chloramine Archives - Water Research Australia https://www.waterra.com.au/topic/chloramine/ National leader in water solutions through collaboration and high impact research Sun, 04 Dec 2022 23:52:30 +0000 en-AU hourly 1 https://wordpress.org/?v=6.1.1 https://www.waterra.com.au/wp-content/uploads/2022/05/cropped-waterRA-favicon-1-32x32.png chloramine Archives - Water Research Australia https://www.waterra.com.au/topic/chloramine/ 32 32 Chloramine speciation in drinking waters: impacts on disinfection by-product formation https://www.waterra.com.au/project/chloramine-speciation-in-drinking-waters-impacts-on-disinfection-by-product-formation/ Sun, 04 Dec 2022 23:52:30 +0000 https://www.waterra.com.au/?post_type=ts-portfolio&p=10869 This project developed analytical methods to study the speciation of inorganic and organic chloramines...

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Project Description

This project developed analytical methods to study the speciation of inorganic and organic chloramines.

PhD Thesis completed by Zuo Tong How in June 2016.

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Transformation chemistry of EDCS/PPCPS resulting from the disinfection of drinking water https://www.waterra.com.au/project/transformation-chemistry-of-edcs-ppcps-resulting-from-the-disinfection-of-drinking-water/ Tue, 30 Aug 2022 03:09:21 +0000 https://43.250.142.120/~waterrac/?post_type=ts-portfolio&p=9213 This project proposes to use novel concepts in computational chemistry to predict the likely transformation products (TP) of relevant EDCs/PPCPs with a range of disinfection and oxidation options (such as chlorine, chloramines and chlorine dioxide) commonly used in the production of drinking water, and to apply comprehensive in vitro toxicity testing to determine their likely toxicity profile...

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Project Description

This project proposes to use novel concepts in computational chemistry to predict the likely transformation products (TP) of relevant EDCs/PPCPs with a range of disinfection and oxidation options (such as chlorine, chloramines and chlorine dioxide) commonly used in the production of drinking water, and to apply comprehensive in vitro toxicity testing to determine their likely toxicity profile.

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Identifying and quantifying the outcomes of disinfection by-product research: Impacts on the Australian and international water industry https://www.waterra.com.au/project/identifying-and-quantifying-the-outcomes-of-disinfection-by-product-research-impacts-on-the-australian-and-international-water-industry/ Tue, 23 Aug 2022 00:43:53 +0000 https://43.250.142.120/~waterrac/?post_type=ts-portfolio&p=8900 Disinfection is essential for removing harmful microbial pathogens and making safe drinking water but can also cause formation of disinfection by-products (DBPs), some of which pose a health risk...

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Project Description

Disinfection is essential for removing harmful microbial pathogens and making safe drinking water but can also cause formation of disinfection by-products (DBPs), some of which pose a health risk. Thirty years of research have amassed a wealth of knowledge about the identification, formation, treatment and control, toxicology and epidemiology of DBPs in Australia. This project compiled, assessed and presented an overview of DBP-related research in Australia.

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Develop evidence-based approaches to monitor and manage chlorine & chloramine residuals https://www.waterra.com.au/project/develop-evidence-based-approaches-to-monitor-and-manage-chlorine-chloramine-residuals/ Mon, 22 Aug 2022 06:04:56 +0000 https://43.250.142.120/~waterrac/?post_type=ts-portfolio&p=9017 Microscopic pathogens in drinking water pose a risk to public health...

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Project Description

Microscopic pathogens in drinking water pose a risk to public health. In Australia, chlorine or chloramine are used to inactivate these pathogens, to disinfect drinking water and prevent widespread outbreaks of debilitating illness in large populations. Although largely successful, problems arise when drinking water is contaminated by pathogens after being disinfected in the treatment plant but before reaching the customer. A variety of situations cause this, one being small pipe leaks which become a route for soil micro-organisms to get into drinking water. To prevent pathogen contamination in pipe networks, higher levels of disinfectants can be added at the treatment plant, or secondary disinfection can be administered in the pipe network. This research project produced a guidance manual which explains how to maintain and monitor effective disinfection levels in post-treatment pipelines, and the major challenges to maintaining effective disinfection.

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Characterisation of DBP formation for water quality management – Stage 1 https://www.waterra.com.au/project/characterisation-of-dbp-formation-for-water-quality-management-stage-1/ Mon, 22 Aug 2022 04:01:48 +0000 https://43.250.142.120/~waterrac/?post_type=ts-portfolio&p=8997 Source waters are disinfected to remove harmful pathogens, but chlorine reacts with organic matter and bromides to form disinfection by-products (DBPs) which can affect health...

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Project Description

Source waters are disinfected to remove harmful pathogens, but chlorine reacts with organic matter and bromides to form disinfection by-products (DBPs) which can affect health. Water treatment reduces DBPs to safe levels by using alum to remove organic matter before disinfection but some water sources, particularly those with high bromine levels, are still difficult to treat. This research aimed to compile the best protocols for alum coagulation and disinfection when source waters contain different levels of organic matter and bromides, and to relate these to health risks. When organic matter was removed with 125 mg/L alum, and this treated source water was disinfected twice, and the first dose was calculated to generate chlorine levels of 0.5 mg / L for two days before administering the second dose, then DBP levels in drinking water were minimised. Neither alum-treated nor disinfected water caused toxicity in two laboratory tests used to examine risks to health.

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Nitrosamines, including N-nitrosodimethylamine (NDMA), and other nitrogenous disinfection by-products in Australian drinking waters https://www.waterra.com.au/project/nitrosamines-including-n-nitrosodimethylamine-ndma-and-other-nitrogenous-disinfection-by-products-in-australian-drinking-waters/ Mon, 22 Aug 2022 03:52:09 +0000 https://43.250.142.120/~waterrac/?post_type=ts-portfolio&p=8995 Components of dissolved organic matter (DOM) and dissolved organic nitrogen (DON) in source waters can react with disinfecting chlorine or chloramine to form nitrogenous disinfection byproducts (n-DBPs) which might be toxic and hazardous to health...

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Project Description

Components of dissolved organic matter (DOM) and dissolved organic nitrogen (DON) in source waters can react with disinfecting chlorine or chloramine to form nitrogenous disinfection byproducts (n-DBPs) which might be toxic and hazardous to health. In this research, water samples were collected from nine water treatment plants and found to contain 28 n-DBPs. Total n-DBP formation, and particularly brominated n-DBP formation, was affected more by the levels of bromine in raw water than the different forms of nitrogen, and this led to the recommendation that it could be beneficial to monitor raw waters with high bromine concentrations. Although chloramination caused formation of more n-DBPs than chlorination, coagulation treatment decreased total DBP levels. Further research was recommended to characterise the toxicity of n-DBPs and to optimise the removal of DOM, DON and other n-DBP precursors by using GAC Acticarb in the treatment train.

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Optimum control of chloramine in water distribution systems https://www.waterra.com.au/project/optimum-control-of-chloramine-in-water-distribution-systems/ Mon, 22 Aug 2022 02:26:11 +0000 https://43.250.142.120/~waterrac/?post_type=ts-portfolio&p=8985 Chlorine removes harmful pathogens from water but has the disadvantage of forming disinfection by-products (DBPs) by reacting with organic matter sometimes found in water...

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Project Description

Chlorine removes harmful pathogens from water but has the disadvantage of forming disinfection by-products (DBPs) by reacting with organic matter sometimes found in water. Chloramine also disinfects, is less likely to form DBPs and is more stable, so remains active in for longer in the pipelines which distribute drinking water from the plant to the tap. The problem is that it is difficult to predict exactly how much chloramine to add; it needs to be enough to maintain disinfecting activity in the pipeline distribution system, but not so much that customers find the smell of chlorine in tap water unpleasant. Traditionally, the chemical reaction rate has been used to predict the gradual ‘decay’ of chloramine in pipelines, but this is inaccurate. This research developed a computer software statistical programme that uses ‘artificial neural network’ concepts and operations to predict the longevity of chloramine residuals in water distribution systems. This is more accurate than traditional methods.

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