排序方式: 共有19条查询结果,搜索用时 125 毫秒
11.
夏季潮滩对上海老港垃圾填埋场渗滤液氮、磷净化效果研究 总被引:3,自引:0,他引:3
垃圾填埋产生的渗滤液造成的环境污染问题El益严重。采用自然湿地对垃圾渗滤液净化有诸多优点,而相关的研究较少。根据渗滤液的不同浓度和不同滞留时间的净化效果不同,采用实验室模拟和培养的方法来研究老港垃圾填埋场附近潮滩对垃圾渗滤液营养盐N、P的净化效果。研究发现:夏季老港中、低潮滩在较短滞留时间(6h)内对各浓度渗滤液中N、P的净化效果不明显,而在较长滞留时间内(96h)中、低潮滩对各浓度渗滤液净化效果明显,净化后污水中N、P含量可达到排放标准;垃圾渗滤液质量分数为5%时,潮滩对N、P的净化效果最为明显。 相似文献
12.
Huanguang Deng Dongqi Wang Zhenlou Chen Shiyuan Xu Ju Zhang Ronald D. Delaune 《Environmental science and pollution research international》2013,20(9):6297-6305
The aims of this paper were to survey the total Hg levels and distribution character in intertidal sediment in continental coast of Shanghai, and identify the environment factors that might influence the sediment Hg concentrations, and to assess the pollution degree and potential ecological risk of Hg in sediment. Eighty-eight surface sediment samples and 18 sediment cores were collected for Hg contamination analysis. Physicochemical properties including Eh, particle size, content of total organic carbon (TOC), and acid volatile sulfide (AVS) were also measured. Index of geo-accumulation (I geo) and potential ecological risk index were used respectively to assess the pollution levels and the ecological risk of sediment Hg. The average of total Hg concentrations in surface sediments was 107.4?±?90.9 ng/g with the range from 0 to 465.9 ng/g. Higher Hg concentrations were generally found in surface sediments near sewage outfalls and the mouth of rivers. Total Hg concentrations were significantly correlated with TOC (p?<?0.05) both in surface (r?=?0.24) and core (r?=?0.29) sediments, but not with the other environment factors (Eh, AVS, and particle size). Geo-accumulation index indicated that Hg contamination in intertidal sediments was generally at none to moderate degree, while potential ecological risk index demonstrated that the risk caused by Hg were at moderate to considerable level. Intertidal sediment in continental coast of Shanghai has generally been contaminated by Hg, and it might pose moderate to considerable risk to the local ecosystem. The Hg contamination is related more to the coastal pollution sources and complicated hydrodynamic and sedimentary conditions than the other environment factors studied. 相似文献
13.
以上海市老港垃扭填埋场附近潮滩为例,研究了垃圾渗滤液的排放对潮滩沉积物营养盐污染负荷的影响,结果表明:由于垃圾渗滤液的排放,潮滩表层沉积物中营养盐N、P的含量显著增加;在向海向上,随距排污口距离的增加表层沉积物中N、P的含量有所降低;受垃圾填埋时间长短的影响。南北线潮滩沉积物中N、P的含量有明显差异,北线沉积物中总无机氮和总无机磷的含量均明显高于南线。柱样沉积物中N、P的含量随深度也呈现一定的变化规律:氨氮含量随深度的增加而增加,总磷含量随深度的增加而减少。 相似文献
14.
上海城市河岸带土壤反硝化作用研究 总被引:6,自引:1,他引:6
2011年4月至2012年2月,以2个月为周期,在上海市不同地点浦东(PD)、金山(JS)、嘉定(JD)、青浦(QP)、崇明(CM)、闵行(MH)采集不同类型城市河岸带土壤,采用乙炔抑制法测定土壤反硝化速率.结果表明,上海河岸带土壤反硝化速率介于1.00 ~ 82.92μmol·m-2·h-1之间,时空差异明显.不同区域,农田背景下的河岸带土壤反硝化速率(浦东:29.51 μmol·m-2h-1,嘉定:36.99μmol·m-2·h-1)要高于以草地(青浦:4.95 μmol·m-2·h-1,闵行:7.84 μmol·m-2·h-1)、矮灌丛(金山:27.83 μmol·m-2·h-1,崇明:23.26 μmol·m-2·h-1)背景为主的河岸带土壤;垂直变化上,2~5 cm深度处的河岸带土壤反硝化速率最大,随深度增加反硝化速率呈逐步降低趋势;季节变化上,河岸带土壤反硝化速率呈现夏秋高冬春低的特点,夏季是反硝化作用最为强烈的季节.温度、pH值、土壤有机碳(Soil Organic Carbon,SOC)、土壤总氮(Soil Total Nitrogen,STN)等是影响反硝化速率的重要因子,其中,反硝化速率与温度、SOC、STN含量呈正相关关系,与pH值呈负相关关系. 相似文献
16.
Deng Huanguang Zhang Ju Wu Jinjia Yang Liwei Zhang Yinghao Yao Xin 《Environmental science and pollution research international》2022,29(4):5505-5516
Environmental Science and Pollution Research - A sediment-water mesocosm experiment was set up to identify the effects of different debris biomass P. crispus decomposition on water body... 相似文献
17.
Denitrification controls in urban riparian soils: implications for reducing urban nonpoint source nitrogen pollution 总被引:2,自引:0,他引:2
Yangjie Li Zhenlou Chen Huanjie Lou Dongqi Wang Huanguang Deng Chu Wang 《Environmental science and pollution research international》2014,21(17):10174-10185
The purpose of this research was to thoroughly analyze the influences of environmental factors on denitrification processes in urban riparian soils. Besides, the study was also carried out to identify whether the denitrification processes in urban riparian soils could control nonpoint source nitrogen pollution in urban areas. The denitrification rates (DR) over 1 year were measured using an acetylene inhibition technique during the incubation of intact soil cores from six urban riparian sites, which could be divided into three types according to their vegetation. The soil samples were analyzed to determine the soil organic carbon (SOC), soil total nitrogen (STN), C/N ratio, extractable NO3 ?-N and NH4 +-N, pH value, soil water content (SWC), and the soil nitrification potential to evaluate which of these factors determined the final outcome of denitrification. A nitrate amendment experiment further indicated that the riparian DR was responsive to added nitrate. Although the DRs were very low (0.099?~?33.23 ng N2O-N g?1 h?1) due to the small amount of nitrogen moving into the urban riparian zone, the spatial and temporal patterns of denitrification differed significantly. The extractable NO3 ?-N proved to be the dominant factor influencing the spatial distribution of denitrification, whereas the soil temperature was a determinant of the seasonal DR variation. The six riparian sites could also be divided into two types (a nitrate-abundant and a nitrate-stressed riparian system) according to the soil NO3 ?-N concentration. The DR in nitrate-abundant riparian systems was significantly higher than that in the nitrate-stressed riparian systems. The DR in riparian zones that were covered with bushes and had adjacent cropland was higher than in grass-covered riparian sites. Furthermore, the riparian DR decreased with soil depth, which was mainly attributed to the concentrated nitrate in surface soils. The DR was not associated with the SOC, STN, C/N ratio, and pH. Nitrate supply and temperature finally decided the spatiotemporal distribution patterns of urban riparian denitrification. Considering both the low DR of existing riparian soils and the significance of nonpoint source nitrogen pollution, the substantial denitrification potential of urban riparian soils should be utilized to reduce nitrogen pollution using proper engineering measures that would collect the polluted urban rainfall runoff and make it flow through the riparian zones. 相似文献
18.
The capability of estuarine sediments to remove nitrogen: implications for drinking water resource in Yangtze Estuary 总被引:1,自引:0,他引:1
Lin Liu Dongqi Wang Huanguang Deng Yangjie Li Siqi Chang Zhanlei Wu Lin Yu Yujie Hu Zhongjie Yu Zhenlou Chen 《Environmental science and pollution research international》2014,21(18):10890-10899
Water in the Yangtze Estuary is fresh most of the year because of the large discharge of Yangtze River. The Qingcaosha Reservoir built on the Changxing Island in the Yangtze Estuary is an estuarine reservoir for drinking water. Denitrification rate in the top 10 cm sediment of the intertidal marshes and bare mudflat of Yangtze Estuarine islands was measured by the acetylene inhibition method. Annual denitrification rate in the top 10 cm of sediment was 23.1 μmol m?2 h?1 in marshes (ranged from 7.5 to 42.1 μmol m?2 h?1) and 15.1 μmol m?2 h?1 at the mudflat (ranged from 6.6 to 26.5 μmol m?2 h?1). Annual average denitrification rate is higher at mashes than at mudflat, but without a significant difference (p?=?0.084, paired t test.). Taking into account the vegetation and water area of the reservoir, a total 1.42?×?108 g N could be converted into nitrogen gas (N2) annually by the sediment, which is 97.7 % of the dissolved inorganic nitrogen input through precipitation. Denitrification in reservoir sediment can control the bioavailable nitrogen level of the water body. At the Yangtze estuary, denitrification primarily took place in the top 4 cm of sediment, and there was no significant spatial or temporal variation of denitrification during the year at the marshes and mudflat, which led to no single factor determining the denitrification process but the combined effects of the environmental factors, hydrologic condition, and wetland vegetation. 相似文献
19.
东昌湖水体富营养化评价及N、P平衡研究 总被引:8,自引:0,他引:8
通过对东昌湖2005年水质监测数据的分析,采用卡尔森指数法对东昌湖水体的富营养化水平进行了评价,发现东昌湖水体处于中-富营养化水平。对东昌湖水体富营养化的主要影响因子N、P的平衡研究结果表明:东昌湖N输入量为7.35t,/a,P输入量为1.47t/a,主要来源于随外界输水进入;N和P输出量分别为6.44t/a和0.88t/a,截留率分别为12.4%和39.9%。根据东昌湖N、P平衡,建议采用生物控制模式防止东昌湖水体富营养化的加剧。 相似文献