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Marshall stability estimating using artificial neural network with polyparaphenylene terephtalamide fibre rate

机译:聚对亚苯基对苯二酰胺纤维速率的人工神经网络估计马歇尔稳定性

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Due to the complex behaviour of asphalt pavement materials under various loading conditions, pavement structure, and environmental conditions, accurately predicting stability of asphalt pavement is difficult. To predict, it is required to find the mathematical relation between the input and output data by an accurate and simple method. In recent years, artificial neural networks (ANNs) have been used to model the properties and behaviour of materials, and to find complex relations between different properties in many fields of civil engineering applications, because of their ability to learn and to adapt. In the present study, laboratory data are obtained from an experimental study that was used to develop an ANN model. For predicting the Marshall Stability value of mixture using ANN models, an appropriate selection of input parameters (neurons) is essential. There are four nodes in the input layer corresponding to four variables: Polyparaphenylene Terephtalamide fibre (PTF) rate, binder rate, flow, volume of the specimen. The result indicates that the proposed model can be applied in predicting Marshall Stability of asphalt mixtures. The model is further applied to evaluate the effect of different rates of Polyparaphenylene Terephtalamide on Marshall Stability.
机译:由于沥青路面材料在各种载荷条件,路面结构和环境条件下的复杂行为,因此难以准确预测沥青路面的稳定性。为了进行预测,需要通过一种准确而简单的方法来找到输入和输出数据之间的数学关系。近年来,由于人工神经网络(ANN)具有学习和适应的能力,因此已被用于对材料的特性和行为进行建模,并在土木工程应用的许多领域中找到不同特性之间的复杂关系。在本研究中,实验室数据是从用于开发ANN模型的实验研究中获得的。为了使用ANN模型预测混合物的马歇尔稳定性值,必须适当选择输入参数(神经元)。输入层中有四个节点,分别与四个变量相对应:聚对苯撑对苯二酰胺纤维(PTF)速率,粘合剂速率,流量,样品体积。结果表明,该模型可用于预测沥青混合料的马歇尔稳定性。该模型可进一步用于评估不同比例的聚对苯撑对苯二甲酰胺对马歇尔稳定性的影响。

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