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IX1 Arsenic Removal by Ion Exchange Joe Chwirka - Camp Dresser & McKee (chwirkajd@cdm.com) Bruce Thomson - University of New Mexico (bthomson@unm.edu) with contributions from Jerry Lowry and Steve Reiber
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IX2 Introduction Arsenic removal by Ion Exchange (IX) is effective for many applications Presentation will discuss: Chemistry of the process Variables affecting process performance Especially competing ions and resin selectivity Salt use & brine production and disposal Design considerations Two example systems
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IX3 Arsenic Treatment Technologies Likely Technologies Coagulation/ Microfiltration Fixed Bed Adsorption Technologies Coagulation/ Filtration POU or POE Unlikely Technologies Ion Exchange Activated Alumina or Regenerable Media NF or RO or EDR Enhanced Softening
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IX4 Ion Exchange Reactions Cation Exchange (water softening) 2 (R-Na) + Ca 2+ = R 2 -Ca + 2 Na + Anion Exchange (arsenic removal) R-Cl + H 2 AsO 4 - = R-H 2 AsO 4 + Cl - Will only remove ionic species Regenerate resin with concentrated NaCl brine R = Resin site
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IX5 BACKWASH TO WASTE RAW WATER RINSE TO WASTE TREATED WATER RAW WATER FOR BACKWASH BRINE TANK (NaCI) Softening Processes Ion Exchange System
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IX6 Point of Entry Softening
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IX7 Cation and Anion Exchange System
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IX8 Acid-Base Chemistry of As(V)
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IX9 Acid-Base Chemistry of As(III)
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IX10 Resin Selectivity Sequence Strong Base Type II Anion Resin selectivity sequence UO 2 (CO 3 ) 3 4- > SO 4 2- > HAsO 4 2- > NO 3 - > H 2 AsO 4 - > Cl - > HCO 3 - All SO 4 2- must be removed before As is removed Other anions may also have higher selectivity than As (i.e. VO 4 3- )
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IX11 Concentration Profiles in IX Column All SO 4 2- is removed before HAsO 4 2- is removed Can result in chromatographic peaking: SO 4 2- elutes HAsO 4 2- from resin Effluent As concentrations are much higher than influent concentrations
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IX12 Chromatographic Peaking
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IX13 Chromatographic Peaking
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IX14 Chromatographic Peaking
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IX15 SEPARATION & BREAKTHROUGH Kinetics & EBCT Bed Capacity & SO 4 2- Leakage As & N0 3 - Peaking Alkalinity, pH/Corrosivity
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IX16 Kinetics & Empty Bed Contact Time Exchange kinetics are rapid and internal mass transport limitations are small Empty Bed Contact Time (EBCT) EBCT min = 1.5 min Breakthrough is sharp & leakage is low
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IX17 Bed Capacity & SO 4 2- Sulfate Removal Technology!
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IX18 IX System - Unity, ME 11 Years Old As(III) at ≈100 µg/L Trace of Sulfide & Fe 65 gpm Design Flow Filox Oxidizing Filter SB II Anion Resin
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IX19 FJ School IX System Filox + IX 1200 gpd As ≈ 25-60 µg/L (sol) SO 4 2- ≈ 25 mg/L pH = 7.6 Capable of < 1.0 µg/L treated water
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IX20 EPA Study at Medical Facility - Arsenic
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IX21 EPA Study at Medical Facility - pH & Alkalinity
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IX22 Design EBCT = 1.5 min operated to regen. BEFORE SO 4 2- causes breakthrough down flow service & regeneration single or multiple beds single or multiple brine use
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IX23 Process Design Small Systems single or double vessels EBCT > 1.5 min and long service cycle intermittent flow single use of brine may not be feasible w/o POTW for brine disposal Large Systems multiple parallel vessels staged regeneration possible reuse of brine may not be cost effective w/o POTW for brine disposal
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IX24 Regeneration Small Systems use a standard softener control & small brine tank 8-15 lb salt used/cf of resin backwash, brine, slow rinse, & fast rinse Large Systems parallel vessels and staged regeneration with salt storage & brine maker 5.4 lb salt used/cf of resin backwash, brine, & rinse steps
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IX25 Brine Disposal Options Municipal sewer Likely only for very small systems Systems near coast where salinity isn’t problem Evaporation ponds Deep well injection
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IX26 IX Brine Recycling Brine Tank Precip. Tank IX BaSO4 IX Regeneration Brine Reuse BaCl2 After 3 Cycles
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IX29 Fruitland, Idaho Water Chemistry As – 34 micrograms/L Nitrate -14.6 mg/L Sulfate-51 mg/L pH-7.3 1,500 X sulfate 429 X nitrate 1,929
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IX31 10 gpm water loss
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IX32 Floor Drain To POTW 10 gpm Water loss
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IX36 Plan Ah e a d
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IX38 Floor Drain To POTW Sequentially regenerated pH Alkalinity 6 – 8,000 lb salt/week @ $0.10/lb 50% production loss for 5 hours (~85 gpm) Regenerate 1/30 hours
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IX39 Rimrock, Arizona Basin Water IX
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IX40 $ per acre-foot
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IX48 Ten in parallel Seven in production pH Alkalinity Chromatographic peaking
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IX51 Truck fill
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