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Simulated change in the near-surface soil freeze/thaw cycle on the Tibetan Plateau from 1981 to 2010

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  • Atmospheric Science
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Chinese Science Bulletin

Abstract

The near-surface freeze/thaw cycle in cold regions plays a major role in the surface energy budget, hydrological activity, and terrestrial ecosystems. In this study, the Community Land Model, Version 4 and a suite of high-resolution atmospheric data were used to investigate the changes in the near-surface soil freeze/thaw cycle in response to the warming on the Tibetan Plateau from 1981 to 2010. The in situ observations-based validation showed that, considering the cause of scale mismatch in the comparison, the simulated soil temperature, freeze start and end dates, and freeze duration at the near-surface were reasonable. In response to the warming of the Tibetan Plateau at a rate of approximately 0.44 °C decade−1, the freeze start-date became delayed at an area-mean rate of 1.7 days decade−1, while the freeze end-date became advanced at an area-mean rate of 4.7 days decade−1. The delaying of the freeze start-date, which was combined with the advancing of the freeze end-date, resulted in a statistically significant shortening trend with respect to the freeze duration, at an area-mean rate of 6.4 days decade−1. Such changes would strongly affect the surface energy flux, hydrological processes, and vegetation dynamics. We also found that the rate of freeze-duration shortening at the near-surface soil layer was approximately 3.0 days decade−1 lower than that at a depth of 1 m. This implied that the changes in soil freeze/thaw cycles at the near surface cannot be assumed to reflect the situation in deeper soil layers. The significant correlations between freeze duration and air temperature indicated that the shortening of the near-surface freeze duration was caused by the rise in air temperature, which occurred especially in spring, followed by autumn. These results can be used to reveal the laws governing the response of the near-surface freeze/thaw cycle to climate change and indicate related changes in permafrost.

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References

  1. Yang MX, Yao TD, Gou XH (2003) The soil moisture distribution, thawing freezing processes and their effects on the seasonal transition on the Qinghai-Xizang (Tibetan) Plateau. J Asian Earth Sci 21:457–465

    Article  Google Scholar 

  2. Guo DL, Yang MX, Wang HJ (2011) Characteristics of land surface heat and water exchange under different soil freeze/thaw conditions over the central Tibetan Plateau. Hydrol Proc 25:2531–2541

    Article  Google Scholar 

  3. Guo DL, Yang MX, Wang HJ (2011) Sensible and latent heat flux response to diurnal variation in soil surface temperature and moisture under different freeze/thaw soil conditions in the seasonal frozen soil region of the central Tibetan Plateau. Environ Earth Sci 63:97–107

    Article  Google Scholar 

  4. Zhang X, Sun SF (2011) The impact of soil freezing/thawing processes on water and energy balances. Adv Atmos Sci 28:169–177

    Article  Google Scholar 

  5. Wang CH, Dong WJ, Wei ZG (2003) Study on relationship between the frozen-thaw process in Qinghai-Xizang Plateau and circulation in East-Asia. Chin J Geophys 46:309–316

    Google Scholar 

  6. Zhang Y, Lv SH, Sun SF (2004) Climate effects of frozen soil process in CCM3. Plateau Meteorol 23:192–199 (in Chinese)

    Google Scholar 

  7. Li Z, Zhu W, Wu B (2011) Impact of improved soil freezing process on climate in East Asia using NCAR CAM model. Chin J Atmos Sci 35:683–694 (in Chinese)

    Article  Google Scholar 

  8. Xia K, Luo Y, Li WP (2011) Simulation of freezing and melting of soil on the northeast Tibetan Plateau. Chin Sci Bull 56:2145–2155

    Article  Google Scholar 

  9. Xin Y, Wu B, Bin L et al (2012) The response of the East Asia climate system to the water and heat change of the global frozen soil using NCAR CAM model. Chin Sci Bull 57:4462–4471

    Article  Google Scholar 

  10. Yang MX, Yao T, Gou X et al (2007) Diurnal freeze/thaw cycles of the ground surface on the Tibetan Plateau. Chin Sci Bull 52:136–139

    Article  Google Scholar 

  11. Guo DL, Wang HJ (2013) Simulation of permafrost and seasonally frozen ground conditions on the Tibetan Plateau, 1981-2010. J Geophys Res 118:5216–5230

    Article  Google Scholar 

  12. Guo DL, Wang HJ (2011) The significant climate warming in the northern Tibetan Plateau and its possible causes. Int J Climatol 32:1775–1781

    Article  Google Scholar 

  13. Cheng G, Wu T (2007) Responses of permafrost to climate change and their environmental significance, Qinghai-Tibet Plateau. J Geophys Res 112:F02S03

    Google Scholar 

  14. Wang G, Hu H, Li T (2009) The influence of freeze–thaw cycles of active soil layer on surface runoff in a permafrost watershed. J Hydrol 375:438–449

    Article  Google Scholar 

  15. Li X, Jin R, Pan X et al (2012) Changes in the near-surface soil freeze–thaw cycle on the Qinghai-Tibetan Plateau. Int J Appl Earth Observ Geoinf 17:33–42

    Article  Google Scholar 

  16. Zhao L, Cheng G, Li S et al (2000) The freezing and thawing processes in active layer of permafrost near Wudaoliang, Qinghai-Xizang (Tibet) Plateau. Chin Sci Bull 45:1205–1210

    Google Scholar 

  17. Li S, Nan Z, Zhao L (2012) Impact of soil freezing and thawing process on thermal exchange between atmosphere and ground surface. J Glaciol Geocryol 24:506–511 (in Chinese)

    Google Scholar 

  18. Yang MX, Nelson FE, Shiklomanov NI et al (2010) Permafrost degradation and its environmental effects on the Tibetan Plateau: a review of recent research. Earth-Sci Rev 103:31–44

    Article  Google Scholar 

  19. Li R, Zhao L, Ding YJ et al (2012) Temporal and spatial variations of the active layer alone the Qinghai-Tibetan Highway in a permafrost region. Chin Sci Bull 57:4609–4619

    Article  Google Scholar 

  20. Zhang T, Armstrong RL, Smith J (2003) Investigation of the near-surface soil freeze-thaw cycle in the contiguous United States: algorithm development and validation. J Geophys Res 108:8860

    Article  Google Scholar 

  21. Kim Y, Kimball JS, McDonald KC et al (2011) Developing a global data record of daily landscape freeze/thaw status using satellite passive microwave remote sensing. IEEE Trans Geosci Remote 49:949–960

    Google Scholar 

  22. Lawrence DM, Oleson KW, Flanner MG (2011) Parameterization improvements and functional and structural advances in version 4 of the Community Land Model. J Adv Model Earth Sys. doi:10.1029/2011MS000045

    Google Scholar 

  23. Guo DL, Wang HJ, Li D (2012) A projection of permafrost degradation on the Tibetan Plateau during the 21st century. J Geophys Res 117:D05106

    Google Scholar 

  24. He J (2010) Development of a surface meteorological dataset of China with high temporal and spatial resolution. Master Dissertation, Institute of Tibetan Plateau Research, Chinese Academy of Sciences (in Chinese)

  25. Chen Y, Yang K, He J et al (2011) Improving land surface temperature modeling for dry land of China. J Geophys Res 116:D20104

    Article  Google Scholar 

  26. Xu Y, Gao X, Shen Y et al (2009) A daily temperature dataset over China and its application in validating a RCM simulation. Adv Atmos Sci 26:763–772

    Article  Google Scholar 

  27. Gao XJ, Shi Y, Zhang DF et al (2012) Climate change in China in the 21st century as simulated by a high resolution regional climate model. Chin Sci Bull 57:1188–1195

    Article  Google Scholar 

  28. Oleson K, Lawrence D, Bonan G et al (2010) Technical description of version 4.0 of the Community Land Model (CLM). NCAR Technical Note NCAR/TN-478 + STR, National Center for Atmospheric Research, Boulder, CO, p 266

  29. Alexeev VA, Nicolsky DJ, Romanovsky VE et al (2007) An evaluation of deep soil configurations in the CLM3 for improved representation of permafrost. Geophys Res Lett 34:L09502

    Article  Google Scholar 

  30. Lawrence DM, Slater AG, Romanovsky VE et al (2008) Sensitivity of a model projection of near-surface permafrost degradation to soil column depth and representation of soil organic matter. J Geophys Res 113:F02011

    Google Scholar 

  31. Lawrence DM, Slater AG (2008) Incorporating organic soil into a global climate model. Clim Dyn 30:145–160

    Article  Google Scholar 

  32. Wang XLL, Swail VR (2001) Changes of extreme wave heights in Northern Hemisphere oceans and related atmospheric circulation regimes. J Clim 14:2204–2221

    Article  Google Scholar 

  33. Wei F (2007) Statistical diagnosis and prediction technology of the modern climate. China Meteorological Press, Beijing, p 296 (in Chinese)

  34. Pu Z, Xu L, Salomonson VV (2007) MODIS/Terra observed seasonal variations of snow cover over the Tibetan Plateau. Geophys Res Lett 34:L06706

    Google Scholar 

  35. Marshall S, Roads JO, Glatzmaier G (1994) Snow hydrology in a general circulation model. J Clim 7:1251–1269

    Article  Google Scholar 

  36. Koven CD, Riley WJ, Stern A (2012) Analysis of permafrost thermal dynamics and response to climate change in the CMIP5 Earth System Models. J Clim 26:1877–1900

    Article  Google Scholar 

  37. Zhang T (2005) Influence of the seasonal snow cover on the ground thermal regime: an overview. Rev Geophys 43:RG4002

    Google Scholar 

Download references

Acknowledgments

This work was supported by the National Natural Science Foundation of China (41130103 and 41210007). The authors are grateful to Prof. Kun Yang and Dr. Jie He for providing the high-resolution atmospheric data, as well as Prof. Meixue Yang for providing soil temperature observations used for the validation of the simulated results. Thanks were also extended to Dr. Xiaolei Chen for helping to run the single-point simulation experiment.

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Correspondence to Donglin Guo.

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Guo, D., Wang, H. Simulated change in the near-surface soil freeze/thaw cycle on the Tibetan Plateau from 1981 to 2010. Chin. Sci. Bull. 59, 2439–2448 (2014). https://doi.org/10.1007/s11434-014-0347-x

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  • DOI: https://doi.org/10.1007/s11434-014-0347-x

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