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Pavement moduli back-calculation using artificial neural network and genetic algorithms

机译:使用人工神经网络和遗传算法的路面模数回计算

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An Artificial Neural Network (ANN)-based back-calculating program combined with a Genetic Algorithm (GA) optimization algorithm was developed for the back-calculation of flexible pavement layer moduli. Deflections measured using geophones on a model pavement structure under accelerated pavement testing (APT) with the MLS30 were utilized for back-calculating the pavement layer moduli. As theoretically expected of visco-elastic materials that are temperature dependent, the back-calculated moduli of the asphaltic layers, namely the surfacing and base, exhibited a decreasing trend with an increase in the temperature and number of APT load cycles. By contrast, the moduli of the unbound base layer and subgrade exhited insensitivity to temperature changes and did not decay significantly as a function of the APT loading. Overall, the integrated GABP algorithm (based ANN formulation) exhibited potential in satisfactorily back-calculating the pavement layer moduli form geophone measured deflections with acceptable accuracy. The splitting fatigue test results show that the fatigue life of asphalt mixture decreases with the increase of loading cycles, which can verify the feasibility of back-calcultion model. (C) 2021 Elsevier Ltd. All rights reserved.
机译:基于与遗传算法(GA)优化算法结合的人工神经网络(ANN)基于遗传算法(GA)优化算法,用于柔性路面模量的后计算。利用MLS30在加速路面结构(APT)下使用模型路面结构上测量的偏转,用于背面计算路面模量。作为温度依赖性的粘弹性材料的理论预期,沥青层的后计算模态,即表面处理和基础,随着APT负荷循环的温度和数量的增加而降低了趋势。相比之下,未结合基础层的模态和路基对温度变化的不敏感性辅导不敏感,并且由于APT负载的函数而言并未显着衰减。总的来说,集成的GABP算法(基于ANN制剂)在令人满意的回到计算的势地上表现出具有可接受的精度的地震静音的地理静验的潜力。分裂疲劳试验结果表明,沥青混合料的疲劳寿命随着装载循环的增加而降低,这可以验证背部角质模型的可行性。 (c)2021 elestvier有限公司保留所有权利。

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