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An approach for optimizing pavement design-redesign parameters in PPP projects

机译:在PPP项目中优化路面设计-重新设计参数的方法

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摘要

Modeling the elasticity modulus of unbound granular pavement materials has attracted significant research interest because of its importance in pavement design particularly in PPP/BOT projects. These efforts have been hampered by three factors: (i) inability to capture the correlations between the asphalt and granular layers and the subgrade, (ii) inadequate modeling of the effects of external factors on the elasticity modulus of unbound materials, and (iii) widespread use of linear statistical relationships to model a complex and non-linear phenomenon. In this paper genetically optimized neural networks and falling weight deflectometer (FWD) back-analysis results from a newly constructed BOT project in Athens, Greece, are employed in order to evaluate pavement section design parameters. It is shown that parameter values adopted during design do not co-inside with those observed from the back-analysis studies. Further, the results indicate that the relative estimation error for the modulus of elasticity of the unbound material does not exceed 25%, while the correlation between actual and predicted values is 86%, both suggesting that the proposed approach models the physical phenomenon adequately, a finding with important practical implications particularly in PPP projects.
机译:由于未模压粒状路面材料的弹性模量建模在路面设计中,尤其是在PPP / BOT项目中的重要性,因此引起了广泛的研究兴趣。这些努力受到三个因素的阻碍:(i)无法捕获沥青和颗粒层与路基之间的相关性;(ii)外部因素对未结合材料的弹性模量影响的建模不足;以及(iii)线性统计关系的广泛使用为复杂的非线性现象建模。在本文中,通过遗传优化的神经网络和落锤挠度计(FWD)的反向分析结果,来自希腊雅典新建的BOT项目,用于评估路面截面设计参数。结果表明,在设计过程中采用的参数值与从反分析研究中观察到的参数值不一致。此外,结果表明,未结合材料的弹性模量的相对估计误差不超过25%,而实际值和预测值之间的相关性则为86%,均表明该方法可以对物理现象进行充分建模,具有重要实际意义的发现,尤其是在PPP项目中。

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