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SEMIPERMEABLE MEMBRANE DEVICE-ASSISTED DESORPTION OF PYRENE FROM SOILS AND ITS RELATIONSHIP TO BIO AVAIL ABILITY

机译:膜对土壤的半透膜吸附脱除及其与生物利用度的关系

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Desorption of pyrene from three different soils was studied using a semipermeable membrane device (SPMD)-assisted method to develop a new approach to predict bioavailability of hydrophobic organic compounds (HOCs) in soils. The results showed that pyrene desorption increased with reduction of soil organic matter content and elevation of pyrene concentration in unaged soils, and the 50-d desorption percentage was 52.2 ± 3.6%, 76.3 ± 1.5%, and 99.4 ± 3.3% for soils 1, 2, and 3, respectively, at an initial pyrene concentration of 10 mg/kg and 73.6 ± 4.9%, 94.1 ± 4.1%, and 98.3 ± 4.9%, respectively, at an initial pyrene concentration of 100 mg/kg. Aging led to a reduction in SPMD-assisted desorption because of movement of pyrene molecules from easy-desorbing to difficult-desorbing sites. The pyrene 50-d desorption percentage from 180-d-aged soils reduced to 5.8 ± 0.6%, 18.8 ± 0.9%, and 34.2 ± 3.1% in soils 1, 2, and 3, respectively, at an initial pyrene concentration of 10 mg/kg and 43.9 ± 2.9%, 54.3 ± 4.7%, and 86.3 ± 3.5%, respectively, at an initial pyrene concentration of 100 mg/kg. Dry and wet conditions during aging had different effects on aging-derived reduction of pyrene desorption, which was found, to our knowledge for the first time, to depend on pollutant concentration. The water to soil ratio during desorption had a significant effect on SPMD-assisted desorption dynamics. When this ratio changed from 10:1 to 1:1, desorption dynamics became more linear and slower, because when the ratio was low, the SPMD could not contact with soil particles well and the diffusion of pyrene from pore water into the SPMD might become the limiting step for SPMD accumulation of pyrene from soils. Good correlations were found between SPMD-assisted desorption and the biota-soil accumulation factor for both unaged and aged soils. The SPMD-assisted desorption is considered to be a reliable approach to predict the bioavailability of HOCs in soils.
机译:使用半渗透膜装置(SPMD)辅助方法研究了from在三种不同土壤中的解吸,从而开发了一种预测土壤中疏水有机化合物(HOC)生物利用度的新方法。结果表明,未老化土壤中pyr的解吸作用随土壤有机质含量的降低和of浓度的升高而增加,在土壤中50 d的解吸率分别为52.2±3.6%,76.3±1.5%和99.4±3.3%。在pyr初始浓度为100 mg / kg时,at浓度分别为10 mg / kg和73.6±4.9%,94.1±4.1%和98.3±4.9%,分别为2、3。老化导致SP分子的解吸减少,这是因为of分子从易解吸位置向难解吸位置移动。在初始pyr浓度为10 mg的情况下,从180天老化土壤中50的50天解吸百分比分别降低到土壤1、2和3中的5.8±0.6%,18.8±0.9%和34.2±3.1%。 pyr浓度为100 mg / kg时,分别为/ kg和43.9±2.9%,54.3±4.7%和86.3±3.5%。老化过程中的干燥和湿润条件对aging的脱附减少有不同的影响,据我们所知,这首次取决于污染物的浓度。解吸过程中水土比对SPMD辅助解吸动力学有显着影响。当该比例从10:1更改为1:1时,解吸动力学变得更加线性和缓慢,因为当该比例低时,SPMD无法与土壤颗粒良好接触,并且of可能从孔隙水扩散到SPMD中MD从土壤中SPMD积累的限制步骤。在未老化和老化土壤上,SPMD辅助解吸与生物土壤积累因子之间存在良好的相关性。 SPMD辅助的解吸被认为是预测土壤中HOCs生物利用度的可靠方法。

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