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2011 | OriginalPaper | Buchkapitel

14. Membrane Technologies for Point-of-Use and Point-of-Entry Applications

verfasst von : Puangrat Kajitvichyanukul, Yung-Tse Hung, Lawrence K. Wang

Erschienen in: Membrane and Desalination Technologies

Verlag: Humana Press

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Abstract

Point-of-use (POU) system is the treatment process aimed to treat only water intended for direct consumption (drinking and cooking), typically at a single tap or limited number of taps. Point-of-entry (POE) treatment devices are typically installed to treat all water entering a single home, business, school, or facility. Reverse osmosis (RO) is recognized by the industry as one of the top POU and POE treatment technologies. This chapter describes the advantages and limitations in using RO for POU and POE applications. Types and configurations of reverse osmosis, and installation, operation and maintenance, and testing of RO are also included.

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Literatur
1.
Zurück zum Zitat U.S. EPA (2009) Point-of-use or point-of-entry treatment options for small drinking water system, U.S. Environmental Protection Agency, Washington, DC. EPA 815-R-06-010 U.S. EPA (2009) Point-of-use or point-of-entry treatment options for small drinking water system, U.S. Environmental Protection Agency, Washington, DC. EPA 815-R-06-010
2.
Zurück zum Zitat Pronk W, Zurbrügg C, Swartz C, Pronk W (2008) Decentralized systems for potable water and the potential of membrane technology. Water Res, doi:10.1016/j.watres.2008.10.030 Pronk W, Zurbrügg C, Swartz C, Pronk W (2008) Decentralized systems for potable water and the potential of membrane technology. Water Res, doi:10.1016/j.watres.2008.10.030
3.
Zurück zum Zitat Sobsey MD (2002) Managing water in the home: accelerated health gains from improved water supply. Water, sanitation and health. Department of Protection of the Human Environment, World Health Organization, Geneva, pp 1–70 Sobsey MD (2002) Managing water in the home: accelerated health gains from improved water supply. Water, sanitation and health. Department of Protection of the Human Environment, World Health Organization, Geneva, pp 1–70
4.
Zurück zum Zitat Kaiser N, Liang K, Maertens M, Snider R (2007) BSF Evaluation Report: Summary of All Laboratory and Field Studies. Centre for Affordable Water and Sanitation Technology, Calgary, Alberta, Canada, http://www.cawst.org Kaiser N, Liang K, Maertens M, Snider R (2007) BSF Evaluation Report: Summary of All Laboratory and Field Studies. Centre for Affordable Water and Sanitation Technology, Calgary, Alberta, Canada, http://​www.​cawst.​org
5.
Zurück zum Zitat Clasen T, Brown J, Suntura O, Collin S (2004) Safe household water treatment and storage using ceramic drip filters: a randomised controlled trial in Bolivia. Water Sci Technol. 50(1):111–115PubMed Clasen T, Brown J, Suntura O, Collin S (2004) Safe household water treatment and storage using ceramic drip filters: a randomised controlled trial in Bolivia. Water Sci Technol. 50(1):111–115PubMed
9.
Zurück zum Zitat Li XY, Chu HP (2003) Membrane bioreactor for the drinking water treatment of polluted surface water supplies. Water Res 37:4781–4791PubMedCrossRef Li XY, Chu HP (2003) Membrane bioreactor for the drinking water treatment of polluted surface water supplies. Water Res 37:4781–4791PubMedCrossRef
10.
Zurück zum Zitat Pillay VL (2006) Durban Institute of Technology (DIT), personal communication Pillay VL (2006) Durban Institute of Technology (DIT), personal communication
12.
Zurück zum Zitat Wegelin M, Canonica S, Mechsner K, Fleischmann T, Pesaro F, Metzler A (1994) Solar water disinfection: scope of the process and analysis of radiation experiments. J Water Supply Res Technol-Aqua 43:154–169 Wegelin M, Canonica S, Mechsner K, Fleischmann T, Pesaro F, Metzler A (1994) Solar water disinfection: scope of the process and analysis of radiation experiments. J Water Supply Res Technol-Aqua 43:154–169
13.
Zurück zum Zitat Reed RH, Mani SK, Meyer V (2000) Solar photo-oxidative disinfection of drinking water: preliminary field observations. Lett Appl Microbiol 30:432–436PubMedCrossRef Reed RH, Mani SK, Meyer V (2000) Solar photo-oxidative disinfection of drinking water: preliminary field observations. Lett Appl Microbiol 30:432–436PubMedCrossRef
14.
Zurück zum Zitat Mintz E, Bartram J, Lochery P, Wegelin M (2001) Not just a drop in the bucket: expanding access to point-of-use water treatment systems. Am J Public Health 91:1565–1570PubMedCentralPubMedCrossRef Mintz E, Bartram J, Lochery P, Wegelin M (2001) Not just a drop in the bucket: expanding access to point-of-use water treatment systems. Am J Public Health 91:1565–1570PubMedCentralPubMedCrossRef
15.
Zurück zum Zitat Clasen T, Bastable A (2003) Faecal contamination of drinking water during collection and household storage: the need to extend protection to the point of use. J Water Health 1:109–115PubMed Clasen T, Bastable A (2003) Faecal contamination of drinking water during collection and household storage: the need to extend protection to the point of use. J Water Health 1:109–115PubMed
16.
Zurück zum Zitat Huq A, Xu B, Chowdhury MAR, Islam MS, Montilla R, Colwell RR (1996) A simple filtration method to remove plankton-associated Vibrio cholerae in raw water supplies in developing countries. Appl Environ Microbiol 62:2508–2512PubMed Huq A, Xu B, Chowdhury MAR, Islam MS, Montilla R, Colwell RR (1996) A simple filtration method to remove plankton-associated Vibrio cholerae in raw water supplies in developing countries. Appl Environ Microbiol 62:2508–2512PubMed
17.
Zurück zum Zitat Sobsey MD, Stauber CE, Casanova LM, Brown JM, Elliott MA (2008) Point of use household drinking water filtration: a practical, effective solution for providing sustained access to safe drinking water in the developing world. Environ Sci Technol 42:4261–4267PubMedCrossRef Sobsey MD, Stauber CE, Casanova LM, Brown JM, Elliott MA (2008) Point of use household drinking water filtration: a practical, effective solution for providing sustained access to safe drinking water in the developing world. Environ Sci Technol 42:4261–4267PubMedCrossRef
18.
Zurück zum Zitat Mohamed ES, Papadakis G, Mathioulakis E, Belessiotis V (2005) The effect of hydraulic energy recovery in a small sea water reverse osmosis desalination system; experimental and economical evaluation. Desalination 184:241–246CrossRef Mohamed ES, Papadakis G, Mathioulakis E, Belessiotis V (2005) The effect of hydraulic energy recovery in a small sea water reverse osmosis desalination system; experimental and economical evaluation. Desalination 184:241–246CrossRef
19.
Zurück zum Zitat Atikol U, Aybar HS (2005) Estimation of water production cost in the feasibility analysis of RO systems. Desalination 184:253–258CrossRef Atikol U, Aybar HS (2005) Estimation of water production cost in the feasibility analysis of RO systems. Desalination 184:253–258CrossRef
20.
Zurück zum Zitat Afonso MD, Jaber JO, Mohsen MS (2004) Brackish groundwater treatment by reverse osmosis in Jordan. Desalination 164:157–171CrossRef Afonso MD, Jaber JO, Mohsen MS (2004) Brackish groundwater treatment by reverse osmosis in Jordan. Desalination 164:157–171CrossRef
21.
Zurück zum Zitat Van der Bruggen B (2003) Desalination by distillation and by reverse osmosis – trends towards the future. Membr Technol 2:6–9 Van der Bruggen B (2003) Desalination by distillation and by reverse osmosis – trends towards the future. Membr Technol 2:6–9
22.
Zurück zum Zitat Madaeni SS, Koocheki S (2006) Application of taguchi method in the optimization of wastewater treatment using spiral-wound reverse osmosis element. Chem Eng J 119:37–44CrossRef Madaeni SS, Koocheki S (2006) Application of taguchi method in the optimization of wastewater treatment using spiral-wound reverse osmosis element. Chem Eng J 119:37–44CrossRef
23.
Zurück zum Zitat López-Ramírez JA, Oviedo MDC, Alonso JMQ (2006) Comparative studies of reverse osmosis membranes for wastewater reclamation. Desalination 191:137–147CrossRef López-Ramírez JA, Oviedo MDC, Alonso JMQ (2006) Comparative studies of reverse osmosis membranes for wastewater reclamation. Desalination 191:137–147CrossRef
24.
Zurück zum Zitat Suthanthararajan R, Ravindranath E, Chits K, Umamaheswari B, Ramesh T, Rajamam S (2004) Membrane application for recovery and reuse of water from treated tannery wastewater. Desalination 164:151–156CrossRef Suthanthararajan R, Ravindranath E, Chits K, Umamaheswari B, Ramesh T, Rajamam S (2004) Membrane application for recovery and reuse of water from treated tannery wastewater. Desalination 164:151–156CrossRef
25.
Zurück zum Zitat Kim I-C, Lee K-H (2006) Dyeing process wastewater treatment using fouling resistant nanofiltration and reverse osmosis membranes. Desalination 192:246–251CrossRef Kim I-C, Lee K-H (2006) Dyeing process wastewater treatment using fouling resistant nanofiltration and reverse osmosis membranes. Desalination 192:246–251CrossRef
26.
Zurück zum Zitat Jung Y-J, Kiso Y, Yamada T, Shibata T, Lee T-G (2006) Chemical cleaning of reverse osmosis membranes used for treating wastewater from a rolling mill process. Desalination 190:181–188CrossRef Jung Y-J, Kiso Y, Yamada T, Shibata T, Lee T-G (2006) Chemical cleaning of reverse osmosis membranes used for treating wastewater from a rolling mill process. Desalination 190:181–188CrossRef
27.
Zurück zum Zitat Lee J-W, Kwon T-O, Moon I-S (2006) Performance of polyamide reverse osmosis membranes for steel wastewater reuse. Desalination 189:309–322CrossRef Lee J-W, Kwon T-O, Moon I-S (2006) Performance of polyamide reverse osmosis membranes for steel wastewater reuse. Desalination 189:309–322CrossRef
28.
Zurück zum Zitat Bódalo A, Gómez JL, Gómez E, Hidalgo AM, Alemán A (2005) Viability study of different reverse osmosis membranes for application in the tertiary treatment of wastes from the tanning industry. Desalination 180:277–284CrossRef Bódalo A, Gómez JL, Gómez E, Hidalgo AM, Alemán A (2005) Viability study of different reverse osmosis membranes for application in the tertiary treatment of wastes from the tanning industry. Desalination 180:277–284CrossRef
29.
Zurück zum Zitat Into M, Jönsson A-S, Lengdén G (2004) Reuse of industrial wastewater following treatment with reverse osmosis. J Membr Sci 242:21–25CrossRef Into M, Jönsson A-S, Lengdén G (2004) Reuse of industrial wastewater following treatment with reverse osmosis. J Membr Sci 242:21–25CrossRef
30.
Zurück zum Zitat Kneen B, Lemley A, Wagenet L (1995) Water treatment notes: reverse osmosis treatment of drinking water, Cornell Cooperative Extension, FACT SHEET 4 Kneen B, Lemley A, Wagenet L (1995) Water treatment notes: reverse osmosis treatment of drinking water, Cornell Cooperative Extension, FACT SHEET 4
31.
Zurück zum Zitat Cath TY, Childress AE, Elimelech M (2006) Forward osmosis: principles, applications, and recent developments. J Membr Sci 281:70–87CrossRef Cath TY, Childress AE, Elimelech M (2006) Forward osmosis: principles, applications, and recent developments. J Membr Sci 281:70–87CrossRef
32.
Zurück zum Zitat Votta F, Barnett SM, Anderson DK (1974) Concentration of industrial waste by direct osmosis: completion report, Providence, RI Votta F, Barnett SM, Anderson DK (1974) Concentration of industrial waste by direct osmosis: completion report, Providence, RI
33.
Zurück zum Zitat Anderson DK (1977) Concentration of Dilute Industrial Wastes by Direct Osmosis, University of Rhode Island, Providence Anderson DK (1977) Concentration of Dilute Industrial Wastes by Direct Osmosis, University of Rhode Island, Providence
34.
Zurück zum Zitat Holloway RW, Cath TY, Dennett KE, Childress AE (2005) Forward osmosis for concentration of anaerobic digester centrate, in: Proceedings of the AWWA membrane technology conference and exposition, Phoenix, AZ Holloway RW, Cath TY, Dennett KE, Childress AE (2005) Forward osmosis for concentration of anaerobic digester centrate, in: Proceedings of the AWWA membrane technology conference and exposition, Phoenix, AZ
35.
Zurück zum Zitat Beaudry EG, Herron JR (1997) Direct osmosis for concentrating wastewater, in: Proceedings of the 27th international conference on environmental systems, Lake Tahoe, NV Beaudry EG, Herron JR (1997) Direct osmosis for concentrating wastewater, in: Proceedings of the 27th international conference on environmental systems, Lake Tahoe, NV
36.
Zurück zum Zitat York RJ, Thiel RS, Beaudry EG (1999) Full-scale experience of direct osmosis concentration applied to leachate management, in: Margherita di Pula S. (ed) Proceedings of the seventh international waste management and landfill symposium, Cagliari, Sardinia, Italy York RJ, Thiel RS, Beaudry EG (1999) Full-scale experience of direct osmosis concentration applied to leachate management, in: Margherita di Pula S. (ed) Proceedings of the seventh international waste management and landfill symposium, Cagliari, Sardinia, Italy
38.
Zurück zum Zitat Beaudry EG, Lampi KA (1990) Membrane technology for directs osmosis concentration of fruit juices. Food Technol 44:121 Beaudry EG, Lampi KA (1990) Membrane technology for directs osmosis concentration of fruit juices. Food Technol 44:121
39.
Zurück zum Zitat Dova MI, Petrotos KB, Lazarides HN (2007) On the direct osmotic concentration of liquid foods. Part I: Impact of process parameters on process performance. J Food Eng 78(2):422–430 Dova MI, Petrotos KB, Lazarides HN (2007) On the direct osmotic concentration of liquid foods. Part I: Impact of process parameters on process performance. J Food Eng 78(2):422–430
40.
Zurück zum Zitat Dova MI, Petrotos KB, Lazarides HN (2007) On the direct osmotic concentration of liquid foods: Part II. Development of a generalized model. J Food Eng 78(2):431–437 Dova MI, Petrotos KB, Lazarides HN (2007) On the direct osmotic concentration of liquid foods: Part II. Development of a generalized model. J Food Eng 78(2):431–437
41.
Zurück zum Zitat Jiao B, Cassano A, Drioli E (2004) Recent advances on membrane processes for the concentration of fruit juices: a review. J Food Eng 63:303–324CrossRef Jiao B, Cassano A, Drioli E (2004) Recent advances on membrane processes for the concentration of fruit juices: a review. J Food Eng 63:303–324CrossRef
42.
Zurück zum Zitat Petrotos KB, Quantick PC, Petropakis H (1998) A study of the direct osmotic concentration of tomato juice in tubular membrane-module configuration. I. The effect of certain basic process parameters on the process performance. J Membr Sci 150:99–110CrossRef Petrotos KB, Quantick PC, Petropakis H (1998) A study of the direct osmotic concentration of tomato juice in tubular membrane-module configuration. I. The effect of certain basic process parameters on the process performance. J Membr Sci 150:99–110CrossRef
43.
Zurück zum Zitat Petrotos KB, Quantick PC, Petropakis H (1999) Direct osmotic concentration of tomato juice in tubular membrane-module configuration. II. The effect of using clarified tomato juice on the process performance. J Membr Sci 160:171–177CrossRef Petrotos KB, Quantick PC, Petropakis H (1999) Direct osmotic concentration of tomato juice in tubular membrane-module configuration. II. The effect of using clarified tomato juice on the process performance. J Membr Sci 160:171–177CrossRef
44.
Zurück zum Zitat Petrotos KB, Lazarides HN (2001) Osmotic concentration of liquid foods. J Food Eng 49:201–206CrossRef Petrotos KB, Lazarides HN (2001) Osmotic concentration of liquid foods. J Food Eng 49:201–206CrossRef
45.
Zurück zum Zitat Popper K, Camirand WM, Nury F, Stanley WL (1966) Dialyzer concentrates beverages. Food Eng. 38:102–104 Popper K, Camirand WM, Nury F, Stanley WL (1966) Dialyzer concentrates beverages. Food Eng. 38:102–104
46.
Zurück zum Zitat Wrolstad RE, McDaniel MR, Durst RW, Micheals N, Lampi KA, Beaudry EG (1993) Composition and sensory characterization of red raspberry juice concentrated by direct-osmosis or evaporation. J Food Sci 58:633–637CrossRef Wrolstad RE, McDaniel MR, Durst RW, Micheals N, Lampi KA, Beaudry EG (1993) Composition and sensory characterization of red raspberry juice concentrated by direct-osmosis or evaporation. J Food Sci 58:633–637CrossRef
47.
Zurück zum Zitat Beaudry EG, Herron JR, Peterson SW (1999) Direct osmosis concentration of waste water: final report, Osmotek Inc., Corvallis, OR Beaudry EG, Herron JR, Peterson SW (1999) Direct osmosis concentration of waste water: final report, Osmotek Inc., Corvallis, OR
48.
Zurück zum Zitat Cath TY, Gormly S, Beaudry EG, Adams VD, Childress AE (2005) Membrane contactor processes for wastewater reclamation in space. I. Direct osmotic concentration as pretreatment for reverse osmosis. J Membr Sci 257:85–98CrossRef Cath TY, Gormly S, Beaudry EG, Adams VD, Childress AE (2005) Membrane contactor processes for wastewater reclamation in space. I. Direct osmotic concentration as pretreatment for reverse osmosis. J Membr Sci 257:85–98CrossRef
49.
Zurück zum Zitat Cath TY, Adams VD, Childress AE (2005) Membrane contactor processes for wastewater reclamation in space. II. Combined direct osmosis, osmotic distillation, and membrane distillation for treatment of metabolic wastewater. J Membr Sci 257:111–119CrossRef Cath TY, Adams VD, Childress AE (2005) Membrane contactor processes for wastewater reclamation in space. II. Combined direct osmosis, osmotic distillation, and membrane distillation for treatment of metabolic wastewater. J Membr Sci 257:111–119CrossRef
50.
Zurück zum Zitat Flynn M, Fisher J, Borchers B (1998) An evaluation of potential Mars transit vehicle water treatment systems, NASA Ames Research Center, Moffett Field, CACrossRef Flynn M, Fisher J, Borchers B (1998) An evaluation of potential Mars transit vehicle water treatment systems, NASA Ames Research Center, Moffett Field, CACrossRef
51.
Zurück zum Zitat Kravath RE, Davis JA (1975) Desalination of seawater by direct osmosis. Desalination 16:151–155CrossRef Kravath RE, Davis JA (1975) Desalination of seawater by direct osmosis. Desalination 16:151–155CrossRef
52.
Zurück zum Zitat McCutcheon JR, McGinnis RL, Elimelech M (2005) A novel ammonia–carbon dioxide forward (direct) osmosis desalination process. Desalination 174:1–11CrossRef McCutcheon JR, McGinnis RL, Elimelech M (2005) A novel ammonia–carbon dioxide forward (direct) osmosis desalination process. Desalination 174:1–11CrossRef
54.
Zurück zum Zitat Aaberg RJ (2003) Osmotic power – a new and powerful renewable energy source, ReFocus 4:48–50CrossRef Aaberg RJ (2003) Osmotic power – a new and powerful renewable energy source, ReFocus 4:48–50CrossRef
55.
Zurück zum Zitat Jellinek HHG, Masuda H (1981) Osmo-power: theory and performance of an osmo-power pilot plant. Ocean Eng 8:103–128CrossRef Jellinek HHG, Masuda H (1981) Osmo-power: theory and performance of an osmo-power pilot plant. Ocean Eng 8:103–128CrossRef
56.
Zurück zum Zitat Lee KL, Baker RW, Lonsdale HK (1981) Membranes for power generation by pressure-retarded osmosis. J Membr Sci 8:141–171CrossRef Lee KL, Baker RW, Lonsdale HK (1981) Membranes for power generation by pressure-retarded osmosis. J Membr Sci 8:141–171CrossRef
58.
Zurück zum Zitat Loeb S (1976) Production of energy from concentrated brines by pressureretarded osmosis. I. Preliminary technical and economic correlations. J Membr Sci 1:49–63CrossRef Loeb S (1976) Production of energy from concentrated brines by pressureretarded osmosis. I. Preliminary technical and economic correlations. J Membr Sci 1:49–63CrossRef
59.
Zurück zum Zitat Loeb S (1998) Energy production at the Dead Sea by pressure-retarded osmosis: challenge or chimera. Desalination 120:247–262CrossRef Loeb S (1998) Energy production at the Dead Sea by pressure-retarded osmosis: challenge or chimera. Desalination 120:247–262CrossRef
60.
Zurück zum Zitat Loeb S (2001) One hundred and thirty benign and renewable megawatts from Great Salt Lake. The possibilities of hydroelectric power by pressure retarded osmosis. Desalination 141:85–91CrossRef Loeb S (2001) One hundred and thirty benign and renewable megawatts from Great Salt Lake. The possibilities of hydroelectric power by pressure retarded osmosis. Desalination 141:85–91CrossRef
61.
Zurück zum Zitat Loeb S (2002) Large-scale power production by pressure-retarded osmosis using river water and sea water passing through spiral modules. Desalination 143:115–122CrossRef Loeb S (2002) Large-scale power production by pressure-retarded osmosis using river water and sea water passing through spiral modules. Desalination 143:115–122CrossRef
62.
Zurück zum Zitat Mehta GD (1982) Further results on the performance of present-day osmotic membranes in various osmotic regions. J Membr Sci 10:3–19CrossRef Mehta GD (1982) Further results on the performance of present-day osmotic membranes in various osmotic regions. J Membr Sci 10:3–19CrossRef
63.
Zurück zum Zitat Seppälä A, Lampinen MJ (1999) Thermodynamic optimizing of pressureretarded osmosis power generation systems. J Membr Sci 161:115–138CrossRef Seppälä A, Lampinen MJ (1999) Thermodynamic optimizing of pressureretarded osmosis power generation systems. J Membr Sci 161:115–138CrossRef
64.
65.
Zurück zum Zitat Mehta GD, Loeb S (1978) Internal polarization in the porous substructure of a semi-permeable membrane under pressure-retarded osmosis. J Membr Sci 4:261–265CrossRef Mehta GD, Loeb S (1978) Internal polarization in the porous substructure of a semi-permeable membrane under pressure-retarded osmosis. J Membr Sci 4:261–265CrossRef
66.
Zurück zum Zitat U.S. EPA (2005) Membrane filtration guidance manual, EPA 815-R-06-009, Office of Water U.S. EPA (2005) Membrane filtration guidance manual, EPA 815-R-06-009, Office of Water
67.
Zurück zum Zitat Nederlof MM, Kxuithof JC, Herman JAMH, de Koning M, van der Hoek J-P, Bonne PAC (1998) Integrated multi-objective membrane systems application of reverse osmosis at the Amsterdam Water Supply. Desalination 119:263–273CrossRef Nederlof MM, Kxuithof JC, Herman JAMH, de Koning M, van der Hoek J-P, Bonne PAC (1998) Integrated multi-objective membrane systems application of reverse osmosis at the Amsterdam Water Supply. Desalination 119:263–273CrossRef
68.
Zurück zum Zitat Boerlage SFE, Kennedy MD, Bonne PAC, Galjaard NG, Schippers JC (1997) Prediction of flux decline in membrane systems due to particulate fouling. Desalination 113:231–233CrossRef Boerlage SFE, Kennedy MD, Bonne PAC, Galjaard NG, Schippers JC (1997) Prediction of flux decline in membrane systems due to particulate fouling. Desalination 113:231–233CrossRef
69.
Zurück zum Zitat Butt FH, Rahman F, Baduruthamal U (1995) Identification of scale deposits through membrane autopsy. Desalination 101:219–230CrossRef Butt FH, Rahman F, Baduruthamal U (1995) Identification of scale deposits through membrane autopsy. Desalination 101:219–230CrossRef
70.
Zurück zum Zitat Graham SI, Reitz RL, Hickman CE (1989) Improving reverse osmosis performance through periodic cleaning. Desalination 74:113–124CrossRef Graham SI, Reitz RL, Hickman CE (1989) Improving reverse osmosis performance through periodic cleaning. Desalination 74:113–124CrossRef
71.
Zurück zum Zitat Hong S, Elimelech M (1997) Chemical and physical aspects of natural organic matter (NOM) fouling of nanofiltration membranes. J Membr Sci 132:159–181CrossRef Hong S, Elimelech M (1997) Chemical and physical aspects of natural organic matter (NOM) fouling of nanofiltration membranes. J Membr Sci 132:159–181CrossRef
72.
Zurück zum Zitat Griebe T, Flemming H-C (1998) Biocide-free antifouling strategy to protect RO membranes from biofouling. Desalination 118:153–156CrossRef Griebe T, Flemming H-C (1998) Biocide-free antifouling strategy to protect RO membranes from biofouling. Desalination 118:153–156CrossRef
73.
Zurück zum Zitat van der Kooij D, Veenendaal HR, Baars-Lorist C, van der Klift DW, Drost YC (1995) Biofilm formation on surfaces of glass and Teflon exposed to treated water. Water Res 29:1655–1662CrossRef van der Kooij D, Veenendaal HR, Baars-Lorist C, van der Klift DW, Drost YC (1995) Biofilm formation on surfaces of glass and Teflon exposed to treated water. Water Res 29:1655–1662CrossRef
74.
Zurück zum Zitat Donlan RM, Pipes WO (1988) Selected drinking water characteristics and attached microbial population density. J Am War Works Assoc 80:70–76 Donlan RM, Pipes WO (1988) Selected drinking water characteristics and attached microbial population density. J Am War Works Assoc 80:70–76
75.
Zurück zum Zitat LeChevallier MW, Babcock TM, Lee RG (1987) Examination and characterization of distribution system biofilms. Appl Environ Microbiol 53:2714–2724PubMedCentralPubMed LeChevallier MW, Babcock TM, Lee RG (1987) Examination and characterization of distribution system biofilms. Appl Environ Microbiol 53:2714–2724PubMedCentralPubMed
76.
Zurück zum Zitat van der Wende E, Characklis WG, Smith DB (1989) Biofilms and bacterial drinking water quality. Water Res. 23:1313–1322CrossRef van der Wende E, Characklis WG, Smith DB (1989) Biofilms and bacterial drinking water quality. Water Res. 23:1313–1322CrossRef
77.
Zurück zum Zitat Van der Kooij D (1992) Assimilable organic carbon as an indicator of bacterial regrowth. J Am Water Works Assoc 84:57–65 Van der Kooij D (1992) Assimilable organic carbon as an indicator of bacterial regrowth. J Am Water Works Assoc 84:57–65
78.
Zurück zum Zitat Srinivasan R, Stewart PS, Griebe T, Chen C-I, Xu X (1995) Biofilm parameters influencing biocide efficacy. Biotechnol Bioeng 46:553–560PubMedCrossRef Srinivasan R, Stewart PS, Griebe T, Chen C-I, Xu X (1995) Biofilm parameters influencing biocide efficacy. Biotechnol Bioeng 46:553–560PubMedCrossRef
80.
Zurück zum Zitat Wang LK, Wang MHS, Suozzo T, Dixon RA, Wright TL, Sarraino S (2009) Chemical and Biochemical Technologies for Environmental Infrastructure Sustainability. 2009 National Engineers Week Conference, Albany Marriott, Albany, NY. Feb. 5–6 Wang LK, Wang MHS, Suozzo T, Dixon RA, Wright TL, Sarraino S (2009) Chemical and Biochemical Technologies for Environmental Infrastructure Sustainability. 2009 National Engineers Week Conference, Albany Marriott, Albany, NY. Feb. 5–6
81.
Zurück zum Zitat Andrew R (2009) POU and POE standards in Canada. Water Conditioning Purif 51(9):6–58 Andrew R (2009) POU and POE standards in Canada. Water Conditioning Purif 51(9):6–58
82.
Zurück zum Zitat Andrew R (2007) Point of entry systems and the NSF/ANSI standards. Water Conditioning Purif 49(10):6–88 Andrew R (2007) Point of entry systems and the NSF/ANSI standards. Water Conditioning Purif 49(10):6–88
83.
Zurück zum Zitat Wolfe C (2009) Water purifiers keep army moving. Water Conditioning Purif 51(8):44–45 Wolfe C (2009) Water purifiers keep army moving. Water Conditioning Purif 51(8):44–45
Metadaten
Titel
Membrane Technologies for Point-of-Use and Point-of-Entry Applications
verfasst von
Puangrat Kajitvichyanukul
Yung-Tse Hung
Lawrence K. Wang
Copyright-Jahr
2011
Verlag
Humana Press
DOI
https://doi.org/10.1007/978-1-59745-278-6_14