|本期目录/Table of Contents|

[1]贾明云,李密密,周冬琴,等.南京5种园林植物对大气污染物的综合净化能力[J].江苏农业科学,2019,47(23):158-163.
 Jia Mingyun,et al.Comprehensive purification ability of five garden plants to atmospheric pollutants in Nanjing City[J].Jiangsu Agricultural Sciences,2019,47(23):158-163.
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南京5种园林植物对大气污染物的综合净化能力(PDF)
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《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第47卷
期数:
2019年第23期
页码:
158-163
栏目:
园艺与林学
出版日期:
2019-12-30

文章信息/Info

Title:
Comprehensive purification ability of five garden plants to atmospheric pollutants in Nanjing City
作者:
贾明云1 李密密1 周冬琴1 蒋逍逍2 于金平1
1.江苏省中国科学院植物研究所,江苏南京 210014; 2.南京农业大学园艺学院,江苏南京 210095
Author(s):
Jia Mingyunet al
关键词:
大气污染园林植物人工烟雾箱动力学叶片微形态净化能力
Keywords:
-
分类号:
X51;X173
DOI:
-
文献标志码:
A
摘要:
采用人工烟雾箱模拟熏气法实时监测5种园林植物雪松、女贞、广玉兰、石楠和桂花作用下大气污染物的浓度变化。结果表明,5种植物叶片单位面积对SO2、氮氧化物(NOx)和细颗粒物(PM2.5)的综合去除能力表现为广玉兰>雪松>女贞>桂花>石楠。动力学模型拟合结果表明,植物对大气中SO2和PM2.5的去除主要由叶表面吸附过程控制;而对NOx的去除则受植物叶片内的吸收转化过程影响。对叶片微形态结构的环境扫描电镜观察发现,表皮沟状组织、叶面密被绒毛有利于植物吸附SO2和PM2.5,而气孔大小和密度影响NOx的吸收和转化。
Abstract:
-

参考文献/References:

[1]国务院.国务院关于印发大气污染防治行动计划的通知:国发[2013]37号[EB/OL]. (2013-09-10)[2019-01-01]. http://www.gov.cn/zhengce/content/2013-09/13/content_4561.htm.
[2]Xu P,Chen Y,Ye X. Haze,air pollution,and health in China[J]. The Lancet,2013,382(9910):2067.
[3]杨新兴,冯丽华,尉鹏. 大气颗粒物PM2.5及其危害[J]. 前沿科学,2012,6(21):22-31.
[4]Burnett R T,Pope C A,Ezzati M,et al. An integrated risk function for estimating the global burden of disease attributable to ambient fine particulate matter exposure[J]. Environmental Health Perspectives,2014,122(4):397-403.
[5]陈伟光,黄芳芳,温小莹,等. 大气SO2和NO2污染及植物的抗性和净化能力研究进展[J]. 林业与环境科学,2017,33(4):123-129.
[6]Yin P,He G,Fan M,et al. Particulate air pollution and mortality in 38 of Chinas largest cities:time series analysis[J]. BMJ,2017,356:j667.
[7]Yang J,Zhang B. Air pollution and healthcare expenditure:implication for the benefit of air pollution control in China[J]. Environmental International,2018,120:443-455.
[8]夏冰,马晓. 郑州市绿化植物滞尘效应及其生理特征响应[J]. 江苏农业科学. 2017,45(6):127-131.
[9]Jin S J,Guo J K,Wheeler S,et al. Evaluation of impacts of trees on PM2.5 dispersion in urban streets[J]. Atmospheric Environment,2014,99:277-287.
[10]Hu Y T,Zhao P,Niu J F,et al. Canopy stomatal uptake of NOx,SO2 and O3 by mature urban plantations based on sap flow measurement[J]. Atmospheric Environment,2016,125:165-177.
[11]贺勇,李磊,李俊毅,等. 北方30种景观树种净化空气效益分析[J]. 东北林业大学,2010,38(5):37-39.
[12]Jim C Y,Chen W Y. Assessing the ecosystem service of air pollutant removal by urban trees in Guangzhou(China)[J]. Journal of Environrnental Management,2008,88(4):665-676.
[13]潘文,张伟强,张方秋,等. 广州市园林绿化植物苗木对二氧化硫和二氧化氮吸收能力分析[J]. 生态环境学报,2012,21(4):606-612.
[14]Rai P K P,Panda L L S. Dust capturing potential and air pollution tolerance index (APTI) of some road side tree vegetation in Aizawl,Mizoranm,India:an Indo-Burma hot spot region[J]. Air Quality,Atmosphere & Health,2014,7(1):93-101.
[15]张鹏骞,注明淏,刘艳菊,等. 北京路边9种植物叶片表面微结构及其滞尘潜力研究[J]. 生态环境学报,2017,26(12):2126-2133.
[16]郭伟,申屠雅瑾,郑述强,等. 城市绿地滞尘作用机理和规律的研究进展[J]. 生态环境学报,2010,19(6):1465-1470.
[17]李德生,孙旭红,李荣花,等. 经济树种苗木对二氧化硫和二氧化氮的抗性分析[J]. 天津理工大学学报,2007,23(1):44-46.
[18]宋岚,谢明杰. 三种观叶植物吸收甲醛效果的研究[J]. 安徽农学通报,2010,16(1):65-67.
[19]Foo K Y,Hameed B H. Utilization of oil palm biodiesel solid residue as renewable sources for preparation of granular actibated carbon by microwave induced KOH activation[J]. Bioresource Technology,2013,130:696-702.
[20]Jia M Y,Wang F,Bian Y R,et al. Sorption of sulfamethazine to biochars as affected by dissolved organic matters of different origin[J]. Bioresource Technology,2018,248:36-43.
[21]Ho Y S. Review of second-order models for adsorption systems[J]. Journal of Hazardous Materials 2006,136(3):681-689.
[22]Morikawa H,Takahashi M,Sakamoto A,et al. Novel metabolism of nitrogen in plants[J]. Z Naturforsch C J Biosci,2005,60(3/4):265-271.
[23]Lea P J,Leeood R C. Plant Biochemistry and molecular biology[M]. 2nd ed. Chichester:John Wiley & Sons,1993.
[24]王江,杜茜,李慧溪. 城市绿化植物滞尘效应研究综述[J]. 现代园艺,2016,12:134-136.
[25]骆永明,查宏光,宋静,等. 大气污染的植物修复[J]. 土壤,2002,3:113-119.
[26]王蕾,高尚玉,刘连友,等. 北京市11种园林植物滞留大气颗粒物能力研究[J]. 应用生态学报,2006,17(4):597-601.
[27]房瑶瑶. 森林调控空气颗粒物功能及其与叶片微观结构关系的研究——以陕西省关中地区森林为例[D]. 北京:中国林业科学研究院,2015.
[28]Heber A,Hüve K. Action of SO2 on plants and metabolic detoxification of SO2[J]. International Review of Cytoloty,1997,177:255-286.
[29]宋彬,王得祥,张义,等. 13种园林树种叶片解剖结构与其二氧化硫吸收能力的关系[J]. 西北植物学报,2015,35(6):1206-1214.
[30]王勋陵,王静. 植物形态结构与环境[M]. 兰州:兰州大学出版社,1989:105-138.

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备注/Memo

备注/Memo:
收稿日期:2019-06-04
基金项目:江苏省住房和城乡建设厅项目(编号:SJC2016010002);南京市园林局项目(编号:20140401);南京市绿化园林局项目(编号:YLKJ201705JH)。
作者简介:贾明云(1985—),女,河南南阳人,博士,助理研究员,主要研究方向为环境污染与控制技术。E-mail:jmy27@163.com。
通信作者,于金平,硕士,高级实验师,主要研究方向为大气污染与植物修复。E-mail:yujinping@cnbg.net。
更新日期/Last Update: 2019-12-05