| [1] |
Zhang Y, Zhou D, Guo X. Regional climate response to global warming in the source region of the Yellow River and its impact on runoff[J]. Science China Earth Sciences, 2024, 67(3): 843-855.
|
| [2] |
Song L, Wang L, Luo D, et al. Assessing hydrothermal changes in the upper Yellow River Basin amidst permafrost degradation[J]. Climate and Atmospheric Science, 2024, 7(1): 57.
|
| [3] |
童生春, 李国荣, 李进芳, 等. 黄河源高寒草甸退化秃斑地土壤基本特征及其风蚀规律[J]. 水土保持研究, 2023, 30(4): 10-17.
|
|
[Tong Shengchun, Li Guorong, Li Jinfang, et al. Characteristics and wind erosion in degraded barren patches of aipine meadow in the source of Yellow River source[J]. Research of Soil and Water Conservation, 2023, 30(4): 10-17. ]
|
| [4] |
Yang H, Li Z, Lu Y, et al. Modelling of cantilever bank failure for peat-type meander bends in the source region of the Yellow River[J]. International Journal of Sediment Research, 2023, 38(3): 421-431.
|
| [5] |
Xing X U, Yuji J, Fan Z, et al. Variation and attribution analysis of runoff and sediment flux in the Tuotuo River using IHA-RVA[J]. Advances in Earth Science, 2023, 38(8): 826-837.
doi: 10.11867/j.issn.1001-8166.2023.046
|
| [6] |
Dong C, Gu Y, Jia Y, et al. Effects of freeze-thaw cycles on the size distribution and stability of soil aggregate in the permafrost regions of the Qinghai-Tibetan Plateau[J]. Environmental Research Communications, 2023, 5(9): 095008.
|
| [7] |
Sheng-bo S, Jian-jun Q, Yuan-ming L, et al. Effects of freeze-thaw cycles on soil mechanical and physical properties in the Qinghai-Xizang Plateau[J]. Journal of Mountain Science, 2015, 12(4): 999-1009.
|
| [8] |
Liu J, Chang D, Yu Q. Influence of freeze-thaw cycles on mechanical properties of a silty sand[J]. Engineering Geology, 2016, 210: 23-32.
|
| [9] |
张江浩, 冀鸿兰, 杨震, 等. 冻融循环下黄河堤岸砂质壤土宏细观破坏过程[J]. 河海大学学报 (自然科学版), 2024, 52(6): 69-80.
|
|
[Zhang Jianghao, Ji Honglan, Yang Zhen, et al. Macroscopic and microscopic damage processes of sandy loam soils in Yellow River embankment under freeze-thaw cycles[J]. Journal of Hohai University (Natural Sciences), 2024, 52(6): 69-80. ]
|
| [10] |
穆彦虎, 陈涛, 陈国良, 等. 冻融循环对黏质粗粒土抗剪强度影响的试验研究[J]. 防灾减灾工程学报, 2019, 39(3): 375-386.
|
|
[Mu Yanhu, Chen Tao, Chen Guoliang, et al. Experimental study on effect of cycles freeze-thaw on shear behaviors of clayey coarse-grained soil[J]. Journal of Disaster Prevention and Mitigation Engineering, 2019, 39(3): 375-386. ]
|
| [11] |
Konrad J M. Physical processes during freeze-thaw cycles in clayey silts[J]. Cold Regions Science and Technology, 1989, 16(3): 291-303.
|
| [12] |
Gao Zhou, Hu Xia, Li Xiaoyan, et al. Effects of freeze-thaw cycles on soil macropores and its implications on formation of hummocks in alpine meadows in the Qinghai Lake watershed, northeastern Qinghai-Xizang Plateau[J]. Journal of Soils and Sediments, 2021, 21: 245-256.
doi: 10.1007/s11368-020-02765-2
|
| [13] |
朱海丽, 李志威, 胡夏嵩, 等. 黄河源草甸型弯曲河流的悬臂式崩岸机制[J]. 水利学报, 2015, 46(7): 836-843.
|
|
[Zhu Haili, Li Zhiwei, Hu Xiaosong, et al. Cantilever bank failure mechanism of meadow meandering river in the Yellow River source region[J]. Journal of Hydraulic Engineering, 2015, 46(7): 836-843. ]
|
| [14] |
刘国松, 朱海丽, 张玉, 等. 冻融作用对黄河源区曲流河岸土体抗剪特性的影响[J]. 干旱区研究, 2023, 40(10): 1637-1643.
doi: 10.13866/j.azr.2023.10.10
|
|
[Liu Guosong, Zhu Haili, Zhang Yu, et al. Influence of freezing and thawing on the shear resistance of meandering riverbank soil in the Yellow River source region[J]. Arid Zone Research, 2023, 40(10): 1637-1643. ]
doi: 10.13866/j.azr.2023.10.10
|
| [15] |
GB/T 50123-2019. 中华人民共和国住房和城乡建设部: 土工试验方法标准[S]. 北京: 中国计划出版社, 2019.
|
|
[GB/T 50123-2019. Ministry of Housing and Urban-Rural Development of the People’s Republic of China: Standard for Geotechnical Test Methods[S]. Beijing: China Publishing Press, 2019. ]
|
| [16] |
王雪奎, 李东军, 朱耀庭, 等. 基于数字图像技术的黏性土颗粒形状分析[J]. 岩土工程学报, 2020, 42(S2): 168-171.
|
|
[Wang Xuekui, Li Dongjun, Zhu Yaoting, et al. Particle shape analysis of clay based on digital image technology[J]. Chinese Journal of Geotechnical Engineering, 2020, 42(S2): 168-171. ]
|
| [17] |
Beven K, Germann P. Macropores and water flow in soils[J]. Water Resources Research, 1982, 18(5): 1311-1325.
|
| [18] |
Shen J, Wang Q, Chen Y, et al. Evolution process of the microstructure of saline soil with different compaction degrees during freeze-thaw cycles[J]. Engineering Geology, 2022, 304: 106699.
|
| [19] |
师智勇, 陈慧娥, 苑晓青, 等. 冻融循环对土体分散性的影响及微观机理分析[J]. 工程地质学报, 2023, 31(1): 51-59.
|
|
[Shi Zhiyong, Chen Hui’e, Yuan Xiaqing, et al. Effect of freezeing-thawing cycles on soil dispersion and analysis of microscopic mechanism[J]. Journal of Engineering Geology, 2023, 31(1): 51-59. ]
|
| [20] |
Kong F, Nie L, Xu Y, et al. Effects of freeze-thaw cycles on the erodibility and microstructure of soda-saline loessal soil in Northeastern China[J]. Catena, 2022, 209: 105812.
|
| [21] |
刘宽, 叶万军, 景宏君, 等. 季冻区黄土微观损伤识别与宏观力学响应研究[J]. 岩土工程学报, 2021, 43(S1): 192-197.
|
|
[Liu Kuan, Ye Wanjun, Jing Hongjun, et al. Microscopic damage identification and macroscopic mechanical response of loess in seasonal frozen area[J]. Chinese Journal of Geotechnical Engineering, 2021, 43(S1): 192-197. ]
|
| [22] |
Sun L, Tao S, Liu Q. Frost crack propagation and interaction in fissured rocks subjected to freeze-thaw cycles: Experimental and numerical studies[J]. Rock Mechanics and Rock Engineering, 2023, 56(2): 1077-1097.
|
| [23] |
Wei Z, Yang W, Zhai C, et al. Freezing characteristics and microstructural damage evolution of granular materials in cold regions under freezing-thawing cycles[J]. Environmental Earth Sciences, 2023, 82(7): 191.
|
| [24] |
Tang L, Lu Z, Zhao T, et al. Exploring strength deterioration mechanism of soil-rock mixture based on pore structure characteristics under freeze-thaw cycles[J]. Cold Regions Science and Technology, 2024, 217: 104040.
|
| [25] |
Wang J, Wang Q, Kong Y, et al. Analysis of the pore structure characteristics of freeze-thawed saline soil with different salinities based on mercury intrusion porosimetry[J]. Environmental Earth Sciences, 2020, 79: 1-16.
|
| [26] |
Haji-Akbari A, Debenedetti P G. Computational investigation of surface freezing in a molecular model of water[J]. Proceedings of the National Academy of Sciences, 2017, 114(13): 3316-3321.
|
| [27] |
郑郧, 马巍, 邴慧. 冻融循环对土结构性影响的试验研究及影响机制分析[J]. 岩土力学, 2015, 36(5): 1282-1287.
|
|
[Zheng Yun, Ma Wei, Bing Hui. Impact of freezing and thawing cycles on structure of soils and its mechanism analysis by laboratory testing[J]. Rock and Soil Mechanics, 2015, 36(5): 1282-1287. ]
|
| [28] |
Leung F T Y, Yan W M, Hau B C H, et al. Root systems of native shrubs and trees in Hong Kong and their effects on enhancing slope stability[J]. Catena, 2015, 125: 102-110.
|
| [29] |
刘继红, 崔俊芳, 郭晓军, 等. 植物根系影响土壤水分运动研究的文献计量分析[J]. 土壤通报, 2024, 55(4): 1163-1173.
|
|
[Liu Jihong, Cui Junfang, Guo Xiaojun, et al. An analysis of the influence of plant roots on soil water movement based on bibliometric studies[J]. Chinese Journal of Soil Science, 2024, 55(4): 1163-1173. ]
|
| [30] |
Orakoglu M E, Liu J. Effect of freeze-thaw cycles on triaxial strength properties of fiber-reinforced clayey soil[J]. KSCE Journal of Civil Engineering, 2017, 21(6): 2128-2140.
|
| [31] |
Wang M, Meng S, Sun Y, et al. Shear strength of frozen clay under freezing-thawing cycles using triaxial tests[J]. Earthquake Engineering and Engineering Vibration, 2018, 17: 761-769.
|