...
首页> 外文期刊>Bioprocess and Biosystems Engineering >Dynamic modeling of anaerobic methane oxidation coupled to sulfate reduction: role of elemental sulfur as intermediate
【24h】

Dynamic modeling of anaerobic methane oxidation coupled to sulfate reduction: role of elemental sulfur as intermediate

机译:厌氧甲烷氧化与硫酸盐降低的动态建模:元素硫作为中间体的作用

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

The process dynamics of anaerobic oxidation of methane (AOM) coupled to sulfate reduction (SR), and the potential role of elemental sulfur as intermediate are presented in this paper. Thermodynamic screening and experimental evidence from the literature conclude that a prominent model to describe AOM-SR is based on the concept that anaerobic methane oxidation proceeds through the production of the intermediate elemental sulfur. Two microbial groups are involved in the process: (a) anaerobic methanotrophs (ANME-2) and (b) Desulfosarcina/Desulfococcus sulfur reducers cluster (DSS). In this work, a dynamic model was developed to explore the interactions between biotic and abiotic processes to simulate the microbial activity, the chemical composition and speciation of the liquid phase, and the gas phase composition in the reactor headspace. The model includes the microbial kinetics for the symbiotic growth of ANME-2 and DSS, mass transfer phenomena between the gas and liquid phase for methane, hydrogen sulfide, and carbon dioxide and acid-base reactions for bicarbonate, sulfide, and ammonium. A data set from batch experiments, running for 250 days in artificial seawater inoculated with sediment from Marine Lake Grevelingen (The Netherlands) was used to calibrate the model. The inherent characteristics of AOM-SR make the identification of the kinetic parameters difficult due to the high correlation between them. However, by meaningfully selecting a set of kinetic parameters, the model simulates successfully the experimental data for sulfate reduction and sulfide production. The model can be considered as the basic structure for simulating continuous flow three-phase engineered systems based on AOM-SR.
机译:本文介绍了与硫酸盐还原(Sr)偶联的甲烷(AOM)的厌氧氧化的过程动态,以及元素硫作为中间体的潜在作用。来自文献的热力学筛选和实验证据得出结论,描述AOM-SR的突出模型基于厌氧甲烷氧化通过中间元素硫的产生进行的概念。参与过程中的两个微生物组:(a)厌氧甲基丙醇(Anme-2)和(b)脱硫癌/脱硫剂硫磺还原剂簇(DSS)。在这项工作中,开发了一种动态模型以探讨生物和非生物过程之间的相互作用,以模拟液相的微生物活性,化学成分和物质,以及反应器顶部空间中的气相组成。该模型包括用于ANME-2和DSS的共生生长的微生物动力学,甲烷,硫化氢和二氧化碳的气体和液相与碳酸氢盐,硫化物和铵的酸碱反应之间的传质现象。从批量实验中设置的数据,用于从海洋湖格雷明森(荷兰)的沉积物接种沉积物的人工海水中运行250天,用于校准模型。由于它们之间的高相关性,AOM-SR的固有特性使得难以识别的动力学参数。然而,通过有意义地选择一组动力学参数,模型成功地模拟了硫酸盐降低和硫化物产生的实验数据。该模型可被认为是基于AOM-SR的连续流三相工程系统模拟连续流动三相工程系统的基本结构。

著录项

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