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Development of a rapid active layer detachment slide in the Fenghuoshan Mountains, Qinghai–Tibet Plateau.
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- Permafrost & Periglacial Processes, 2022, v. 33, n. 3, p. 298, doi. 10.1002/ppp.2151
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High‐resolution stable isotopic signals of ground ice indicate freeze–thaw history in permafrost on the northeastern Qinghai–Tibet Plateau.
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- Permafrost & Periglacial Processes, 2023, v. 34, n. 1, p. 68, doi. 10.1002/ppp.2172
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The vertical distribution of soil organic carbon and nitrogen in a permafrost‐affected wetland on the Qinghai–Tibet Plateau: Implications for Holocene development and environmental change.
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- Permafrost & Periglacial Processes, 2022, v. 33, n. 3, p. 286, doi. 10.1002/ppp.2146
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Effects of thermosyphons on the thermal regime and stability of cast‐in‐place piles in permafrost regions on the Qinghai‐Tibet Plateau.
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- Permafrost & Periglacial Processes, 2022, v. 33, n. 3, p. 277, doi. 10.1002/ppp.2144
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Engineering in the rugged permafrost terrain on the roof of the world under a warming climate.
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- Permafrost & Periglacial Processes, 2020, v. 31, n. 3, p. 417, doi. 10.1002/ppp.2059
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Permafrost zonation index map and statistics over the Qinghai–Tibet Plateau based on field evidence.
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- Permafrost & Periglacial Processes, 2019, v. 30, n. 3, p. 178, doi. 10.1002/ppp.2006
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Long‐term role of cooling the underlying permafrost of the crushed rock structure embankment along the Qinghai–Xizang railway.
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- Permafrost & Periglacial Processes, 2020, v. 31, n. 1, p. 172, doi. 10.1002/ppp.2027
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Using stable isotopes to illuminate thermokarst lake hydrology in permafrost regions on the Qinghai‐Tibet plateau, China.
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- Permafrost & Periglacial Processes, 2019, v. 30, n. 1, p. 58, doi. 10.1002/ppp.1996
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Stable Isotopic Stratification and Growth Patterns of Ground Ice in Permafrost on the Qinghai-Tibet Plateau, China.
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- Permafrost & Periglacial Processes, 2017, v. 28, n. 1, p. 119, doi. 10.1002/ppp.1892
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Distribution of Permafrost in China: An Overview of Existing Permafrost Maps.
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- Permafrost & Periglacial Processes, 2012, v. 23, n. 4, p. 322, doi. 10.1002/ppp.1756
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A New Method to Determine the Upper Boundary Condition for a Permafrost Thermal Model: An Example from the Qinghai-Tibet Plateau.
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- Permafrost & Periglacial Processes, 2012, v. 23, n. 4, p. 301, doi. 10.1002/ppp.1755
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- Article
Modelling Open-Talik Formation and Permafrost Lateral Thaw under a Thermokarst Lake, Beiluhe Basin, Qinghai-Tibet Plateau.
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- Permafrost & Periglacial Processes, 2012, v. 23, n. 4, p. 312, doi. 10.1002/ppp.1754
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Thermal state of permafrost and active layer in Central Asia during the international polar year.
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- Permafrost & Periglacial Processes, 2010, v. 21, n. 2, p. 198, doi. 10.1002/ppp.688
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- Article
A review of recent frozen soil engineering in permafrost regions along Qinghai-Tibet Highway, China.
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- Permafrost & Periglacial Processes, 2002, v. 13, n. 3, p. 199, doi. 10.1002/ppp.420
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The Prediction of Permafrost Change along the Qinghai-Tibet Highway, China.
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- Permafrost & Periglacial Processes, 2000, v. 11, n. 4, p. 371, doi. 10.1002/1099-1530(200012)11:4<371::AID-PPP354>3.0.CO;2-T
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Importance of Mountain Glaciers as a Source of Dissolved Organic Carbon.
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- Journal of Geophysical Research. Earth Surface, 2018, v. 123, n. 9, p. 2123, doi. 10.1029/2017JF004333
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- Article
Analysis of groundwater flow through low-latitude alpine permafrost by model simulation: a case study in the headwater area of Yellow River on the Qinghai-Tibet Plateau, China.
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- Hydrogeology Journal, 2023, v. 31, n. 3, p. 789, doi. 10.1007/s10040-023-02597-7
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Mapping the permafrost stability on the Tibetan Plateau for 2005–2015.
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- SCIENCE CHINA Earth Sciences, 2021, v. 64, n. 1, p. 62, doi. 10.1007/s11430-020-9685-3
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- Article
Soil respiration of alpine meadow is controlled by freeze–thaw processes of active layer in the permafrost region of the Qinghai–Tibet Plateau.
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- Cryosphere, 2020, v. 14, n. 9, p. 2835, doi. 10.5194/tc-14-2835-2020
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Brief communication: Evaluation and inter-comparisons of Qinghai–Tibet Plateau permafrost maps based on a new inventory of field evidence.
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- Cryosphere, 2019, v. 13, n. 2, p. 511, doi. 10.5194/tc-13-511-2019
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The physical properties of coarse-fragment soils and their effects on permafrost dynamics: a case study on the central Qinghai-Tibetan Plateau.
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- Cryosphere, 2018, v. 12, n. 9, p. 3067, doi. 10.5194/tc-12-3067-2018
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Consumption of atmospheric methane by the Qinghai-Tibet Plateau alpine steppe ecosystem.
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- Cryosphere, 2018, v. 12, n. 9, p. 2803, doi. 10.5194/tc-12-2803-2018
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- Article
Thermal impacts of engineering activities and vegetation layer on permafrost in different alpine ecosystems of the Qinghai-Tibet Plateau, China.
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- Cryosphere, 2016, v. 10, n. 4, p. 1695, doi. 10.5194/tc-10-1695-2016
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Exchange of groundwater and surface-water mediated by permafrost response to seasonal and long term air temperature variation.
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- Geophysical Research Letters, 2011, v. 38, n. 14, p. n/a, doi. 10.1029/2011GL047911
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- Article
Historical changes in the depth of seasonal freezing of "Xing'anling-Baikal" permafrost in China.
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- Regional Environmental Change, 2019, v. 19, n. 2, p. 451, doi. 10.1007/s10113-018-1407-6
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Ice processes and surface ablation in a shallow thermokarst lake in the central Qinghai–Tibetan Plateau.
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- Annals of Glaciology, 2016, v. 57, n. 71, p. 20, doi. 10.3189/2016AoG71A016
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Active Layer Thickness Variation on the Qinghai‐Tibetan Plateau: Historical and Projected Trends.
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- Journal of Geophysical Research. Atmospheres, 2021, v. 126, n. 23, p. 1, doi. 10.1029/2021JD034841
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Changes in active layer thickness over the Qinghai-Tibetan Plateau from 1995 to 2007.
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- Journal of Geophysical Research. Atmospheres, 2010, v. 115, n. D9, p. n/a, doi. 10.1029/2009JD012974
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Pyrosequencing Investigation into the Bacterial Community in Permafrost Soils along the China-Russia Crude Oil Pipeline (CRCOP).
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- PLoS ONE, 2012, v. 7, n. 12, p. 1, doi. 10.1371/journal.pone.0052730
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- Article
Freeze-thaw processes of active layer regulate soil respiration of alpine meadow in the permafrost region of the Qinghai-Tibet Plateau.
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- Cryosphere Discussions, 2019, p. 1, doi. 10.5194/tc-2019-214
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- Article
The characteristics of gravelly soil physical properties and their effects on permafrost dynamics: A case study on the central Qinghai-Tibetan Plateau.
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- Cryosphere Discussions, 2018, p. 1, doi. 10.5194/tc-2018-11
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- Article
Consumption of atmospheric methane by the Qinghai-Tibetan Plateau alpine steppe ecosystem.
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- Cryosphere Discussions, 2017, p. 1, doi. 10.5194/tc-2017-264
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Research Priorities and Trends on Bioenergy: Insights from Bibliometric Analysis.
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- International Journal of Environmental Research & Public Health, 2022, v. 19, n. 23, p. 15881, doi. 10.3390/ijerph192315881
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Deep-sequencing transcriptome analysis of chilling tolerance mechanisms of a subnival alpine plant, Chorispora bungeana.
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- BMC Plant Biology, 2012, v. 12, n. 1, p. 1, doi. 10.1186/1471-2229-12-222
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- Article
Hydrothermal variations in soils resulting from the freezing and thawing processes in the active layer of an alpine grassland in the Qilian Mountains, northeastern Tibetan Plateau.
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- Theoretical & Applied Climatology, 2019, v. 136, n. 3/4, p. 929, doi. 10.1007/s00704-018-2529-y
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- Article
Promoted Disappearance of CO 2 Hydrate Self-Preservation Effect by Surfactant SDS.
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- Energies (19961073), 2021, v. 14, n. 13, p. 3909, doi. 10.3390/en14133909
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- Article
Characteristics of Methane Hydrate Formation in Artificial and Natural Media.
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- Energies (19961073), 2013, v. 6, n. 3, p. 1233, doi. 10.3390/en6031233
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- Article
Water Transfer Characteristics during Methane Hydrate Formation Processes in Layered Media.
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- Energies (19961073), 2011, v. 4, n. 8, p. 1129, doi. 10.3390/en4081129
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Experimental study on the formation characteristics of CO<sub>2</sub> hydrate in porous media below the freezing point: Influence of particle size and temperature on the formation process and storage capacity.
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- Energy Science & Engineering, 2022, v. 10, n. 4, p. 1164, doi. 10.1002/ese3.1089
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Cover Image.
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- Energy Science & Engineering, 2019, v. 7, n. 5, p. i, doi. 10.1002/ese3.288
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Hydrothermal accumulation under asphalt pavement in cold regions.
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- Energy Science & Engineering, 2019, v. 7, n. 5, p. 1925, doi. 10.1002/ese3.401
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- Article
New Methods for Predicting Strain Demand of Arctic Gas Pipelines across Permafrost under Frost Heave Displacement.
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- Geofluids, 2022, p. 1, doi. 10.1155/2022/9094890
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- Article
High carbon emissions from thermokarst lakes and their determinants in the Tibet Plateau.
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- Global Change Biology, 2023, v. 29, n. 10, p. 2732, doi. 10.1111/gcb.16658
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- Article
Recent permafrost warming on the Qinghai-Tibetan Plateau.
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- Journal of Geophysical Research. Atmospheres, 2008, v. 113, n. D13, p. n/a, doi. 10.1029/2007JD009539
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- Article
A 7-ka climatic variability record inferred from peat bog sediments in the north of Bayan Har Mountains, northeastern Tibetan Plateau.
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- Environmental Earth Sciences, 2020, v. 79, n. 6, p. 1, doi. 10.1007/s12665-020-8897-5
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- Article
Response of the soil hydrothermal process to difference underlying conditions in the Beiluhe permafrost region.
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- Environmental Earth Sciences, 2017, v. 76, n. 5, p. 1, doi. 10.1007/s12665-017-6518-8
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- Article
Recent changes in the active layer thickness across the northern hemisphere.
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- Environmental Earth Sciences, 2016, v. 75, n. 7, p. 1, doi. 10.1007/s12665-015-5229-2
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- Article
Radiation and energy balance characteristics of asphalt pavement in permafrost regions.
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- Environmental Earth Sciences, 2016, v. 75, n. 3, p. 1, doi. 10.1007/s12665-015-4975-5
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- Article
Evolutions of water stable isotopes and the contributions of cryosphere to the alpine river on the Tibetan Plateau.
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- Environmental Earth Sciences, 2016, v. 75, n. 1, p. 1, doi. 10.1007/s12665-015-4894-5
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- Article
Period analysis and trend forecast for soil temperature in the Qinghai-Xizang Highway by wavelet transformation.
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- Environmental Earth Sciences, 2015, v. 74, n. 4, p. 2883, doi. 10.1007/s12665-015-4313-y
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- Article