...
首页> 外文期刊>Environmental Science: Processes & Impacts >Modelling permeation passive sampling: intra-particle resistance to mass transfer and comprehensive sensitivity analysis
【24h】

Modelling permeation passive sampling: intra-particle resistance to mass transfer and comprehensive sensitivity analysis

机译:建模渗透无源抽样:颗粒抗传质耐药性和综合敏感性分析

获取原文
获取原文并翻译 | 示例

摘要

A mathematical model developed previously to describe the sampling process in permeation passive samplers with non-porous adsorbents and evaluated using the Waterloo Membrane Sampler (WMS) is here extended to include adsorbents with porous particles. This work was motivated by the need to expand the model applicability to include the various types of adsorbents used in the WMS, and to develop a deep understanding of the model sensitivity towards required parameters. The effects of intraparticle porosity on the effective diffusivity of the analyte in a bed of porous particles and on the mass transfer coefficient for analyte transport from the interparticle void phase to the porous solid phase are both evaluated. Experimental validation of the applicability of the model on adsorbents with microporous particles was carried out using the WMS containing Anasorb 747, a carbon-based adsorbent with highly porous particles. Good agreement between the experimental and model results was found. A comprehensive sensitivity analysis was also conducted to identify the parameters with the greatest influence on the results of the calculated uptake rate. This analysis included two types of adsorbents with different sorption strengths. The results showed that the uptake rate sensitivity is limited to parameters related to mass transfer in the membrane for strong adsorbents. On the other hand, sensitivity to parameters related to mass transfer in the sorbent bed becomes more significant as the strength of the adsorbent decreases; however, this effect can be reduced by increasing the membrane thickness. Influential parameters in the sorbent bed are also affected by the temperature. Nevertheless, the contribution of this change to the total effect of temperature change on the uptake rate is expected to be negligible within the small range of temperature variations usually encountered during a single environmental sampling event, especially in soil-gas sampling which is the most widely used application of the WMS.
机译:先前开发的数学模型以描述具有非多孔吸附剂的渗透无源采样器中的采样过程,并且使用水陆膜采样器(WMS)评价以包括具有多孔颗粒的吸附剂。这项工作是推动模型适用性,包括在WMS中使用的各种类型的吸附剂,并对所需参数的模型敏感性的深入了解。两种颗粒床中分析物中分析物的有效扩散率对多孔固相的分析物输送到多孔固相的分析物转移系数的疗效。使用含有析血747的WMS,含有高多孔颗粒的碳基吸附剂进行微孔颗粒对具有微孔颗粒的吸附剂的适用性的实验验证。发现实验和模型结果之间的良好一致性。还进行了全面的敏感性分析,以确定对计算的摄取率的结果影响最大的参数。该分析包括具有不同吸附强度的两种类型的吸附剂。结果表明,摄取率灵敏度仅限于与膜中的膜中的传质有关的参数,用于强吸附剂。另一方面,随着吸附剂床中的传质与传质的参数的敏感性随着吸附剂的强度降低而变得更加重要;然而,通过增加膜厚度可以降低这种效果。吸附剂床中的有影响力的参数也受到温度的影响。然而,这种变化对温度变化的总影响的贡献预计在单一环境采样事件中通常遇到的少量温度变化范围内将可忽略不计,特别是在土气采样中最广泛的土壤 - 气体抽样使用WMS的应用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号