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New Brighton: Advanced Oxidation Process Pilot and Final Design for 1,4-Dioxane Removal

机译:新布莱顿:高级氧化工艺试验和最终设计,用于去除1,4-二恶烷

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New Brighton's Water Treatment Plant 1 requires installation of additional water treatment equipment to remove 1,4-dioxane (dioxane) to comply with Minnesota's water quality standard. Elevated dioxane concentrations were discovered in 2014 and 2015 in the city's groundwater supply wells. A six-month pilot test was conducted using low-pressure UV/peroxide and ozone/peroxide, two advanced oxidation process (AOP) technologies. Testing was conducted in several distinct phases to evaluate: operating conditions and chemical doses required to treat current water to a dioxane removal target; operating conditions and chemical doses required to treat water with elevated dioxane levels to a dioxane removal target; the effect of changes in greensand filter effectiveness on AOP treatment; estimated GAC (granular activated carbon) breakthrough time for peroxide and chlorinated ethanes for catalytic and non-catalytic carbons; and reliability of AOP processes during long-term operation. Pilot testing indicated that both AOP systems remove dioxane to below 0.1 ppb and that AOP addition is not expected to affect existing GAC changeout frequency. In this application, the ozone/peroxide system was eliminated due to elevated bromate concentrations in the system effluent caused by the reaction of naturally occurring bromide and ozone. High levels of bromate in drinking water have been associated with elevated health risks. Following pilot testing, final design was completed in 2017. Construction is anticipated to be completed in summer 2018, with plant start-up slated for fall 2018.
机译:新布莱顿水处理厂1需要安装额外的水处理设备,以去除1,4-二恶烷(二恶烷),以符合明尼苏达州的水质标准。 2014年和2015年在该市的地下水供应井中发现了高的二恶烷浓度。使用低压UV /过氧化物和臭氧/过氧化物(两种先进的氧化工艺(AOP)技术)进行了为期六个月的中试测试。测试分几个阶段进行,以评估:处理当前水至二恶烷去除目标所需的操作条件和化学剂量;处理高二恶烷水平的水以达到二恶烷去除目标所需的操作条件和化学剂量;绿沙滤料效果变化对AOP处理的影响;估计过氧化氢和氯化乙烷对催化和非催化碳的GAC(颗粒活性炭)突破时间;长期运行过程中AOP过程的可靠性和可靠性。初步测试表明,两个AOP系统都将二恶烷的含量降至0.1 ppb以下,并且添加AOP不会影响现有的GAC更换频率。在本申请中,由于天然存在的溴化物和臭氧的反应导致系统排放物中的溴酸盐浓度升高,因此消除了臭氧/过氧化物系统。饮用水中溴酸盐含量高与健康风险增加有关。经过中试测试后,最终设计于2017年完成。建设预计将于2018年夏季完成,工厂计划于2018年秋季启动。

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