{"title":"利用管道内水力紫外线消毒技术对输水系统中的微生物水质进行创新管理:展望未来的水能系统。","authors":"Daniel Ma, Clarissa Belloni, Natalie M Hull","doi":"10.1080/09593330.2024.2375008","DOIUrl":null,"url":null,"abstract":"<p><p>Hydropower UV disinfection has not been explored as a possible alternative for off-grid disinfection. Hydropowered UV LED technology was developed using off-the-shelf UV-C LEDs and pico - and femto-scale hydro turbine generators and evaluated across point-of-use relevant flow rates. Commercially available UV LED flow through reactors were subjected to microorganism challenge testing with 3 power schemes: wall-plug, hydropower, and hydropower-charged battery. UV LEDs powered by hydropower-charged battery demonstrated similar disinfection as wall-plug powered UV LEDs, achieving 0.5-1.8 MS2 log<sub>10</sub> reduction at flow rates 0.5-2.3 L min<sup>-1</sup>, corresponding to reduction equivalent doses (RED) up to 16 or 30 mJ/cm<sup>2</sup> for 254 and 285 nm, respectively. With hydropowered UV LEDs alone, MS2 log<sub>10</sub> reduction decreased to <0.3 log<sub>10</sub> reduction due to an underperforming and grossly inefficient turbine, with RED of 8 or 18 mJ/cm<sup>2</sup> for 254 and 285 nm, respectively. Assessment of existing markets of UV disinfection systems and pico-hydro turbines demonstrated that hydropowered UV systems are already theoretically feasible for scales at point-of-entry (POE) and above. Economic feasibility will improve if turbines and/or UV system efficiencies improve. Prototype hydropower UV LED systems ranged from $145 to 220 depending on the UV LED reactor, and the battery system added $81. This study demonstrates the practicality of sustainable, renewable energy POU UV disinfection technology that can benefit decentralised, off-grid, rural and remote communities. The system may also scale up to provide renewable energy disinfection at larger scales, such as buildings and water distribution systems, for protecting human health in highly populated areas.</p>","PeriodicalId":12009,"journal":{"name":"Environmental Technology","volume":" ","pages":"1045-1061"},"PeriodicalIF":2.2000,"publicationDate":"2025-03-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Innovative microbial water quality management in water distribution systems using in-pipe hydropowered UV disinfection: envisioning futuristic water-energy systems.\",\"authors\":\"Daniel Ma, Clarissa Belloni, Natalie M Hull\",\"doi\":\"10.1080/09593330.2024.2375008\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Hydropower UV disinfection has not been explored as a possible alternative for off-grid disinfection. Hydropowered UV LED technology was developed using off-the-shelf UV-C LEDs and pico - and femto-scale hydro turbine generators and evaluated across point-of-use relevant flow rates. Commercially available UV LED flow through reactors were subjected to microorganism challenge testing with 3 power schemes: wall-plug, hydropower, and hydropower-charged battery. UV LEDs powered by hydropower-charged battery demonstrated similar disinfection as wall-plug powered UV LEDs, achieving 0.5-1.8 MS2 log<sub>10</sub> reduction at flow rates 0.5-2.3 L min<sup>-1</sup>, corresponding to reduction equivalent doses (RED) up to 16 or 30 mJ/cm<sup>2</sup> for 254 and 285 nm, respectively. With hydropowered UV LEDs alone, MS2 log<sub>10</sub> reduction decreased to <0.3 log<sub>10</sub> reduction due to an underperforming and grossly inefficient turbine, with RED of 8 or 18 mJ/cm<sup>2</sup> for 254 and 285 nm, respectively. Assessment of existing markets of UV disinfection systems and pico-hydro turbines demonstrated that hydropowered UV systems are already theoretically feasible for scales at point-of-entry (POE) and above. Economic feasibility will improve if turbines and/or UV system efficiencies improve. Prototype hydropower UV LED systems ranged from $145 to 220 depending on the UV LED reactor, and the battery system added $81. This study demonstrates the practicality of sustainable, renewable energy POU UV disinfection technology that can benefit decentralised, off-grid, rural and remote communities. 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引用次数: 0
摘要
水力紫外线消毒尚未作为离网消毒的一种可能替代方法进行探索。我们使用现成的紫外线-C LED 和微微级和微微级水轮发电机开发了水力紫外线 LED 技术,并对使用点的相关流速进行了评估。市售的紫外线 LED 直通反应器接受了微生物挑战测试,测试采用了 3 种供电方案:壁式插头、水力发电和水力充电电池。由水力发电电池供电的紫外线 LED 的消毒效果与壁插式紫外线 LED 相似,在流速为 0.5-2.3 升/分钟时,可实现 0.5-1.8 MS2 log10 的还原,对应的还原当量剂量 (RED) 为 16 或 30 mJ/cm2,波长分别为 254 和 285 nm。由于涡轮机性能不佳且效率极低,仅使用水力驱动的紫外线 LED,MS2 log10 减量降至 10,254 和 285 纳米的 RED 分别为 8 或 18 mJ/cm2。对现有紫外线消毒系统和微型水轮机市场的评估表明,对于入境点 (POE) 及以上的规模,水力紫外线系统在理论上是可行的。如果涡轮机和/或紫外线系统的效率提高,经济可行性也会提高。根据紫外线 LED 反应器的不同,原型水电紫外线 LED 系统的价格从 145 美元到 220 美元不等,而电池系统则增加了 81 美元。这项研究证明了可持续、可再生能源 POU 紫外线消毒技术的实用性,可造福于分散、离网、农村和偏远社区。该系统还可以扩大规模,在更大范围内提供可再生能源消毒,如建筑物和供水系统,以保护人口高度密集地区的人类健康。
Innovative microbial water quality management in water distribution systems using in-pipe hydropowered UV disinfection: envisioning futuristic water-energy systems.
Hydropower UV disinfection has not been explored as a possible alternative for off-grid disinfection. Hydropowered UV LED technology was developed using off-the-shelf UV-C LEDs and pico - and femto-scale hydro turbine generators and evaluated across point-of-use relevant flow rates. Commercially available UV LED flow through reactors were subjected to microorganism challenge testing with 3 power schemes: wall-plug, hydropower, and hydropower-charged battery. UV LEDs powered by hydropower-charged battery demonstrated similar disinfection as wall-plug powered UV LEDs, achieving 0.5-1.8 MS2 log10 reduction at flow rates 0.5-2.3 L min-1, corresponding to reduction equivalent doses (RED) up to 16 or 30 mJ/cm2 for 254 and 285 nm, respectively. With hydropowered UV LEDs alone, MS2 log10 reduction decreased to <0.3 log10 reduction due to an underperforming and grossly inefficient turbine, with RED of 8 or 18 mJ/cm2 for 254 and 285 nm, respectively. Assessment of existing markets of UV disinfection systems and pico-hydro turbines demonstrated that hydropowered UV systems are already theoretically feasible for scales at point-of-entry (POE) and above. Economic feasibility will improve if turbines and/or UV system efficiencies improve. Prototype hydropower UV LED systems ranged from $145 to 220 depending on the UV LED reactor, and the battery system added $81. This study demonstrates the practicality of sustainable, renewable energy POU UV disinfection technology that can benefit decentralised, off-grid, rural and remote communities. The system may also scale up to provide renewable energy disinfection at larger scales, such as buildings and water distribution systems, for protecting human health in highly populated areas.
期刊介绍:
Environmental Technology is a leading journal for the rapid publication of science and technology papers on a wide range of topics in applied environmental studies, from environmental engineering to environmental biotechnology, the circular economy, municipal and industrial wastewater management, drinking-water treatment, air- and water-pollution control, solid-waste management, industrial hygiene and associated technologies.
Environmental Technology is intended to provide rapid publication of new developments in environmental technology. The journal has an international readership with a broad scientific base. Contributions will be accepted from scientists and engineers in industry, government and universities. Accepted manuscripts are generally published within four months.
Please note that Environmental Technology does not publish any review papers unless for a specified special issue which is decided by the Editor. Please do submit your review papers to our sister journal Environmental Technology Reviews at http://www.tandfonline.com/toc/tetr20/current