Departamento de Ciências e Engenharia do Ambiente, Faculdade de Ciências e Tecnologia, Universidade Nova de Lisboa, Quinta da Torre, 2829-516 Caparica, Portugal.
Waste Manag. 2010 Oct;30(10):1908-21. doi: 10.1016/j.wasman.2010.04.027. Epub 2010 May 20.
This study focuses on the investigation of the kinetics of municipal solid waste composting in three full-scale mechanical-biological treatment (MBT) plants. The aims were to test a kinetic model based on volatile solids (VS) content change for describing the composting process in MBT plants, and to identify the model parameters that affected the estimation of the reaction rate constant most. To achieve this, VS content and several environmental conditions, namely temperature, moisture content, oxygen concentration and total bulk density were monitored throughout the composting process. Experimental data was fitted with a first-order kinetic model, and a rate constant (k) characteristic of composting under optimum environmental conditions was obtained. The kinetic model satisfactorily described the experimental data for the three MBT plants. k values ranged from 0.043+/-0.002 d(-1) to 0.082+/-0.011 d(-1). Sensitivity analysis showed that the model parameters that most affected the estimation of k were the initial biodegradable volatile solids content, the maximum temperature for biodegradation and the optimum moisture content. In conclusion, we show for the first time that full-scale MBT plants can be successfully modelled with a composting kinetic model.
本研究聚焦于在三个全规模机械-生物处理(MBT)工厂中对城市固体废物堆肥动力学的研究。目的是测试一种基于挥发性固体(VS)含量变化的动力学模型,以描述 MBT 工厂中的堆肥过程,并确定影响反应速率常数估计的最主要模型参数。为此,在整个堆肥过程中监测了 VS 含量和几个环境条件,即温度、水分含量、氧浓度和总堆积密度。实验数据与一级动力学模型拟合,获得了在最佳环境条件下堆肥的特征反应速率常数(k)。动力学模型令人满意地描述了三个 MBT 工厂的实验数据。k 值范围为 0.043+/-0.002 d(-1)至 0.082+/-0.011 d(-1)。敏感性分析表明,最影响 k 估计的模型参数是初始可生物降解挥发性固体含量、生物降解的最大温度和最佳水分含量。总之,我们首次表明,全规模 MBT 工厂可以成功地用堆肥动力学模型进行建模。