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首页> 外文期刊>Journal of textile and apparel technology and management >Neural Network Approach for Optimizing the Bioscouring Performance of Organic Cotton Fabric through Aerodynamic System
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Neural Network Approach for Optimizing the Bioscouring Performance of Organic Cotton Fabric through Aerodynamic System

机译:神经网络方法通过气动系统优化有机棉织物的生物精练性能

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The process optimization of bioscouring of 100% organic cotton fabric through enzyme technology with aerodynamic system have been studied with selective specific mixed enzymatic system using four enzymes namely alkaline pectinase, protease, lipase and cellulase. The process variables such as enzyme concentration, temperature and reaction time are optimized to achieve the required water absorbency and pectin removal during bioscouring process by pectinolytic and proteolytic activity on the organic cotton fabrics. These process variables are selected based on the artificial neural network (ANN) and output of experiment was resulted with fabric physic properties such as fabric weight loss, water absorbency, wetting area, whiteness index, yellowness index, and brightness index using MATLAB 7.0 software with minimum error and also studied with and without aerodynamic treatments. The test results are analyzed to predict the optimum process parameters to achieve the required bioscouring fabric properties and removal of pectin degrading rate and compared their results with actual trials. This study will be helpful to the organic cotton processors for the eco-friendly and sustainable textile wet processing using specific mixed enzymatic system in bioscouring processes.
机译:利用碱性果胶酶,蛋白酶,脂肪酶和纤维素酶这四种酶,通过选择性特异性混合酶体系,研究了利用气动技术通过酶技术对100%有机棉织物进行生物精练的工艺优化。通过对有机棉织物的果胶分解和蛋白水解活性,优化了诸如酶浓度,温度和反应时间之类的工艺变量,以实现生物煮练过程中所需的吸水率和果胶去除。这些过程变量是基于人工神经网络(ANN)进行选择的,并使用MATLAB 7.0软件通过与织物物理特性(例如织物失重,吸水率,润湿面积,白度指数,黄度指数和亮度指数)一起得出实验输出,并得出结果最小误差,并进行了有无空气动力学处理的研究。分析测试结果以预测最佳工艺参数,以实现所需的生物精练织物性能和去除果胶降解速率,并将其结果与实际试验进行比较。这项研究将有助于有机棉加工商在生物精练过程中使用特定的混合酶系统进行生态友好和可持续的纺织品湿法加工。

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