Suppr超能文献

基于深紫外发光二极管和多通道几何反应器的净水系统的设计与实现。

Design and implementation of water purification system based on deep ultraviolet light emitting diodes and a multi-pass geometry reactor.

机构信息

Department of Electronics and Telecommunication Engineering, Indian Institute of Engineering Science and Technology, Shibpur, Howrah 711103, India.

Centre for Research in Nanoscience and Nanotechnology, University of Calcutta, Kolkata 700106, India.

出版信息

J Water Health. 2020 Jun;18(3):306-313. doi: 10.2166/wh.2020.008.

Abstract

A novel reactor was designed and implemented for water purification using deep ultraviolet light emitting diodes (LEDs). The focus was on minimizing the number of LEDs required for effective germicidal action. Simulation studies were carried out on the flow of water as well as the irradiance of UV. Variation was made in the beam divergence of the UV sources and reflectivity of optical coatings used for photon recycling. Based on optimized reactor designs, water purification was carried out both in the static and flow-through configuration. Water from various sources was spiked with a known bacterial strain, exposure studies were carried out and germicidal effect was determined. Our results indicate that under optimal design, a 3 mL volume of water shows a three order inactivation using a single UV-LED in a static reactor in 180 s. For a flow-through geometry, only three LEDs were used in the reactor implementation, and a multi-pass procedure was used to purify 150 mL of water from an Escherichia coli CFU count of 4.3 × 10/mL to 12/mL. While slow, this process requires less than 2 W, and can be powered from rechargeable sources. Faster processes can be implanted using multiple such reactor units in parallel, and can be optimized to the requirement and power levels.

摘要

设计并实现了一种使用深紫外发光二极管(LED)进行水净化的新型反应器。重点是尽量减少有效杀菌所需的 LED 数量。对水流和紫外线辐照度进行了模拟研究。改变了紫外线光源的光束发散度和光回收用光学涂层的反射率。基于优化的反应器设计,在静态和流动两种配置下进行了水净化实验。将来自各种来源的水与已知的细菌菌株混合,进行暴露研究并确定杀菌效果。我们的结果表明,在最佳设计下,在 180 秒内,单个 UV-LED 在静态反应器中可对 3 mL 体积的水进行三级灭活。对于流动几何形状,仅在反应器中使用三个 LED,并使用多通程序从大肠杆菌 CFU 计数为 4.3×10/ml 的 150ml 水中净化至 12/ml。虽然速度较慢,但该过程所需功率小于 2 W,并且可以由可充电电源供电。使用多个此类反应器单元并行实现更快的过程,并根据要求和功率水平进行优化。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验