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Prediction and pareto-based multi-objective optimization of moisture and fatigue damages of asphalt mixtures modified with nano hydrated lime

机译:用纳米水合石灰改性沥青混合物水分和疲劳损伤的预测和帕累托的多目标优化

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Moisture sensitivity can lead to damages due to adhesion and cohesion in asphalt mixtures that cause serious damages to the pavement. Adhesion between bitumen and aggregate is a basic prerequisite for the proper performance of asphalt mixtures. The role of nano hydrated lime (NHL) as an anti-stripping agent has been extensively studied in asphalt pavements. In this study, in addition to investigating the effect of NHL as bitumen modifier on moisture and fatigue damages, and bitumen-aggregate adhesion and bitumen membrane cohesion using surface free energy (SFE) concept, the prediction model to achieve optimal additive percentage with two objectives of moisture sensitivity and fatigue failure by multivariate regression (MVR), group method of data handling (GMDH) and genetic programming (GP) were provided. By the use of the modified non-dominated sorting genetic algorithm II (NSGA-II) approach, Pareto fronts were then plotted. In addition, boiling water testing was applied to examine the sensitivity of mixtures to moisture. To simulate environmental conditions, asphalt mixtures were placed in freeze-thaw (F-T) cycles of 1, 3 and 5. 85-100 penetration grade base bitumen was modified with 0.5%, 1% and 1.5% NHL (by the weight of bitumen). The results indicated that by decreasing the number of yellow pixels in the image processing of modified mixtures with NHL, modification of bitumens decreased the moisture sensitivity of specimens. Using NHL increased the resistance of the specimens to moisture and fatigue damages. The amount of indirect tensile strength (ITS) and fatigue life of asphalt mixtures reduced by rising the number of F-T cycles. The highest increase in ITS and fatigue life was obvious in modified mixtures with 1.5% and 1% NHL, respectively. The results of calculating the surface free energy (SFE) components of the base and modified bitumens showed that using NHL enhanced the total SFE amount of bitumens. Also, using the NHL increased cohesion free energy (CFE), adhesion free energy (AFE) and debonding energy (DE) of modified bitumens and decreased the permeability of asphalt mixtures (PAMs) amount. Among the various methods, the GMDH method had the highest R-2. So that the R-2 value of GMDH for tensile strength ratio (TSR) and the ratio of fatigue life (NFR) was 93.9% and 86.9%, respectively. The two-objective optimization results indicated that 1.29% NHL was the best optimal amount to maximize the TSR and NFR values simultaneously. (C) 2020 Elsevier Ltd. All rights reserved.
机译:由于沥青混合物中的粘附和内聚力导致湿度敏感性可能导致对路面严重损坏的粘附和粘性导致损坏。沥青和骨料之间的粘附是沥青混合物适当性能的基本先决条件。纳米水合石灰(NHL)作为抗汽提剂的作用已在沥青路面中广泛研究。在这项研究中,除了研究NHL作为沥青改性剂对水分和疲劳损伤的影响,以及使用表面自由能(SFE)概念的沥青聚集粘连和沥青膜凝聚力,预测模型实现了最佳的添加剂百分比与两个目标提供了多元回归(MVR)的水分敏感性和疲劳失效,提供了数据处理(GMDH)的组方法和遗传编程(GP)。通过使用改性的非主导分类遗传算法II(NSGA-II)方法,然后绘制帕施戈前线。此外,应用沸水测试以检查混合物对水分的敏感性。为了模拟环境条件,将沥青混合物置于1,3和5的冻融(FT)循环中,用0.5%,1%和1.5%NHL(按沥青的重量)改性85-100次渗透级沥青。结果表明,通过降低在非霍奇金淋巴瘤改性混合物中的图像处理的黄色像素的数量,沥青的改性样品的水分敏感性下降。使用NHL将标本的电阻增加到水分和疲劳损坏。间接拉伸强度(其)和沥青混合物的疲劳寿命通过上升F-T循环的数量而降低。其疲劳寿命的最高增加显而易见的是12%和1%NHL的改性混合物。计算碱和改性沥青的表面自由能(SFE)组分的结果表明,使用NHL增强了沥青的总SFE量。此外,使用NHL增加的内粘性能量(CFE),粘附无能量(AFE)和改性沥青的脱粘能量(DE),并降低沥青混合物(PAMS)量的渗透性。在各种方法中,GMDH方法具有最高的R-2。因此,对于拉伸强度比(TSR)的GMDH的R-2值和疲劳寿命(NFR)的比例分别为93.9%和86.9%。两目标优化结果表明1.29%NHL同时最大化TSR和NFR值是最佳的最佳量。 (c)2020 elestvier有限公司保留所有权利。

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