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排序方式: 共有833条查询结果,搜索用时 31 毫秒
21.
将铁锰氧化物与坡缕石黏土结合制备了复合材料FO/P、MO/P和FMO/P,由静态吸附实验研究了复合材料吸附磷的性能,考察了氧化物与坡缕石质量比、焙烧温度、溶液p H值、离子强度和振荡时间对吸附量的影响,探讨了吸附动力学、吸附平衡和机理。结果表明,FMO/P的吸附性能优于FO/P和MO/P,铁锰氧化物与坡缕石黏土的质量比为0.1的FMO/P对20mg/L的磷溶液去除率可达95%,吸附量明显受溶液p H的影响,离子强度对吸附量影响较小,磷吸附在复合材料表面主要形成内层络合物,60 min可基本达吸附平衡,过程符合pseudo-second-order方程,具有化学吸附的性质,FMO/P吸附等温线符合Freundlich方程,有不均匀吸附的性质,饱和吸附量达49 mg/g。 相似文献
22.
目的研究不同破损程度下军绿有机涂层的腐蚀行为,确定破损率对其防护性能变化的影响。方法通过人工制作不同的破损率,并利用电化学阻抗谱技术,研究不同破损程度下军绿有机涂层的电化学特征。结果根据不同破损程度下的军绿有机涂层的电化学特征,确定了涂层从完好到失效的四个阶段,初始完好阶段(破损率K≤0.0004%)、破损增大阶段(0.0016%K≤0.04%)、破损过大阶段(0.16%K≤1%)和失效阶段(4%K≤16%)。结论破损率K为0.04%的点是该涂层防护性能急转直下的转折点,因此破损率K大于0.04%时,应及时对车辆表面涂层进行修补和防护。 相似文献
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24.
研究不同pH(8.0、6.0和3.0)下金属纳米颗粒(Fe和Fe/Ni)对纺锤芽孢杆菌(BFN)降解苯酚的影响.实验结果发现pH在8.0和6.0时投加2种金属纳米颗粒(Fe和Fe/Ni)对BFN降解苯酚有促进作用,其原因主要是纳米颗粒在水中持续腐蚀产生H2,为BFN降解苯酚提供电子,促进BFN的生长.但在pH=3.0时,只有BFN-纳米Fe耦合体系才使苯酚得到部分降解,主要是因为纳米Fe颗粒与水反应产生OH-,使pH值有所升高,更适宜BFN的生长,同时提供电子供体H2促进BFN对苯酚的利用.扫描电镜(SEM)和能谱分析(EDS)数据证实金属纳米颗粒(Fe和Fe/Ni)在反应后附着在微生物表面,但微生物的表面形态并未发生显著改变.因此,纳米金属颗粒虽然通过附着影响微生物的活性,但其在腐蚀过程中产生的H2将作为电子供体而被BFN所利用,综合作用的结果是有利于BFN的生长进而提高苯酚的降解速率. 相似文献
25.
聚合氯化铁-聚(环氧氯丙烷-二甲胺)复合絮凝剂在模拟水处理中的混凝特性研究 总被引:1,自引:0,他引:1
制备出一系列具有不同聚合氯化铁(PFC)的碱化度(B)、不同聚(环氧氯丙烷-二甲胺)[P(EPI-DMA)]质量分数[ω(E)]和黏度(η)的PFC-P(EPI-DMA)复合混凝剂,并将其用于模拟染料废水和模拟天然地表水的絮凝脱色处理,对比探讨了ω(E)、η和B对PFC-P(EPI-DMA)中铁的形态分布及其混凝效果的影响,以及混凝作用机制.结果表明,复合絮凝剂中铁的有效形态含量随ω(E)的增大而不断降低;η=850 mPa.s时,复合混凝剂中铁的有效形态含量最高;随B值的增大,Feb含量先增大后减少,而Fec含量逐渐增大.一定程度上使用预水解程度较低、有机成分黏度较大的PFC-P(EPI-DMA)有利于混凝效果的提高,复合混凝剂中有机成分质量分数对混凝效果的影响则与处理对象有关.在模拟水处理中,复合混凝剂依靠电性中和及架桥吸附能力发挥混凝特性. 相似文献
26.
二氧化钛复合型催化剂制备及其微波辅助催化氧化甲苯性能 总被引:2,自引:0,他引:2
实验采用溶胶凝胶法和传统浸渍法制备了TiO2-分子筛复合载体及复合载体负载过渡金属与稀土元素催化剂,通过微波辅助催化氧化甲苯的性能实验考察其催化活性.结果表明,复合TiO2明显提高了载体结构的稳定性与耐温性,并使过渡金属铜(Cu)、锰(Mn)和稀土元素铈(Ce)等活性组分在催化剂表面的分散更均匀;在复合载体吸附、吸波性能与多相活性组分催化的共同作用下,Cu-Mn-Ce/TiO2-分子筛催化剂微波辅助催化氧化甲苯的完全燃烧温度仅为175℃,此时甲苯去除率可达99%;15 h的连续性实验表明,TiO2复合型催化剂具有良好的催化活性与稳定性.由催化剂表征分析结果可知,活性组分颗粒的均匀分布与铜、锰氧化物及铜锰尖晶石固溶物等活性相的存在促进了甲苯的催化氧化,锐钛矿型TiO2较高的电子迁移速率与催化剂孔径的增大均有助于甲苯的氧化降解. 相似文献
27.
We have created a new method of ZnS nanospheres synthesis. By interface-mediated precipitation method (IMPM), monodisperse ZnS nanoparticles was synthesized on the particle surface of sulfate-reducing bacterium nutritious agar culture. Sulfate-reducing bacterium (SRB) was used as a sulfide producer because of its dissimilatory sulfate reduction capability, meanwhile produced a variety of amino acids acting as templates for nanomaterials synthesis. Then zinc acetate was dispersed into nutritious agar plate. Subsequently agar plate was broken into particles bearing much external surface, which successfully mediated the synthesis of monodisperse ZnS nanoparticles. The morphology of monodisperse ZnS nanospheres and SRB were examined by scanning electron microscopy (SEM), and the microstructure was investigated by X-ray diffraction (XRD). The thermostability of ZnS nanoparticles was determined by thermo gravimetric-differential thermo gravimetric (TG-DTG). The maximum absorption wavelengh was analysed with an ultraviolet-visible spectrophotometer within a range of 199–700 nm. As a result, monodisperse ZnS nanoparticles were successfully synthesized, with an average diameter of 80 nm. Maximum absorption wavelengh was 228 nm, and heat decomposed temperature of monodisperse ZnS nanoparticles was 596°C. 相似文献
28.
Zhanguo Liang Jun Mu Ying Mu Jiaming Shi Wenjing Hao Xuewei Dong Hongquan Yu 《环境科学学报(英文版)》2013,(S1):S106-S109
We have created a new method of ZnS nanospheres synthesis. By interface-mediated precipitation method (IMPM), monodisperse ZnS nanoparticles was synthesized on the particle surface of sulfate-reducing bacterium nutritious agar culture. Sulfate-reducing bacterium (SRB) was used as a sulfide producer because of its dissimilatory sulfate reduction capability, meanwhile produced a variety of amino acids acting as templates for nanomaterials synthesis. Then zinc acetate was dispersed into nutritious agar plate. Subsequently agar plate was broken into particles bearing much external surface, which successfully mediated the synthesis of monodisperse ZnS nanoparticles. The morphology of monodisperse ZnS nanospheres and SRB were examined by scanning electron microscopy (SEM), and the microstructure was investigated by X-ray diffraction (XRD). The thermostability of ZnS nanoparticles was determined by thermo gravimetric-differential thermo gravimetric (TG-DTG). The maximum absorption wavelengh was analysed with an ultravioletvisible spectrophotometer within a range of 199-700 nm. As a result, monodisperse ZnS nanoparticles were successfully synthesized, with an average diameter of 80 nm. Maximum absorption wavelengh was 228 nm, and heat decomposed temperature of monodisperse ZnS nanoparticles was 596℃. 相似文献
29.
Photocatalytic degradation of carbofuran in TiO2 aqueous solution:Kinetics using design of experiments and mechanism by HPLC/MS/MS 总被引:2,自引:0,他引:2
The photocatalytic degradation kinetics of carbofuran was optimized by central composite design based on response surface methodology for the first time. Three variables, TiO2 concentration, initial pH value and the concentration of carbofuran, were selected to determine the dependence of degradation efficiencies on independent variables. Response surface methodology modeling results indicated that the degradation efficiency of carbofuran was highly affected by the initial pH value and the concentration of carbofuran. Then nine degradation intermediates were detected by HPLC/MS/MS. The Frontier Electron Densities of carbofuran were calculated to predict the active sites on carbofuran attacked by hydroxyl radicals and photoholes. Point charges were used to elucidate the chemisorption pattern on TiO2 catalysts during the photocatalytic process. By combining the experimental results and calculation data, the photocatalytic degradation pathways of carbofuran were proposed, including the addition of hydroxyl radicals and the cleavage of the carbamate side chain. 相似文献
30.