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首页> 外文期刊>Journal of Transportation Engineering >Characterization of the Tensile Viscoelastic Properties of an Undamaged Asphalt Mixture
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Characterization of the Tensile Viscoelastic Properties of an Undamaged Asphalt Mixture

机译:完好的沥青混合料的拉伸粘弹性特性的表征

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All characterization of asphalt mixtures must begin with the properties of the mixture in an undamaged state. Subsequent tests of the mixture in different stress or strain states at a level to cause damage can be referred to this undamaged state to assess the degree to which the mixture has been changed. All forms of such change from an original state by such damaging processes as fatigue, plasticity, healing, moisture damage, and aging can only be properly assessed by comparison with an accurately measured undamaged state. This is particularly the case with the use of pseudostrain dissipated energy to characterize the departure of a material from an original linear viscoelastic state. This paper presents a new test and data analysis protocol based on linear viscoelasticity theory to characterize the master curves of the viscoelastic properties of an asphalt mixture. Instead of running a relaxation modulus test in which controlling the test apparatus is a serious challenge, the proposed test protocol applied a uniaxial monotonically increasing tensile stress to the test specimen. The axial and radial deformations of the specimen were recorded and used to calculate the axial and radial strains. The uniaxial tensile loading rate and time were carefully controlled to assure that the strain of the specimen was limited to the small-strain condition (<100 με) under which the specimen was assumed not to be damaged during the test. The applied stress and measured strain were fitted with functions of time. Applying the Laplace transform to the stress and strain functions, the relaxation modulus as a function of time was determined using the Boltzmann superposition principle and the convolution theorem. The relation between the relaxation modulus and the complex modulus was used to determine the complex modulus as a complex function of frequency. Then the magnitude and phase angle of the complex modulus were obtained from the real part and imaginary part of the complex modulus. The proposed test and data analysis protocol were performed on the same specimen at three temperatures, 10, 20, and 30℃, so master curves of the magnitude and phase angle of the complex modulus were constructed using the time-temperature superposition principle. The master curves of the magnitude and phase angle of the complex modulus were fitted with mathematical functions that were reported in the literature and were modified to be more comprehensive. The parameters in the mathematical functions were searched simultaneously using the Solver Function built into the Microsoft Excel. Compared to the traditional relaxation modulus and the dynamic modulus test protocols, the newly developed test protocol was more efficient to characterize the viscoelastic properties of asphalt mixtures. The newly developed test method did not introduce any damage to the specimen so the same specimen may be retested for its fatigue, healing, and other properties.
机译:沥青混合料的所有表征都必须以未破坏状态下的混合物性能开始。可以将在不同应力或应变状态下导致损坏的水平的混合物的后续测试称为该未损坏状态,以评估混合物的变化程度。只有通过与精确测量的未损坏状态进行比较,才能正确评估由于疲劳,可塑性,愈合,湿气损坏和老化等损坏过程而从原始状态发生的所有形式的变化。使用拟应变耗散的能量来表征材料与原始线性粘弹性态的偏离尤其如此。本文提出了一种基于线性粘弹性理论的新测试和数据分析协议,以表征沥青混合料的粘弹性主曲线。提议的测试规程不是进行松弛模量测试,在松弛模量测试中控制测试设备是一个严峻的挑战,而是向测试样品施加了单轴单调增加的拉伸应力。记录样品的轴向和径向变形,并用于计算轴向和径向应变。仔细控制单轴拉伸载荷的速率和时间,以确保将样品的应变限制在小应变条件下(<100με),在该条件下,假定样品在测试过程中没有损坏。所施加的应力和测得的应变与时间函数拟合。将拉普拉斯变换应用于应力和应变函数,使用玻耳兹曼叠加原理和卷积定理确定松弛模量随时间的变化。使用弛豫模量与复数模量之间的关系来确定复数模量作为频率的复数函数。然后从复数模的实部和虚部获得复数的大小和相角。拟议的测试和数据分析方案是在10、20和30℃这三个温度下对同一试样进行的,因此,使用时温叠加原理构造了复数模量和相角的主曲线。复数模量的幅值和相角的主曲线与文献中报道的数学函数相符,并进行了修改,使其更加全面。使用Microsoft Excel中内置的求解器函数可以同时搜索数学函数中的参数。与传统的松弛模量和动态模量测试规程相比,新开发的测试规程更有效地表征了沥青混合物的粘弹性。新开发的测试方法没有对标本造成任何损坏,因此可以对同一标本进行疲劳,愈合和其他性能的重新测试。

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