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11.
重视环境保护规划 ,严把项目引进关 ,控制乡镇工业污染 ,增大环境保护投入 ,完善基础设施 ,严格环境管理是实现苏州新区经济与环境协调发展的主导因素。 相似文献
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13.
Lee H. Macdonald Donald M. Anderson William E. Dietrich 《Environmental management》1997,21(6):851-863
2 /yr, respectively. Geomorphic evidence indicates that plantation agriculture during the 18th and 19th centuries did not cause
severe erosion. Since about 1950 there has been rapid growth in roads and development due to increasing tourism and second-home
development. Our field investigations identified the approximately 50 km of unpaved roads as the primary source of anthropogenic
sediment. Field measurements of the road network in two catchments led to the development of a vector-based GIS model to predict
road surface erosion and sediment delivery. We estimate that road erosion has caused at least a fourfold increase in island-wide
sediment yields and that current sedimentation rates are unprecedented. Paving the dirt roads and implementing standard sediment
control practices can greatly reduce current sediment yields and possible adverse effects on the marine ecosystems surrounding
St. John. 相似文献
14.
G. Mathias Kondolf 《Environmental management》1997,21(4):533-551
/ Rivers transport sediment from eroding uplands to depositional areas near sea level. If the continuity of sediment transport is interrupted by dams or removal of sediment from the channel by gravel mining, the flow may become sediment-starved (hungry water) and prone to erode the channel bed and banks, producing channel incision (downcutting), coarsening of bed material, and loss of spawning gravels for salmon and trout (as smaller gravels are transported without replacement from upstream). Gravel is artificially added to the River Rhine to prevent further incision and to many other rivers in attempts to restore spawning habitat. It is possible to pass incoming sediment through some small reservoirs, thereby maintaining the continuity of sediment transport through the system. Damming and mining have reduced sediment delivery from rivers to many coastal areas, leading to accelerated beach erosion. Sand and gravel are mined for construction aggregate from river channel and floodplains. In-channel mining commonly causes incision, which may propagate up- and downstream of the mine, undermining bridges, inducing channel instability, and lowering alluvial water tables. Floodplain gravel pits have the potential to become wildlife habitat upon reclamation, but may be captured by the active channel and thereby become instream pits. Management of sand and gravel in rivers must be done on a regional basis, restoring the continuity of sediment transport where possible and encouraging alternatives to river-derived aggregate sources.KEY WORDS: Dams; Aquatic habitat; Sediment transport; Erosion; Sedimentation; Gravel mining 相似文献
15.
采用生态系统健康理论分析开发区生态环境问题具有较强的理论意义和现实意义。着重构建了开发区生态系统健康评价的指标体系和模糊评价模型,提出评价标准。并对苏州高新区生态系统健康进行评价。进而指出制约因子并提出相应的诊断方案,为其优化生态系统结构和完善系统功能提供科学依据。 相似文献
16.
Binghui Zheng Xiaolei Liu Rui Guo Qing Fu Xingru Zhao Shanjun Wang Sheng Chang Xing Wang Mengjiao Geng Guang Yang 《环境科学学报(英文版)》2017,29(11):97-109
In this work, a method was developed and optimized for the analysis of polyfluoroalkyl and/or perfluoroalkyl substances(PFASs) content in surface water and sediment samples with high instrumental response and good separation. Surface water and sediment samples were collected from the Yangtze River Delta(YRD) to analyze the distribution characteristics of perfluoroalkyl carboxylic acids(PFCAs), perfluoroalkane sulfonic acids(PFSAs), perfluoroalkyl phosphonic acids(PFPAs), perfluoroalkyl phosphinic acids(PFPiAs), and polyfluoroalkyl phosphoric acid diesters(di PAPs). The results showed that the total concentrations of PFCAs and PFSAs in YRD varied from 31 to 902 ng/L. PFCAs(≥ 11 carbons) and PFSAs(≥ 10 carbons atoms) were not detected in any surface water samples. The mean concentrations of all PFCAs and PFSAs in surface water from the sampling areas decreased in the following order:Yangtze river(191 ng/L) ≈ Taihu lake(189 ng/L) Huangpu river(122 ng/L) ≈ Qiantang river(120 ng/L) Jiaxing urban river(100 ng/L). Strong significant(p 0.05) correlations between the concentrations of many of the compounds were found in the sampling areas, suggesting a common source for these compounds. Only perfluorooctanoic acid(PFOA) was observed in all sediment samples, at concentrations varying from 0.02 to 1.35 ng/g. Finally, detection rates of two di PAPs were only 8% and 10%, respectively and the concentration of di PAPs was two to three times lower compared to PFCAs and PFSAs. 相似文献
17.
苏州市PM2.5中水溶性离子的季节变化及来源分析 总被引:29,自引:27,他引:2
2015年在苏州市城区采集大气细颗粒物PM_(2.5)样品共87套,用重量法分析了PM_(2.5)的质量浓度,离子色谱法分析了颗粒物中F-、Cl-、NO_3~-、SO_4~(2-)、Na~+、NH_4~+、K~+、Mg~(2+)和Ca~(2+),共9种水溶性无机离子.观测期间,苏州市PM_(2.5)的年均质量浓度为(74.26±38.01)μg·m-3,其季节特征为冬季春季秋季夏季;9种水溶性离子的总质量浓度为(43.95±23.60)μg·m~(-3),各离子的浓度高低顺序为NO_3~-SO_4~(2-)NH_4~+Na~+Cl~-K~+Ca~(2+)F-Mg~(2+);SNA(SO_4~(2-)、NO_3~-和NH_4~+三者的简称)是最主要的水溶性离子;SO_4~(2-)、NO_3~-和NH_4~+三者之间具有显著的相关性,它们在PM_(2.5)中主要是以NH_4NO_3和(NH_4)_2SO_4的结合方式存在.苏州市PM_(2.5)中水溶性离子的主要来源包括工业源、燃烧源、二次过程和建筑土壤尘等. 相似文献
18.
2009年7月在江苏省南部城市苏州、无锡和南通采集了58个城市道路灰尘样品,使用气相色谱质谱法测定了样品中的8种多溴联苯醚(PBDEs)和32种多氯联苯(PCBs).结果表明,样品中Σ8PBDEs含量范围为4.21~1 471μg·kg-1,Σ32PCBs含量范围为ND~14.1μg·kg-1,PBDEs的含量远远高于PCBs.和其他地区城市土壤样品比较,城市道路灰尘中的PBDEs含量较高,来自燃料燃烧过程和汽车尾气产生的PBDEs不容忽视.城市工业区和中心区样品中PBDEs和PCBs的含量水平没有显著性差异,而高于景观区.研究发现,在城市工业区存在PCBs非故意排放源.PBDEs同族体单体相对含量分析表明,BDE209是样品中检测出的最主要的PBDEs单体,占Σ8PBDEs含量的96.7%(64.1%~99.8%).样品中的PCBs同族体主要为四氯代PCBs和六氯代PCBs,道路灰尘中PCBs同族体的分布模式与PCBs产品和其他环境介质存在一定差异. 相似文献
19.
对华南某金矿下游河道砷、镉分布特征进行了初步研究,在金矿下游河道沿程布设7个沉积物采样点及两个河道断面,分析了沉积物及断面土壤的砷、镉、铬、铜、镍、铅、锌含量。采用Tessier连续提取法分析沉积物中砷、镉等重金属的形态。砷含量高达10 20870 621 mg/kg,镉含量达2.870 621 mg/kg,镉含量达2.810.2 mg/kg。沉积物中砷、铅元素含量沿水流方向总体呈现减少趋势,铬、铜元素含量沿水流方向呈现增加趋势,镉元素含量沿水流方向先增加后减少。上游断面沉积物砷、镉等重金属浓度由河流中泓线向河岸方向增加,砷含量由16 617 mg/kg增加至53 197 mg/kg;下游断面则反之,砷含量由16 860 mg/kg减少至384mg/kg。沉积物中砷、镉等重金属元素主要以铁锰氧化态、有机结合态和残渣态的形式存在。 相似文献
20.
建立了全自动样品处理系统Vulcan 42-原子荧光光度法测定土壤和沉积物中砷和汞的方法。准确称取0.2500 g样品,经Vulcan42全自动消解系统消解后,采用原子荧光光度计测定砷和汞的含量。运用该方法砷的检出限为0.11 mg/kg,回收率在96%101%之间,相对标准偏差(n=6)在1.3%101%之间,相对标准偏差(n=6)在1.3%4.5%之间;汞的检出限为0.003 mg/kg,回收率在90%4.5%之间;汞的检出限为0.003 mg/kg,回收率在90%108%之间,相对标准偏差(n=6)在0.5%108%之间,相对标准偏差(n=6)在0.5%4.7%之间。 相似文献