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Development of preliminary transfer functions for performance predictions in FlexPAVE™

机译:FlexPave™绩效预测初步传递函数的开发

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Mechanistic-empirical design and performance-related specifications are state-of-the-art tools for designing pavements and determining incentives/disincentives for paving contracts. These methods require the reliable prediction of pavement performance throughout the pavement's design life. One such prediction program is FIexPAVE (TM), which applies three-dimensional viscoelastic finite element analysis with moving loads to calculate the pavement's mechanical responses under traffic loading and given climate data. The simplified viscoelastic continuum damage model and shift model are used to calculate the fatigue damage in the pavement's cross-section and the rut depths, respectively. With regard to fatigue damage, a fatigue transfer function is needed to convert the computed cross-sectional damaged area (i.e., the damage level) to the cracked area on the pavement surface. With regard to rut depth, a rutting transfer function is needed to calibrate the predicted rut depths. In this study, preliminary transfer functions for the predicted fatigue damage and rut depths were developed using four sets of field measurement data obtained from test sections in the United States, Canada, and South Korea that include interstate highways and an accelerated testing facility. Good agreement between the predicted performance and field observations was found after calibration of FIexPAVE (TM). (C) 2020 Elsevier Ltd. All rights reserved.
机译:机械实验设计和性能相关规范是用于设计人行道和确定铺设合同的激励/抑制措施的最先进的工具。这些方法需要在整个路面的设计寿命中可靠地预测路面性能。一种这样的预测程序是FiexPave(TM),其使用移动载荷的三维粘弹性有限元分析,以计算交通负荷和给定的气候数据下的路面的机械响应。简化的粘弹性连续体损伤模型和移位模型用于分别计算路面横截面和车辙深度的疲劳损坏。关于疲劳损坏,需要疲劳传递函数来将计算的横截面损坏区域(即,损坏水平)转换为路面表面上的裂纹区域。关于RUT深度,需要旋转传递函数来校准预测的车辙深度。在这项研究中,使用包括在美国,加拿大和韩国的测试部分获得的四组现场测量数据开发了预测疲劳损坏和车辙深度的初步转移功能,包括高州际公路和加速测试设施。在FiexPave(TM)校准后发现了预测性能和现场观测之间的良好一致性。 (c)2020 elestvier有限公司保留所有权利。

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