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排序方式: 共有368条查询结果,搜索用时 15 毫秒
1.
石灰对生物炭和腐殖酸阻控水稻Cd吸收的效应   总被引:1,自引:0,他引:1  
采用田间试验,研究了石灰-生物炭和石灰-腐殖酸两种联合修复剂及其不同施用量对酸性土壤中稻米Cd含量、产量和品质的影响,并对不同处理修复效果进行综合评估.结果表明,两种联合修复剂能显著降低稻米Cd含量17.39%~45.96%,降低土壤有效Cd含量18.29%~29.88%,.生物炭、腐殖酸施用量分别为5000,6000kg/hm2时,稻米Cd的降低效果最佳.石灰-生物炭处理中,降低稻米Cd含量的主要因子为土壤pH和土壤有效Cd含量(P<0.05),而石灰-腐殖酸处理则为土壤有机质含量与土壤有效Cd含量(P<0.05).施加修复剂后稻米产量可达6637~7890kg/hm2,直链淀粉含量达到19.47%~27.26%;当腐殖酸施用量为7500kg/hm2时可使稻米产量提高10.97%,而石灰-生物炭处理对稻米产量无显著影响;采用层次分析法确定了稻米Cd含量、稻米产量、稻米品质和修复费用在修复效应评估中所占权重为0.608、0.150、0.102、0.140,综合评估结果显示土壤-水稻系统Cd阻控效应的联合修复技术为:在施用1200kg/hm2石灰的基础上同时施加6000kg/hm2腐殖酸.  相似文献   
2.
石灰石-石灰乳二段中和法处理矿山酸性废水   总被引:12,自引:0,他引:12  
分析了处理含重金属离子矿山酸性废水的处理工艺。通过实例说明石灰石-石灰乳二段中和法与传统的石灰乳中和工艺相比,有较大的优越性,可以降低处理成本和减少沉渣的产生量。  相似文献   
3.
聚合氯化铝铁检验方法研究   总被引:1,自引:0,他引:1  
聚合氯化铝铁是一种新型净水剂,它结合铝系和铁系净水剂的优点,有助于减少水中铅含量。利用《水处理剂聚合氯化铅(GB15892-1995)》和《净化剂聚合氯化铁(GB14591-93)》的方法,对聚合氯化铅铁主要技术指标的检验做了探索。经反复实验,取得了较好的效果。  相似文献   
4.
采用模拟烟气对石灰湿法脱硫过程反应机理进行研究 ,研究表明 ,石灰湿法脱硫过程反应机理不仅与脱硫液初始和终点pH值有关 ,而且还与烟气中SO2 浓度密切相关  相似文献   
5.
印刷线路板厂含铜污泥固化处理工艺研究   总被引:10,自引:0,他引:10  
石太宏  汤兵 《环境工程》2000,18(3):47-49
研究采用水泥作固化基材固化处理某印刷线路板厂酸性废水用石灰混凝所产生的含铜、锡、金的污泥 ,对固化块在不同 pH的水中重金属Cu2 +的浸出实验结果表明 :水泥固化处理该混凝污泥效果良好 ,控制合适的条件 ,可得到混合性能好、初凝时间适当、抗压强度较好的固化块。Cu2 +的浸出率低于允许浸出浓度。混凝过程中加入硫脲硅酸钠等助剂 ,可提高固化效果。研究还对几种不同配比的固化块抗压强度进行了探讨。  相似文献   
6.
采用聚合羟基复合阳离子合成交联黏土A1-Ce-PILC,经SO4^2-改性后,以浸渍法制备了铜基交联黏土催化剂Cu/A1-Ce-PILC,并将其应用于C3H6选择性催化还原NO的反应,350℃时NO转化率达到最大值56%,700℃时下降至22%.为探究催化剂高温失活的原因,采用XPS、TPR、TGA、Py-IR和DSC对反应前后催化剂的物化性能进行了表征.结果表明,经过H2预处理活化后活性组分Cu物种以Cu^+形式存在,而高温反应后Cu物种除以Cu^+和Cu^2+ 2种形式存在外,还出现了少量CuO物种;高温反应过程中A1-Ce-PILC上结构羟基和SO4^2-流失导致催化剂表面酸性减弱;此外,还存在表面积炭覆盖了部分活性中心并堵塞了催化剂孔道的现象.这三者的共同影响促进了C3H6深度氧化,抑制了NO还原,从而导致催化剂的失活.  相似文献   
7.
Research on biodegradable materials has been stimulated due to concern regarding the persistence of plastic wastes. Blending starch with poly(lactic acid) (PLA) is one of the most promising efforts because starch is an abundant and cheap biopolymer and PLA is biodegradable with good mechanical properties. Poly(vinyl alcohol) (PVOH) contains unhydrolytic residual groups of poly(vinyl acetate) and also has good compatibility with starch. It was added to a starch and PLA blend (50:50, w/w) to enhance compatibility and improve mechanical properties. PVOH (MW 6,000) at 10%, 20%, 30%, 40%, 50% (by weight) based on the total weight of starch and PLA, and 30% PVOH at various molecular weights (MW 6,000, 25,000, 78,000, and 125,000 dalton) were added to starch/PLA blends. PVOH interacted with starch. At proportions greater than 30%, PVOH form a continuous phase with starch. Tensile strength of the starch/PLA blends increased as PVOH concentration increased up to 40% and decreased as PVOH molecular weight increased. The increasing molecular weight of PVOH slightly affected water absorption, but increasing PVOH concentration to 40% or 50% increased water absorption. Effects of moisture content on the starch/PLA/PVOH blend also were explored. The blend containing gelatinized starch had higher tensile strength. However, gelatinized starch also resulted in increased water absorption.  相似文献   
8.
Fed-batch cultures of recombinantEscherichia coli strains were carried out for the production of poly(3-hydroxybutyric acid) (PHB) in a chemically defined medium. TheE. coli strains used were XL1-Blue, harboring pSYL105, a stable high-copy number plasmid containing theAlcaligenes eutrophus polyhydroxyalkanoate (PHA) genes, and XL1-Blue, harboring pSYL107, which is pSYL105 containing theE. coli ftsZ gene to suppress filamentation. With XL1-Blue(pSYL105) the final cell mass and PHB concentration obtained in 62 h were 102 and 22.5 g/L, respectively. Fed-batch culture of XL1-Blue(pSYL107) under identical conditions resulted in a final cell mass and PHB concentration of 127.5 and 48.2 g/L, respectively. The PHB contents obtained with XL1-Blue(pSYL105) and XL1-Blue(pSYL107) were 22.1 and 37.8%, respectively. Therefore, PHB was more efficiently produced in a defined medium by employing filamentation-suppressed recombinantE. coli.  相似文献   
9.
In this study, blends of poly (lactic acid) (PLA) with poly(ethylene/butylene succinate) (Bionolle) have been investigated for their thermal and mechanical properties as a function of the concentration of Bionolle. Differential scanning calorimetry (DSC), dynamic mechanical analysis (DMA), and tensile tests were used to characterize the blends. From the results of the DMA and DSC, it was found that this blend system was not miscible within the compositions studied. DSC results showed that adding Bionolle aids in crystallization of PLA. It was observed that increasing the Bionolle concentration led to a slight increase in the strain-at-break of the blends but a decrease in the Young’s modulus and ultimate tensile strength. Biaxially oriented films showed an increase in tensile strength, modulus, and strain-at-break.  相似文献   
10.
Biodegradable film blends of chitosan with poly(lactic acid) (PLA) were prepared by solution mixing and film casting. The main goal of these blends is to improve the water vapor barrier of chitosan by blending it with a hydrophobic biodegradable polymer from renewable resources. Mechanical properties of obtained films were assessed by tensile test. Thermal properties, water barrier properties, and water sensitivity were studied by differential scanning calorimeter analysis, water vapor permeability measurements, and surface-angle contact tests, respectively. The incorporation of PLA to chitosan improved the water barrier properties and decreased the water sensitivity of chitosan film. However, the tensile strength and elastic modulus of chitosan decreased with the addition of PLA. Mechanical and thermal properties revealed that chitosan and PLA blends are incompatible, consistent with the results of Fourier transform infrared (FTIR) analysis that showed the absence of specific interaction between chitosan and PLA.  相似文献   
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