[1] |
杜 俊, 侯克鹏, 梁 维, 等. 粗粒土压实特性及颗粒破碎分形特征试验研究[J]. 岩土力学, 2013, 34(增刊1): 155-161. (DU Jun, HOU Ke-peng, LIANG Wei, et al. Experimental study of compaction characteristics and fractal feature in crushing of coarse-grained soils[J]. Rock and Soil Mechanics, 2013, 34(S1): 155-161. (in Chinese))
|
[2] |
SEYEDIHOSSEININIA E, MIRGHASEMI A A. Effect of particle breakage on the behavior of simulated angular particle assemblies[J]. China Particuology, 2007, 5: 328-336.
|
[3] |
MARSAL R J. Large scale testing of rockfill materials[J]. Journal of Soil Mechanics and Foundations Division, American Society of Civil Engineers, 1967, 93(2): 27-43.
|
[4] |
BERTACCHI P, BELLOTTI R. Experimental research on materials for rockfill dams[C]// Tenth Congress on Large Dams, June 1970, Montreal, Canada. International Commission on Large Dams. Paris, 1970: 511-529.
|
[5] |
FUMAGALI E, MOSCINI B, ROSSI P P. Laboratory tests on materials and static models for rockfill dams[C]// Tenth Congress on Large Dams, June 1970, Montreal, Canada. International Commission on Large Dams. Paris, 1970: 531-551.
|
[6] |
MARACHI N D, CHAN C K, SEED H B. Evaluation of properties of rockfill materials[J]. Journal of Soil Mechanics and Foundations Division American Society of Civil Engineers, 1972, 98(1): 95-114.
|
[7] |
VENKATACHALAM K. Prediction of mechanical behavior of rockfill materials[D]. Delhi: Indian Institute of Technology, 1993.
|
[8] |
VARADARAJAN A, SHARMA K G, VENKATACHALAM K, et al. Testing and modeling two rockfill materials[J]. Journal of Geotechnical and Geoenvironmental Engineering, 2003, 129(3): 206-218.
|
[9] |
毛雪松, 马 骉. 基于水热耦合效应的冻土路基稳定性研究[M]. 北京: 人民交通出版社, 2011. (MAO Xue-song, MA Biao. The research on the stability of frost subgrade based on the effect of moisture-thermal coupling[M]. Beijing: China Communications Press, 2011. (in Chinese))
|
[10] |
马 巍, 王大雁, 等. 冻土力学[M]. 北京: 科学出版社, 2014. (MA Wei, WANG Da-yan, et al. Mechanics of frozen ground[M]. Beijing: China Science Publishing & Media Ltd., 2014. (in Chinese))
|
[11] |
VINSON T S, AHMAD F, RIEKE R. Factors important to the development of frost heave susceptibly criteria for coarse-grained soils[J]. Transportation Research Record, 1986: 124-131.
|
[12] |
CHEN X, WANG Y. Control of frost heave in geotechnical engineering[C]// Proceedings of the Eighth International Conference on Offshore Mechanics and Arctic Engineering. New York, 1989.
|
[13] |
叶阳升, 王仲锦, 程爱君, 等. 路基的填料冻胀分类及防冻层设置[J]. 中国铁道科学, 2007, 28(1): 1-7. (YE Yang-sheng, WANG Zhong-jin, CHENG Ai-jun, et al. Frost heave classification of railway subgrade filling material and the design of anti-freezing layer[J]. China Railway Science, 2007, 28(1): 1-7. (in Chinese))
|
[14] |
许 建, 牛富俊, 牛永红, 等. 换填法抑制季节冻土区铁路路基冻胀效果分析[J]. 中国铁道科学, 2011, 32(5): 1-7. (XU Jian, NIU Fu-jun, NIU Yong-hong, et al. Analysis on the effect of replacing-soil method on inhibiting frost heave of railway roadbed in seasonal frozen soil region[J]. China Railway Science, 2011, 32(5): 1-7. (in Chinese))
|
[15] |
王天亮, 岳祖润. 细粒含量对粗粒土冻胀特性影响的试验研究[J]. 岩土力学,2013, 34(2): 359-363. (WANG Tian-liang, YUE Zu-run. Influence of fines content on frost heaving properties of coarse grained soil[J]. Rock and Soil Mechanics, 2013, 34(2): 359-363.(in Chinese))
|
[16] |
JTG/T D31—04—2012多年冻土地区公路设计与施工技术细则[S]. 北京: 人民交通出版社, 2013. (JTG/T D31—04—2012 Guidelines for design and construction of highway in permafrost area[S]. Beijing: China Communication Press, 2013. (in Chinese))
|
[17] |
刘建坤, 曾巧玲, 侯永峰, 等. 路基工程[M]. 北京: 中国建筑工业出版社, 2011. (LIU Jian-kun, ZENG Qiao-ling, HOU Yong-feng, et al. Subgrade engineering[M]. Beijing: China Building Materials Press, 2011. (in Chinese))
|
[18] |
WANG D Y, MA W, NIU Y H, et al. Effects of cyclic freezing and thawing on mechanical properties of Qinghai-Tibet clay[J]. Cold Regions Science and Technology, 2007, 48: 34-43.
|
[19] |
ANDERSLAND O B, LADANYI B. Frozen Ground Engineering[M]. 2nd ed. New York: Co-Published by American Society of Civil Engineers and John Wiley & Sons (ASCE Press), 2004.
|
[20] |
AOYAMA K, OGAWA S, FUKUDA M. Temperature dependencies of mechanical properties of soils subjected to freezing and thawing[C]// KINOSITA S, FUKUDA M, eds. Proceedings of the 4th International Symposium on Ground Freezing, 5-7 August 1985, Sapporo, Japan. A.A. Balkema Publishers, Rotterdam, Netherlands, 1985: 217-222.
|
[21] |
BENOIT G R, VOORHEES W B. Effect of freeze-thaw activity on water retention, hydraulic conductivity, density and surface strength of two soils frozen at high water content[R]. Hanover: USA Cold Regions Research and Engineering Laboratory, 1990.
|
[22] |
CHAMBERLAIN E J, GOW A J. Effect of freezing and thawing on the permeability and structure of soils[J]. Engineering Geology, 1979, 13 (1/2/3/4):73-92.
|
[23] |
朱元林. 冻结粉砂在常变形速度下的单轴抗压强度[J]. 冰川冻土, 1986, 8(4): 365-380. (ZHU Yuan-lin. Uniaxial compressive strength of frozen silt under constant deformation rates[J]. Journal of Glaciolcgy and Geocryolgy, 1986, 8(4): 365-380.(in Chinese))
|
[24] |
杨成松, 何 平, 程国栋, 等. 冻融作用对土体干容重和含水量影响的试验研究[J]. 岩石力学与工程学报, 2003(增刊2): 2695-2699. (YANG Cheng-song, HE Ping, CHENG Guo-dong, et al. Testing study on influence of freezing and thawing on dry density and water content of soil[J]. Chinese Journal of Rock Mechanics and Engineering, 2004(S2): 2695-2699. (in Chinese))
|