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Modelling of thermal processes during extrusion based densification of agricultural biomass residues

机译:基于挤压的农业生物质残留物致密化过程中的热过程建模

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摘要

Biomass residues are increasing their share as a feedstock for renewable heat and power systems. Agricultural biomass is available in large quantities but to be utilised in energy systems the bulk density of the material should be increased. A large number of process parameters influence biomass compression and thus affect machinery efficiency and particular energy consumption. Increased concerns related to energy efficiency and environmental impacts of agricultural machinery have led to an increased interest in simulation models which can be used for process optimisation. In this study the influence of temperature on the biomass compression process performance has been analysed. For this purpose, mathematical models describing the thermal processes in the biomass material and the surrounding compression chamber have been elaborated. The heat transfer in the biological material has been described with time dependent Navier-Stokes equations for non-isothermal flow, while time dependent Navier-Stokes equations for heat transfer in solids have been utilised to describe heat transfer in metal structures of the chamber. The prediction performance of the model has been verified by comparing the simulated temperature evolution in the biomass and chamber walls to the corresponding values measured from a biomass compression machine through dedicated tests. The model was found to be able to predict the measured values with an average R-2 of 0.82. The influence of friction heat in the compression chamber has been simulated and heat losses during the process have been estimated. The developed simulation model has been used to make suggestions for process improvement (C) 2016 Elsevier Ltd. All rights reserved.
机译:生物质残渣作为可再生热力和电力系统原料的份额正在增加。农业生物质有大量供应,但要在能源系统中利用,应提高材料的堆积密度。大量的工艺参数影响生物质的压缩,从而影响机械效率和特定的能源消耗。与农业机械的能效和环境影响相关的关注日益增加,导致人们对可用于过程优化的仿真模型越来越感兴趣。在这项研究中,已经分析了温度对生物质压缩过程性能的影响。为此目的,已经详细描述了描述生物质材料和周围压缩室中的热过程的数学模型。已经用非等温流的时间相关的Navier-Stokes方程描述了生物材料中的热传递,而固体中热传递的时间相关的Navier-Stokes方程已用于描述腔室金属结构中的热传递。该模型的预测性能已通过将生物质和室壁中模拟的温度变化与通过专用测试从生物质压缩机测得的相应值进行比较而得到验证。发现该模型能够以0.82的平均R-2预测测量值。模拟了压缩室中摩擦热的影响,并估算了过程中的热损失。开发的仿真模型已用于提出工艺改进建议(C)2016 ElsevierLtd。保留所有权利。

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