Geochemical Characteristics of Primary Halos and Prospecting Significance of the Qulong Porphyry Copper–Molybdenum Deposit in Tibet

Author:

Sun Weitao12,Zheng Youye2ORCID,Wang Wei1,Feng Xin1,Zhu Xiaosong1,Zhang Zhongyue1,Hou Hongxing1,Ge Liangsheng3,Lv Hanqin4ORCID

Affiliation:

1. Langfang Center for General Survey of Natural Resources, China Geological Survey, Langfang 065000, China

2. School of the Earth Science and Resources, China University of Geosciences (Beijing), Beijing 100083, China

3. Comprehensive Survey Command Center for Natural Resources, China Geological Survey, Bejing 100055, China

4. Hohhot General Survey of Natural Resources Center of China Geological Survey, Hohhot 010020, China

Abstract

The Qulong porphyry copper deposit in Tibet is located in the Tethis–Himalaya metallogenic domain, one of the three major porphyry metallogenic domains in the world. At present, the mining area is mainly used for surface mining. The depth revealed by the drilling project is less than 2 km. The potential for deep resources is unknown. Based on an analysis of the geochemical characteristics of the primary halos around the No. 16 prospecting line, deep extension is discussed in this paper. Studies show that the metallogenic elements are Cu and Mo; the near-ore halo elements are Co, Au, Ag, and W; the supra-ore halo elements are Pb, Zn, Mn, and As; and the sub-ore halo elements are Sn and Bi. According to Gregorian’s zoning index and the barycenter method, the primary halo zoning of the No. 16 exploration line from shallow to deep is Mn–P–Pb–Ni–Zn–V–As–Hg–Co–Au–Cu–W–Ag–Mo–Sb–Sr–Cd–Sn–Ti–Bi. This sequence has a distinct “reverse” zoning feature, indicating that there may be a blind ore body deep in the mine. The geochemical parameter evaluation index based on the element content contrast coefficient suggests that there may be a hidden ore body in the deep. The relative hydrothermal mineralization in the center position of the section may be located deep below the north side of borehole ZK1601-1 in the middle of the section. The ore body erosion parameter model shows that the bottom of the drilling engineering control is the middle tail of the ore body, and there is a certain amount of extension in the deep part. The ideal superimposed model of the primary halo reflects the ore body trend of the 16th line section. The ore body is inclined to the north as a whole; the ore fluid flows from the deep to the southern side of the north side, and the deep part of the northern side of the ore body has a downward trend.

Funder

national key research and development program of the Ministry of Science and Technology of China

Langfang Center for General Survey of Natural Resources, China Geological Survey

Publisher

MDPI AG

Subject

Geology,Geotechnical Engineering and Engineering Geology

Reference43 articles.

1. Zheng, Y. (2013). Study on Metallogenic Condition and Mechanism of Qulong Super-Large Porphyry Copper-Molybdenum Deposit in Tibet, Geological Publishing House. (In Chinese).

2. Cu-Mo-Au metallogenesis and minerogenetic series during superimposed;Zheng;Earth Sci.,2021

3. Subduction metasomatism and collision-related metamorphic dehydration controls on the fertility of porphyry copper ore-forming high Sr/Y magma in Tibet;Wu;Ore Geol. Rev.,2016

4. Heterogeneous mantle associated with asthenosphere and Indian slab metasomatism: Constraints on fertilization of porphyry Cu mineralization in Tibetan orogen;Wu;Ore Geol. Rev.,2022

5. Geology of the post-collisional porphyry copper–molybdenum deposit at Qulong, Tibet;Yang;Ore Geol. Rev.,2009

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