Investigation of the Effect of Aerosol Deposition by Applying Electrostatic Fields

G. S. N. V. K. S. N. S. Undi, Rohit Kantikar
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Abstract

Particulate matter (PM) constitutes a significant risk factor for environmental health regarding ambient air quality. An epidemiological investigation has determined that inadequate air quality is associated with the development of lung and cardiovascular diseases, chronic ailments, respiratory infections, and a significant number of fatalities on a global scale. According to the World Health Organization (WHO), the annual mortality rate due to air pollution is around 7 million individuals. The necessity for researching air quality, climate change, and the challenges posed by particulate matter (PM) is widely recognized. While reducing ambient air quality, it is essential to consider the limitations of current technical control methods. This article focuses on developing and implementing advanced technology to mitigate particle pollution in urban environments. The comparison of empirical data and computational simulations has demonstrated the efficacy of utilizing pulsed radio waves to reduce particulate matter. The control technique exhibits a threefold increase in the rate of PM concentration reduction compared to gravity settling. The approach's efficacy was evaluated through controlled trials conducted in controlled chambers and urban environments, demonstrating up to 50% reductions. The validation of the implemented test case results of the control technology was performed using historical data while considering the existence of radio waves. The coagulation process demonstrated and verified the effectiveness of reducing particle matter. The employed methodology has been shown to encourage outcomes concerning mitigating particulate matter contamination within urban and industrial environments.
通过施加静电场研究气溶胶沉积的影响
颗粒物(PM)是影响环境空气质量的一个重要环境健康风险因素。流行病学调查表明,空气质量不达标与肺部和心血管疾病、慢性病、呼吸道感染以及全球范围内大量死亡事故的发生有关。据世界卫生组织(WHO)统计,每年因空气污染造成的死亡率约为 700 万人。研究空气质量、气候变化和颗粒物(PM)带来的挑战的必要性已得到广泛认可。在降低环境空气质量的同时,必须考虑当前技术控制方法的局限性。这篇文章的重点是开发和实施先进技术,以减轻城市环境中的颗粒物污染。通过对经验数据和计算模拟的比较,证明了利用脉冲无线电波减少颗粒物的功效。与重力沉降相比,该控制技术的可吸入颗粒物浓度降低率提高了三倍。通过在受控室和城市环境中进行的受控试验,对该方法的功效进行了评估,结果表明可减少 50%的颗粒物。考虑到无线电波的存在,利用历史数据对控制技术的实施测试结果进行了验证。混凝过程证明并验证了减少颗粒物质的有效性。事实证明,所采用的方法能有效减轻城市和工业环境中的颗粒物污染。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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