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   699篇
  免费   131篇
  国内免费   697篇
安全科学   46篇
废物处理   94篇
环保管理   57篇
综合类   1015篇
基础理论   90篇
污染及防治   220篇
评价与监测   4篇
社会与环境   1篇
  2024年   3篇
  2023年   12篇
  2022年   43篇
  2021年   42篇
  2020年   52篇
  2019年   71篇
  2018年   57篇
  2017年   52篇
  2016年   76篇
  2015年   88篇
  2014年   88篇
  2013年   83篇
  2012年   107篇
  2011年   92篇
  2010年   72篇
  2009年   76篇
  2008年   52篇
  2007年   81篇
  2006年   99篇
  2005年   65篇
  2004年   64篇
  2003年   46篇
  2002年   24篇
  2001年   20篇
  2000年   10篇
  1999年   6篇
  1998年   5篇
  1997年   7篇
  1996年   4篇
  1995年   9篇
  1994年   8篇
  1993年   4篇
  1992年   2篇
  1991年   1篇
  1990年   1篇
  1988年   1篇
  1984年   1篇
  1974年   1篇
  1973年   2篇
排序方式: 共有1527条查询结果,搜索用时 15 毫秒
51.
双筒型微生物燃料电池生物阴极反硝化研究   总被引:12,自引:0,他引:12  
梁鹏  张玲  黄霞  范明志  曹效鑫 《环境科学》2010,31(8):1932-1936
利用双筒型微生物燃料电池生物阴极实现电反硝化脱氮,考察外电阻大小、进水硝酸盐和有机物浓度对产电和反硝化的影响.当外电阻从50Ω下降到5Ω,硝酸盐去除速率由0.26 mg/(L.h)上升到0.76 mg/(L.h);在外电阻为5Ω时,亚硝氮积累浓度达55 mg/L;硝酸盐起始浓度在20~120 mg/L时硝酸盐降解满足0级反应,硝酸盐浓度对MFC产电影响不显著;亚硝氮的积累浓度随硝酸盐起始浓度增加而增加,最高可达到35 mg/L;有机物的加入能提高阴极反硝化速度,避免亚硝酸盐积累,对MFC产电影响不大.  相似文献   
52.
城市污水培养好氧颗粒污泥的中试研究   总被引:5,自引:5,他引:0  
涂响  苏本生  孔云华  竺建荣 《环境科学》2010,31(9):2118-2123
以城市污水为处理对象,在中试SBR反应器中接种厌氧消化污泥,经过210 d运行,培养出了平均粒径在330μm的好氧颗粒污泥.实验表明,经过前3个月较低的进水有机负荷,反应器对污染物的去除效果逐步提高并达到稳定,活性污泥中与脱氮除磷相关的微生物大量富集.运行周期缩短为6 h,污泥的沉降性能和污染物去除特性保持良好,同时污泥平均粒径开始增大.好氧颗粒污泥完全形成以后,SVI值为30 mL.g-1,污泥浓度MLSS达到8.8 g.L-1,MLVSS/MLSS增至82%,氧利用速率OUR达到5.32 mg.(min.L)-1.颗粒外层以杆状菌为主,内层主要是球菌.单个周期内颗粒污泥对COD和总磷的去除率保持在90%,氨氮几乎完全去除,出水中无硝氮和亚硝氮累积,总氮的去除率达到80%,实现了良好的同步硝化反硝化和同步脱氮除磷效果.  相似文献   
53.
The aim of this study is to investigate the denitrification potential enhancement by addition of external carbon sources and to estimate the denitrification potential for the predenitrification system using nitrate utilization rate (NUR) batch tests. It is shown that the denitrification potential can be substantially increased with the addition of three external carbon sources, i.e. methanol, ethanol, and acetate, and the denitrification rates of ethanol, acetate, and methanol reached up to 9.6, 12, and 3.2 mgN/(g VSS.h), respectively, while that of starch wastewater was only 0.74 mgN/(g VSS,h). By comparison, ethanol was found to be the best external carbon source. NUR batch tests with starch wastewater and waste ethanol were carried out. The denitfification potential increased from 5.6 to 16.5 mg NO3-N/L owing to waste ethanol addition. By means of NUR tests, the wastewater characteristics and kinetic parameters can be estimated, which are used to determine the denitrification potential of wastewater, to calculate the denitrification potential of the plant and to predict the nitrate effluent quality, as well as provide information for developing carbon dosage control strategy.  相似文献   
54.
To understand the effects of long-term amendment of organic manure and N fertilizer on N2O emission in the North China Plain, a laboratory incubation at different temperatures and soil moistures were carried out using soils treated with organic manure (OM), half organic manure plus half fertilizer N (HOM), fertilizer NPK (NPK), fertilizer NP (NP), fertilizer NK (NK), fertilizer PK (NK) and control (CK) since 1989. Cumulative N2O emission in OM soil during the 17 d incubation period was slightly higher than in NPK soil under optimum nitrification conditions (25℃ and 60% water-filled pore space, WFPS), but more than twice under the optimum denitrification conditions (35℃ and 90% WFPS). N2O produced by denitrification was 2.1-2.3 times greater than that by nitrification in OM and HOM soils, but only 1.5 times greater in NPK and NP soils. These results implied that the long-term amendment of organic manure could significantly increase the N2O emission via denitrification in OM soil as compared to NPK soil. This is quite different from field measurement between OM soil and NPK soil. Substantial inhibition of the formation of anaerobic environment for denitrification in field might result in no marked difference in N2O emission between OM and NPK soils. This is due in part to more rapid oxygen diffusion in coarse textured soils than consumption by aerobic microbes until WFPS was 75% and to low easily decomposed organic C of organic manure. This finding suggested that addition of organic manure in the tested sandy loam might be a good management option since it seldom caused a burst of N2O emission but sequestered atmospheric C and maintained efficiently applied N in soil.  相似文献   
55.
李洪静  陈银广  顾国维 《环境科学》2007,28(8):1681-1686
2个实验室规模的序批式反应器(SBRs)在厌氧-低氧(0.15~0.45 mg·L-1)条件下运行,以比较丙酸的加入对同时生物除磷脱氮系统的影响.结果表明,无论是丙酸与乙酸的混合酸(碳摩尔比为1.5/1)作为碳源(SBR1),还是乙酸作为单独碳源(SBR2),系统都发生同步硝化反硝化和磷的去除(SNDPR),并且氨氮被全部氧化,系统中没有亚硝酸盐的大量累积.与SBR2相比,SBR1中厌氧阶段磷释放量少,聚羟基戊酸(PHV)合成量高,好氧末磷剩余量少,硝态氮累积少,因此SBR1中总氮和总磷的去除率(分别为68%和95%)比SBR2(分别为51%和92%)高,加入丙酸有助于SNDPR系统保持较好的除磷、脱氮效果.  相似文献   
56.
戴兴春  黄民生  徐亚同  谢冰 《环境科学》2007,28(8):1882-1888
针对石化工业废水开展沸石强化脱氮处理试验研究,通过比较沸石浓度25mg/L与空白,以及沸石浓度25 mg/L与50mg/L两阶段脱氮效果,探讨沸石促进脱氮功能的机理,结果表明,曝气池中投加沸石可明显提高氨氮和总氮的去除率,硝化细菌总数和硝化功能也得到增强。与空白对照组相比, 沸石浓度25mg/L的试验组运行稳定后,氨氮去除率提高约10%~13%,总氮去除率约提高13%,出水中NO3--N含量约提高100%,氨氮与总氮之比下降6%,内源硝化耗氧呼吸速率可提高138%,硝化细菌总数是空白对照组2.2folds。沸石浓度提高到50mg/L后,试验组的脱氮效果略有增加,但效果不明显。通过对试验结果的关联分析,认为沸石提高系统脱氮能力的原因一方面是因为沸石对NH4+及硝态氮的交换吸附,另一方面NH4+离子富集于沸石表面及内部、沸石颗粒独特的好氧-缺氧微环境,以及沸石离解出CO32- 或HCO3-增加碱度等条件,促进了硝化细菌和反硝化细菌的生长,从而提高了系统脱氮能力。  相似文献   
57.
Removal of inorganic nitrogen (inorganic-N) from toilet wastewater, using a pilot-scale airlift external circulation membrane bioreactor (AEC-MBR) was studied. The results showed that the use of AEC-MBR with limited addition of alkaline reagents and volumetric loading rates of inorganic-N of 0.19-0.40 kg inorganic-N/(m3·d) helped achieve the desired nitrification and denitrification. Furthermore, the effects of pH and dissolved oxygen (DO) on inorganic-N removal were examined. Under the condition of MLSS at 1.56-2.35 g/L, BOD5/ammonia nitrogen (NH/-N) at 1.0, pH at 7.0-7.5, and DO at 1.0-2.0 mg/L, the removal efficiencies of NH4 -N and inorganic-N were 91.5% and 70.0%, respectively, in the AEC-MBR. The cost of addition of alkaline reagent was approximately 0.5-1.5 RMB yuan/m3, and the energy consumption was approximately 0.72 kWh/m3 at the flux of 8 L/(m2·h).  相似文献   
58.
An UASB+Anoxic/Oxic (A/O) system was introduced to treat a mature landfill leachate with low carbon-to-nitrogen ratio and high ammonia concentration. To make the best use of the biodegradable COD in the leaehate, the denitrifieation of NOx^--N in the reeireulation effluent from the elarifier was carried out in the UASB. The results showed that most biodegradable organic matters were removed by the denitrifieation in the UASB. The NH4^+-N loading rate (ALR) of A/O reactor and operational temperature was 0.28- 0.60 kg NH4^+-N/(m^3-d) and 17-29℃ during experimental period, respectively. The short-cut nitrification with nitrite accumulation efficiency of 90%-99% was stabilized during the whole experiment. The NH4^+-N removal efficiency varied between 90% and 100%. When ALR was less than 0.45 kg NH4^+-N/(m^3.d), the NH4^+-N removal efficiency was more than 98%. With the influent NH4^+-N of 1200-1800 mg/L, the effluent NH4^+-N was less than 15 mg/L. The shortcut nitrification and denitrifieation can save 40% carbon source, with a highly efficient denitrifieation taking place in the UASB. When the ratio of the feed COD to feed NH4^+-N was only 2-3, the total inorganic nitrogen (TIN) removal efficiency attained 67%-80%. Besides, the sludge samples from A/O reactor were analyzed using FISH. The FISH analysis revealed that ammonia oxidation bacteria (AOB) accounted for 4% of the total eubaeterial population, whereas nitrite oxidation bacteria (NOB) accounted only for 0.2% of the total eubaeterial population.  相似文献   
59.
强化厌氧污泥体系同步脱硫反硝化特性研究   总被引:4,自引:2,他引:2  
徐金兰  侯圣春  黄廷林 《环境科学》2010,31(5):1246-1251
以硫化物为电子给体的自养反硝化厌氧体系是代替传统异养反硝化工艺处理低C/N比含氮废水的有效工艺,可以同时去除硫化物和硝酸盐.将脱氮硫杆菌菌悬液接种到厌氧污泥体系中,脱氮硫杆菌快速富集,采用5组进水比N/S比不同的反应瓶进行试验,运行15d后,测定不同时段的出水硫化物、硝酸盐、亚硝酸盐、硫酸盐浓度等指标,考察强化厌氧污泥体系去除硫化物和硝酸盐的特性,并对生化反应机制进行初步研究.结果表明,强化厌氧污泥体系运行3h后,进水中90%的硫化物被去除,硫化物的去除与进水N/S比无关,硫化物(以S计)去除速率高达20~24g·(m3·h)-1,是相关文献报道的10倍左右;运行6h后,进水中65%的硝氮被去除,硝氮的去除负荷随着进水N/S比的提高而增大,最高达到940g·(m3·h)-1,约为硫自养反硝化体系硝氮去除负荷的2倍,此时体系中亚硝氮积累,最高浓度达到93mg·L-1,进水N/S比低的条件下,6h后亚硝氮消失,进水N/S比较高时,21h后出水中未检测到亚硝氮.表明强化厌氧污泥体系停留6h后可以实现同时去除硫化物和硝酸盐,但硝酸盐首先转化为亚硝氮.与以往不同的是研究发现硫化物与生物硫粒产生多硫化合物的链式反应,是硫化物迅速转化的主要途径,此外,还原硝氮的电子给体并不来源于硫化物,可能主要来源于体系中产生的单质硫.  相似文献   
60.
研究了A/O-MBR工艺低温(水温在5~12℃)启动效能,结果表明,低温下A/O-MBR工艺启动迅速,活性污泥的培养驯化时间较短。启动过程中根据出水水质情况,逐渐提高负荷,运行34 d,系统对COD的去除率能达到90%以上,系统对氨氮的去除率能达到96%以上,至稳定运行后氨氮的负荷平均可达到0.419kg/(m3.d),反硝化效果系统去除率基本能稳定在60%左右。  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