the second conduit, the screen including openings dimensioned so as to allow the swollen polymers to pass through substantially without shear degradation.
5. The system of claim 4, wherein the first and second conduits define an acute angle.
6. The system of claim 4, wherein the screen is removably coupled to the second conduit.
7. The system of claim 4, further comprising a screen-retaining cap in the second conduit.
8. The system of claim 1, wherein the strainer and the pump cooperate together to maintain a viscosity of the resultant solution substantially within a predetermined range.
9. The system of claim 1, wherein the pump includes a diaphragm, the diaphragm configured to expand the swollen polymers in the polymer solution and to fragmentize the swollen polymers in the resultant solution before being returned to the inlet stream.
10. The system of claim 1, wherein the polymers include at least one of a dry polymer powder and a wet gel.
11. The system of claim 1, wherein the polymers include a high-molecular- weight polymer.
12. The system of claim 1, further comprising a check valve that facilitates moving at least one of the polymer solution and the resultant solution toward a predetermined direction.
13. A strainer comprising:
a first conduit;
a second conduit branching from the first conduit; and
a screen in the second conduit, the screen including openings dimensioned so as to allow high-molecular-weight polymers to pass through substantially without shear degradation.
14. The strainer of claim 13, wherein the first and second conduits define an acute angle.
15. The strainer of claim 13, wherein the screen is removably coupled to the second conduit.
16. The strainer of claim 13, further comprising a screen-retaining cap in the second conduit.
17. The strainer of claim 13, wherein the first conduit defines an inlet and an outlet, and wherein the screen is positioned therebetween.
18. A method of dissolving high-molecular- weight polymers, the method comprising:
supplying high-molecular- weight polymers, water, and an inlet stream;
forming a polymer solution including swollen polymers;
withdrawing at least a portion of the swollen polymers through a strainer substantially without shear degradation, thereby forming a resultant solution; and
returning the resultant solution to the inlet stream.
19. The method of claim 18, further comprising maintaining a viscosity of the resultant solution substantially within a predetermined range.
20. The method of claim 18, further comprising contacting wastewater with the resultant solution.
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