Epigenetic geochemical dynamics and driving mechanisms of chemical elemental distribution patterns in soil in Southwest China
https://doi.org/10.21285/2686-9993-2020-43-3-375-417
Abstract
The Earth’s surface is a complex system involving mutual interactions of its many components, including mountains, rivers, forests, farmlands, lakes and grasses. The interaction and mutual feedback of chemical elements in Earth's surface layer can drive changes in chemical elemental distribution patterns. In this study, we evaluated the mechanisms and interactions driving the distribution patterns of macroelements, probiotics, halogens and heavy metals in soils in Southwest China, based on a systematic geochemical land-quality survey at a scale of 1:250000. The results showed that the parent material determines the natural state of chemical elements in land resources. Epigenetic geochemical dynamics reshapes the distribution patterns of chemical elements in top soil; biogeochemical processes drive the evolutionary trends of land quality; and human activities, such as mining, disrupt the natural evolution of chemical elemental distribution patterns. The establishment of an epigenetic geochemical dynamics theory allows the construction of a framework for understanding the Earth's surface layer and promoting technological innovations for the comprehensive geochemical investigation of land resources.
Keywords
About the Authors
Hangxin ChengChina
Doctor’s Degree, Professor
84 Jinguang Road, Langfang 065000, China
Min Peng
China
Master’s Degree, Engineer, 84 Jinguang Road, Langfang 065000, China;
School of Geosciences and Resources, 29 Xueyuan Road, Beijing 100083, China
Chuandong Zhao
China
Doctor’s Degree, Professor
84 Jinguang Road, Langfang 065000, China
Wei Han
China
Master’s Degree, Engineer
84 Jinguang Road, Langfang 065000, China
Huiyan Wang
China
Master’s Degree, Engineer
84 Jinguang Road, Langfang 065000, China
Qiaolin Wang
China
Master’s Degree, Engineer
84 Jinguang Road, Langfang 065000, China
Fan Yang
China
Doctor’s Degree, Senior Engineer
84 Jinguang Road, Langfang 065000, China
Fugui Zhang
China
Master’s Degree, Senior Engineer
84 Jinguang Road, Langfang 065000, China
Chengwen Wang
China
Master’s Degree, Engineer
84 Jinguang Road, Langfang 065000, China
Fei Liu
China
Doctor’s Degree, Senior Engineer
84 Jinguang Road, Langfang 065000, China
Yalong Zhou
China
Master's Degree, Senior Engineer
84 Jinguang Road, Langfang 065000, China
Shiqi Tang
China
Master's Degree, Assistant Engineer
84 Jinguang Road, Langfang 065000, China
Kuo Li
China
Master’s Degree, Engineer
84 Jinguang Road, Langfang 065000, China
Ke Yang
China
Doctor’s Degree, Senior Engineer
84 Jinguang Road, Langfang 065000, China
Zheng Yang
China
Master's Degree, Assistant Engineer
84 Jinguang Road, Langfang 065000, China
Xiaomeng Cheng
China
Master's Degree, Assistant Engineer
84 Jinguang Road, Langfang 065000, China
Ziwan Chen
China
Master’s Degree, Senior Engineer
84 Renmin East Road, Kunming 650216, China
Hua Zhang
China
Bachelor's Degree, Senior Engineer
25 Renming Road, Chengdu 610081, China
Chunhu Mo
China
Bachelor's Degree, Senior Engineer
171 Shilin West Road, Guiyang 550081, China
References
1. Hou Z. Support unified management and system restoration of natural resources based on earth system science. China Natural Resources News. 12.06.2018.
2. Li K, Peng M, Zhao C, et al. Twenty years of geochemical survey of national land quality. Earth Science Frontiers. 2019;26(5):1–37.
3. Yang X, Wang P, Gao D. Climate change characteristics of Wumengshan National Nature Reserve from 1971 to 2015. Journal of Northeast Forestry University. 2019;47(9):71–75.
4. Ji Z, Huang Z, Xie G. Dry and wet climate changes in Yunnan from 1961 to 2010. Meteorological Science and Technology. 2013;41(6):1073–1079.
5. Xiao K, Xing S, Ding J, et al. Division of key mineralization zones of important solid minerals and characteristics of resource potential in China. Acta Geologica Sinica. 2016;90(7):1269–1280.
6. He L, Wu D, Zhao F, et al. Geological characteristics and ore prospecting model and ore prospecting direction of Hezhang Zhugongtang ultra-large lead-zinc deposit. Guizhou Geology. 2019;36(2):106–109.
7. Xu Y, Zhong Y, Wei X, Chen J., Liu H., Xie W., et al. Evolution of Permian mantle plumes and surface systems. Bulletin of Mineralogy, Petrology and Geochemistry. 2017;36(3):359–373.
8. Lin J. Spatiotemporal distribution and geological characteristics of the Permian basalt in the three provinces of Southwest China. Chinese Science Bulletin. 1985;30(12):929–932.
9. Ye J, Yao L. Discussions on the quality control method of regional geochemical survey sample analysis. Rock and Mineral Analysis. 2004;23(2):137–142.
10. Wang S, Ji H, Ouyang Z, et al. Preliminary study on the weathering of carbonate rocks. Science in China. Series D. 1999;29(5):441–449.
11. Zhu L, Li J. Weathering of carbonate rocks and its environmental effects. Beijing: Geological Publishing House; 2004. 131 p.
12. Darnley AG, Björklund A, Bølviken B, Gustavsson N., Koval P.V., Plant J.A., et al. A global geochemical database for environmental and resource management. Paris: UNESCO Publishing; 1995. 122 p.
13. Cui Z, Zhang H, Chen X, Zhang C, Ma W, Huang C, et al. Pursuing sustainable productivity with millions of smallholder farmers. Nature. 2018;555(7696):363–366. https://doi.org/10.1038/nature25785
14. Hu Y, Li C, Wen H, et al. Characteristics of silver minerals in the lead-zinc-silver deposits at the junction of Sichuan, Yunnan, and Guizhou. Bulletin of Mineralogy, Petrology and Geochemistry. 2000;19(4):318–320.
15. Fuge R, Johnson C. The geochemistry of iodine: a review. Environmental Geochemistry and Health. 1986;8(2):31–54. https://doi.org/10.1007/BF02311063
16. Muramatsu Y, Yoshida S, Fehn U, Amachi S, Ohmomo Y. Studies with natural and anthropogenic iodine isotopes: iodine distribution and cycling in the global environment. Journal of Environmental Radioactivity. 2004;74(1-3):221–232. https://doi.org/10.1016/J.JENVRAD.2004.01.011
17. Yamaguchi N, Nakano M, Takamatsu R, Tanida H. Inorganic iodine incorporation into soil organic matter: evidence from iodine K-edge X-ray absorption near-edge structure. Journal of Environmental Radioactivity. 2010;101(6):451–457. https://doi.org/10.1016/j.jenvrad.2008.06.003
18. Fuge R. Soils and Iodine Deficiency. In: Selinus O (eds.). Essentials of medical geology: impacts of the natural environment on public health. Dordrecht: Springer Netherlands; 2013. p.417–432.
19. Peng Y. Study on the distribution and migration of heavy metals in slag, soil and plants in the indigenous zinc smelting district of Northwest Guizhou. Guiyang: Guizhou University; 2018.
20. Li Z, Feng X, Bi X, et al. Pollution status of heavy metals in soil on an indigenous zinc smelting site in Guizhou Province. Chinese Journal of Ecology. 2011;30(5):55–59.
21. Chen F, Dong Z, Wang C, et al. Pollution status and risk assessment of heavy metals in cultivated soil and crops in zinc smelting area. Environmental Science. 2017;38(10):376–385.
22. Li J, Zhong H, Zhu WG, Bai ZJ, Hu W. Elemental and Sr-Nd isotopic geochemistry of Permian Emeishan flood basalts in Zhaotong, Yunnan Province, SW China. International Journal of Earth Science. 2017;106(2):617–630. https://doi.org/10.1007/s00531-016-1326-z
23. Chung SL, Jahn BM. Plume-lithosphere interaction in generation of the Emeishan flood basalts at the Permian-Triassic boundary. Geology. 1995;23(10):889–892. https://doi.org/10.1130/0091-7613(1995)023<0889:PLIIGO>2.3.CO;2
24. Xie X, Ren T. National geochemical mapping and environmental geochemistry – progress in China. Journal of Geochemical Exploration. 1993;49(1-2):15–34. https://doi.org/10.1016/0375-6742(93)90037-M
25. Lawton J. Earth system science. Science. 2001;292(5524):1965. https://doi.org/10.1126/science.292.5524.1965
26. Bockheim JG, Gennadiyev AN. Soil-factorial models and earth-system science: a review. Geoderma. 2010;159(3-4):243–251.
Review
For citations:
Cheng H., Peng M., Zhao Ch., Han W., Wang H., Wang Q., Yang F., Zhang F., Wang Ch., Liu F., Zhou Ya., Tang Sh., Li K., Yang K., Yang Zh., Cheng X., Chen Z., Zhang H., Mo Ch. Epigenetic geochemical dynamics and driving mechanisms of chemical elemental distribution patterns in soil in Southwest China. Earth sciences and subsoil use. 2020;43(3):375-417. https://doi.org/10.21285/2686-9993-2020-43-3-375-417