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Optimizing Laboratory Mixture Design as It Relates to Field Compaction to Improve Asphalt Mixture Durability

机译:优化与现场压实有关的实验室混合物设计,以改善沥青混合物的耐久性

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摘要

Most departments of transportation, including Indiana, currently use the Superpave mixture design method to design asphalt mixtures. This method specifies that the optimum asphalt content for a given gradation be selected at 4 percent air voids. During construction, these mixtures are typically compacted to 7-8 percent air voids. If mixtures were designed to be more compactable in the field they could be compacted to the same density as the laboratory mixture design, which would increase pavement durability by decreasing the in-place air voids. The objective of this research was to optimize the asphalt mixture design in order to increase in-place asphalt pavement durability without sacrificing the permanent deformation characteristics of the mixture.Three asphalt mixtures were designed using the standard Superpave design method at 100 gyrations of the Superpave Gyratory Compactor, suitable for traffic levels of 3 to 30 million Equivalent Single Axle Loads. Each mixture was then used as a starting point to design three additional mixtures using 70, 50, and 30 gyrations, with optimum binder content chosen at 5 percent air voids, rather than the currently specified 4 percent. The effective asphalt content was held constant for the original and redesigned mixtures. Permanent deformation characteristics of the sets of four mixtures were determined by measuring the dynamic modulus and flow number. The results suggest that the mixture designs produced using 70, 50, and 30 gyrations had permanent deformation characteristics equal to or better than the original 100-gyration mixtures.Based on the laboratory test results, two field trials were placed evaluate the design method, ease of construction and to compare the construction results of the re-designed and original mixtures. Samples from both projects were collected during construction, test specimens compacted, and additional physical testing completed. The field trial results suggest that it is possible to place a mixture at 5 percent air voids and that mixtures designed at 5 percent air voids should have equivalent performance to those designed at the conventional 4 percent air voids.
机译:目前,包括印第安纳州在内的大多数交通部门都使用Superpave混合料设计方法来设计沥青混合料。该方法规定,对于给定等级的最佳沥青含量,应在4%的气隙下选择。在施工期间,通常将这些混合物压实至7-8%的空隙。如果将混合物设计为在现场更致密,则可以将其压缩到与实验室混合物设计相同的密度,这将通过减少就地气隙来提高路面耐久性。这项研究的目的是优化沥青混合料的设计,以在不牺牲混合料永久变形特性的情况下增加原位沥青路面的耐久性。在Superpave Gyratory的100转数下,使用标准Superpave设计方法设计了三种沥青混合料压实机,适用于3到3000万当量单轴载荷的交通量。然后,将每种混合物用作设计70、50和30回转的三种其他混合物的起点,并在5%的空隙(而非当前指定的4%)下选择最佳粘合剂含量。对于原始和重新设计的混合物,有效沥青含量保持恒定。通过测量动态模量和流量来确定这四种混合物组的永久变形特性。结果表明,使用70、50和30回转产生的混合物设计的永久变形特性等于或优于原始100回转混合物。基于实验室测试结果,进行了两次现场试验以评估设计方法,简化并比较重新设计和原始混合物的施工结果。在施工期间收集了两个项目的样品,压实了试样,并完成了其他物理测试。现场试验结果表明,可以将混合物放置在5%的气隙中,设计为5%的气隙的混合物应具有与常规4%的气隙相同的性能。

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