Discrete-Element Analysis for Compaction-Induced Stiffness Variation of Ballast Aggregate in Large-Scale Triaxial Testing

被引:4
作者
Huang, Shihao [1 ]
Qian, Yu [1 ]
机构
[1] Univ of South Carolina, Dept Civil & Environm Engn, Columbia, SC 29208 USA
关键词
Railroad ballast; Discrete-element method (DEM); Triaxial test; Compaction method; Particle rearrangement; Interlocking; RAILWAY BALLAST; FOULED BALLAST; BEHAVIOR; PERFORMANCE; TRACK;
D O I
10.1061/IJGNAI.GMENG-9642
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
Large-scale triaxial tests are popular for evaluating the mechanical properties of railroad ballast. The literature shows that different compaction methods have been used to prepare the samples. This research investigates the potential variation caused by different compaction methods, even when the samples are compacted to the same density. A series of triaxial tests are conducted, and the results confirm that the way in which ballast is compacted significantly affects its stiffness, but not its peak strength, as long as the density is consistent. Discrete-element method simulations are performed to explore this phenomenon and discover that stiffness variations are caused by different ways in which particles interlock and arrange themselves during compaction. Based on the findings from this study, it is recommended to consider the influence of compaction methods when conducting large-scale triaxial testing on railroad ballast or when evaluating the test results.
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页数:14
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共 44 条
[11]   Effect of Compaction Mode on the Mechanical Performance and Variability of Asphalt Mixtures [J].
Hunter, Alistair E. ;
McGreavy, Liam ;
Airey, Gordon D. .
JOURNAL OF TRANSPORTATION ENGINEERING, 2009, 135 (11) :839-851
[12]   Behaviour of clay-fouled ballast under drained triaxial testing [J].
Indraratna, B. ;
Tennakoon, N. ;
Nimbalkar, S. ;
Rujikiatkamjorn, C. .
GEOTECHNIQUE, 2013, 63 (05) :410-419
[13]   Smear behavior of railway ballast based on large-scale triaxial tests [J].
Indraratna, B ;
Ionescu, D ;
Christie, HD .
JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 1998, 124 (05) :439-449
[14]   Field Assessment of the Performance of a Ballasted Rail Track with and without Geosynthetics [J].
Indraratna, Buddhima ;
Nimbalkar, Sanjay ;
Christie, David ;
Rujikiatkamjorn, Cholachat ;
Vinod, Jayan .
JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2010, 136 (07) :907-917
[15]  
Itasca Consulting Group, 2021, PFC3D (Particle Flow Code in 3 dimensions) version 7.0
[16]   Characterization of deteriorated railway ballast morphological changes using 3D scanning and supervised machine learning data analytics [J].
Kwunjai, Sararat ;
Somsri, Theeradon ;
Jitsangiam, Peerapong ;
Binaree, Theechalit ;
Qian, Yu ;
Jing, Guoqing .
CONSTRUCTION AND BUILDING MATERIALS, 2023, 398
[17]   Significance of particle crushing in granular materials [J].
Lade, PV ;
Yamamuro, JA ;
Bopp, PA .
JOURNAL OF GEOTECHNICAL ENGINEERING-ASCE, 1996, 122 (04) :309-316
[18]   Simulations of large-scale triaxial shear tests on ballast aggregates using sensing mechanism and real-time (SMART) computing [J].
Liu, Shushu ;
Qiu, Tong ;
Qian, Yu ;
Huang, Hai ;
Tutumluer, Erol ;
Shen, Shihui .
COMPUTERS AND GEOTECHNICS, 2019, 110 :184-198
[19]   Comparison of Laboratory Testing Using SmartRock and Discrete Element Modeling of Ballast Particle Movement [J].
Liu, Shushu ;
Huang, Hai ;
Qiu, Tong ;
Gao, Liang .
JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2017, 29 (03)
[20]   The importance of modelling ballast particle shape in the discrete element method [J].
Lu, M. ;
McDowell, G. R. .
GRANULAR MATTER, 2007, 9 (1-2) :69-80