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Optimization of microwave-assisted extraction of total polyphenolic compounds from chokeberries by response surface methodology and artificial neural network

机译:响应面法和人工神经网络优化微波辅助提取苦莓中总多酚类化合物

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Response surface methodology (RSM) and artificial neural network (ANN) were used for modeling and optimizing microwave-assisted extraction (MAE) of total polyphenolic content (TPC) from chokeberries (Aronia melanocarpa) as a function of microwave power (300, 450 and 600 W), ethanol concentration (25%, 50% and 75%) and extraction time (5, 10 and 15 min). The set of the optimal operational conditions, as well as the conditions which gave the maximum yield of TPC while minimizing extraction time, solvent and energy consumption, (economic conditions), were proposed. Statistical indicators such as the coefficient of determination (R-2), root-mean-square error (RMSE) and mean absolute error (MAE) demonstrated the superiority of the ANN. In order to scale-up a MAE procedure of chokeberries TPC from the laboratory to the industrial scale, the following set of conditions was proposed: an ethanol concentration of 53.6%, the microwave power of 300 W and the extraction time of 5 min corresponded to a TPC yield of 420.1 mg gallic acid equivalents (GAE)/100 g of fresh plant material. (C) 2016 Elsevier B.V. All rights reserved.
机译:响应面方法(RSM)和人工神经网络(ANN)用于建模和优化微波辅助提取苦莓(Aronia melanocarpa)中总多酚含量(TPC)的微波辅助萃取(MAE)(300、450和600 W),乙醇浓度(25%,50%和75%)和萃取时间(5、10和15分钟)。提出了一组最佳操作条件,以及在使萃取时间,溶剂和能源消耗最小化的同时,最大程度提高TPC收率的条件(经济条件)。统计系数,例如确定系数(R-2),均方根误差(RMSE)和平均绝对误差(MAE),证明了人工神经网络的优越性。为了将苦ke茶TPC的MAE程序从实验室扩大到工业规模,提出了以下一组条件:乙醇浓度为53.6%,微波功率为300 W,提取时间为5分钟,对应于TPC产量为420.1 mg没食子酸当量(GAE)/ 100 g新鲜植物材料。 (C)2016 Elsevier B.V.保留所有权利。

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