Study on Characterization of SrO Aerosols Generated by Optimized Thermal Plasma Torch Aerosol Generator

IF 2 4区 环境科学与生态学 Q4 ENVIRONMENTAL SCIENCES
Amit Kumar, Sujatha Pavan Narayanam, Usha Pujala
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Abstract

Plasma Torch Aerosol Generation System (PTAGS) has been employed to generate nano aerosols with desirable characteristics. The operational parameters of PTAGS installed in the aerosol test facility have been optimized, and aerosols are generated using non-radioactive SrO2 powder. The current-voltage characteristics, electro-thermal efficiency and torch power are studied as a function of the flow rate of the plasma-generating gas (mixture of argon and nitrogen) and the arc current of the plasma torch. The relation of arc characteristics is determined using the Nottingham formulation. Based on this, torch parameters evolved and optimized as 20 kW power, 70% electro-thermal efficiency, 25 L min− 1 flow rate of plasma forming gas, 5 mg min− 1 powder feed rate and for 4–5 min torch operation towards the generation of SrO nano aerosols to achieve 1012 m− 3 and ~ 25 mg m− 3 for the count and mass concentration of aerosol respectively. The initial size distribution of the aerosols is in the few tens of nanometre range (10–40 nm) with a mean diameter of 26 nm (σg = 1.45). Scanning Electron Microscope and Energy dispersive X-ray analysis revealed that the morphology of nano aerosols was nearly spherical and the formation of SrO nanoparticles. A set of PTAGS operational parameters has been standardized to perform further experiments related to reactor safety analysis. PTAGS shall be tuned for aerosol generation in a large facility to achieve the characteristics equivalent to reactor accidental conditions.

优化热等离子炬气溶胶发生器生成SrO气溶胶的特性研究
等离子炬气溶胶生成系统(PTAGS)已被用于生成具有理想特性的纳米气溶胶。对安装在气溶胶试验设施中的PTAGS的操作参数进行了优化,并使用无放射性SrO2粉末产生气溶胶。研究了等离子体产生气体(氩气和氮气的混合物)流速和等离子体炬电弧电流对电-电压特性、电热效率和炬功率的影响。利用诺丁汉公式确定了电弧特性的关系。在此基础上,对制备SrO纳米气溶胶的炬炬参数进行了优化,功率为20 kW,电热效率为70%,等离子体形成气体流速为25 L,粉末进料速率为5 mg min - 1,炬炬运行4-5 min,可使气溶胶的计数和质量浓度分别达到1012 m - 3和~ 25 mg m - 3。气溶胶的初始粒径分布在几十纳米范围(10 ~ 40 nm),平均粒径为26 nm (σg = 1.45)。扫描电镜和能量色散x射线分析表明,纳米气溶胶的形貌接近球形,并形成了SrO纳米颗粒。一组PTAGS操作参数已经标准化,以便进行与反应堆安全分析相关的进一步实验。PTAGS应针对大型设施中的气溶胶产生进行调整,以达到与反应堆事故条件等效的特性。
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来源期刊
Aerosol Science and Engineering
Aerosol Science and Engineering Environmental Science-Pollution
CiteScore
3.00
自引率
7.10%
发文量
42
期刊介绍: ASE is an international journal that publishes high-quality papers, communications, and discussion that advance aerosol science and engineering. Acceptable article forms include original research papers, review articles, letters, commentaries, news and views, research highlights, editorials, correspondence, and new-direction columns. ASE emphasizes the application of aerosol technology to both environmental and technical issues, and it provides a platform not only for basic research but also for industrial interests. We encourage scientists and researchers to submit papers that will advance our knowledge of aerosols and highlight new approaches for aerosol studies and new technologies for pollution control. ASE promotes cutting-edge studies of aerosol science and state-of-art instrumentation, but it is not limited to academic topics and instead aims to bridge the gap between basic science and industrial applications.  ASE accepts papers covering a broad range of aerosol-related topics, including aerosol physical and chemical properties, composition, formation, transport and deposition, numerical simulation of air pollution incidents, chemical processes in the atmosphere, aerosol control technologies and industrial applications. In addition, ASE welcomes papers involving new and advanced methods and technologies that focus on aerosol pollution, sampling and analysis, including the invention and development of instrumentation, nanoparticle formation, nano technology, indoor and outdoor air quality monitoring, air pollution control, and air pollution remediation and feasibility assessments.
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