Analysis of transient viscoelastic response of asphalt concrete using frequency domain approach

The analysis of transient linear viscoelastic response of asphalt concrete (AC) is important for engineering applications. The traditional transient response of AC is analyzed in the time domain by performing complicated convolution integral. The frequency domain approach allows one to determine the...

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Main Authors: Yanqing Zhao, Sajjad Yousefi Oderji, Peisong Chen
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2015-12-01
Series:Journal of Traffic and Transportation Engineering (English ed. Online)
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2095756415000859
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spelling doaj-fde301657dcf49c789b51af119ed78d12021-02-02T07:44:03ZengKeAi Communications Co., Ltd.Journal of Traffic and Transportation Engineering (English ed. Online)2095-75642015-12-012641442110.1016/j.jtte.2015.10.003Analysis of transient viscoelastic response of asphalt concrete using frequency domain approachYanqing ZhaoSajjad Yousefi OderjiPeisong ChenThe analysis of transient linear viscoelastic response of asphalt concrete (AC) is important for engineering applications. The traditional transient response of AC is analyzed in the time domain by performing complicated convolution integral. The frequency domain approach allows one to determine the transient responses by performing simple multiplication instead of the complicated convolution integral, and it does not require the time derivative of the input excitation, and thus, the approach could greatly reduce the analysis complexity. This study investigated the frequency domain approach in calculating the transient response by utilizing the discrete Fourier transform technique. The accuracy and effectiveness of the frequency domain approach were verified by comparing the analytical and calculated responses for the standard 3-parameter Maxwell model and by comparing the time and frequency domain solutions for AC. The effect of aliasing of the frequency domain approach can effectively reduce by selecting a small sampling interval for the time domain excitation function. A sampling interval is acceptable as long as the amplitude of the Fourier transformed excitation is close to 0 more than half of the sampling rate. The results show that the frequency domain approach provides a simple and accurate way to perform linear viscoelastic analysis of AC.http://www.sciencedirect.com/science/article/pii/S2095756415000859Asphalt concreteLinear viscoelasticTransient responseFourier transformationAliasing
collection DOAJ
language English
format Article
sources DOAJ
author Yanqing Zhao
Sajjad Yousefi Oderji
Peisong Chen
spellingShingle Yanqing Zhao
Sajjad Yousefi Oderji
Peisong Chen
Analysis of transient viscoelastic response of asphalt concrete using frequency domain approach
Journal of Traffic and Transportation Engineering (English ed. Online)
Asphalt concrete
Linear viscoelastic
Transient response
Fourier transformation
Aliasing
author_facet Yanqing Zhao
Sajjad Yousefi Oderji
Peisong Chen
author_sort Yanqing Zhao
title Analysis of transient viscoelastic response of asphalt concrete using frequency domain approach
title_short Analysis of transient viscoelastic response of asphalt concrete using frequency domain approach
title_full Analysis of transient viscoelastic response of asphalt concrete using frequency domain approach
title_fullStr Analysis of transient viscoelastic response of asphalt concrete using frequency domain approach
title_full_unstemmed Analysis of transient viscoelastic response of asphalt concrete using frequency domain approach
title_sort analysis of transient viscoelastic response of asphalt concrete using frequency domain approach
publisher KeAi Communications Co., Ltd.
series Journal of Traffic and Transportation Engineering (English ed. Online)
issn 2095-7564
publishDate 2015-12-01
description The analysis of transient linear viscoelastic response of asphalt concrete (AC) is important for engineering applications. The traditional transient response of AC is analyzed in the time domain by performing complicated convolution integral. The frequency domain approach allows one to determine the transient responses by performing simple multiplication instead of the complicated convolution integral, and it does not require the time derivative of the input excitation, and thus, the approach could greatly reduce the analysis complexity. This study investigated the frequency domain approach in calculating the transient response by utilizing the discrete Fourier transform technique. The accuracy and effectiveness of the frequency domain approach were verified by comparing the analytical and calculated responses for the standard 3-parameter Maxwell model and by comparing the time and frequency domain solutions for AC. The effect of aliasing of the frequency domain approach can effectively reduce by selecting a small sampling interval for the time domain excitation function. A sampling interval is acceptable as long as the amplitude of the Fourier transformed excitation is close to 0 more than half of the sampling rate. The results show that the frequency domain approach provides a simple and accurate way to perform linear viscoelastic analysis of AC.
topic Asphalt concrete
Linear viscoelastic
Transient response
Fourier transformation
Aliasing
url http://www.sciencedirect.com/science/article/pii/S2095756415000859
work_keys_str_mv AT yanqingzhao analysisoftransientviscoelasticresponseofasphaltconcreteusingfrequencydomainapproach
AT sajjadyousefioderji analysisoftransientviscoelasticresponseofasphaltconcreteusingfrequencydomainapproach
AT peisongchen analysisoftransientviscoelasticresponseofasphaltconcreteusingfrequencydomainapproach
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