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1.
太原市污灌区地表土中有机氯农药分布特征   总被引:2,自引:0,他引:2  
为了研究太原市污灌区地表土中有机氯农药(OCPs)分布特征,本文在太原小店区共采集了31个地表土样,应用气相色谱-电子捕获检测器(GC-ECD)检测土壤中OCPs的含量.结果表明,研究区地表土中OCPs污染较轻,总OCPs浓度范围为2.01—47.20 ng.g-1(平均值为16.76 ng.g-1).其中总滴滴涕(∑DDT)浓度范围为0.27—37.93 ng.g-1(平均值为8.38 ng.g-1),总六六六(∑HCH)浓度范围为0.18—11.89 ng.g-1(平均值为3.37 ng.g-1),最高浓度均没有超过《土壤环境质量标准》(GB15618—1995)中的Ⅱ级标准(农业土地).不同灌溉区OCPs浓度平均值顺序为:污灌区>清灌区>背景点,表明污水回灌对OCPs浓度分布具有一定的影响,同时通过比较各采样点中OCPs各异构体的组成发现,该区域HCHs、DDTs和硫丹农药主要来自于历史残留,部分区域曾使用林丹和三氯杀螨醇农药.对比各有机氯农药浓度地理分布特征,表明OCPs浓度分布与污水灌溉存在一定的联系.  相似文献   

2.
北京市大气沉降样品中PCDD/Fs的测定   总被引:1,自引:0,他引:1  
利用高分辨率气质联用测定北京市大气沉降样品中的二噁英(PCDD/Fs).结果显示,5个样品的总浓度为332-3950 pg·g-1和6.9-85 pgTEQ·g-1.降雪样品浓度高于其它样品,且不同采样点样品呈现不同的分布特征.2,3,4,7,8-PeCDF是主要的TEQ组分.大部分样品同族体浓度以PeCDFs最高,其次是OCDD.∑PCDDs<∑PCDFs,二者之比为0.25-0.56.PCDD/Fs沉降通量为121 pg TEQ·m-2·month-1.北京背景土壤PCDD/Fs组成与大气沉降极为相似.  相似文献   

3.
应用同位素稀释-高分辨气相色谱/高分辨质谱(HRGC/HRMS)法分析了喜马拉雅山区海拔5000 m以上的葇籽草和棘豆样品中多氯联苯(PCBs)、多溴联苯醚(PBDEs)和二噁英(PCDD/Fs)的含量.这两种植物样品中污染物含量与世界其它偏远地区的水平基本保持一致.其中PCBs的总含量在1.94—3.62 ng.g-1干重(dw)范围内,平均值为2.60 ng.g-1dw;PCB-28和PCB-52的浓度明显较高,约占7种指示性PCBs总量的90%以上.14种PBDEs的总浓度在83.3—142 pg.g-1dw之间,平均值为116 pg.g-1dw;除BDE-85、-138、-154,以及高溴代的BDE-190和BDE-209未检出外,其它9种单体均有不同程度的检出,且以低溴代的BDE-28为主,含量占45%以上.样品中PCDD/Fs基本上未检出.由于样品采集点位于喜马拉雅山人迹罕至的珠穆朗玛峰北坡地区,周围并无工业污染源,因此植物样品中PCBs及PBDEs可能是污染物发生大气长距离传输和生物富集的结果.  相似文献   

4.
通过考察层析柱对测定短链氯化石蜡(SCCPs)干扰物去除效果的影响,结合实际土壤样品的净化需求,建立了一套适合分析土壤中SCCPs的前处理方法.土壤样品使用索氏抽提,采用硅胶复合柱和弗罗里硅土柱净化,运用气相色谱-质谱(ECNI源)检测SCCPs.SCCPs的仪器定量限为100—600 pg.μL-1.空白加标和基质加标中SCCPs的回收率分别为130%±8.50%和108%±17.8%(SD,n=3).利用该方法分析了采自广州市郊区的6个土壤样品,其SCCPs的含量范围为12.9—34.5 ng.g-1,平均值为26.1 ng.g-1.  相似文献   

5.
初步研究了四川省卧龙地区5个不同海拔高度的表层土壤和2个牦牛样品中二噁英/呋喃(PCDD/Fs)、共平面多氯联苯(co-PCBs)和多氯萘(PCNs)的分布特征、来源、毒性当量以及生态风险状况.土壤样品中总2,3,7,8-PCDD/Fs的含量范围为2.48-4.30 pg·g-1dw,平均3.50 pg·g-1dw,最高含量在海拔3927 m的塘房.co-PCBs的总含量平均为9.14 pg·g-1dw,最高值在海拔4487 m的垭口.总2,3,7,8-PC-DD/Fs和总co-PCBs含量随海拔高度的变化表现出正相关关系.不同海拔高度土壤中的PCDD/Fs和co-PCBs异构体的分布相似,表明具有相同的来源.总PCNs与海拔梯度呈负相关关系,最高含量出现在海拔3345 m的贝母坪,平均21.4 pg·g-1dw,主要以3.氯为主.土壤中PcDD/Fs毒性当量浓度范围为0.29-0.43pg TEQ·g-1dw.牦牛肉和牦牛组织中PcDD,/Fs总浓度分别为27.5和23.6 pg·g-1脂肪,毒性当量浓度为4.04和4.07 pg TEQ·g-1脂肪.结果表明,牦牛中的PCDD/Fg,co-PcBs和PCNs不大可能对卧龙地区人群导致严重的负面效应.  相似文献   

6.
采用气相色谱质谱法测定了太湖沉积物柱状样品中有机氯农药(OCPs)含量,探讨了沉积柱中有机氯农药的垂直变化特征及可能的来源.研究结果表明:沉积柱中OCPs浓度为0.88—4.73 ng·g-1(干重),平均值为2.17 ng·g-1;DDTs、HCHs、六氯苯的残留量均较高,其中DDTs为0.10—1.32 ng·g-1,平均值为0.57 ng·g-1;HCHs的浓度为0.25—1.99 ng·g-1,平均值为0.65 ng·g-1;六氯苯为0.50—1.35 ng·g-1,平均值为0.92 ng·g-1.3个湖湾的沉积柱表层DDTs含量最高,有明显的表面富集现象,成分分析表明,太湖可能着存在着DDTs类物质的输入.  相似文献   

7.
采用气相色谱-质谱联机方法(GC-MS)分析了东北某钢铁厂及周边居住区、风景区共11个采样点表层土壤样品16种多环芳烃(PAHs),结果表明,钢铁工业区16种PAHs(∑PAHs)浓度范围为3.39×103—1.54×105ng·g-1,平均浓度3.21×104ng·g-1;居住区∑PAHs浓度范围为587—6.70×103ng·g-1,平均浓度3.82×103ng·g-1;风景区千山∑PAHs浓度385 ng·g-1.∑PAHs和Bap浓度均呈工业区>居住区>风景区趋势.与国内外其他研究结果相比,该钢铁工业区及其周边居住区土壤PAHs污染相对较为严重,11个采样点中有9个采样点土壤∑PAHs为严重污染,4个采样点苯并(a)芘(Bap)浓度超过加拿大土壤质量基准.利用特征比值法(Diagnostic Rate)和主成分分析法(Principal component analysis,PCA)对钢铁工业区及其周边地区土壤进行了源解析,结果表明,钢铁工业区土壤中PAHs主要来源于焦炉、燃煤、柴油燃烧等污染源,周边地区土壤除受工业污染源排放影响外,机动车汽油、柴油污染排放也有重要影响.  相似文献   

8.
天津市土壤多环芳烃污染特征、源解析和生态风险评价   总被引:6,自引:0,他引:6  
采用气相色谱-质谱联机方法(GC-MS)分析了天津市不同功能区10个采样点表层土壤样品中16种多环芳烃(PAHs)的浓度,并对其污染特征、来源和生态风险进行了分析.结果表明:天津市土壤中16种多环芳烃的总浓度(∑PAHs)范围为142—1.49×103ng·g-1,平均浓度765 ng·g-1,Bap浓度范围7.06—118 ng·g-1,平均值37.6 ng·g-1.∑PAHs浓度均值呈工业区近郊区城区远郊区趋势.采用PAHs成分谱、污染物的特征比值和主成分分析的污染来源解析结果表明:工业区PAHs主要来源于焦化、煤和天然气的燃烧,以及机动车的污染排放;城区和郊区土壤中PAHs除来自于煤和焦炭的燃烧外,机动车污染是一个非常重要的污染源.根据荷兰土壤质量标准,所有采样点均有PAHs单体超标,其中西青、津南、北辰、汉沽、塘沽和大港采样点超过荷兰土壤标准规定的10种多环芳烃的苯并(a)芘(Bap)毒性当量浓度(TEQ Bap10)限值33 ng·g-1,说明天津近郊区和工业区土壤已受到PAHs的污染,存在潜在的生态风险.  相似文献   

9.
在北京城区四环以内采集了33个冬季道路沉积物样品,分析其中多环芳烃(PAHs)的含量、分布特征、来源和生态风险.结果表明,16种多环芳烃(PAHs)∑16PAHs的浓度范围为931.0—2668.7 ng·g~(-1)干重,平均浓度为1602.4 ng·g~(-1)干重,污染物的组成以4环和3环PAHs为主.通过LMW/HMW(低分子量与高分子量PAHs的比值)法、特征比值法和主成分分析法得出,道路沉积物中PAHs主要来自于煤、化石燃料的燃烧以及交通尾气的排放.由TEQBa P分析结果可知,33个采样点PAHs的∑16TEQBa P范围为58.2—324.4 ng·g-1干重,平均值为139.3 ng·g~(-1)干重;所有采样点的∑10TEQBa P范围为33.1—266.8 ng·g~(-1)干重,平均值为95.0 ng·g-1干重,均超过荷兰土壤的目标参考值,说明北京市冬季道路沉积物中PAHs存在潜在的生态风险;其中7种致癌性PAHs(Ba A、Chr、Bb F、Bk F、Ba P、IPY和DBA)的TEQBa P占∑16TEQBa P的96.1%—99.3%,平均值为98.5%,是∑16TEQBa P的主要贡献者,并且Ba P的贡献率最大.  相似文献   

10.
兰州周边地区土壤典型有机氯农药残留及生态风险   总被引:3,自引:0,他引:3  
应用Agilent 7890-5975C GC-MSD对兰州及其周边地区16个表层土壤样品中HCHs和DDTs残留水平进行分析,并对兰州周边地区土壤中OCPs的可能来源和生态风险进行了初步研究.结果表明,研究区土壤中HCHs残留范围为8.22×10-2—4.49 ng.g-1,平均值为6.85×10-1ng.g-1;DDTs残留范围为1.41×10-1—120 ng.g-1,平均值为16.9 ng.g-1;DDTs残留较HCHs占优势,约占二者总残留量的96%.α-HCH/γ-HCH比值介于0.18—14,平均值为2.8,推测研究区土壤中HCHs残留源于工业HCHs和林丹的混合源,并且可能存在有周边地区HCHs的大气长距离输送.DDE/DDD比值介于0.35—4.8,平均值为2.1,说明研究区土壤中DDT以有氧方式降解为主;(DDE+DDD)/DDT比值介于0.067—0.69,平均值为0.30,o,p’-DDT/p,p’-DDT比值介于0.091—2.8,平均值为0.60,表明研究区土壤DDTs污染可能主要源于工业源DDTs.与国内其它地区土壤相比,研究区土壤中HCHs和DDTs残留量相对较低;依照国家《土壤环境质量标准》(GB-15618—1995),研究区土壤中HCHs和DDTs残留处于较低水平;研究区土壤中HCHs残留处于较低的生态风险,DDTs残留对于土壤生物和鸟类具有一定的生态风险,而对于哺乳类动物生态风险较低.  相似文献   

11.
In order to better understand the environmental behaviors of persistent organic pollutants, the characteristics of polychlorinated dibenzo-p-dioxins and dibenzofurans (PCDD/Fs) were investigated in twenty-three soil/sediment samples from Baiying City, Northwest China, in 2008. The possible sources and potential health risk of PCDD/Fs were also discussed. The concentrations of PCDD/Fs in nineteen soil samples varied between 20.13 and 496.26 pg/g dry weight (dw.), with an average value of 125.59 pg/g dw. The highest International Toxic Equivalent (I-TEQ) of PCDD/Fs (8.34 pg/g dw.) in soil was found at sample S1 collected from proximity to a copper metallurgy plant. The concentrations of PCDD/Fs in four sediment samples ranged from 37.69 to 491.49 pg/g dw., with an average value of 169.95 pg/g dw. The highest I-TEQ of PCDD/Fs (8.56 pg/g dw.) in sediment was found at sample S12 collected from the East big ditch with waste water discharged into the Yellow River. The results indicated that PCDD/Fs contamination of soil/sediment is originated from three sources: chlorine-containing chemicals, non-ferrous metal industrial PCDD/Fs emission and coal burning. The health risk exposure to PCDD/Fs through soil, dust ingestion and dermal absorption ranged from 0.0006 to 0.0134 pg/kg/day Word Health Organization’s toxic equivalent in 1998 (WHO1998-TEQ) with mean values 0.0032 pg WHO1998-TEQ for adults and varied between 0.0012 and 0.0256 pg/kg/day WHO1998-TEQ with mean values 0.006 pg/kg/day WHO1998-TEQ for children, respectively. These results indicated that health risk of PCDD/Fs for children should be paid more attention.  相似文献   

12.
选取南方某典型电子垃圾拆解区不同作业区为研究对象,重点研究了拆解地大气中二噁英的污染特征、气相-颗粒相分配及呼吸暴露风险。通过对5个采样点(包括1个背景点)的研究发现,电子垃圾拆解作业区颗粒相ΣPCDD/Fs的质量浓度为:20.64-56.14 pg·m^-3,毒性当量为:I-TEQ 0.293-1.490 pg·m^-3;气相ΣPCDD/Fs的质量浓度为:3.861-19.29 pg·m^-3,毒性当量为:I-TEQ 0.384-2.150 pg·m^-3。背景点大气中二噁英浓度相对较低,颗粒相和气相样品中质量浓度值分别为:3.734 pg·m^-3和2.637 pg·m^-3,毒性当量仅为I-TEQ 0.176-0.267 pg·m^-3;要明显低于电子垃圾拆解区。基于污染物气相-颗粒相分配系数与蒸汽压的关系对二噁英的气-固分配行为研究显示,除了拆解混合作业区有较好的分配系数(-0.64)外,其它监测点位二噁英的气-固平衡状态较弱(-0.27--0.03),更多的是以低分子量的单体化合物赋存于气相样品中。对拆解区二噁英呼吸暴露风险研究结果表明,儿童呼吸暴露风险要高于成年人;同时无论是儿童还是成年人,其二噁英的呼吸暴露量均要高于国内外城市报道的二噁英人体呼吸暴露量,说明本次监测的电子垃圾拆解区存在的潜在健康风险不容忽视。  相似文献   

13.
Municipal solid waste incinerators (MSWIs) are usually considered to be important sources of polychlorinated dibenzo-p-dioxins and polychlorinated dibenzofurans (PCDD/Fs). To examine the influence of PCDD/Fs emissions from a MSWI on the surrounding environment, 21 soil samples were collected from various sampling sites distributed at distances of 300–1,700 m away from the stack of a MSWI. International Toxic Equivalent (I-TEQ) concentrations ranged from 0.47 to 2.07 pg I-TEQ g?1, with average and median concentrations of 1.08 and 1.05 pg I-TEQ g?1, respectively. Comparison of the results presented herein with other worldwide studies suggested that the concentrations of PCDD/Fs in the ambient soil were relatively low, indicating a limited impact on the surrounding environment. The emission concentrations from the incinerator were the critical factor in generating an environmental impact on the surrounding environment. An exponential function was developed, indicating a slight decline in TEQs of PCDD/Fs with increasing distance from the MSWI stack. The ordinary kriging interpolation technique was selected to create a contour map, which intuitively showed that a limited surrounding area (≤1,000 m from the stack) was obviously influenced by the MSWI.  相似文献   

14.
不同垃圾焚烧炉产生的PCDD/Fs和PCBs同类物的分布   总被引:2,自引:1,他引:2  
要应用高分辨气相色谱一质谱联用技术,测定了3种垃圾焚烧炉产生的飞灰中17种PCDD/Fs和12种共平面PCBs的浓度及毒性当量,比较了PCDD/Fs和PCBs同类物分布的差异.结果表明,流化床焚烧炉和炉排焚烧炉产生的PCDD/Fs多于PCBs,而气化熔融焚烧炉产生的PCBs多于PCDD/Fs;产生的PCBs对总毒性当量的贡献都比较小;3种焚烧炉产生的PCDD/Fs同类物具有相似的浓度分布;流化床焚烧炉和炉排焚烧炉产生的PCBs同类物具有相似的浓度分布,而气化熔融焚烧炉产生的PCBs同类物分布与其他两种焚烧炉差别较大.  相似文献   

15.
危险废物焚烧设施二噁英类排放特征及周边土壤污染调查   总被引:2,自引:0,他引:2  
调查了13座不同类型的危险废物焚烧设施及二噁英类排放模式及部分设施土壤的污染水平.结果表明,排放浓度同焚烧处理量没有显著的关系.4—6氯代PCDD/Fs和7—8氯代PCDD/Fs呈现出了不同的排放特征.4—6氯代PCDF/PCDD比值为60.58±1.98(95%置信区间),较通用的总PCDF/总PCDD比值更适于描述危险废物焚烧设施二噁英排放的特征.使用PCA及聚类分析方法将设施排放模式归类为3种模式.分布模式同焚烧设施炉型、处理量以及尾气处理方式等因素相关性并不显著.2,3,4,7,8PeCDF对I-TEQ的贡献为35%—45%,并与I-TEQ具有很高的相关性.厂区土壤中二噁英浓度水平约为8—14ngI-TEQ.kg-1,周边土壤浓度为1—4ngI-TEQ.kg-1左右,均处于较低水平,调查设施周边土壤的使用目前尚无明显风险.危险废物设施对周边土壤的环境风险需要进一步评估.  相似文献   

16.
The emerging issue of electronic wastes (e-waste) and the associated environmental problems has gained considerable attention from the scientific community in recent decades. In the present study, the levels of polybrominated diphenyl ethers (PBDEs) and polychlorinated dibenzo-p-dioxins and dibenzofurans (PCDD/Fs) in the surface soil obtained from the Taizhou e-waste recycling area of China were investigated. Also the correlation among these chemicals and previously published data of heavy metals, polycyclic aromatic hydrocarbons, and polychlorinated biphenyls was analysed. We determined that the pollution levels of eight PBDEs congeners were serious, ranging from 27.9 to 3128.4 μg/kg. The concentration of PCDD/Fs was in the range of 218.3–3122.2 pg/g with a mean value of 659.5 pg/g. The PBDEs were not well-correlated with organic pollutants (PAHs and PCBs) in soil, whereas PCDD/Fs exhibited a significant positive correlation with the PCBs. The higher levels of persistent organic pollutants may pose potential adverse effects to soil quality and human beings and needs to be properly managed and remediated.  相似文献   

17.
Sampling of PCDDs/Fs in flue gas from a MSW incinerator was conducted using a modified apparatus of the 5 train method, which has been widely used for the sampling of PCDDs/Fs emission. In the atmosphere a high volume air sampler with special packings was used. Collection efficiencies of PCDDs/Fs were more than 98% for both samplers, using 13C12—PCDD reference standard isomers. It was suggested that these sampling methods were adaptable for the measurements of PCDDs/Fs at sources and in the environment. To validate the applicability of existing methodologies on the PCDD/F determination, interlaboratory comparisons were undertaken. From high resolution GC/MS analysis, 2,3,7,8‐TCDD concentrations in reference ash samples were 0.052±0.013 ng/g as comparable results between the laboratories. In addition, the daily intakes of PCDDs/Fs for exposed persons in the MSW incineration facilities in Japan were estimated ranging of 0.053 to 0.28 pg/kg/day by the international toxic equivalent calculations.  相似文献   

18.
Metallurgical production is the largest polychlorinated dibenzo-p-dioxins and dibenzofurans (PCDD/F) emission source in China. However, PCDD/F monitoring and research are rarely conducted on primary metallurgical production. In this study, a demonstration primary copper smelter in China was selected to investigate PCDD/F characteristics and control. Samples were collected from major PCDD/F release points in the smelter process (fly ashes and waste water sludge). Specific analysis of PCDD/F congeners was carried out using a high resolution gas chromatography/high resolution mass spectrometry method. The results showed that PCDD/Fs might be unintentionally produced in the primary copper smelter processes, with sample concentrations of 180–6110 pg/g dry wt; highly chlorinated PCDD/F homologues were predominant. The toxicity of all the samples was calculated to be 120 pg WHO TEQ/g, fly ashes from the refining process furnaces air pollution control device and sludge were hazardous waste with higher PCDD/F toxicity. Both precursor formation and de novo synthesis were found to contribute to PCDD/F formation in the smelter process. PCDD/F characteristics and formation were compared with reported secondary copper smelters. Life-cycle control of PCDD/F was proposed for retrofitting of this smelter and for similar plants in China's primary copper production sector, including control at the PCDD/F formation, removal and disposal stages.  相似文献   

19.
Spatial distribution, seasonal variation and potential inhalation risks of polychlorinated dibenzo-p-dioxins and dibenzofurans (PCDD/Fs), polychlorinated biphenyls (PCBs) and polybrominated diphenyl ethers (PBDEs) were investigated in the atmosphere of Beijing, using passive air samplers equipped with polyurethane foam disks. Concentrations of ΣPCDD/Fs, ΣPCBs and ΣPBDEs ranged from 8.4 to 179 fg WHO2005-TEQ/m3, 38.6–139 and 1.5–176 pg/m3, respectively. PCDFs showed higher air concentrations than those of PCDDs, indicating the influence of industrial activities and other combustion processes. The non-Aroclor congener, PCB-11, was detected in air (12.3–99.4 pg/m3) and dominated the PCB congener profiles (61.7–71.5% to ∑PCBs). The congener patterns of PBDEs showed signatures from both penta-BDE and octa-BDE products. Levels of PCDD/Fs, PCBs and PBDEs at the industrial and residential sites were higher than those at rural site, indicating human activities in urban area as potential sources. Higher air concentrations of PCDD/Fs, PCBs and PBDEs were observed in summer, which could be associated with atmospheric deposition process, re-volatilization from soil surface and volatilization from use of technical products, respectively. Results of inhalation exposure and cancer risk showed that atmospheric PCDD/Fs, dioxin-like PCBs and PBDEs did not cause high risks to the local residents of Beijing. This study provides further aid in evaluating emission sources, influencing factors and potential inhalation risks of the persistent organic pollutants to human health in mega-cities of China.  相似文献   

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