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Research and development on mechanism of removal of indoor volatile organic compounds by plants
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作者 LI Fangwei CUI Long +2 位作者 CHENG Yan XUE Yonggang HUANG Yu 《地球环境学报》 CSCD 2024年第4期583-595,共13页
Background,aim,and scope Owing to the rapid development of modernisation and urbanisation,living standards have gradually improved.However,the widespread use of high-energy-consuming indoor appliances and furniture ha... Background,aim,and scope Owing to the rapid development of modernisation and urbanisation,living standards have gradually improved.However,the widespread use of high-energy-consuming indoor appliances and furniture has made indoor environments a primary environmental problem affecting human health.Sick building syndrome(SBS)and building-related illness(BRI)have occurred,and indoor air conditions have been extensively studied.Common indoor pollutants include CO,CO_(2),volatile organic compounds(VOCs)(such as the formaldehyde and benzene series),NOx(NO and NO_(2)),and polycyclic aromatic hydrocarbons(PAHs).VOCs have replaced SO_(2)as the“The Fourteenth Five-Year Plan”urban air quality assessment new indicators.Indoor VOCs can cause diseases such as cataract,asthma,and lung cancer.To protect human health,researchers have proposed several indoor air purification technologies,including adsorption,filtration,electrostatic dust removal,ozonation,and plant purification.However,each technology has drawbacks,such as high operating costs,high energy consumption,and the generation of secondary waste or toxic substances.Plant degradation of VOCs as a bioremediation technology has the characteristics of low cost,high efficiency,and sustainability,thereby becoming a potential green solution for improving indoor air quality.This study introduces the research status and mechanism of plant removal of indoor VOCs and provides an experimental basis and scientific guidance for analysing the mechanism of plant degradation of pollutants.Materials and methods This study reviews studies on the harm caused by indoor pollutants to human health and related sources,mainly investigating the degradation of indoor formaldehyde,BTEX(benzene,toluene,ethylbenzene,and xylene)plant mechanisms,and research results.Results Plants can remove VOCs via stomatal and non-stomatal adsorption,interfoliar microbial,rhizosphere microbial,and growth media.Benzene,toluene,and xylene(BTX)are adsorbed by pores,hydroxylated into fumaric acid,and then removed into CO_(2)and H2O by TCA.Formaldehyde enters plant leaves through the stomata and epidermal waxy substances and is adsorbed.After the two steps of enzymatic oxidation,formic acid and CO_(2)are generated.Finally,it enters the Calvin cycle and removes glucose and other nontoxic compounds.Discussion The non-stomatal degradation of VOCs can be divided into adsorption by cuticular wax and active adsorption by plant surface microorganisms.The leaf epidermal waxy matter content and the lipid composition of the epidermal membrane covering the plant surface play important roles in the non-stomatal adsorption of indoor air pollutants.The leaf margin of a plant is an ecological environment containing various microbial communities.The endophytic and inoculated microbiota in plant buds and leaves can remove VOCs(formaldehyde and BTEX).Formaldehyde can be directly absorbed by plant leaves and converted into organic acids,sugars,CO_(2)and H2O by microbes.Bioremediation of indoor VOCs is usually inefficient,leading to plant toxicity or residual chemical substance volatilisation through leaves,followed by secondary pollution.Therefore,plants must be inoculated with microorganisms to improve the efficiency of plant degradation of VOCs.However,the effectiveness of interfoliar microbial removal remains largely unknown and several microorganisms are not culturable.Therefore,methods for collecting,identifying,and culturing microorganisms must be developed.As the leaf space is a relatively unstable environment,the degradation of VOCs by rhizosphere microorganisms is equally important,and formaldehyde is absorbed more by rhizosphere microorganisms at night.The inoculation of bacteria into the rhizosphere improves the efficiency of plants in degrading VOCs.However,most of these studies were conducted in simulation chambers.To ensure the authenticity of these conclusions,the ability of plants to remove indoor air pollutants must be further verified in real situations.Conclusions Plant purification is an economical,environment-friendly,and sustainable remediation technology.This review summarises the mechanisms of VOC plant degradation and presents its limitations.Simultaneously,it briefly puts forward a plant selection scheme according to different temperatures,light,and specific VOCs that can be absorbed to choose the appropriate plant species.However,some studies have denied the purification effect of plants and proposed that numerous plants are required to achieve indoor ventilation effects.Therefore,determining the ability of plants to remove indoor VOCs requires a combination of realistic and simulated scenarios.Recommendations and perspectives Plants and related microorganisms play an important role in improving indoor air quality,therefore,the effect of plants and the related microorganisms on improving indoor air quality must be studied further and the effect of plants on indoor VOCs will be the focus of future research. 展开更多
关键词 PLANTS VOCS removal mechanism indoor air purification MICROORGANISM
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余氯吸收的改进
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作者 徐开建 《化学教学》 CAS 北大核心 1996年第1期9-9,共1页
余氯吸收的改进江苏泰兴中学(225400)徐开建在实验室中,用二氧化锰和浓盐酸共热制取氯气时,常用浓氢氧化钠溶液来吸收余氯.当停止加热时,由于烧瓶内温度在反应后逐渐降低,会产生负压,往往使氢氧化钠溶液产生倒吸现象.如... 余氯吸收的改进江苏泰兴中学(225400)徐开建在实验室中,用二氧化锰和浓盐酸共热制取氯气时,常用浓氢氧化钠溶液来吸收余氯.当停止加热时,由于烧瓶内温度在反应后逐渐降低,会产生负压,往往使氢氧化钠溶液产生倒吸现象.如果改用在集气瓶塞上连接一U型管,内... 展开更多
关键词 活性炭 浓氢氧化钠溶液 江苏泰兴 第一次世界大战 玻璃丝 二氧化锰 浓盐酸 防毒面具 除去空气 滤毒罐
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An air cleaner for road tunnels
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作者 雷玉勇 《Journal of Chongqing University》 CAS 2003年第1期13-16,共4页
an air cleaner employing pulse induced plasma chemical process to remove dust and carbon monoxide (CO) in road tunnels is presented, which is composed of mainly a precipitator, a reactor, a flow control system, a powe... an air cleaner employing pulse induced plasma chemical process to remove dust and carbon monoxide (CO) in road tunnels is presented, which is composed of mainly a precipitator, a reactor, a flow control system, a power supply and a measurement system. Its performances are studied in simulated air conditions. It is found that the rate of dust removal is dependent on the voltage of the pulse power, the distance between the two dust collecting plates of the electrostatic precipitator, the effective length of the precipitator and the air flow rate in the precipitator, and that of CO removal is affected by the voltage and frequency of the super pulse power, the air flow rate in the reactor and the relative humidity of air. Applying such an cleaner of a proper design to the treatment of polluted air at a flow rate of 7 m/s can achieve the rate of dust removal up to 93 % and that of CO removal up to 72.6 %, which efficiently controls the concentrations of CO and dust under allowable limits. It is implied that the proposed air cleaner is a potential solution to air control in road tunnels, and is prominent for its performances and saving the huge cost of longitudinal ventilation tunnel or vertical vent and ventilation facilities. 展开更多
关键词 air pollution air pollution control dust removal road tunnel CO removal
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氩的发现
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作者 梁新民 《科学启蒙》 1997年第2期34-34,共1页
1882年,英国化学家瑞利为验证各种气体所含元素的原子量是否为氢原子量的整数倍,认真地做着各种有关的实验。 一天,奇怪的事情发生了,他发现用两种不同方法制得的氮气,其密度不相等。一种通过铜与氧气加热制得氧化铜,再用氧化铜氧化氨... 1882年,英国化学家瑞利为验证各种气体所含元素的原子量是否为氢原子量的整数倍,认真地做着各种有关的实验。 一天,奇怪的事情发生了,他发现用两种不同方法制得的氮气,其密度不相等。一种通过铜与氧气加热制得氧化铜,再用氧化铜氧化氨气得到氮气,经精确测量,所得氮气密度为1.2505克/升。另一种方法是把空气通入装有赤热铜粉的试管里除去氧气,再通过碱液与浓硫酸除去空气中的二氧化碳与水蒸汽,最后得到了氮气,其密度为1.2572克/升。两种方法得到的氮气密度相差0.0067克/升! 展开更多
关键词 氧化铜 氮气 氢原子量 气密度 浓硫酸 除去空气 认真地做 各种气体 稀有气体 英国化
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