吸附剂对甲醛的吸附性能及热处理再生的评价。

IF 2.1 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL Journal of the Air & Waste Management Association Pub Date : 2024-02-01 Epub Date: 2024-01-30 DOI:10.1080/10962247.2023.2292205
Seri Park, Jeong-In Lee, Choon-Ki Na, Daegi Kim, Jae-Jin Kim, Do-Yong Kim
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引用次数: 0

摘要

室内空气污染仍然是一个主要问题,甲醛(HCHO)是主要污染源,因为它的排放周期长,并有相关的健康风险,包括皮肤过敏、咳嗽和支气管炎。本研究评估了不同吸附剂(生物炭、活性炭、沸石A、X和Y)去除HCHO的吸附性能和经济效益。并对热处理对吸附剂再生的影响进行了评价。实验装置由吸附柱和HCHO浓度计和电化学传感器组成,用于吸附分析。沸石X的吸附性能最好,其次是沸石A、沸石Y、活性炭和生物炭。随着吸附柱长度/直径(L/D)比的增加,所有吸附剂的HCHO去除率均有所提高。沸石A的经济效益最高,其次是沸石X、活性炭、沸石Y和生物炭。更高的L/D比提高了经济效率,延长了更换周期(更换吸附剂以保持高吸附性能的最佳时机)。在不同的热处理条件(150、120和80°C)和持续时间(60、45和30分钟)下,吸附剂再生的敏感性分析显示,吸附效率的变化很小(±3%)。结果表明,在节能热处理条件下(80℃,30 min)吸附剂再生的潜力。综上所述,本研究强调了综合考虑吸附性能、更换周期、经济效率和再生性能等因素来选择最佳吸附和去除HCHO吸附剂的重要性。本研究强调了吸附技术对去除甲醛和类似挥发性有机化合物(VOCs)的重要性,强调了替代吸附剂的潜力,如环保生物炭,除了传统的策略,如活性炭和沸石。我们的研究结果证明了吸附剂在节能热处理条件下再生的可行性。这些结果有望改善室内空气质量,减少环境污染物,并增强对细尘和挥发性有机化合物等空气污染物的反应。
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Evaluation of the adsorption performance and thermal treatment-associated regeneration of adsorbents for formaldehyde removal.

Indoor air pollution remains a major concern, with formaldehyde (HCHO) a primary contributor due to its long emission period and associated health risks, including skin allergies, coughing, and bronchitis. This study evaluated the adsorption performance and economic efficiency of various adsorbents (biochar, activated carbon, zeolites A, X, and Y) selected for HCHO removal. The impact of thermal treatment on adsorbent regeneration was also assessed. The experimental apparatus featured an adsorption column and HCHO concentration meter with an electrochemical sensor designed for adsorption analysis. Zeolite X exhibited the highest adsorption performance, followed by zeolite A, zeolite Y, activated carbon, and biochar. All adsorbents displayed increased HCHO removal rates with an extended length/diameter (L/D) ratio of the adsorption column. Zeolite A demonstrated the highest economic efficiency, followed by zeolite X, activated carbon, zeolite Y, and biochar. Higher L/D ratios improved economic efficiency and prolonged the replacement cycle (the optimal timing for adsorbent replacement to maintain high adsorption performance). Sensitivity analysis of adsorbent regeneration under varying thermal treatment conditions (150, 120, and 80°C) and durations (60, 45, and 30 min) revealed minimal changes in adsorption efficiency (±3%). The results indicated the potential of adsorbent regeneration under energy-efficient thermal treatment conditions (80°C, 30 min). In conclusion, this study underscores the importance of a comprehensive assessment, considering factors such as adsorption performance, replacement cycle, economic efficiency, and regeneration performance for the selection of optimal adsorbents for HCHO adsorption and removal.Implications: This study underscores the importance of adsorption technology for the removal of formaldehyde and similar volatile organic compounds (VOCs), highlighting the potential of alternative adsorbents, such as environmentally friendly biochar, in addition to traditional strategies, such as activated carbon and zeolites. Our findings demonstrate the feasibility of adsorbent regeneration under energy-efficient thermal treatment conditions. These results hold promise for improving indoor air quality, reducing environmental pollutants, and enhancing responses to air contaminants like fine dust and VOCs.

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来源期刊
Journal of the Air & Waste Management Association
Journal of the Air & Waste Management Association ENGINEERING, ENVIRONMENTAL-ENVIRONMENTAL SCIENCES
CiteScore
5.00
自引率
3.70%
发文量
95
审稿时长
3 months
期刊介绍: The Journal of the Air & Waste Management Association (J&AWMA) is one of the oldest continuously published, peer-reviewed, technical environmental journals in the world. First published in 1951 under the name Air Repair, J&AWMA is intended to serve those occupationally involved in air pollution control and waste management through the publication of timely and reliable information.
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