城市固体废物降解产生能量的耦合过程建模:实验室规模和现场规模模拟

D. Zekkos, Sampurna Data, X. Fei
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引用次数: 0

摘要

现代受管制的堆填区旨在通过容纳和隔离城市固体废物(MSW)来保护环境。下一代垃圾填埋场,这里被称为可持续能源反应堆设施(serf),其设计和运营将主要侧重于能源产生(通过厌氧生物降解过程)和可持续性,而不是将城市生活垃圾视为一种需要控制的危害。为了实现这一愿景,基于HBM模型的耦合水力-生化-力学模型在大型实验室规模和现场规模的研究中实施,以模拟城市生活垃圾的降解过程。该模型捕获微生物对废物中可生物降解有机部分的消耗,最终导致沼气的产生,改变固体废物和渗滤液的特性。该模型首先在0.04立方米的实验室实验中进行了测试,以评估其预测观察到的行为和推导各种模型参数值的能力。随后,该模型在鹿道公园垃圾填埋场的一个37米3的现场渗渗仪上实施。所提供的数据表明,该模型有能力在野外尺度上实施,并产生甲烷(即能量)产量的地理空间变量估计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Coupled process modeling for energy generation from municipal solid waste degradation: Laboratory-scale and field-scale simulations
Modern regulated landfills are designed to protect the environment by containing and isolating municipal solid waste (MSW) from the environment. Instead of treating MSW as a hazard to be contained, next generation landfills, here termed Sustainable Energy Reactor Facilities (SERFs) are envisioned to be designed and operated with a main focus on energy generation (through anaerobic biodegradation processes) and sustainability. Towards this vision, a coupled hydraulic-biochemical-mechanical model that is based on the HBM model, is implemented in large laboratory-scale and field-scale studies to simulate the degradation process of MSW. The model captures the consumption of biodegradable organic fraction in the waste by microorganisms, eventually leading to biogas generation and changing solid waste and leachate characteristics. The model was first tested against 0.04 m 3 laboratory experiments to assess its ability to predict the observed behavior and derive values for the various model parameters. Subsequently, the model is implemented on a 37m 3 field lysimeter at Deer Track Park Landfill. The presented data indicates that the model has the capacity to be implemented in field scale and generate geospatially variable estimates of methane (i.e., energy) yield.
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