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首页> 外文期刊>LWT-Food Science & Technology >Using a combined neural network - genetic algorithm approach for predicting the complex rheological characteristics of microfluidized sugarcane juice
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Using a combined neural network - genetic algorithm approach for predicting the complex rheological characteristics of microfluidized sugarcane juice

机译:采用组合神经网络遗传算法预测微流体甘蔗汁复杂流变特性方法

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The effect of multi-cycle mull-pressure microfluidization on the rheological properties of sugarcane juice has been reported for the first time in this work. Microfluidization pressure was varied in defined steps from 50 to 200 MPa with 1-7 cycles of processing. Rheological measurements were carried out at 30, 40 and 50 degrees C. Increase in microfluidization pressure up to 150 MPa showed an increase in consistency index. Beyond 150 MPa, an observed reduction in consistency index was attributed to the reduction in carbohydrate polymer chains, agglomeration, and molecular degradation. At low processing pressures, microfluidized sugarcane juice exhibited pseudoplastic behavior but showed a dilatant tendency at higher pressures (> 150 MPa). Microfluidization increased the flow behavior index by 24-38% as compared to unprocessed sugarcane juice. No prominent trend in rheological data was observed with change in microfluidization cycles. Consistency index was reduced with increase in temperature and was found in the range of 1.5 x 10(-3) - 5.3 x 10(-3) Pa.s(n) whereas the flow behavior index was found in the range of 0.71 - 0.99. A GA mediated ANN model with 12 hidden layer neurons was found to predict the rheological properties of microfluidized sugarcane juice with a reasonable level of accuracy (R-2 = 0.86-0.93).
机译:多循环Mull压力微流化对甘蔗汁的流变性质的影响是在这项工作中的第一次报道。微流化压力在50至200MPa的限定步骤中变化,具有1-7个循环的加工。在30,40和50摄氏度下进行流变测量。微流化压力的增加高达150MPa显示出稠度指数的增加。超过150MPa,一致性指数的观察到的降低归因于碳水化合物聚合物链,附聚和分子降低的降低。在低处理压力下,微流杂化甘蔗汁表现出假塑性行为,但在较高压力(> 150MPa)下显示出膨胀倾向。与未加工的甘蔗汁相比,微流体将流动行为指数增加24-38%。通过微流化循环的变化,观察到流变数据中没有突出趋势。随着温度的增加,在1.5×10( - 3) - 5.3×10(-3)PA.S(n)的范围内,持续性指数降低,而流动性指数在0.71-0.99的范围内。发现具有12个隐藏层神经元的GA介导的ANN模型,以预测微流体化甘蔗汁的流变性能,具有合理的精度水平(R-2 = 0.86-0.93)。

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