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41.
利用液液萃取法和气相色谱-质谱方法对佛山境内高明河水环境多环芳烃(PAHs)进行了测定,并对PAHs的分布特征与通量进行了初步研究.结果表明高明河水环境中16种优控PAHs的浓度范围在41.6~375.6 ng/l之间,从上游到下游总体呈递增的趋势,其下游浓度偏高可能与荷城街道较为密集的工业和人口分布有关.高明河水环境PAHs的总含量高于欧美一些低污染水域,但低于国内一些主要河流.高明河PAHs年通量约为333.8 kg. 相似文献
42.
河南某市驾校地表灰尘多环芳烃组成、来源与健康风险 总被引:5,自引:4,他引:1
采集河南省某市29所驾校的地表灰尘样品,应用气相色谱-质谱联用仪(GC-MS)测定样品中16种优控PAHs含量,用终生致癌风险增量模型(ILCR)评价灰尘PAHs不同暴露情景下(情景1、2、3分别为驾校工作5 a、10 a和20 a)的健康风险,用比值法、成分谱法和主成分因子载荷法揭示PAHs来源.结果表明,驾校灰尘ΣPAHs含量在198.21~3 400.89μg·kg-1之间,平均908.72μg·kg-1.单体PAHs含量较高的是萘、菲、蒽、荧蒽,含量最低的是二苯并[a,h]蒽,低环PAHs占ΣPAHs的55.79%,高环占44.21%.3种情景下的平均健康风险为情景3(3.71×10-7)情景2(1.85×10-7)情景1(9.27×10-8),只有一个驾校(J11)在情景3存在潜在健康风险,其他情景下均无风险.皮肤接触灰尘是最主要的PAHs暴露途径,其占总风险的64.21%;其次是误食途径,占总风险的33.04%;吸入途径可忽略不计.驾校灰尘PAHs主要来源为化石燃料不完全燃烧源和混合源,农田区驾校灰尘PAHs的柴油/天然气动力车排放源、燃煤源和汽油车排放源贡献率分别为56.44%、26.55%和17.01%,工业区驾校混合源、汽油车和炼焦/燃煤排放源贡献率分别为76.26%、22.85%和0.89%,混合区驾校燃煤源、天然气/柴油动力车排放源和汽油车排放源的贡献率分别为45.57%、45.41%和9.02%.灰尘PAHs含量及健康风险与其周边环境、前期土地利用状况密切相关. 相似文献
43.
从水文地质条件、地貌环境和地球化学环境等3个方面,综述了岩溶环境对多环芳烃(PAHs)迁移转化的影响。针对研究现状及存在的不足,提出了未来可能的研究趋势,包括不同气候条件下发育的岩溶系统的对比研究、不同气候条件和不同岩溶系统快速流和慢速流对PAHs迁移的贡献、碳酸盐岩与PAHs相互作用的机理,以及有机质对PAHs迁移行为的影响。 相似文献
44.
In this study, the relationship between inhalable particulate (PM10), fine particulate (PM2.5), coarse particles (PM2.5 – 10) and meteorological parameters such as temperature, relative humidity, solar radiation, wind speed were statistically analyzed and modelled for urban area of Kolkata during winter months of 2003–2004. Ambient air quality was monitored with a sampling frequency of twenty-four hours at three monitoring sites located near traffic intersections and in an industrial area. The monitoring sites were located 3–5 m above ground near highly trafficked and congested areas. The 24 h average PM10 and PM2.5 samples were collected using Thermo-Andersen high volume samplers and exposed filter papers were extracted and analysed for benzene soluble organic fraction. The ratios between PM2.5 and PM10 were found to be in the range of 0.6 to 0.92 and the highest ratio was found in the most polluted urban site. Statistical analysis has shown a strong positive correlation between PM10 and PM2.5 and inverse correlation was observed between particulate matter (PM10 and PM2.5) and wind speed. Statistical analysis of air quality data shows that PM10 and PM2.5 are showing poor correlation with temperature, relative humidity and solar radiation. Regression equations for PM10 and PM2.5 and meteorological parameters were developed. The organic fraction of particulate matter soluble in benzene is an indication of poly aromatic hydrocarbon (PAH) concentration present in particulate matter. The relationship between the benzene soluble organic fraction (BSOF) of inhalable particulate (PM10) and fine particulate (PM2.5) were analysed for urban area of Kolkata. Significant positive correlation was observed between benzene soluble organic fraction of PM10 (BSM10) and benzene soluble organic fraction of PM2.5 (BSM2.5). Regression equations for BSM10 and BSM2.5 were developed. 相似文献
45.
46.
蒽降解菌与铜绿假单胞菌融合子的特性研究 总被引:4,自引:1,他引:3
将蒽降解菌An815和绿色荧光蛋白标记铜绿假单胞菌(Pseudomonas aeruginosa/EGFP)P原生质体融合,得到了既能高效降解蒽,又能产生生物表面活性剂的融合子F。研究了它的形态特征、生理生化特性、产表面活性剂的能力、对蒽的降解性能及生长繁殖情况。结果表明,融合子菌落和菌体形态,产脓青素,荧光色素的特性类似于铜绿假单胞菌亲本,但其大多生理生化特性酷似An815亲本而不同于铜绿假单胞菌亲本;融合子有较好产表面活性剂的能力,72 h内将表面张力由70.2 mN/m降至36.5mN/m;在蒽的反应体系中,32h内融合子和亲本An815对蒽的降解转化率分别为86.7%,59.4%,融合子对蒽的降解速率比An815提高了27.3%;在蒽的反应体系中融合子和亲本生长曲线相似。 相似文献
47.
48.
表面活性剂在多环芳烃污染土壤修复中的应用 总被引:6,自引:2,他引:4
介绍了单一表面活性剂(非离子表面活性剂、生物表面活性剂)、阴-非离子混合表面活性剂对多环芳烃的增溶作用、增溶机理及无机离子对表面活性剂增溶能力的影响,综述了化学表面活性剂和生物表面活性剂在污染土壤生物修复中的应用。由于生物表面活性剂具有许多独特的优点,今后应加强生物表面活性剂的开发与应用研究。 相似文献
49.
白腐真菌修复多环芳烃污染土壤及其降解机理的研究进展 总被引:3,自引:0,他引:3
介绍了白腐真菌对多环芳烃(PAHs)的代谢途径、降解机理,阐述了白腐真菌修复PAHs污染土壤的影响因素和生态效应,并提出了提高白腐真菌修复效率的措施.白腐真菌主要通过分泌木质素降解酶系(木质家过氧化物酶、锰过氧化物酶和漆酶)来降解PAHs,这些胞外酶可通过开环作用把PAHs代谢成为水溶性较强的醌类中间产物,再由其他微生物降解这些中间产物直至矿化.在白腐真菌的培养过程中.通过对环境因素及营养条件(如温度、pH值、C/N比、微量元素和转速)的优化可提高胞外酶产量.在修复PAHs污染土壤过程中,生物竞争、营养条件和环境因素等均会影响白腐真菌的修复效果.同时,归纳总结了改善白腐真菌修复效果的一些措施,如真菌-细菌联合修复、添加适当的培养基质、添加表面活性剂、直接施用酶制剂和改善营养条件等. 相似文献
50.
Bottled water may not be safer, or healthier, than tap water. The present studies have proved that styrene and some other aromatic compounds leach continuously from polystyrene (PS) bottles used locally for packaging. Water sapmles in contact with PS were extracted by a preconcentration technique called as "purge and trap" and analysed by gas chromatograph-mass spectrometer (GC/MS). Eleven aromatic compounds were identified in these studies. Maximum concentration of styrene in PS bottles was 29.5 μg/L. Apart from styrene, ethyl benzene, toluene and benzene were also quantified but their concentrations were much less than WHO guide line values. All other compounds were in traces. Quality of plastic and storage time were the major factor in leaching of styrene. Concentration of styrene was increased to 69.53 μg/L after one-year storage. In Styrofoam and PS cups studies, hot water was found to be contaminated with styrene and other aromatic compounds. It was observed that temperature played a major role in the leaching of styrene monomer from Styrofoam cups. Paper cups were found to be safe for hot drinks. 相似文献