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1.
基于不同测试终点的土壤锌毒性阈值及预测模型   总被引:4,自引:0,他引:4       下载免费PDF全文
采用基质诱导硝化(PNR)、大麦根伸长、西红柿及小白菜生长毒性测试方法,结合Log-logistic模型,对我国16种典型土壤中锌(Zn)的毒性阈值(ECx)进行了测定,同时对Zn毒性与土壤主要影响因子间的量化关系及其预测模型进行了研究.结果表明:我国土壤中Zn的毒性阈值在不同测试物种间存在较大差异,以小白菜、大麦、西红柿及土壤微生物(PNR)测试的EC10均值分别为322,356,336,297mg/kg,以土壤微生物测试最低,以大麦根伸长测定结果最高; EC50均值则分别为: 846,1471,1160,768mg/kg.不同测试方法对土壤中Zn毒性的敏感性顺序为:土壤微生物(PNR)>西红柿>小白菜>大麦,而不同测试方法的稳健性顺序则相反,表明PNR法是土壤Zn毒害最敏感的测试方法,而西红柿则是对土壤Zn污染胁迫最敏感的植物品种; 不同毒性测试结果显示,EC50阈值的测定结果要敏感于EC10,而EC10测定结果的变异系数普遍大于EC50的测定结果.pH值是影响土壤Zn毒性阈值最为重要的因子,而基于土壤pH值,CEC,有机碳含量的归趋化预测模型可以很好地预测土壤中Zn的生态风险阈值.  相似文献   

2.
Cd对我国不同类型土壤硝化活性影响的主控因子研究   总被引:1,自引:0,他引:1  
硝化作用是土壤中存在的一个重要生物学过程,其对环境条件的变化表现出极高的敏感性,其中包括重金属污染.本文选取我国10种不同类型土壤,采用室内模拟方法,研究硝化活性对不同Cd污染程度的响应特征以及影响Cd毒性的主要控制因素.结果表明:除红壤和黑土外,土壤硝化活性随外源Cd的增加而降低,采用Logistic模型和完全抑制模型可很好的表征两者之间的关系;通过Logistic模型获得的不同土壤ED25和ED50值分别为2.44~363.03 mg·kg~(-1)、10.99~553.64 mg·kg~(-1),由完全抑制模型拟合结果表明Cd对硝化活性的作用机理为完全抑制作用;基于土壤性质和ED50值建立的多元回归预测模型表明,pH和阳离子交换量(CEC)共同解释了回归模型变异的95.6%.综上表明在一定范围内土壤硝化活性可表征土壤Cd污染程度,土壤CEC和p H是影响Cd毒性的主控因素,可较好地预测土壤中外源Cd对硝化活性的毒性阈值.  相似文献   

3.
基于枯草芽孢杆菌微生物传感器的毒性分析   总被引:3,自引:0,他引:3       下载免费PDF全文
采用枯草芽孢杆菌(Bacillus subtilis)为指示生物的微生物传感器毒性分析系统,对重金属(Hg2+、Cu2+、Zn2+、Cr6+、Cd2+、Pb2+和Co2+)、有机污染物[邻氯苯酚(2-CP)、2,4-二氯酚(2,4-DCP)、邻硝基酚(2-NP)、对硝基酚(4-NP)、四环素和十二烷基苯磺酸钠]及石油废水等的生物急性毒性进行分析.结果表明,对数生长后期和稳定期的Bacillussubtilis微生物传感器具有良好的毒性分析性能,Cd2+、Zn2+、Cr6+、Cu2+、Hg2+、Pb2+对Bacillus subtilis的EC50分别为47.3,10.9,14.0,2.6,0.8,100.1mg/L,Co2+的EC30为56.6mg/L,2-CP、2,4-DCP、2-NP、4-NP、四环素和十二烷基苯磺酸钠的EC50分别为559.6,450.8,588.5,487.0,121.3,558.9mg/L,该微生物传感器能真实反映石油废水的毒性情况.  相似文献   

4.
为丰富完善我国土壤中Sb(锑)对植物的毒理学数据并为土壤Sb生态基准的制定提供依据,参照国际标准化组织颁布的植物毒性试验的标准方法(ISO 11269-2:2013),以外源添加的方式研究了我国17种典型土壤中Sb对甘蓝早期生长生物量的影响.结果表明:①基于全量Sb推导的甘蓝的毒性阈值EC10(10%抑制效应浓度)变化范围为100.55~656.65 mg/kg,表明不同土壤中Sb的毒性差异显著,但基于有效态Sb(Na2HPO4溶液提取)推导的不同土壤中EC10的变化范围为8.28~24.05 mg/kg,其EC10差异有所减小;②相关性分析表明,基于土壤全量Sb推导的EC10与w(OM)(OM为有机质)、w(TN)(TN为全氮)和CEC(阳离子交换量)均呈显著正相关(相关系数为0.746~0.779),而基于有效态Sb推导的EC10与w(Fe)和w(Mn)呈显著正相关(相关系数为0.479~0.615);③多元回归分析进一步表明,土壤pH、w(OM)和CEC可以解释基于全量Sb推导的EC10值74.6%的变异,w(OM)和w(Mn)可以解释基于有效态Sb推导的EC10值62.6%的变异.研究显示,Sb的Na2HPO4提取态能在一定程度上解释不同土壤中Sb对甘蓝的毒性差异,pH、w(OM)、CEC和w(Mn)是影响Sb对植物毒性的土壤主控因子,可以较好地预测Sb的毒性阈值.   相似文献   

5.
为科学评估PM_(2.5)对生物体的综合生物效应,利用费氏弧菌检测了PM_(2.5)水溶性提取液的光抑制效应,统计分析了227组PM_(2.5)主要组分与发光抑制率的相关关系.实验结果表明:PM_(2.5)水溶性提取液的发光抑制率值与OC、NO-3、EC和微量元素等组分浓度显著相关,相关系数从高到低的排序为:OC微量元素ECNO-3(p0.01).PM_(2.5)中,主要来自燃煤、交通燃油、生物质燃烧及冶金工业污染源排放的组分(苯并(a)芘、Cl-、OC、Cu、K+、Mn、Zn、EC、Pb、Se、F-等)浓度与发光抑制率显著相关.此外,二次来源的NO-3、NH+4等组分浓度与发光抑制率在冬季和春季显著相关.  相似文献   

6.
土壤中铜生态阈值的影响因素及其预测模型   总被引:1,自引:0,他引:1  
利用中国土壤的铜毒理学数据通过物种敏感性分布法推导了土壤中铜的不同风险水平(P%)的毒害浓度值(P% Hazardous concentration, HCp),并利用淋洗―老化因子校正HCp获得不同土地类型土壤中铜的生态阈值,探讨了土壤性质对铜生态阈值的影响并建立了两者之间的量化关系.结果表明,土壤性质对铜的生态阈值有显著影响,土壤pH值和阳离子交换量(CEC)是影响土壤铜生态阈值的最主要因子,可达铜生态阈值变异的80%以上.基于土壤pH值和CEC的两因子回归模型能较好地预测铜生态阈值,其决定系数R2为0.820~0.913;增加土壤有机碳含量(OC)的三因子模型具有更高的准确性,其决定系数R2为0.852~0.988.研究结果可为科学合理地进行土壤中铜的生态风险评价和建立土壤环境质量标准提供依据.  相似文献   

7.
土壤中铜生态阈值的影响因素及其预测模型   总被引:2,自引:0,他引:2       下载免费PDF全文
利用中国土壤的铜毒理学数据通过物种敏感性分布法推导了土壤中铜的不同风险水平(P%)的毒害浓度值(P%Hazardous concentration,HCp),并利用淋洗―老化因子校正HCp获得不同土地类型土壤中铜的生态阈值,探讨了土壤性质对铜生态阈值的影响并建立了两者之间的量化关系.结果表明,土壤性质对铜的生态阈值有显著影响,土壤pH值和阳离子交换量(CEC)是影响土壤铜生态阈值的最主要因子,可达铜生态阈值变异的80%以上.基于土壤pH值和CEC的两因子回归模型能较好地预测铜生态阈值,其决定系数R2为0.820~0.913;增加土壤有机碳含量(OC)的三因子模型具有更高的准确性,其决定系数R2为0.852~0.988.研究结果可为科学合理地进行土壤中铜的生态风险评价和建立土壤环境质量标准提供依据.  相似文献   

8.
为探究Zn2+和Cd2+对轮虫种群增长的单一和联合毒性效应,在不同温度(15、20和25 ℃)和斜生栅藻(Scenedesmus obliquus)不同密度(0.5×106、1.0×106和2.0×106 mL-1)下,以萼花臂尾轮虫(Brachionus calyciflorus)为受试生物,采用3 d种群累积培养方法,研究了不同 Zn2+污染处理组〔ρ(Zn2+)分别为0.315、0.630和1.260 mg/L〕、Cd2+污染处理组〔ρ(Cd2+)分别为0.073、0.145和0.289 mg/L〕、Zn2+-Cd2+复合污染处理组〔ρ(Zn2+)、ρ(Cd2+)分别为0.315、0.073 mg/L,0.630、0.145 mg/L和1.260、0.289 mg/L〕 对轮虫种群增长率和混交雌体百分率的影响. 结果表明:当藻密度为0.5×106和2.0×106 mL-1时,与对照组相比,随着温度上升,对轮虫种群增长率产生抑制作用的处理组数明显增加,高温(25 ℃)下,所有处理组均显著降低轮虫种群增长率. 15和20 ℃下,与较低、中等藻密度(0.5×106、1.0×106 mL-1)相比,较高藻密度(2.0×106 mL-1)下轮虫种群受到毒性影响的处理组数明显减少;25 ℃下,各处理组轮虫种群增长率均随藻密度的升高而增加. 在温度为15和20 ℃、藻密度为0.5×106 mL-1条件下,Zn2+-Cd2+复合污染处理〔当ρ(Zn2+)、ρ(Cd2+)分别为1.260、0.289 mg/L时〕的轮虫种群增长率明显低于ρ(Zn2+)为1.260 mg/L和ρ(Cd2+)为0.289 mg/L时的轮虫种群增长率;温度为25 ℃、藻密度为2.0×106 mL-1条件下,Zn2+-Cd2+复合污染处理〔当ρ(Zn2+)、ρ(Cd2+)分别为0.630、0.145 mg/L时〕的轮虫种群增长率明显低于ρ(Zn2+)为0.630 mg/L和ρ(Cd2+)为0.145 mg/L时的轮虫种群增长率. 研究显示,温度、藻密度和重金属质量浓度之间的交互作用对轮虫种群增长率的影响大于其对混交雌体百分率的影响,随着温度的升高和藻密度的降低,Zn2+、Cd2+对轮虫的单一和联合毒性效应增加.   相似文献   

9.
水稻土中外源Cd老化的动力学特征与老化因子   总被引:6,自引:0,他引:6  
选择5种不同性质的水稻土,通过外源添加制备了6个不同浓度梯度的Cd污染土壤,研究了外源Cd在几种水稻土中的老化动力学特征与影响因子;同时利用盆栽实验,结合Log-logistic分布模型,研究了5个不同老化时间(14、30、60、90和180d)与土壤中Cd对二种不同Cd敏感性水稻生长毒性的影响.结果表明,不同浓度外源Cd进入土壤后,0.05mol/L EDTA-2Na浸提的有效态Cd含量随着老化时间的增加而逐渐下降;与14d处理相比,老化30d后土壤中有效态Cd降幅达21.5%(红壤)~38.0%(黑土);老化90d后,土壤中Cd进入慢反应阶段. 基于二级动力学方程的拟合参数显示,土壤中Cd的老化特征表现为有效态Cd含量在30~60d内快速降低,随后变化减缓,经过90d的老化后,土壤中有效态Cd含量逐渐趋于平衡.基于老化动力学方程参数(C∞及K2)与土壤性质间的相关性分析表明,土壤pH值是影响Cd有效态含量变化的主控因子,其次是土壤CEC和OC含量.在不同性质土壤中,随着老化时间的增加,土壤中外源Cd对水稻生长毒性的半抑制浓度(EC50)值显著升高;与14d老化处理相比,经过180d老化后土壤中Cd对水稻生长毒性的EC50增加72.1%~195.0%;在大于90d的长期老化过程中,土壤pH值对Cd老化过程的影响逐渐降低,而CEC的影响逐渐上升,尽管如此,土壤中Cd老化过程的主要影响因子仍然是土壤pH,而与测试的2种水稻品种无关.  相似文献   

10.
嗜冷杆菌(Psychrobacter sp.)微生物传感器毒性分析性能研究   总被引:1,自引:0,他引:1  
采用嗜冷杆菌(Psychrobacter sp.)微生物传感器毒性分析系统,对Hg2+、Cu2+、Zn2+、Cr6+、Cd2+、Pb2+、Co2+等重金属和邻氯苯酚(2-CP)、2,4-二氯酚(2,4-DCP)、邻硝基酚(2-NP)、对硝基酚(4-NP)、四环素、十二烷基苯磺酸钠(LAS)等有机物的生物急性毒性进行分析.试验结果表明,基于对数生长后期和稳定期的Psychrobacter sp.微生物传感器具有良好的毒性分析性能,呼吸基质盐度低于10%和pH=5~10时,对Psychrobacter sp.微生物传感器的分析性能影响不明显.测试得到Cd2+、Zn2+、Cr6+、Cu2+、Hg2+和Pb2+对Psychrobacter sp.的半数有效浓度(EC50)分别为47.3、10.9、14.0、2.6、0.8和100.1mg·L-1,Co2+的30%有效浓度(EC30)为56.6mg·L-1;4-NP、2,4-DCP、四环素和LAS的EC50分别为424.4、163.8、103.5和754.6mg·L-1,2-NP和2-CP的EC30值分别为249.23和195.6mg·L-1.  相似文献   

11.
The influence of soil properties on toxicity threshold values for Pb toward soil microbial processes is poorly recognized. The impact of leaching on the Pb threshold has not been assessed systematically. Lead toxicity was screened in 17 Chinese soils using a substrate-induced nitrification (SIN) assay under both leached and unleached conditions. The effective concentration of added Pb causing 50% inhibition (EC50) ranged from 185 to > 2515 mg/kg soil for leached soil and 130 to > 2490 mg/kg soil for unleached soil. These results represented > 13- and > 19-fold variations among leached and unleached soils, respectively. Leaching significantly reduced Pb toxicity for 70% of both alkaline and acidic soils tested, with an average leaching factor of 3.0. Soil pH and CEC were the two most useful predictors of Pb toxicity in soils, explaining over 90% of variance in the unleached EC50 value. The relationships established in the present study predicted Pb toxicity within a factor of two of measured values. These relationships between Pb toxicity and soil properties could be used to establish site-specific guidance on Pb toxicity thresholds.  相似文献   

12.
A study on variable charge soils (volcanic Italian and podzolic Scottish soils) was performed to investigate the influence of soil properties on the chemical composition of soil solution. Zinc speciation, bioavailability and toxicity in the soil solution were examined. The soils were spiked with increasing amounts of Zn (0, 100, 200, 400 and 1000 mg/kg) and the soil solutions were extracted using rhizon soil moisture samplers. The pH, total organic carbon (TOC), base cations, anions, total Zn and free Zn2+ in soil solution were analysed. A rapid bioassay with the luminescent bacterium Escherichia coli HB101 pUCD607 was performed to assess Zn toxicity. The influence of soil type and Zn treatments on the chemical composition of soil solution and on Zn toxicity was considered and discussed. Di erent trends of total and free Zn concentrations, base cations desorption and luminescence of E. coli HB101 pUCD607 were observed. The soil solution extracted from the volcanic soils had very low total and free Zn concentrations and showed specific Zn2+/Ca2+ exchange. The soil solution from the podzolic soil had much higher total and free Zn concentrations and showed no evidence of specific Zn2+/Ca2+ exchange. In comparison with the subalkaline volcanic soils, the acidic podzol showed enhanced levels of toxic free Zn2+ and consequently stronger effects on E. coli viability.  相似文献   

13.
为了解设施菜地土壤重金属累积规律及影响因,通过在全国8个省具有代表性的设施蔬菜产区采集土壤和肥料样品,系统研究了设施栽培年限、肥料施用、土壤性质对设施菜地土壤重金属Cu、Zn、Cd累积量及活度的影响.结果表明:与露天栽培相比,设施条件下随着栽培年限的延长,土壤Cu、Zn和Cd的全量和有效态浓度均呈明显的累积趋势,栽培年限>15a时的设施土壤Cu、Zn和Cd的全量和有效态浓度分别是露天栽培土壤的1.57、2.16、1.67、3.28、1.96、2.00倍.Pearson分析表明设施菜地土壤Cu、Zn、Cd均与土壤SOM呈极显著相关,说明其在来源上较强的相似性,进一步对设施栽培土壤主要投入品中Cu、Zn、Cd含量分析表明,猪粪、商品有机肥及土壤调理剂中Cu、Zn均超过了100mg/kg,Cd超过了1.0mg/kg,且投入量较大,是设施栽培土壤中Cu、Zn、Cd的主要贡献者,而秸秆和部分化肥(如尿素、硫酸钾)中的Cu、Zn、Cd含量均极低,对设施栽培土壤累积贡献微乎其微.pH值和CEC是影响Cu、Zn、Cd在土壤中累积活度的关键因素,其中随着pH值的升高土壤Cu活度表现了先升高后下降的趋势,而土壤Cd活度则表现了持续下降的趋势,仅在pH<6.26时达到了显著相关水平;土壤CEC的升高对土壤Cu活度表现了先下降后升高再下降的趋势,土壤Cd活度表现了先升高后缓慢下降再升高的趋势,而土壤Zn活度仅在CEC<5.83时随着CEC升高表现下降显著线性相关趋势.因此,防止设施栽培土壤Cu、Zn、Cd的累积与污染,选择重金属含量低的肥料和调控土壤理化特性(尤其是pH值、CEC)则是缓解设施栽培土壤重金属累积速率进而确保蔬菜质量安全的有效途径.  相似文献   

14.
The effect of incubation temperature and wet-dry cycle on the availabilities of Cd, Pb and Zn was studied. Three soils with pH ranging from 3.8 to 7.3, organic carbon (OC) from 0.7% to 2.4%, and clay from 12.3% to 35.6% were selected. Soils were spiked with reagent grade Cd(NO3)2, Pb(NO3)2, and Zn(NO3)2 at concentrations of 30 mg Cd/kg soil, 300 mg Zn/kg soil and 2000 mg Pb/kg soil. The soils were incubated at 35, 60, 105℃, respectively and went through four wet-dry cycles. Metal availability in soils was estimated by soil extraction with 0.1 mol/L Ca(NO3)2. According to this study, the effect of the spiking temperature on the metal availabilities was different among the metals, soils and wet-dry cycles. Mostly, 35 ~C was the first recommended spiking temperature for Cd and Pb while no spiking temperature was obviously better than others for Zn. Three wet-dry cycles was recommended regardless of the type of metals and incubation temperature.  相似文献   

15.
Heavy metal contamination of soils through anthropogenic activities is a widespread and serious problem confronting scientists and regulators throughout the world. In this study we investigated the distribution, chemical species and availability of lead, zinc, cadmium and copper in nine surface(0 to 20 cm) soils from near an abandoned lead/zinc mine tailings located in Shaoxing, Zhejiang, China. Total heavy metal contents ranged from 5271 to 16369 mg/kg for Pb, 387 to 1221 mg/kg for Zn, 3.0 to 9.3 mg/kg for Cd and 65 to 206 mg/kg for Cu. In general, all heavy metals exceeded China National Standards for Soil Environmental Quality of Heavy Metals by a factor of 3-65 times. Comparison of the heavy metal concentrations(Pb, Zn, Cd and Cu) with clay content revealed a strongly significant relationship while significant relationship( P 〈 0.001 ) was also obtained between Cd + Zn and Pb + Cu. Solid phase speciation of the soils using Tessier procedure showed that the heavy metals were distributed in the order: residual 〉〉 organically complexed-Fe-Mn oxides occluded 〉 carbonate bound 〉 exchangeable 〉 water soluble. In the organic matter fraction, the ratio of Pb(29.1% ) to its total concentration in the soils was higher than those of Zn(4.70% ), Cd(3.16% ) and Cu(9.50% ). The percentages of the water soluble and the exchangeable fractions of Pb(1.80% ) and Cd(2.74% ) were markedly greater than those of Zn(0.10% ) and Cu(0.15% ), suggesting that Pb and Cd are relatively more mobile and hence more toxic in the contaminated soils. Strongly significant relationships between H20-Pb, H20-Zn and H20-Cu, strong positive correlations between H20-Pb, H20-Zn, H20-Cu and organic matter in soil were found. The content of H20-Pb, H20-Zn, H20-Cu was negatively correlated with pH values. The similar negative relationships between pH values and exchangeable heavy metals were also recorded. It is suggested that increasing soil pH or liming the soil could decrease bioavailability of heavy metals in the soil.  相似文献   

16.
This study was conducted to assess availability, phytotoxicity and bioaccumulation of lead (Pb) to ryegrass (Lolium perenne L.) and millet (Echinochloa crusgalli) based on the 0.1 mol/L Ca(NO3)2 extraction. Effect of soil properties on availability, phytotoxicity and bioaccumulation of Pb to the two plants was also evaluated. Five soils with pH values varying from 3.8 to 7.3, organic carbon (OC) contents from 0.7% to 2.4%, and clay contents from 11.6% to 35.6% were selected. Soils were spiked with Pb to achieve a range of concentrations: 250, 500, 1000, 3000 and 5000 mg/kg. Pb availability in the spiked soils was estimated by extracting soil with 0.1 mol/L Ca(NO3)2. The results indicate that plants yield decreased with decreasing soil pH and increased with increasing soil clay and OC content. Negative relationship between available Pb and the relative dry matter growth (RDMG) of the two plants were significantly related. Available Pb used to assess EC20 (20% effective concentration) and EC50 (50% effective concentration) of millet was 119 and 300 mg/kg, respectively. Available Pb used to assess EC20 and EC50 of ryegrass was 63 and 157 mg/kg, respectively. Bioaccumulation, expressed as bioconcentration factors of Pb, was inversely related to soil pH, soil OC and clay content. Strong relationships were found between available lead and uptake by the two plants (P was 0.92 and 0.95 respectively). In general, 0.1 mol/L Ca(NO3)2 available Pb may be used to assess the availability, phytotoxicity and bioaccumulation of lead to the two plants tested.  相似文献   

17.
为确定我国土壤中Cu对白符跳的毒性阈值并建立其预测模型,以外源添加的方式研究了我国9种典型土壤(江西红壤、安徽黄棕壤、重庆紫色土、云南黄红壤、湖南水稻土、山东潮土、黑龙江黑土、新疆灰漠土、陕西垆土)中Cu对模式生物——白符跳(Folsomia candida)存活率与繁殖率的影响.结果表明:白符跳存活率对Cu毒害的敏感性远低于繁殖率.9种土壤中基于w(TCu)实测值推导的土壤Cu对白符跳繁殖率的EC50(半数效应浓度)变化范围为65~668 mg/kg,表明不同土壤中Cu的毒性阈值差异显著,但基于w(CuCa)(CuCa为CaCl2溶液提取的Cu)推导的不同土壤中EC50的差异有所减小.相关性分析表明,基于w(TCu)实测值推导的EC50值与土壤pH、w(CaCO3)均呈显著正相关,相关系数分别为0.801和0.670.进一步利用回归分析建立了基于pH和w(OM)的土壤Cu对白符跳繁殖的EC50预测模型——lg(EC50)=0.213+0.288pH+0.016 w(OM),基于该模型预测与推导的EC50值之间相关性较好.研究显示,氯化钙提取态Cu的存在能在一定程度上解释不同土壤中Cu对白符跳繁殖的EC50值的差异,pH和w(OM)可较好地预测不同土壤中Cu对白符跳繁殖的EC50值.   相似文献   

18.
为探究锌(Zn)污染对农田土壤氧化亚氮(N2O)排放的影响,分别以猪粪和尿素为肥源进行室内培养实验,对比分析不同含量Zn (0、50、500、1500和5000mg/kg)对N2O排放的影响及其机制,并在培养第52d向所有处理再次添加尿素以探究其长期效应,共培养80d.结果表明:第1次添加肥料阶段,在尿素为肥源处理中不同含量Zn均表现为显著抑制作用(P<0.05),而猪粪为肥源处理中除50mg/kg无显著影响外(P>0.05),其它含量处理均显著促进N2O排放(P<0.05).第2次添加肥料阶段,不同肥源条件下Zn的作用规律一致,即50mg/kg无显著影响(P>0.05),500和1500mg/kg显著提高N2O排放而5000mg/kg处理与之相反(P<0.05).此阶段500、1500和5000mg/kg处理以猪粪和尿素为肥源时其N2O累积排放量与同肥源对照的比值分别为3.49、3.13、0.01和2.53、2.74、0.04,可见同等含量Zn在猪粪为肥源条件下作用更强,500和1500mg/kg Zn的促进机制为Zn提高了土壤中NH4+-N、NO3--N含量以及控制反硝化过程N2O产生和还原功能基因相对丰度的比值(nirS/nosZ),而5000mg/kg Zn抑制了土壤中NH4+-N进一步转化为NO3--N,从而降低了N2O排放.  相似文献   

19.
2种组配改良剂对稻田土壤重金属有效性的效果   总被引:20,自引:0,他引:20  
为研究2种组配改良剂LS(碳酸钙+海泡石)和HZ(羟基磷灰石+沸石)对土壤重金属的生物有效性以及水稻吸收累积重金属的影响,在湘南某矿区附近污染稻田中施用了不同添加量(0,2,4,8g/kg)的两种组配改良剂,并进行了水稻种植的田间试验.结果表明,施用2~8g/kg组配改良剂LS和HZ均能使土壤pH值和CEC含量显著增加,有机质含量变化不明显,LS比HZ更能提高土壤pH值和CEC含量.施用2~8g/kg组配改良剂LS能使土壤中Pb、Cd、Cu和Zn的TCLP提取态含量分别降低25.7%~52.2%、12.7%~25.7%、6.4%~17.2%和8.6%~23.4%,施用2~8g/kg HZ使土壤中Pb、Cd、Cu和Zn的TCLP提取态含量分别降低57.6%~80.1%、7.0%~40.9%、2.3%~22.7%和4.5%~33.2%.两种组配改良剂能显著降低土壤中Pb、Cd、Cu和Zn的生物有效性,抑制水稻植株对Pb和Cd的吸收,土壤Pb、Cd和Cu的TCLP提取态含量与水稻根系和糙米中Pb、Cd和Cu的含量之间存在显著或极显著的正相关关系,TCLP提取态含量能较好的表示重金属在土壤中的生物有效性.  相似文献   

20.
The bioavailability of humic substance-bound mercury (HS-Hg) has been established, while the distribution of HS-Hg in soils in relation to soil properties remains obscure. Path analysis and principal component analysis were employed in present study to investigate how soil factors influence the contents of HS-Hg in soils. Results showed that HS-Hg ranged from 0.0192 to 0.2051 mg/kg in soils. The two fractions existed in soils as humic acid-bound mercury (HA-Hg) 〉 fulvic acid-bound mercury (FA-Hg) and the ratio of HA-Hg/FA-Hg was 1.61 on the average. Soil organic carbon (OC) and HS favorably determined soil HS-Hg and the two fractions. The mercury source forming HS-Hg derived from soil total mercury and HS-Hg. FA-Hg and HA-Hg served as mercury source for each other. In acidic soils, FA-Hg and HA-Hg consistently rose with the increase of OC, and generally HA-Hg increased more dramatically. Soils with lower pH and lighter texture contained more HS-Hg, particularly fraction of FA-Hg. Among all influencing factors, organic material source showed the strongest effect, followed by other soil properties and soil mercury source.  相似文献   

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