首页 | 本学科首页   官方微博 | 高级检索  
文章检索
  按 检索   检索词:      
出版年份:   被引次数:   他引次数: 提示:输入*表示无穷大
  收费全文   737篇
  免费   62篇
  国内免费   171篇
安全科学   6篇
废物处理   14篇
环保管理   184篇
综合类   268篇
基础理论   290篇
环境理论   1篇
污染及防治   77篇
评价与监测   57篇
社会与环境   73篇
  2024年   1篇
  2023年   8篇
  2022年   20篇
  2021年   9篇
  2020年   25篇
  2019年   21篇
  2018年   26篇
  2017年   36篇
  2016年   35篇
  2015年   34篇
  2014年   41篇
  2013年   101篇
  2012年   35篇
  2011年   60篇
  2010年   40篇
  2009年   40篇
  2008年   36篇
  2007年   42篇
  2006年   48篇
  2005年   35篇
  2004年   33篇
  2003年   30篇
  2002年   31篇
  2001年   35篇
  2000年   18篇
  1999年   15篇
  1998年   13篇
  1997年   12篇
  1996年   11篇
  1995年   12篇
  1994年   9篇
  1993年   5篇
  1992年   4篇
  1991年   3篇
  1990年   2篇
  1989年   5篇
  1988年   10篇
  1987年   3篇
  1986年   4篇
  1985年   1篇
  1981年   2篇
  1980年   2篇
  1979年   4篇
  1978年   2篇
  1977年   1篇
  1976年   3篇
  1974年   1篇
  1973年   1篇
  1972年   2篇
  1971年   3篇
排序方式: 共有970条查询结果,搜索用时 31 毫秒
131.
热污染对陡河水库鱼类及其水环境的影响   总被引:9,自引:1,他引:9  
研究表明,热污染对水环境影响主要表现在水温的频繁变化、水平和纵向上温差明显以及改变水生物的群落结构.寄生虫感染率增加,冷热冲击对胚胎发育的危害和浮游生物群落变化形成的饵料基础是影响鱼类数量和生长的重要因素,鱼类在群落中的生态位特点则决定着对各种变化的反应结果.  相似文献   
132.
DerivingfreshwaterqualitycriteriaofsulphocyanicsodiumfortheprotectionofaquaticlifeinChinaZhangTongDepartmentofEnvironmentalE...  相似文献   
133.
对白洋淀几种不同食性鱼体内六六六和DDT残留量分析表明,草食性鱼体内农药残留量最少,六六六含量为59.3μg/kg,DDT含量为29.6μg/kg;其次是杂食性鱼类,六六六含量为90.4μg/kg,DDT含量为108.5μg/kg;肉食性鱼体内农药残留量最高,六六六含量为110.7μg/kg,DDT含量为124.4μg/kg。鱼体对DDT的浓缩因子为311~1244,明显高于六六六的177~368。鱼体内BHC4种异构体的残留顺序为δ>α>γ>β,与其在水体中的比例α>γ>δ>β略有不同。鱼体内DDT主要以代谢物p,p'-DDE的形式存在,但个别样品中少量的p,p'-DDD及o,p'-DDT的检出,表明白洋淀水生生态系统最近受到DDT的轻度污染。本项研果与1975~1977年检测结果进行比较;白洋淀鱼体内六六六残留量显著下降,下降率为15.8%~79.2%;DDT残留量却明显增加(草食性鱼类除外),增加率约为47.8%~97.8%。  相似文献   
134.
Guanabara Bay (GB), located in the Rio de Janeiro State, is still a productive estuary on the south-eastern Brazilian coast. It is an ecosystem heavily impacted by organic matter, oil and a number of other toxic compounds, including Hg. The present study aimed to comparatively evaluate the aquatic total mercury (THg) and MeHg contamination, and the ratios of MeHg to THg (% MeHg), in 3 species of marine organisms, Micropogonias furnieri-carnivorous fish (N = 81), Mugil spp.--detritivorous fish (N = 20) and Perna perna--filter-feeding bivalves (N = 190), which are widely consumed by the population. A total of 291 specimens were collected at the bay in different periods between 1988 and 1998. THg concentrations were determined by cold vapour AAS with stannous chloride as a reducing agent. MeHg was extracted by dithizone-benzene and measured by GC-ECD. Analytical quality was checked through certified standards. All organisms presented both low THg and MeHg concentrations and they were below the maximum limit of 1,000 micrograms Hg.kg-1 wet wt. as established for human intake of predatory fish by the new Brazilian legislation. Carnivorous fish showed higher THg and MeHg concentrations, and also % MeHg in muscle tissues, than organisms with other feeding habits and lower trophic levels. The average of THg concentrations in carnivorous fish was 108.9 +/- 58.6 micrograms.kg-1 wet wt. (N = 61) in 1990 and 199.5 +/- 116.2 micrograms.kg-1 wet wt. (N = 20) in 1998, but they presented different total length and body weights. The average THg content in detritivorous fish was 15.4 +/- 5.8 micrograms.kg-1 wet wt., whereas THg concentrations ranged from 4.1 to 53.5 micrograms.kg-1 wet wt. for the molluscs. The THg and MeHg contents of mussel varied according to the sampling point and water quality. MeHg concentration in detritivorous fish was similar to MeHg concentration in molluscs, but there was a significant difference in the MeHg/THg ratio: the carnivorous fish presented higher MeHg percentages (98%) than the detritivorous fish (54%) and the molluscs (33%). Weight-normalised average concentration of THg in carnivorous fish collected in 1990 (0.18 +/- 0.08 microgram.g-1/0.7 kg wet wt.) and in 1998 (0.16 +/- 0.09 microgram.g-1/0.7 kg wet wt.) presented no significant difference (t = 1.34; P < 0.5). In conclusion, the low THg and MeHg concentrations in the organisms from the GB ecosystem, are related to its eutrophic conditions and elevated amounts of suspended matter. In this situation, Hg could be strongly complexed or adsorbed by the particulate, which would dilute the Hg inputs and reduce its residence time in the water column, with a consequent decrease in its availability to organisms.  相似文献   
135.
Background, Goal and Scope Cleaner CRYSTAL Simple Green (SG) was used for the cleanup of the oil spill in the Baltic Sea near Lithuania in 2001. No scientific data are available on the effects and consequences of its application for local aquatic life. The aim of this study was to determine and compare sublethal effects of a) solution SG; b) crude oil alone; c) SG in combination with oil on rainbow trout Oncorhynchus mykiss at different stages of its development in laboratory conditions.Methods Laboratory studies were performed on adult rainbow trout (4-day duration) and on yolk-sac larvae (25-day duration) evaluating their biological parameters. Concentrations of water-soluble and thin-dispersed fractions of petroleum hydrocarbons were measured using gas chromatography.Results and Discussion SG solution (0.5 mg/l) did not affect the survival of larvae and adult fish, and no significant changes were determined in respiratory parameters of the exposed larvae and adult fish. The most expressed alterations were found in morphological parameters (a decrease in the average body mass) of larvae and in haematological indices (a decrease in the leukocyte count) of adult fish at the end of the tests. Crude oil (1610 mg/l) did not affect the survival of adult fish during the 4-day exposure. An increase in larvae mortality rate (~ 36%) was recorded at the end of the tests. A significant decrease in the average body mass and heart rate of larvae as well as in gill ventilation frequency of larvae and adult fish were determined. SG combined with oil induced an increase in larval mortality &#61566; 46% of individuals died at the end of the tests. No mortality was recorded in adult fish. The average body mass and heart rate of larvae were significantly decreased. Marked changes were also found in respiratory parameters (gill ventilation frequency of larvae and adult fish significantly decreased, while “coughing” rate increased). A 1-day, 2-day exposure of fish to SG combined with oil induced a significant decrease in the leukocyte count of adult fish, which was also determined at the end of the tests. The augmentation of adverse impact could be explained by the data obtained from our studies. When SG was added into dilution water with crude oil the concentration of petroleum hydrocarbons in the mixture increased 3 ~ 4.5 times after 24 h and 96 h, respectively. Conclusions The comparative study of the effects of crude oil alone, SG and SG combined with oil showed that their toxic effects on fish differed. Oil combined with SG was found to be more toxic to fish (larvae and adults) than SG alone and oil alone. Fish at early stages of development (yolk-sac larvae) were more sensitive to the effects of the compounds studied than adults.Recommendations and Outlook To diminish the negative impact of oil spill cleanup using chemicals on aquatic ecosystems, it is recommended to carry out more comprehensive studies of their effects and after-effects in laboratory conditions using a wide scale of local aquatic organisms. The selected species of the most sensitive aquatic organisms should include those which are unable to escape the impact of combined action of oil and cleaners. Special attention should be directed to the research of effects of these pollutants on studied organisms at their most sensitive stages of life (reproduction, hatching, early stages of development), as after-effects of exposure to pollutants may be observed in future generations.  相似文献   
136.
Goal, Scope and Background Chlorite (ClO2ˉ) is a primary decomposition product when chlorine dioxide (ClO2) is added during water treatment; therefore the toxic effects of both compounds on aquatic organisms are possible. Limited data are available concerning their toxicity to fish. The aim of this study was to investigate sensitivity of rainbow trout to acute and chronic toxicity of chlorine dioxide and chlorite, and to estimate the Maximum-Acceptable-Toxicant-Concentration (MATC) of those compounds in fish. Methods The acute and chronic toxicity of chlorine dioxide and chlorite to larval and adult rainbow trout was investigated in 96-hour to 20-day laboratory exposures evaluating the wide range spectrum of biological indices under semi-static conditions. Results and Discussion Median lethal concentration (96-hour LC50) values derived from the tests were: 2.2 mg/l for larvae; 8.3 mg/l for adult fish and 20-day LC50 for larvae was 1.6 mg/l of chlorine dioxide, respectively. Chlorite was found to be from 48 to 18 times less acutely toxic to larvae and adult fish, correspondingly. Both chemical compounds induced similar toxic effects in rainbow trout larvae during chronic tests (they affected cardio-respiratory and growth parameters), but chlorine dioxide had a higher toxic potency than chlorite. A significant decrease in the heart rate and respiration frequency of larvae was established. However, within an increase in exposure duration recovery of cardio-respiratory responses was seen to have occurred in larvae exposed to chlorite. Meanwhile, in larvae exposed to chlorine dioxide, a significant decrease in cardio-respiratory responses remained during all 20-day chronic bioassays. Chlorine dioxide also more strongly affected growth parameters of rainbow trout larvae at much lower test concentrations. Decreased rate of yolk-sack resorption occurred only in the tests with chlorine dioxide. Conclusions Maximum-Acceptable-Toxicant-Concentration (MATC) of 0.21 mg/l for chlorine dioxide and of 3.3 mg/l for chlorite to fish was derived from chronic tests based on the most sensitive parameter of rainbow trout larvae (growth rate). According to substance toxicity classification accepted for Lithuanian inland waters, chlorine dioxide and chlorite can be referred to substances of \moderate\ toxicity to fish. Recommendations and Outlook Due to its very reactive nature, chlorine dioxide is rapidly (in a few hours) reduced to chlorite, which is persistent also as a biocide but 16 times less toxic to fish, according to MATC. Therefore, it is much more likely that fish will be exposed to chlorite than to chlorine dioxide in natural waters. Presently accepted, the Maximum-Permitted-Concentration of total residual chlorine (TRC) in waste-water discharging into receiving waters is 0.6 mg/l. If this requirement will not be exceeded, it is unlikely that fish would be exposed to lethal or even to sublethal concentrations of chlorine dioxide or chlorite. Furthermore, chlorine dioxide does not generate toxic nitrogenous (chloramines) or carcinogenic organic residuals (trihalomethanes). All these properties make chlorine dioxide a more promising biocide than chlorine.  相似文献   
137.
黄岁樑  孔文文 《环境科学研究》2018,31(10):1761-1770
在养殖水域中地表径流等可引起水域中除草剂浓度升高,威胁养殖水环境的生态平衡.为评价阿特拉津和鱼食在水环境中的生态风险,以ρ(阿特拉津)(0、5、10、20和40 μg/L)及鱼食(鱼食为MⅡ培养基中的氮、磷营养源)投加量(0.05、0.20 g;d < 0.85 mm)为变量,基于Logistic方程探讨阿特拉津和鱼食共同作用下铜绿微囊藻(Microcystis aeruginosa)的生长,并研究藻类生长对鱼食营养盐的利用.结果表明:在ρ(阿特拉津)为0~40 μg/L范围内,铜绿微囊藻生长曲线均可用Logistic方程描述(R2=0.975~0.996);一般情况下,基于Logistic方程得到的比生长速率、增殖速率和抑制率拟合公式均可描述相应实测值的变化,相关性分析得到的拟合值与实测值相关系数(R2)分别为0.861~0.992、0.381~0.839和0.621~0.839.相同ρ(阿特拉津)下,鱼食投加量对藻细胞密度有显著影响(P < 0.05),Logistic方程拟合得到的理论最大藻细胞密度(K)随鱼食投加量的增加而增大.相同鱼食投加量下,ρ(阿特拉津)为5~40 μg/L时对藻类生长有抑制作用,随ρ(阿特拉津)增加,抑制强度逐渐升高,藻细胞密度越低,最大藻细胞密度随ρ(阿特拉津)的增加而减小.藻细胞密度与PO43--P利用量之间关系可用方程N=a×△cb描述,R2为0.23~0.99;藻细胞密度与NH4+-N利用量之间关系可用方程N=a+b×△c描述,R2为0.04~0.99;藻细胞密度与TN/TP、NH4+-N/TN和PO43--P/TP的关系均可用幂函数方程N=a"xb'描述,R2分别为0.72~0.78、0.66~0.83和0.55~0.56.研究显示,Logistic方程可用于分析阿特拉津和鱼食对铜绿微囊藻生长的影响,且藻类生长与营养盐质量浓度之间存在一定的定量关系.   相似文献   
138.
鱼类对于维护河流生态系统的稳定具有重要作用,季节性变化在一定程度上影响鱼类的群落结构.为了解济南市水域鱼类的功能群结构及其季节性差异,于2014年春季(5月)、夏季(8月)和秋季(11月)选取济南市水域的40个采样点对鱼类群落和水环境理化因子,通过单因素方差分析、多响应置换过程以及典范对应分析等方法,分析鱼类功能群在不同季节的差异性.结果表明:①春季共鉴定出鱼类5目7科26种,夏季为5目9科32种,秋季为5目7科20种.将鱼类按栖息水层、产卵类型、对环境的耐受性以及营养结构4个方面分为4种功能类群共11亚类.春季主要以植食性、底层与敏感种功能群为主,夏季主要以肉食性、中下层、耐污种、特殊产卵与粘性卵功能群为主,秋季主要以杂食性、浮性卵、中上层、耐污种功能群为主.②典范对应结果显示,影响粘性卵功能群、肉食性功能群、底层功能群以及敏感种功能群分布的驱动因子是ρ(DO),电导率则是影响植食性功能群的驱动因子.研究显示,鱼类功能群的季节性变化受到内源性和外源性的共同影响,即鱼类自身生活习性和水环境因子季节性变化的共同影响.   相似文献   
139.
氟虫腈对斑马鱼和小菜蛾毒性的手性选择性研究   总被引:3,自引:0,他引:3  
手性农药分子的不同对映体在环境中的降解速率和对于生物的毒性可能存在很大的差异,因此拆分并使用对靶标生物毒性较高或对非靶标生物毒性较低的单一或浓缩的对映体配方可以有效地降低杀虫剂的环境风险.本文用手性柱拆分了一种广泛使用的手性农药,氟虫腈的两种对映体,研究了这两种对映体和消旋体对靶标生物小菜蛾和非靶标生物斑马鱼的急性毒性.结果表明氟虫腈对受试靶标和非靶标生物的毒性均无手性选择性,说明无法通过对氟虫腈进行手性拆分并使用单一对映体配方来降低氟虫腈的环境风险.这一结论间接支持了农业部新近出台的禁止氟虫腈用于防治农田害虫的政策.  相似文献   
140.
Contamination of aquatic ecosystems with heavy metals has been receiving increased worldwide attention due to their harmful e ects on human health and other organisms in the environment. Most of the studies dealing with toxic e ects of metals deal with single metal species, while the aquatic organisms are typically exposed to mixtures of metals. Hence, in order to provide data supporting the usefulness of freshwater fish as indicators of heavy metal pollution, it has been proposed in the present study to investigate the bioaccumulation and depuration of chromium in the selected organs of freshwater fingerlings Cirrhinus mrigala, individually and in binary solutions with nickel. The results show that the kidney is a target organ for chromium accumulation, which implies that it is also the “critical” organ for toxic symptoms. The results further show that accumulation of nickel in all the tissues of C. mrigala is higher than that of chromium. In addition, the metal accumulations of the binary mixtures of chromium and nickel are substantially higher than those of the individual metals, indicating synergistic interactions between the two metals. Theoretically the simplest explanation for an additive joint action of toxicants in a mixture is that they act in a qualitatively similar way. The observed data suggest that C. mrigala could be suitable monitoring organisms to study the bioavailability of water-bound metals in freshwater habitats.  相似文献   
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号