IS CHLORINATION THE RIGHT SOLUTION FOR HOUSEHOLD WATER DISINFECTION IN INDONESIA? A CRITICAL REVIEW

T. IHSAN

Abstract


Chlorination is one of the household water treatment methods widely advocated in Indonesia. Challenges to effectiveness and efficiency, however, persist. This study reviews literature related to chlorination practices, with emphasis on the factors affecting successful practice and potential points at which improvements may be initiated. We discuss how water quality can affect chlorine effectiveness, the need for dosing strategies that correspond with the source water quality, optimization tests of disinfection processes, and possible disinfection by-products. This review also explores alternative disinfection methods, such as filtration, UV irradiation, and boiling, comparing their advantages and disadvantages. User compliance is necessary but, in most cases, compromised by lack of motivation, misconceptions regarding chlorine safety, and perceived inconvenience. Specifically, this review identifies several key research gaps, including the need for further investigation into the long-term impacts of household chlorination on user behavior and the effectiveness of various communication strategies in promoting sustained adoption. We examine barriers and drivers to successful implementation in an Indonesian context considering all the factors influencing awareness, access, affordability, cultural practices, and government policies. We realize that these guidelines may not be enough to satisfactorily adopt chlorination, hence a call to focus our effort on the local environment with continued support toward behavior change. Based on our review, we include recommendations to further enhance efficiency, compliance, and sustainability in Indonesia's household chlorination programs and thus reduce disparity in access to safe drinking water as a means to improve the public health conditions.


Keywords


Chlorination, Household Water Treatment (HWT), Drinking water, Water quality, Public health, Indonesia.

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References


ACHOUR, S., AFOUFOU F., GUERGAZI, S. (2002). Effect of reaction parameters on the oxidation of humic substances by chlorine and potassium permanganate, Larhyss Journal, No 1, pp. 97-106. (In French)

ACHOUR S., GUERGAZI S. (2003). Effect of metal salts on the chlorination of humic substances in distilled water, Larhyss Journal, No 2, pp. 105-113. (In French)

ACHOUR S., GUERGAZI S., GUESBAYA N., SEGHAIRI N., YOUCEF L., (2002). Impact of chlorination, flocculation and adsorption processes on the evolution of organic and mineral compounds in natural waters, Larhyss Journal, No 1, pp. 107-128. (In French)

ACHOUR S., CHABBI F. (2014). Disinfection of drinking water-constraints and ‎optimization perspectives in Algeria, Larhyss Journal, No 19, pp. 193-212.

ACHOUR S., BENTAHAR H.D., KHELILI H. (2016). Action of sodium hypochlorite on chlorine consumption of gallic acid in natural waters, Larhyss Journal, No 25, pp. 309-322. (In French)

ACHOUR S., CHABBI F. (2017). Study of oxidation/disinfection steps of treatment plant of Ain Tinn (Mila, eastern Algeria), Larhyss Journal, No 31, pp. 233-247. (In French)

ACHOUR S., BENALIA M.C., HELLAL A. (2018). Chlorination of aquatic humic matter and impact of the presence of ammonium ions, Larhyss Journal, No 33, pp. 141-153. (In French)

ACHOUR S., MODJAD H., HELLAL H., KELILI H. (2019). Optimization tests of clarification and disinfection processes of water dam of Khenchela area (eastern Algeria), Larhyss Journal, No 37, pp. 151-174. (In French)

AFOUFOU F., ACHOUR S. (2002). The effect of preoxydation by chlorine and permanganate of potassium on the removal of humic substances by flocculation, Larhyss Journal, No 1, pp. 87-96. (In French)

AFOUFOU F., ACHOUR S. (2003). Application of the combined pre-oxidation/coagulation-post-chlorination process to the water of the Aïn Zada dam, Setif, Larhyss Journal, No 2, pp. 91-103. (In French)

AGRAWAL V.K., BHALWAR R. (2009). Household Water Purification: Low-Cost Interventions, Medical Journal, Armed Forces India, Vol. 65, Issue 3, pp. 260–263. https://doi.org/https://doi.org/10.1016/S0377-1237(09)80019-1.

ALMHÖJD U.S., LEHRKINDER A., ROOS-JANSÅKER A.M., LINGSTRÖM P. (2023). Antimicrobial efficacy of chlorine agents against selected oral pathogens, Clinical Oral Investigations, Vol. 27, Issue 9, pp. 5695–5707.

https://doi.org/https://doi.org/10.1007/s00784-023-05190-0.

AMADOU H., LAOUALI M.S., MANZOLA A. (2014). Physico-chemical and bacteriological analyzes of waters of three aquifers in the Tillabery region: application of multi-varied statistical analysis methods, Larhyss Journal, No 20, pp. 25-41. (In French)

AROUA-BERKAT S., AROUA N. (2022). Opportunities and challenges for wastewater reuse in Algeria, Larhyss Journal, No 51, pp. 7-17.

AROUA N. (2023). Setting out urban water issues examples from Algeria and worldwide, Larhyss Journal, No 56, pp. 309-327.

ASHOK A., KHEDIKAR I. (2016). Overview of Water Disinfection by UV Technology—A Review, International Journal of Science Technology & Engineering, Vol. 2, Issue 9, pp 213–219.

AW S., N’GORAN E.B.Z., KOFFI G.A.R., ASSIDJO N.E. (2016). Studying fluorescent dissolved organic matter (FDOM) from Yamoussoukro lakes (Cote d'Ivoire) using the parallel factors analysis (PARAFAC), Larhyss Journal, No 26, pp. 31-44. (In French)

AW S., SAVADOGO I., OGA Y. M.S., COULIBALY M.R. (2024). Contribution of ion exchange processes in the elimination of nitrates contained in the waters of the Abidjan aquifer (south Cote d’Ivoire), Larhyss Journal, No 60, pp. 7-25.

AWANG NASRIZAL A.A., FARZANA W., SAAD I., BOLONG N. (2023). Carbonized coconut shell media applicability for stormwater pollution control, Larhyss Journal, No 54, pp. 43-52.

BABA HAMED S. (2021). Impact of water pollution on public health and the environment in Oran, Larhyss Journal, No 45, pp. 203-222.

BIELEFELDT R.A. (2010). Appropriate and sustainable water disinfection methods for ‎developing communities, In: Water Disinfection, Chapter2, Nova Science Publishers, ‎USA.‎

BLACK R.E., PERIN J., YEUNG D., RAJEEV T., ELWOOD S.E. (2022). Estimated global and regional causes of deaths from diarrhoea in children younger than 5 years during 2000-21: a systematic review and Bayesian multinomial analysis, The Lancet Global Health, Vol. 12, Issue 6, pp. 919–928. https://doi.org/10.1016/S2214-109X(24)00078-0.

BLOODGOOD M.A., CHOWDARY S.A., GRANGER C.O., RICHARDSON S.D. (2022). A balancing act: Optimizing free chlorine contact time to minimize iodo-DBPs, NDMA, and regulated DBPs in chloraminated drinking water, Journal of Environmental Sciences, Vol. 117, pp. 315–325. https://doi.org/https://doi.org/10.1016/j.jes.2022.05.024

BOUBOU-BOUZIANI N. (2015). The energy challenge: the other aspect of the water issue, Larhyss Journal, No 22, pp. 109-122. (In French)

BRICEÑO B., COVILLE A., GERTLER P., MARTINEZ S. (2017). Are there synergies from combining hygiene and sanitation promotion campaigns: Evidence from a large-scale cluster-randomized trial in rural Tanzania, PLOS One, Vol. 12, Issue 11, Paper ID e0186228.

https://doi.org/10.1371/journal.pone.0186228

BULO M.A.M., EKAYANI A.D., DOLONTELIDE M.C. (2024). Implementation of PAMSIMAS in Supporting the Achievement of SDGs 6 in Indonesia, Innovative: Journal of Social Science Research, Vol. 4, Issue 4 SE-Articles, pp. 10269–10281. https://doi.org/10.31004/innovative.v4i4.13847

BURCH J.D., THOMAS K.E. (1998). Water disinfection for developing countries and ‎potential for solar thermal pasteurization, Solar Energy, Vol. 64, Issues 1–3, pp. 87–‎‎97.

CHADEE A.A., RATHORE K., CHOUDHARY L.A., VERMA S., MEHTA D. (2024). The Korba coal mining zone in India assessment of risk health and pollutant sources, Larhyss Journal, No 60, pp. 113-131.

CHEUNG P. (2017). A historical review of the benefits and hypothetical risks of disinfecting drinking water by chlorination, Journal of Environment & Ecology, Vol. 8, Issue 1, pp. 73–140.

https://doi.org/10.5296/jee.v8i1.11338

CLASEN T., EDMONDSON P. (2006). Sodium dichloroisocyanurate (NaDCC) tablets as an alternative to sodium hypochlorite for the routine treatment of drinking water at the household level, International Journal of Hygiene and Environmental Health, Vol. 209, Issue 2, pp. 173–181.

https://doi.org/https://doi.org/10.1016/j.ijheh.2005.11.004

CRIDER Y.S., TSUCHIYA M., MUKUNDWA M., RAY I., PICKERING A.J. (2023). Adoption of Point-of-Use Chlorination for Household Drinking Water Treatment: A Systematic Review, Environmental Health Perspectives, Vol. 131, Issue 1, Paper ID 16001.

https://doi.org/10.1289/EHP10839

CRIDER Y.S., UNICOMB L., DAVIS J., LUBY S.P., PICKERING A.J. (2018). Can you taste it? Taste detection and acceptability thresholds for chlorine residual in drinking water in Dhaka, Bangladesh, Science of The Total Environment, Vol. 613–614, pp. 840–846.

https://doi.org/https://doi.org/10.1016/j.scitotenv.2017.09.135

DANDADZI P., KOTHURKAR N. K. (2023). Assessing the sustainability of biosand filters: Unveiling interlinkages and leveraging factors for effective implementation, Environmental and Sustainability Indicators, Vol. 20, Paper ID 100311.

https://doi.org/10.1016/j.indic.2023.100311

DANIEL D., QAIMAMUNAZZALA H., PADMAWATI R.S. (2023). Household drinking water treatment in rural Indonesia: actual practice, determinants, and drinking water quality, Journal of Water, Sanitation and Hygiene for Development, Vol. 13, Issue 3, pp. 208–217.

https://doi.org/10.2166/washdev.2023.215

DATA.WORLDBANK.ORG. (2019). The Pamsimas (Community Based Drinking Water Supply and Sanitation) program has helped Indonesia’s low-income rural and peri-urban population, spread across almost.

https://www.worldbank.org/en/results/2019/07/29/indonesia-expanding-access-to-clean-water-for-the-rural-poor#:~:text=The PAMSIMAS %28Penyediaan Air Minum dan Sanitasi Berbasis,improved water supply to 17.2 million people%2C

DENG Y. (2021). Making Waves: Principles for the Design of Sustainable Household Water Treatment, Water Research, Vol. 198, Paper ID 117151.

https://doi.org/https://doi.org/10.1016/j.watres.2021.117151

DEWANGAN S.K., TOPPO D.N., KUJUR A. (2023). Investigating the Impact of pH Levels on Water Quality : An Experimental Approach, International Journal for Research in Applied Science & Engineering Technology, Vol. 11, Issue 9, pp 1-7.

DIALLO A.D., IBNO NAMR K., N’DIAYE A.D., GARMES H., KANKOU M. (2014). The interest of statistical analysis methods in the management of monitoring the physico-chemical quality of water on the right bank of the Senegal river, Larhyss Journal, No 17, pp. 101-114. (In French)

DOEDERER K., GERNJAK W., WEINBERG H.S., FARRÉ M.J. (2014). Factors affecting the formation of disinfection by-products during chlorination and chloramination of secondary effluent for the production of high quality recycled water, Water Research, Vol. 48, pp. 218–228.

https://doi.org/https://doi.org/10.1016/j.watres.2013.09.034

DOUHRI H., RAISSOUNI I., TAZI S., DOUHRI B. (2015). Effect of house storage on water’s quality in rural areas of Tangier-Tetuan region (Morocco), Larhyss Journal, No 24, pp. 301-314.

ENGEL P. (2021). Applicability of traditional storage methods in Indonesia for today’s conservation practice, IFLA Journal, Vol. 48, Issue 2, pp. 339–348.

https://doi.org/10.1177/03400352211023077

ERCUMEN A., NASER A.M., UNICOMB L., COLFORD J.M.J., LUBY S.P. (2015). Effects of source- versus household contamination of tubewell water on child diarrhea in rural Bangladesh: a randomized controlled trial, PLOS One, Vol. 10, Issue 3, Paper ID e0121907.

https://doi.org/10.1371/journal.pone.0121907

FAGERLI K., TRIVEDI K.K., SODHA S.V., DELEA K.C. (2017). Comparison of boiling and chlorination on the quality of stored drinking water and childhood diarrhoea in Indonesian households, Epidemiology and Infection, Vol. 145, Issue 15, pp. 3294–3302.

https://doi.org/10.1017/S0950268817002217

FAYE C. (2017). Water pollution challenges, a threat to public health: strengths and weaknesses of water laws and policies in Senegal, Larhyss Journal, No 32, pp. 107-126. (In French)

FENG C., XU Z., LI Y., ZHU N., WANG Z. (2021). Research progress on the contamination status and control policy of Giardia and Cryptosporidium in drinking water, Journal of Water, Sanitation and Hygiene for Development, Vol. 11, Issue 6, pp. 867–886.

https://doi.org/10.2166/washdev.2021.151

GALLANDAT K., KOLUS R.C., JULIAN T.R., LANTAGNE D.S. (2021). A systematic review of chlorine-based surface disinfection efficacy to inform recommendations for low-resource outbreak settings, American Journal of Infection Control, Vol. 49, Issue 1, pp. 90–103.

https://doi.org/10.1016/j.ajic.2020.05.014

GAOUAR Y.M., GAOUAR B.N. (2016). Best available technology assessment of three existing processes in waste water treatment field, Larhyss Journal, No 27, pp. 105-123.

GHERNAOUT D. (2018). Water Treatment Chlorination : An Updated Mechanistic Insight Review, Chemistry Research Journal, Vol. 2, Issue 4, pp. 125–138.

GOHIL J.M., SURESH A.K. (2017). Chlorine attack on reverse osmosis membranes: Mechanisms and mitigation strategies, Journal of Membrane Science, Vol. 541, pp. 108–126.

https://doi.org/https://doi.org/10.1016/j.memsci.2017.06.092

HARRAT N., ACHOUR S. (2010). Physico-chemical pollution of dam waters in the El Tarf region, impact on chlorination, Larhyss Journal, No 8, pp. 47-54. (In French)

HE Z., FAN X., JIN W., YIN S. (2023). Chlorine-resistant bacteria in drinking water: Generation, identification and inactivation using ozone-based technologies, Journal of Water Process Engineering, Vol. 53, Paper ID 103772.

https://doi.org/https://doi.org/10.1016/j.jwpe.2023.103772

HELLAL A., ACHOUR S. (2016). Effect of nitrite ions on tyrosine reactivity during Algerian surface water chlorination, Larhyss Journal, No 27, pp. 299-311. (In French)

HELLAL A., DJEDDOU M., LOUKAM I., HAMEED A.I., AL DALLAL J. (2023). Predictive modeling of ozone dosing in drinking water treatment plant using deep learning comparative study between deep neural networks and convolutional neural networks, Larhyss Journal, No 55, pp. 145-159.

HOW Z.T., KRISTIANA I., BUSETTI F., LINGE K.L., JOLL C.A. (2017). Organic chloramines in chlorine-based disinfected water systems: A critical review, Journal of Environmental Sciences, Vol. 58, pp. 2–18.

https://doi.org/https://doi.org/10.1016/j.jes.2017.05.025

IHSAN T., DEROSYA V. (2024). Drinking water problems in rural areas: Review of point-of-use methods to improve water quality and public health, Larhyss Journal, No. 58, pp. 55–71.

IHSAN T., JOHAN E., FUKUGAICHI S., MITSUNOBU S., MATSUE N. (2024). Innovative DIY drinking water disinfection for underserved communities, Science of The Total Environment, Vol. 927, Paper ID 172257.

https://doi.org/https://doi.org/10.1016/j.scitotenv.2024.172257

IHSAN T., JOHAN E., FUKUGAICHI S., MATSUE N. (2023). Enhancing rural drinking water safety using an Mg–Al-type layered double hydroxide foil as a new point-of-use disinfection tool, Journal of Water, Sanitation and Hygiene for Development, Vol. 13, Issue 11, pp. 921–930. https://doi.org/10.2166/washdev.2023.206

IKHSAN A.N., THOHIRA M.C., DANIEL D. (2022). Analysis of packaged drinking water use in Indonesia in the last decades: trends, socio-economic determinants, and safety aspect, Water Policy, Vol. 24, Issue 8, pp. 1287–1305.

https://doi.org/10.2166/wp.2022.048

ICAS (Indonesia central agency of statistics) (2024). Percentage of households having access to clean drinking water sources by province.

https://www.bps.go.id/id/statistics-table/2/ODQ1IzI=/persentase-rumah-tangga-menurut-provinsi-dan-sumber-air-minum-layak.html (In Indonesian)

IMH (Indonesia ministry of health) (2023). National Action Plan for Pneumonia and Diarrhea Control 2023-2030.

https://p2p.kemkes.go.id/wp-content/uploads/2023/12/NAPPD_2023-2030-compressed.pdf (In Indonesian).

INUNGU J.N., ZINSOU C.E., MUSTAFA Y., SINGBO N. (2016). Factors Associated with The Uptake of Sodium Dichloroisocyanurate (NADCC) Tablets ss Household Water-Treatment Product Among Caregivers Of Children Under Five In Benin, West Africa, Journal of Health and Human Services Administration, Vol. 39, Issue 1, pp. 122–141.

IRIANTI S., PRASETYOPUTRA P., SASIMARTOYO T.P. (2016). Determinants of household drinking-water source in Indonesia: An analysis of the 2007 Indonesian family life survey, Cogent Medicine, Vol. 3, Issue 1, Paper ID 1151143.

https://doi.org/10.1080/2331205X.2016.1151143

JAIN S., COSTA-MELO T.G., DOLABELLA S.S., LIU J. (2019). Current and emerging tools for detecting protozoan cysts and oocysts in water, TrAC Trends in Analytical Chemistry, Vol. 121, Paper ID 115695.

https://doi.org/https://doi.org/10.1016/j.trac.2019.115695

JOHAN E., IHSAN T., FUKUGAICHI S., MATSUE N. (2023). Aluminum foil immersed in alkalized seawater removes Escherichia coli from household drinking water, Journal of Water, Sanitation and Hygiene for Development, Vol. 13, Issue 9, pp. 681–686.

https://doi.org/10.2166/washdev.2023.057

KALITA I., KAMILARIS A., HAVINGA P., REVA I. (2024). Assessing the Health Impact of Disinfection Byproducts in Drinking Water, ACS ES&T Water, Vol. 4, Issue 4, pp. 1564–1578.

https://doi.org/10.1021/acsestwater.3c00664

KHELILI H., ACHOUR S. (2015). Effect of coagulation-flocculation / post-chlorination on the reactivity of pyromellitic acid and salicylic acid in distilled water, Larhyss Journal, No 23, pp. 287-304. (In French)

KHELILI H., ACHOUR S. (2017). Potentials and kinetics of chlorine consumption of phthalic acid and phloroglucinol in distilled water, Larhyss Journal, No 32, pp. 245-255. (In French)

KIM H., KIM S., KOO J. (2014). Prediction of Chlorine Concentration in Various Hydraulic Conditions for a Pilot Scale Water Distribution System, Procedia Engineering, Vol. 70, pp. 934–942.

https://doi.org/https://doi.org/10.1016/j.proeng.2014.02.104

KOULOUGHLI C.E., TELLI A. (2023). Modern water supply management techniques and methods: A review, Larhyss Journal, No 55, pp. 7-23.

KWIO-TAMALE J.C., ONYUTHA C. (2024). Influence of physical and water quality parameters on residual chlorine decay in water distribution network, Heliyon, Vol. 10, Issue 10, Paper ID e30892.

https://doi.org/https://doi.org/10.1016/j.heliyon.2024.e30892

LANREWAJU A.A., ENITAN-FOLAMI A.M., SABIU S., SWALAHA F.M. (2022). A review on disinfection methods for inactivation of waterborne viruses, Frontiers in Microbiology, Vol. 13, pp. 99-106.

https://doi.org/10.3389/fmicb.2022.991856

LANTAGNE D., PRESTON K., BLANTON E. (2011). Hypochlorite Solution Expiration and Stability in Household Water Treatment in Developing Countries, Journal of Environmental Engineering, Vol. 137, Issue 2, pp. 131–136.

https://doi.org/10.1061/(ASCE)EE.1943-7870.0000299

LEE D., GIBSON J.M., BROWN J., HABTEWOLD J., MURPHY H.M. (2023). Burden of disease from contaminated drinking water in countries with high access to safely managed water: A systematic review, Water Research, Vol. 242, Paper ID 120244. https://doi.org/https://doi.org/10.1016/j.watres.2023.120244

LEE K., LEE W. (2015). Effects of pH, Water Temperature and Chlorine Dosage on the Formation of Disinfection Byproducts at Water Treatment Plant, Journal of Korean Society Environmental Engineers, Vol. 37, Issue 9, pp. 505–510.

https://doi.org/10.4491/KSEE.2015.37.9.505

LEVY K., ANDERSON L., ROBB K.A., CEVALLOS W., ISENBERG J.N.S. (2014). Household effectiveness vs. laboratory efficacy of point-of-use chlorination, Water Research, Vol. 54, pp. 69–77.

https://doi.org/https://doi.org/10.1016/j.watres.2014.01.037

LÉZIART T., DE LA ROCHERE D.P.M., CHESWICK R., NOCKER A. (2019). Effect of turbidity on water disinfection by chlorination with the emphasis on humic acids and chalk, Environmental Technology, Vol. 40, Issue 13, pp. 1734–1743.

https://doi.org/10.1080/09593330.2019.1585480

LOCHER J.M., ROBINSON D.T., CANU E.N., SANCHEZ G. (2024). Assessment of a local and low-cost passive in- line chlorination device in rural Guatemala, PLOS Water, Vol. 3, Issue 9, pp. 1–19.

https://doi.org/10.1371/journal.pwat.0000255

LU S., ZHANG G. (2022). Recent advances on inactivation of waterborne pathogenic microorganisms by (photo) electrochemical oxidation processes: Design and application strategies, Journal of Hazardous Materials, Vol. 431, Paper ID 128619. https://doi.org/https://doi.org/10.1016/j.jhazmat.2022.128619

MA S., GAN Y., CHEN B., KRASNER S. (2016). Understanding and Exploring the Potentials ‎of Household Water Treatment Methods for Volatile Disinfection By-Products Control: ‎Kinetics, Mechanisms, and Influencing Factors, Journal of Hazardous Materials, Vol. ‎‎321, pp. 509-516

MANGA M., NGOBI T.G., OKENY L., KIBWAMI N. (2021). The effect of household storage tanks/vessels and user practices on the quality of water: a systematic review of literature, Environmental Systems Research, Vol. 10, Issue 1, pp. 18-29. https://doi.org/10.1186/s40068-021-00221-9

MAZHAR M.A., KHAN N.A., AHMED S., CHANGANI F. (2020). Chlorination disinfection by-products in municipal drinking water – A review, Journal of Cleaner Production, Vol. 273, Paper ID 123159.

https://doi.org/https://doi.org/10.1016/j.jclepro.2020.123159

MEIERHOFER R., WIETLISBACH B., MATIKO C. (2019). Influence of container cleanliness, container disinfection with chlorine, and container handling on recontamination of water collected from a water kiosk in a Kenyan slum, Journal of Water and Health, Vol. 17, Issue 2, pp. 308–317.

https://doi.org/10.2166/wh.2019.282

MESSAKH J.J., PUNUF D.A. (2020). Study on the accessibility of water sources to meet the water needs of rural communities in semi-arid regions of Indonesia Study on the accessibility of water sources to meet the water needs of rural communities in semi-arid regions of Indonesia, IOP Conference Series: Earth and Environmental Science, Vol. 426, Paper ID 012043.

https://doi.org/10.1088/1755-1315/426/1/012043

MISHRA B.K., GUPTA S.K., SINHA A. (2014). Human health risk analysis from disinfection by-products (DBPs) in drinking and bathing water of some Indian cities, Journal of Environmental Health Science & Engineering, Vol. 12, pp. 73-89. https://doi.org/10.1186/2052-336X-12-73

MOHAMED H., BROWN J., NJEE R.M., CLASEN T., MBULIGWE S. (2015). Point-of-use chlorination of turbid water: results from a field study in Tanzania, Journal of Water and Health, Vol. 13, Issue 2, pp. 544–552.

https://doi.org/10.2166/wh.2014.001

MOHSENI M., MCBEAN E.A., RODRIGUEZ M.J. (2017). Chlorination of Drinking Water – Scientific Evidence and Policy Implications - Water Policy and Governance in Canada, Renzetti S., and Dupont D.P. Edition, pp. 357–373). Springer International Publishing.

https://doi.org/10.1007/978-3-319-42806-2_19

MUMTHAJ A.M.M., DISSANAYAKA D.M.S.H., MOWJOOD M.I.M. (2023). Enhancement of phosphorous removal from wastewater using Murunkan clay mixed media, Larhyss Journal, No 53, pp. 145-163.

MURRAY A.L., NAPOTNIK J., RAYNER J., LANTAGNE D. (2020). Evaluation of consistent use, barriers to use, and microbiological effectiveness of three prototype household water treatment technologies in Haiti, Kenya, and Nicaragua, Science of The Total Environment, Vol. 718, Paper ID 134685.

https://doi.org/10.1016/j.scitotenv.2019.134685

MURRAY A.L., LANTAGNE D. (2014). Accuracy, precision, usability, and cost of free chlorine residual testing methods, Journal of Water and Health, Vol. 13, Issue 1, pp. 79–90.

https://doi.org/10.2166/wh.2014.195

NICOLE W. (2021). A Better Way to Boil: Comparing Methods of Purifying Water at Home, Environmental Health Perspectives, Vol. 129, Issue 4, Paper ID 44001. https://doi.org/10.1289/EHP8921.

NOH Y., CHOI S., PARK J. (2016). A Review Study on Major Factors Influencing Chlorine Disappearances in A Review Study on Major Factors Influencing Chlorine Disappearances in Water Storage Tanks, Journal of Korean Society of Disaster and Security, Vol. 9, Issue 2, pp. 63–75.

https://doi.org/10.21729/ksds.2016.9.2.63

NOUIRI I. (2017). Optimal design and management of chlorination in drinking water networks : a multi-objective approach using Genetic Algorithms and the Pareto optimality concept, Applied Water Science, Vol. 7, Issue 9, pp. 3527–3538.

https://doi.org/10.1007/s13201-017-0620-7

OUAHCHIA C., HAMAIDI-CHERGUI F., HAMAIDI M. S., SAIDI F. (2015). Bacteriological quality of drinking water from different reservoirs and among consumers of the town of Tipaza supplies by the Sidi Amar station from Boukourdane surface water, Larhyss Journal, No 23, pp. 139-154. (In French)

PACHEPSKY Y.A., ALLENDE A., BOITHIAS L., CHO K. (2018). Microbial Water Quality: Monitoring and Modeling, Journal of Environmental Quality, Vol. 47, Issue 5, pp. 931–938.

https://doi.org/https://doi.org/10.2134/jeq2018.07.0277

PANDEY P., MISHRA R., CHAUHAN R.K. (2022). Future prospects in the implementation of a real-time smart water supply management and water quality monitoring system, Larhyss Journal, No 51, pp. 237-252.

PRAJA R.K., NENGAH N., FATMAWATI D. (2023). The Existence of Vibrio Cholerae in Indonesia: From Environmental to Clinical Aspects, A Concise Review, Journal of Indonesia Emas, Vol. 4, pp. 1–8.

https://doi.org/10.52162/jie.2021.004.01.1

PRIYADARSHINI M., DAS I., GHANGREKAR M. M., BLANEY L. (2022). Advanced oxidation processes: Performance, advantages, and scale-up of emerging technologies, Journal of Environmental Management, Vol. 316, Paper ID 115295.

https://doi.org/10.1016/j.jenvman.2022.115295

PUSPITA T., DHARMAYANTI I., ANWAR A., IRIANTO J. (2023). Packaged drinking water in Indonesia: The determinants of household in the selection and management process, Journal of Water, Sanitation and Hygiene for Development, Vol. 13, Issue 7, pp. 508–519.

https://doi.org/10.2166/washdev.2023.050

RAJASINGHAM A., HARDY C., KAMWAGA S., SEBUNYA K., MASSA K. (2019). Evaluation of an Emergency Bulk Chlorination Project Targeting Drinking Water Vendors in Cholera-Affected Wards of Dar es Salaam and Morogoro, Tanzania, The American Journal of Tropical Medicine and Hygiene, Vol. 100, Issue 6, pp. 1335–1341.

https://doi.org/10.4269/ajtmh.18-0734

RAMÍREZ S.B., VAN MEERVELD I., SEIBERT J. (2023). Citizen science approaches for water quality measurements, Science of The Total Environment, Vol. 897, Paper ID 165436.

https://doi.org/https://doi.org/10.1016/j.scitotenv.2023.165436

REDDY N.D., ELIAS A.J. (2021). Chlorine and the Chemistry of Disinfectants, Resonance, Vol. 26, Issue 3, pp. 341–366.

https://doi.org/10.1007/s12045-021-1135-y

SABOE D., HRISTOVSKI K.D., HOFFMAN, D.A. (2021). Measurement of free chlorine levels in water using potentiometric responses of biofilms and applications for monitoring and managing the quality of potable water, Science of The Total Environment, Vol. 766, Paper ID 144424.

https://doi.org/https://doi.org/10.1016/j.scitotenv.2020.144424

SAHU S., SUPE J., RATHORE K., VERMA S., MEHTA D. (2024). An integrated approach for evaluating water quality, Larhyss Journal, No 60, pp. 213-230.

SAID N.I. (2017). Disinfection for drinking water treatment processes, Jurnal Air Indonesia, Vol. 3, Issue 1, pp. 15–28. (In Indonesian).

SOLOMON E.T., ROBELE S., KLOOS H., MENGISTIE B. (2020). Effect of household water treatment with chlorine on diarrhea among children under the age of five years in rural areas of Dire Dawa, eastern Ethiopia: a cluster randomized controlled trial, Infectious Diseases of Poverty, Vol. 9, Issue 1, pp 64-79.

https://doi.org/10.1186/s40249-020-00680-9

TANOUAYI G., GNANDI K., AHOUDI H., OURO-SAMA K. (2015). Metal contamination of surface and groundwater in the Hahotoe-Kpogame phosphate mining area (southern Togo): the case of cadmium, lead, copper, and nickel, Larhyss Journal, No 21, pp. 35-50. (In French)

UN (United nations) (2021). Human Rights to Water and Sanitation. https://www.unwater.org/water-facts/human-rights-water-and-sanitation

USEPA (United States Environmental protection Agency Edition) (1999). Alternative disinfectants and oxidants, Guidance Manual. EPA 815-R- ‎‎99-014, USA.‎

VEL J., SASMITHA T., UTAMA J., ICHLAS H., BEDNER A. (2022). Law and Heritage for Protecting Water Resources and Access to Water in Indonesia, Blue Papers, Vol. 1, Issue 2, pp. 12–23.

WANG M., ZHANG Y., NIU Z., MIAO Q., FU W. (2023). Study on the distribution characteristics and metabolic mechanism of chlorine-resistant bacteria in indoor water supply networks, Environmental Pollution, Vol. 328, Paper ID 121640.

https://doi.org/https://doi.org/10.1016/j.envpol.2023.121640

WANTASEN S., LUNTUNGAN J., KONERI R. (2022). Chlorine Concentration and Phytoplankton Diversity in the Streams around Tondano Watershed, North Sulawesi, Indonesia, Indonesian Journal of Science Education, Vol. 11, Issue 1, pp. 129–141. https://doi.org/10.15294/jpii.v11i1.31601

WHO (2011). Evaluating household water treatment options Heath-based targets and microbiological performance specifications, World Health Organization, Geneva, Switzerland, 59 p.

WHO (2019). Results of Round II of the WHO International Scheme to Evaluate Household Water Treatment Technologies, World Health Organization, Geneva, Switzerland, 80 p.

WHO (World Health Organization). (2022). Guidelines for Drinking Water Quality, 4th Edition incorporating the first and second addenda.

WHO (2023). (World Health Organization), Drinking water, Geneva, Switzerland, 58 p.

WIJAYANTI T. (2017). Cryptosporidiosis in Indonesia, Balaba Journal, Vol. 13, Issue 1, pp. 73–82.

WILHELM N, KAUFMANN A., BLANTON E., LANTAGNE D. (2018). Sodium hypochlorite dosage for household and emergency water treatment : updated recommendations, Journal of Water and Health, Vol. 16, Issue 1, pp. 112–125.

https://doi.org/10.2166/wh.2017.012

WULANDARI R., ISWARA A.P., UTAMI R.R. (2024). Water pollution and sanitation in Indonesia: a review on water quality, health and environmental impacts, management, and future challenges, Environmental Science and Pollution Research, Vol. 31, Issue 58, pp. 65967–65992.

https://doi.org/10.1007/s11356-024-35567-x

XIAO R., DENG Y., XU Z., CHU W. (2024). Disinfection Byproducts and Their Precursors in Drinking Water Sources: Origins, Influencing Factors, and Environmental Insights, Engineering, Vol. 36, pp. 36–50.

https://doi.org/https://doi.org/10.1016/j.eng.2023.08.017

XIAO R., DUAN Y., CHU W. (2020). The effectiveness of household water treatment and safe storage in improving drinking water quality: a disinfection by-product (DBP) perspective, Journal of Water Supply: Research and Technology-Aqua, Vol. 69, Issue 8, pp. 785–806.

https://doi.org/10.2166/aqua.2020.052

XIE Y., JIANG Q., ZHANG Y., ZHANG K., FENG M. (2023). Recent advances in solar-enhanced homogeneous water decontamination and disinfection: A review, Separation and Purification Technology, Vol. 325, Paper ID 124678.

https://doi.org/https://doi.org/10.1016/j.seppur.2023.124678

YADAV S., KHAN F., RATHORE K., VERMA S., MEHTA D. (2024). Household waste water treatment with the aid of activated charcoal, Larhyss Journal, No 60, pp. 133-150.

YE J., DELA E. (2023). The Effect of Green Investment and Green Financing on Sustainable Business Performance of Foreign Chemical Industries Operating in Indonesia: The Mediating Role of Corporate Social Responsibility, Sustainability, Vol. 15, Issue 14, Paper ID 11218.

https://doi.org/10.3390/su151411218

ZHOU Z., MA W., ZHONG D. (2024). The stress response mechanisms and resistance change of chlorine-resistant microbial community at multi-phase interface under residual antibiotics in drinking water distribution system, Journal of Cleaner Production, Vol. 438, Paper ID 140673.

https://doi.org/https://doi.org/10.1016/j.jclepro.2024.140673

ZIOUI D., BELLATRECHE R., TIGRINE Z., ABURIDEH H. (2015). Effect of some external parameters on fresh water quality and production by solar water distillation, Larhyss Journal, No 21, pp. 207-216.

ZUBIR M., DARMANA A., DAMANIK M., NASUTION H.I., SIREGAR U. (2020). Bleach Effectively in Removes The Stubborn Stains, Indonesian Journal of Chemical Science and Technology, Vol. 3, Issue 1, pp. 20–24.

https://doi.org/10.24114/ijcst.v3i1.18312.


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