Skip to main content
Log in

Calculation of solar albedo and radiation equilibrium over the Qinghai-Xizang Plateau and analysis of their climatic features

  • Published:
Advances in Atmospheric Sciences Aims and scope Submit manuscript

Abstract

Using radiation data from the Automatic Weather Stations (AWSs) for thermal balance obser-vations, which were set up at Lhasa, Nagqu, Xigaze and Nyingchi by the Sino-Japanese Asian Monsoon Mechanism Co-operative Project in 1993–1996, and 1985–1989 Earth Radiation Balance Experiment (ERBE) measurements of Langley Research Center/NASA of US, and 1961–1996 monthly mean data from 148 surface stations over the Qinghai-Xizang Plateau (QXP) and its neighborhood, study is performed on empirical calculation methods of surface albedo, surface total radiation, planetary albedo and outgoing longwave radiation with the climatic features of radiation balance at the surface and the atmospheric top examined. Evidences suggest that the empirical formulae for surface albedo, planetary albedo, surface to-tal radiation and outgoing longwave radiation from the atmospheric top are capable of describing their seasonal and interannual variations over the QXP. The surface albedo is marked by noticeable seasonal variation and yearly mean of 0.22 with the maximum of 0.29 in January and minimum of 0.17 in July and August; in winter the albedo has great horizontal difference, bigger in the moun-tains than in the river valleys, and small in summer. The planetary albedo shows a smaller range of its annual variation with the yearly mean of 0.37, the maximum (minimum) occurring in February and March (autumn). In winter its high-value regions are mainly at Gar (Shiquanhe) in the western QXP and from the southwestern Qinghai to the northeastern Tibet and the low-value area at the northern slope of the central Himalayas; in summer, however, the albedo distribution displays clear-ly a progressive decrease from southeast to northwest. As for the surface total radiation, its values and annual varying range are smaller in the east than in the southwest. Its high-value center is at the southern slope of the Himalayas in winter and makes a conspicuous westward migration in spr-ing, remaining there for a long time, and it begins to retreat eastward in autumn. Monthly mean values of the surface net radiation are all positive and larger in summer than in winter. The net ra-diation is significantly intensified under the combined effect of surface total radiation and surface albedo from spring to early summer, resulting in the strongest sector in the mid plateau with its center staying nearly motionless from March to September, and is reduced in autumn dominantly by surface effective radiation. The earth-atmosphere system loses heat outward from October to next February and gains in other months. On an average, the plateau gains heat of 15 W m-2 on an annual basis.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Chen Longxun, Gong Zhiben, Weng Yupu, and Sun Shouchun, 1964: Atmospheric radiation energy budget in East Asia (Part I). ibid., 34(2), 146–161 (in Chinese).

    Google Scholar 

  • Chen Longxun, Gong Zhiben, Chen Jiabin, and Ren Zejun, 1964: Atmospheric radiation energy budget in East Asia (Part II). ibid., 34(3), 329–344.

    Google Scholar 

  • Chen Longxun, Gong Zhiben, Chen Jiabin, and Wang Zhongxing, 1965: Atmospheric radiation energy budget in East Asia (Part III), ibid., 35(1), 6–7.

    Google Scholar 

  • Gao Guodong, and Lu Yurong, 1977: Study on Tibetan plateau radiation balance, thermal equilibrium and cold/heat sources, in Collection of Papers for the Qinghai-Xizang Plateau Research (1975–1976), edited and published by the Leading Group of Co-operative Study of Qinghai-Xizang Meteorology, 47–52, (internal issue, in Chinese).

  • Ji Guoliang, 1985: Radiation and climate in the Qinghai-Xizang Plateau for August, 1982-July, 1983. Plateau Meteorology, 4(4), 10–19(Suppl. Issue, in Chinese).

    Google Scholar 

  • Li Zhanqing, and L. Garand, 1994: Estimation of surface albedo from space: A parameterization for global applica-tion. / Geophs. Res., 99, 8335–8350.

    Article  Google Scholar 

  • Lu Yurong, and Gao Guodong, 1976: Methods of calculating components of radiation balance and analysis of the space/time patterns over China (Part I). J. Nanjing Univ. (Edition of Natural Sciences), 89–110 (in Chinese).

  • Sun Zhi’an, and Weng Duming, 1987: Climatic calculation of surface albedo over China with its space / time distri-butions. J. Nanjing Inst. Meteorology, 10(2), 189–200 (in Chinese).

    Google Scholar 

  • Sun Zhi’an, and Weng Duming, 1994: Qinghai-Xizang surface and planetary albedos. J. Appl. Meteor., 5(4), 394–401 (in Chinese).

    Google Scholar 

  • Weng Duming, 1964: Preliminary study of the scheme for climatic calculation of total radiation. Acta Meteor. Sinica, 34(3), 304–315 (in Chinese).

    Google Scholar 

  • Weng Duming, 1994: Climatic features of planetary albedo over China, in Collected Papers on Congratulation to Professor Zhu Bianhai on the Sixtieth Anniversary of His Devotion to the Education and Research in the Meteorological Context (Spec. Issue). J. Nanjing University, 80–87 (in Chinese).

  • Weng Duming, 1997: Radiation Climate in China, China Meteorological Press, Beijing, 129–132 and 318–324 (in Chinese).

    Google Scholar 

  • Xie Xianquan, 1984: Qinghai-Xizang surface albedo in May-August, 1979, in QXPM EX Symposium (II), Science Press, Beijing, 17–23 (in Chinese).

    Google Scholar 

  • Zhang Jijia, Zhu Baozhen et al. 1988: Advances in Qinghai-Xizang Meteorology, Science Press, Beijing, 35–38 (in Chinese).

    Google Scholar 

  • Zhao Ping and Chen Longxun, 2000: Study on climatic features of surface turbulent heat exchange coefficients and surface thermal sources over the Qinghai-Xizang Plateau. Acta Meteor. Sinica (to be published).

  • Zhong Qiang, 1984: AVHHR data calculated planetary albedo and outgoing longwave radiation in the Qinghai-Xizang Plateau, Plateau Meteorology, 3(2), 1–9 (in Chinese).

    Google Scholar 

  • Zhong Qiang, 1998: Characteristics of variation in surface albedo and snow forcing over the Tibetan Plateau. Acta Meteor. Sinica, 12, 177–189.

    Google Scholar 

  • Zhong Qiang, and Qi Jin’e, 1989: Estimation of Qinghai-Xizang total radiation by use of Nimbus-7 planetary albedo observations. Ada Meteor. Sinica, 42(2), 165–172 (in Chinese).

    Google Scholar 

  • Zhong Qiang, and Wu Shijie, 1985: On the Methods of AVHHR data-derived Qinghai-Xizang surface albedo. Plateau Meteorology, 4(3), 193–203 (in Chinese).

    Google Scholar 

  • Zhong Qiang et al., 1988: Satellite observation of surface albedo over the Qinghai-Xizang Plateau region. Advances in Atmospheric Sciences, 5(1), 57–85.

    Google Scholar 

  • Zhu Changhan, Zhu Fukang, and Liu Yujie, 1993: Research on Qinghai-Xizang clear-sky planetary albedo in relation to surface albedo. Acta Meteorologien Sinica, 51(1), 57–65 (in Chinese).

    Google Scholar 

  • Zuo Dakang et al., 1963: Spatial distribution features of solar total radiation over China. Acta Meteor. Sinica, 33(1), 409–415 (in Chinese).

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Additional information

(1)This work was supported under the auspices of the National (G1998040800) and CAS’s Key Project for Basic Research on Tibetan Plateau (KZ951-A1-204; KZ95T-06).

Rights and permissions

Reprints and permissions

About this article

Cite this article

Ping, Z., Longxun, C. Calculation of solar albedo and radiation equilibrium over the Qinghai-Xizang Plateau and analysis of their climatic features. Adv. Atmos. Sci. 17, 140–156 (2000). https://doi.org/10.1007/s00376-000-0050-5

Download citation

  • Received:

  • Revised:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s00376-000-0050-5

Key words

Navigation