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首页> 外文期刊>International journal of geomechanics >Modeling Coupled Hydro-Bio-Mechanical Processes in Bioreactor Landfills: Framework and Validation
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Modeling Coupled Hydro-Bio-Mechanical Processes in Bioreactor Landfills: Framework and Validation

机译:生物反应器垃圾填埋场中的水-生物-机械耦合过程建模:框架和验证

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Bioreactor landfills using leachate recirculation in municipal solid waste (MSW) undergo complex interrelated hydraulic, mechanical, and biochemical processes. In this study, the authors present a mathematical framework that combines and solves together a hydraulic model, a biodegradation model, and a mechanical model to simulate and predict the coupled hydro-bio-mechanical behavior of MSW in bioreactor landfills. The mathematical framework was implemented in Fast Lagrangian Analysis of Continua (FLAC), a finite difference code. The hydraulic model was a two-phase flow model where the fluid flow was governed by Darcy's law while the saturated-unsaturated hydraulic behavior was governed by a soil-water retention model. The mechanical behavior of the MSW was evaluated by a plane-strain explicit formulation of the Mohr-Coulomb constitutive model, which accounted for concurrent changes in the MSW properties as a result of the MSW degradation. The MSW decomposition was modeled as a first-order decay kinetics biodegradation model similar to the LandGEM model used by the United States Environmental Protection Agency. The coupled mathematical framework was validated with a published large-scale laboratory experiment and a field-scale experiment. It was applied to simulate the coupled behavior of a typical bioreactor landfill cell undergoing hydro-bio-mechanical interactions. Overall, the study shows that the proposed mathematical framework accounted for both the spatial and temporal changes in the geotechnical properties of the MSW, including the extent of degradation, and predicted the landfill settlement and MSW stabilization time for a typical bioreactor landfill configuration subjected to coupled hydro-bio-mechanical processes. In addition, some of the limitations and key challenges associated with the numerical model are highlighted.
机译:在城市固体废物(MSW)中使用渗滤液再循环的生物反应器垃圾填埋场经历了复杂的相互关联的水力,机械和生化过程。在这项研究中,作者提出了一个数学框架,该模型将水力模型,生物降解模型和力学模型组合并求解在一起,以模拟和预测生物反应器垃圾填埋场中城市固体废弃物的耦合水-生物-力学行为。该数学框架是在连续差分快速拉格朗日分析(FLAC)中实现的。水力模型是两相流模型,其中流体流由达西定律控制,而饱和-不饱和水力行为由土壤保水模型控制。 MSW的机械行为通过Mohr-Coulomb本构模型的平面应变显式公式进行评估,该公式解释了由于MSW降解而导致MSW特性的同时变化。 MSW分解被建模为类似于美国环境保护局使用的LandGEM模型的一阶衰减动力学生物降解模型。耦合的数学框架已通过已发布的大型实验室实验和现场规模的实验进行了验证。它被用于模拟经历水-生物-机械相互作用的典型生物反应器垃圾填埋场的耦合行为。总体而言,研究表明,提出的数学框架考虑了MSW的岩土特性的时空变化,包括降解程度,并预测了典型生物反应器垃圾填埋场在耦合条件下的填埋量沉降和MSW稳定时间。水力生物力学过程。此外,还强调了与数值模型相关的一些局限性和关键挑战。

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