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Mathematical modeling of olive mill waste composting process

机译:橄榄磨废料堆肥过程的数学模型

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摘要

The present study aimed at developing an integrated mathematical model for the composting process of olive mill waste. The multi-component model was developed to simulate the composting of three-phase olive mill solid waste with olive leaves and different materials as bulking agents. The modeling system included heat transfer, organic substrate degradation, oxygen consumption, carbon dioxide production, water content change, and biological processes. First-order kinetics were used to describe the hydrolysis of insoluble organic matter, followed by formation of biomass. Microbial biomass growth was modeled with a double-substrate limitation by hydrolyzed available organic substrate and oxygen using Monod kinetics. The inhibitory factors of temperature and moisture content were included in the system. The production and consumption of nitrogen and phosphorous were also included in the model. In order to evaluate the kinetic parameters, and to validate the model, six pilot-scale composting experiments in controlled laboratory conditions were used. Low values of hydrolysis rates were observed (0.00284 1/d) coinciding with the high cellulose and lignin content of the composting materials used. Model simulations were in good agreement with the experimental results. Sensitivity analysis was performed and the modeling efficiency was determined to further evaluate the model predictions. Results revealed that oxygen simulations were more sensitive on the input parameters of the model compared to those of water, temperature and insoluble organic matter. Finally, the Nash and Sutcliff index (E), showed that the experimental data of insoluble organic matter (E > 0.909) and temperature (E > 0.678) were better simulated than those of water.
机译:本研究旨在为橄榄磨场废料的堆肥过程开发一个综合数学模型。建立了多组分模型以模拟以橄榄叶和不同材料作为填充剂的三相橄榄磨固体废弃物的堆肥。建模系统包括热传递,有机底物降解,氧气消耗,二氧化碳产生,水含量变化和生物过程。一级动力学用来描述不溶性有机物的水解,然后形成生物质。利用Monod动力学,通过水解可利用的有机底物和氧气,利用双底物限制对微生物生物量的生长进行建模。温度和水分含量的抑制因素包括在系统中。该模型还包括氮和磷的产生和消耗。为了评估动力学参数并验证模型,在受控的实验室条件下使用了六个中试规模的堆肥实验。观察到较低的水解速率值(0.00284 1 / d),与所用堆肥材料的高纤维素和木质素含量相吻合。模型仿真与实验结果吻合良好。进行敏感性分析并确定建模效率,以进一步评估模型预测。结果表明,与水,温度和不溶性有机物相比,氧模拟对模型的输入参数更为敏感。最后,Nash和Sutcliff指数(E)表明,不溶性有机物(E> 0.909)和温度(E> 0.678)的实验数据比水更好。

著录项

  • 来源
    《Waste Management》 |2015年第9期|61-71|共11页
  • 作者单位

    Department of Chemical and Environmental Technology, ESCET, Rey Juan Carlos University, 28933 Mostoles, Madrid, Spain;

    Department of Environmental and Natural Resources Management, University of Patras, G. Seferi 2, GR-30100 Agrinio, Greece;

    Department of Environmental and Natural Resources Management, University of Patras, G. Seferi 2, GR-30100 Agrinio, Greece;

    Department of Environmental and Natural Resources Management, University of Patras, G. Seferi 2, GR-30100 Agrinio, Greece;

    Institute of Chemical Engineering Sciences, FORTH, Stadiou Str., Platani, GR-26504 Patras, Greece,Department of Chemical Engineering, University of Patras, GR-26504 Patras, Greece;

    Institute of Chemical Engineering Sciences, FORTH, Stadiou Str., Platani, GR-26504 Patras, Greece,Department of Chemical Engineering, University of Patras, GR-26504 Patras, Greece;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Olive mill solid waste; Kinetics; Modeling; Biological processes; Compost;

    机译:橄榄磨固体废物;动力学;造型;生物过程;堆肥;

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