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Back Propagation Artificial Neural Network Modeling and Migration Analysis of Siloxane D5 Migration from Selected Food Contact Materials

机译:硅氧烷D5从选定食品接触材料迁移的后繁殖人工神经网络建模和迁移分析

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The detection and quantification of environmental pollution compounds migration in food contact silicone rubber materials remains a prospective issue to be solved in the consideration of toxicology and safety assessment.In this study,an artificial neural network (ANN) model was established to predict migration property of non-target compound decamethylcyclopentasiloxane (D5) molecule in food contact silicone rubber.The average prediction accuracy of the model was 99.8%.The analysis of ANN indicates that high temperature condition accelerates the migration of D5 from silicone rubber into two typical food simulants,namely H2O and acetic acid.The migration of D5 is more apparent when the silicone rubber is in contact with acetic acid.The combination of experiment and simulation analysis of D5 migration indicates that high temperature and acetic acid food simulant environment threaten the safety of food contact silicone rubber.These fundamental studies can provide a comprehensive understanding of the migration of cyclic organosiloxane oligomer from silicone rubber and guidance for the safety evaluation and early warning mechanisms.
机译:环境污染的检测和定量的化合物在食品接触的硅橡胶材料迁移仍然是一个问题预期在考虑毒理学和安全assessment.In本研究需要解决,人工神经网络(ANN)模型的建立是为了预测的迁移性质食物接触硅橡胶中的非靶醇甲基环戊基硅氧烷(D5)分子。该模型的平均预测精度为99.8%。ANN的分析表明,高温条件加速D5从硅橡胶迁移到两个典型的食品模拟中,即当硅橡胶与乙酸接触时,D5的迁移更加明显。D5迁移的实验和模拟分析的组合表明,高温和乙酸食品模拟环境威胁着食物接触硅胶的安全性橡胶。这些基本研究可以提供全面的懂眼环状有机硅氧烷低聚物由硅橡胶和指导安全评价和预警机制迁移的钟声。

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