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Mathematical modelling of thin layer hot air drying of apricot with combined heat and power dryer

机译:热电联产干燥机杏薄层热风干燥的数学模型

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摘要

In this study thermal energy of an engine was used to dry apricot. For this purpose, experiments were conducted on thin layer drying apricot with combined heat and power dryer, in a laboratory dryer. The drying experiments were carried out for four levels of engine output power (25 %, 50 %, 75 % and full load), producing temperatures of 50, 60, 70, and 80 ° C in drying chamber respectively. The air velocity in drying chamber was about 0.5 ± 0.05 m/s. Different mathematical models were evaluated to predict the behavior of apricot drying in a combined heat and power dryer. Conventional statistical equations namely modeling efficiency (EF), Root mean square error (RMSE) and chi-square (χ2) were also used to determine the most suitable model. Assessments indicated that the Logarithmic model considering the values of EF = 0.998746, χ 2 = 0.000120 and RMSE = 0.004772, shows the best treatment of drying apricot with combined heat and power dryer among eleven models were used in this study. The average values of effective diffusivity ranged 1.6260 × 10−9 to 4.3612 × 10−9 m2/s for drying apricot at air temperatures between 50 and 80 °C and at the air flow rate of 0.5 ± 0.05 m/s; the values of Deff increased with the increase of drying temperature the effective diffusivities in the second falling rate period were about eight times greater than that in the first falling rate period.
机译:在这项研究中,发动机的热能被用来干燥杏子。为此目的,在实验室干燥机中用热电联产干燥机在薄层杏干上进行了实验。进行了四个级别的发动机输出功率(25%,50%,75%和满载)的干燥实验,分别在干燥室内产生了50、60、70和80°C的温度。干燥室中的空气速度约为0.5±0.05 m / s。对不同的数学模型进行了评估,以预测在热电联产干燥机中杏干的行为。常规的统计方程,即建模效率(EF),均方根误差(RMSE)和卡方(χ2)也用于确定最合适的模型。评估表明,对数模型考虑了EF = 0.998746,χ2 = 0.000120和RMSE = 0.004772的值,显示了在11个模型中使用热电联产干燥机对杏干的最佳处理。在50至80°C的温度和温度下,杏干的有效扩散率平均值为1.6260 1.6×10 −9 至4.3612×10 −9 m2 / s。风量为0.5±0.05 m / s; Deff值随干燥温度的升高而增加,第二下降速率期间的有效扩散率约为第一下降速率期间的八倍。

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