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1.
苹果角质层的组分特征及其对甲萘酚的吸附作用 总被引:1,自引:0,他引:1
为能够准确预测有机污染物在植物角质层上的吸附行为,用化学方法(脱蜡、皂化、酸解)分离得到7种苹果角质层组分,探讨了角质组分对甲萘酚的吸附特征及其与结构组成之间的关系.结果表明.苹果角质层由44.7%蜡质、34.6%角质单体、13.6%糖类、7.5%生物高聚物(cutan)组成,脱蜡、皂化脱角质单体后角质组分的极性指数((O N)/C)增大,而酸解脱糖后(O N)/C则减小.角质层组分对甲萘酚的等温吸附曲线均呈非线性(N=0.551~0.918),而高浓度时的等温吸附曲线则呈线性,表明植物角质与有机物的相互作用除了分配作用之外,还存在其它的特殊作用.苹果角质层(ACI)对甲萘酚的吸附系数(Knc)为442,脱蜡、脱糖后角质组分的KDC.值增大,而脱角质单体后Kuc值则大大减小,表明角质单体是主要的吸附介质;蜡质、角质单体、糖类组分对角质层吸附行为的影响存在交互作用.角质组分的Koc值随其(O N)/C变化出现"峰值",意味着甲萘酚与角质组分之间的相互作用存在最佳的极性匹配. 相似文献
2.
系统的探讨了区内白垩纪地层的划分与沉积相特征,深入研究了陆相地层的层序发育特征。指出,无论冲积扇、河流、三角洲或湖泊沉积的陆相地层层序均受地层基准面控制。地层基准面穿越旋回控制着陆相环境重大层序分布。根据不同时间间隔的基准面穿越旋回序次,将陆相层序划分为盆地充填层序、构造层序、层序、亚层序及小层序五个级别。每个层序根据基准面波动可划分为基准面上升沉积体系域和基准面下降沉积体系域,并可根据亚层序组的叠置特征进一步细分。根据上述陆相地层层序划分原理,作者将研究区白垩纪陆相地层划分为三个构造层序,并初步将葛村组划分为五个、浦口组四个、赤山组三个和泰州组三个沉积层序。 相似文献
3.
Removal of polycyclic aromatic hydrocarbons (PAHs), e.g., naphthalene, acenaphthene, phenanthrene and pyrene, from aqueous solution by raw and modified plant residues was investigated to develop low cost biosorbents for organic pollutant abatement. Bamboo wood, pine wood, pine needles and pine bark were selected as plant residues, and acid hydrolysis was used as an easily modification method. The raw and modified biosorbents were characterized by elemental analysis, Fourier transform infrared spectroscopy and scanning electron microscopy. The sorption isotherms of PAHs to raw biosorbents were apparently linear, and were dominated by a partitioning process. In comparison, the isotherms of the hydrolyzed biosorbents displayed nonlinearity, which was controlled by partitioning and the specific interaction mechanism. The sorpfion kinetic curves of PAHs to the raw and modified plant residues fit well with the pseudo second-order kinetics model. The sorption rates were faster for the raw biosorbents than the corresponding hydrolyzed biosorbents, which was attributed to the latter having more condensed domains (i.e., exposed aromatic core). By the consumption of the amorphous cellulose component under acid hydrolysis, the sorption capability of the hydrolyzed biosorbents was notably enhanced, i.e., 6-18 fold for phenanthrene, 6-8 fold for naphthalene and pyrene and 5-8 fold for acenaphthene. The sorpfion coefficients (Kd) were negatively correlated with the polarity index [(O+N)/C], and positively correlated with the aromaticity of the biosorbents. For a given biosorbent, a positive linear correlation between logKoc and logKow for different PAHs was observed. Interestingly, the linear plots of logKoc-logKow were parallel for different biosorbents. These observations suggest that the raw and modified plant residues have great potential as biosorbents to remove PAHs from wastewater. 相似文献
4.
A biomass-generated soot was sequentially treated by HCl-HF solution, organic solvent, and oxidative acid to remove ash, extractable native organic matter (EOM), and amorphous carbon. The compositional heterogeneity and nano-structure of the untreated and treated soot samples were characterized by elemental analysis, thermal gravimetric analysis, BET-N2 surface area, and electron microscopic analysis. Sorption properties of polar and nonpolar organic pollutants onto the soot samples were compared, and individual contributions of adsorption and absorption were quantified. The sorption isotherms for raw sample were practically linear, while were nonlinear for the pretreated-soot. The removal of EOM enhanced adsorption and reduced absorption, indicating that EOM served as a partitioning phase and simultaneously masked the adsorptive sites. By drastic-oxidation, the outer amorphous carbon and the inner disordered core of the soot particles were completely removed, and a fullerene-like nanoporous structure (aromatic shell) was created, which promoted additional π-π interaction between phenanthrene and the soot. 相似文献
5.
6.
Song Yao Wang Liancheng Lv Baoliang Chang Guozhang Jiao Weizhou Liu Youzhi 《Environmental science and pollution research international》2020,27(7):7015-7024
Environmental Science and Pollution Research - In this study, porous activated carbon balls supported by nanoscale zero-valent iron composites (Fe@PACB-700) were used for the first time for the... 相似文献
7.
浙江墩头盆地横山组孢粉化石的发现及其地层意义 总被引:1,自引:0,他引:1
浙江墩头盆地红色岩层中上部首获丰富的以Cassopllis为主(58.39—62.54%)伴有Exesipollenites(15.21—15.84%),Hsuisporites(0.56—0.62%),Cicatricosisporites(0—0.31%)等孢粉化石。该孢粉组合特征既与国内外晚侏罗世孢粉组合面貌差别较大,又与早白垩世中晚期孢粉组合面貌存在明显差异,显示了早白垩世早期孢粉组合的色彩。笔者认为这套红色岩层应归早白垩世早期横山组为宜。 相似文献
8.
Black carbons(e.g.,charcoal) have a great impact on the transport of organic contaminants in soil and water because of its strong affnity and ubiquity in the environment.To further elucidate their interaction mechanism,sorption of polar(p-nitrotoluene,m-dinitrobenzene and nitrobenzene) and nonpolar(naphthalene) aromatic contaminants to burned straw ash charcoal under different de-ashed treatments were investigated.The sorption isotherms fitted well with Freundlich equation,and the Freundlich N values were all around 0.31-0.38,being independent of the sorbate properties and sorbent types.After sequential removal of ashes by acid treatments(HCl and HCl-HF) ,both adsorption and partition were enhanced due to the enrichment of charcoal component.The separated contribution of adsorption and partition to total sorption were quantified.The effective carbon content in ash charcoal functioned as adsorption sites,partition phases,and hybrid regions with adsorption and partition were conceptualized and calculated.The hybrid regions increased obviously after de-ashed treatment.The linear relationships of Freundlich N values with the charring-temperature of charcoal or biochar(the charred byproduct in biomass pyrolysis) were observed based on the current study and the cited publications which included 15 different temperatures(100-850°C) ,10 kinds of precursors of charcoal/biochar,and 10 organic sorbates. 相似文献
9.
采自福建福鼎南溪“构造天窗”的样品分析后获牙形刺。西部所采样品含StreptognathodusfuchenensisZhao,s.elongatusGunnell,Gondolellasp.其时代为晚石炭世晚期。原来这段地层划为下石炭统,应作修改。北部所采样品含IdiognathodusdelieatusGunnell,Neognathodusbassleri(HarrisetHollingsworth),Gondolellasp.其时代为中石炭世早期.进一步证实中石炭统地层的存在。 相似文献
10.