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首页> 外文期刊>International journal of postharvest technology and innovation >Integration of artificial neural network with genetic algorithm for an optimum performance of a Chironji (Buchanania lanzan) nut decorticator
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Integration of artificial neural network with genetic algorithm for an optimum performance of a Chironji (Buchanania lanzan) nut decorticator

机译:人工神经网络与遗传算法的整合,以Chironji(Buchanania Lanzan)螺母混凝剂的最佳性能

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摘要

This study has explored the integrated artificial neural network - genetic algorithm (ANN-GA) technique for the optimum performance of a Chironji (Buchanania lanzan) nut decorticator. To have desired outcomes, the performance of the decorticator was evaluated at 54 different combinations of independent variables. Those variables are six levels of moisture content of the nuts (3%, 6%, 9%, 12%, 15%, and 18% d.b.), three levels of the roller speed (400, 450, and 500 rpm), and three levels of clearance between the roller and plate (6.44, 6.95, and 7.46 mm). The optimum values found were the moisture content of 12.06% (d.b.), speed of 413 rpm, and clearance of 6.64 mm. With the optimised values, 14.69% of whole kernels, 3.45% of broken kernels, and 5.20%of un-decorticated nuts were recovered. A decorticating efficiency of 94.8% and a machine efficiency of 76.77% was recorded when the decorticator was operated at optimum conditions. The outcomes of this study will be useful for nut processing and elsewhere.
机译:本研究探索了综合人工神经网络 - 遗传算法(ANN-GA)技术,用于Chironji(Buchanania Lanzan)螺母二滴变器的最佳性能。为了具有所需的结果,在54种不同的自变量组合中评估二象剂的性能。这些变量是螺母的六种水分含量(3%,6%,9%,12%,15%和18%DB),辊速的三个水平(400,450和500rpm),辊子和板之间的三个间隙(6.44,6.95和7.46mm)。发现的最佳值是含水量为12.06%(D.B.),413 rpm的速度,间隙为6.64毫米。随着优化的值,14.69%的整个内核,3.45%的破碎核,恢复了5.20%的未滴定螺母。当在最佳条件下运行二滴变器时,记录了94.8%的比例为94.8%,机器效率为76.77%。本研究的结果对于螺母加工和其他地方将是有用的。

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