High-Cr chromitites of the Nidar Ophiolite Complex, northern India: Petrogenesis and tectonic implications

被引:0
|
作者
Nayak, Ranjit [1 ]
Pal, Debasis [1 ]
Chinnasamy, Sakthi Saravanan [2 ]
机构
[1] Department of Earth and Atmospheric Sciences, National Institute of Technology Rourkela, Odisha,769008, India
[2] Department of Earth Sciences, Indian Institute of Technology Bombay, Powai,Mumbai,400076, India
关键词
Trace elements - Sulfur compounds - Magnesia - Aluminum oxide - Magnesite - Silicates - Alumina - Chromite;
D O I
暂无
中图分类号
学科分类号
摘要
The Nidar Ophiolite Complex (NOC) in the Ladakh Himalaya region of northern India is well-preserved and exposed along the Indus Yarlung–Zangbo suture zone. This sequence has been thrusted onto the Indus Formation to the north and to the Zildat ophiolitic mélange in the south. Chromitite mineralization in the NOC occurs as massive, semi-massive, and disseminated ore bodies hosted by dunite. The chromite in these ore bodies contains inclusions of isolated silicates, base metal sulfides, and platinum-group minerals. Little variation in the [Cr/(Cr + Al)] (i.e., Cr#) (0.78–0.86) is observed, in contrast to Mg# ([Mg/(Mg + Fe2+)]), which is more variable (0.56–0.73). The NOC chromitites are high in Cr (Cr# > 0.78), suggesting a possible boninitic parent magma. The calculated (Al2O3)melt and (FeO/MgO)melt range from 9.29 to 11.50 and 0.49–0.10, respectively. The trace element compositions of these chromitites (Ga: 14–27 ppm; Ni: 440–1301 ppm; V: 612–802 ppm; Sc: 2–6 ppm; Co: 207–542 ppm) are comparable to those hosted in the mantle sections of other ophiolite complexes. The overall chemical composition, deduced from the Al2O3 content and FeO/MgO ratio of the primitive parent magma of high-Cr chromitites, is consistent with island arc tholeiitic melts of boninitic affinity. This parent magma would have been in equilibrium with podiform chromitites and associated ultramafic rocks. Further, the distributions of minor and trace elements in NOC chromites also indicate a boninitic magma source. The field relations, petrographic observations, and major and trace element compositions of the studied chromitites suggest that they have undergone melt–rock and melt–melt interactions, which led to the precipitation of high-Cr chromitites from Cr-rich and Al- and Ti-poor boninitic melts. The occurrence of high-Cr chromitites and the boninitic nature of the parent magma indicate that the chromitite layers of the NOC likely formed in an island arc supra-subduction zone. © 2020 Elsevier B.V.
引用
收藏
相关论文
共 50 条
  • [31] Geology of the eastern part of the Tso Morari nappe, the Nidar Ophiolite and the surrounding tectonic units (NW Himalaya, India)
    Buchs, Nicolas
    Epard, Jean-Luc
    JOURNAL OF MAPS, 2019, 15 (02): : 39 - 49
  • [32] Geochemistry and Mineralogy of Peridotites and Chromitites from Zhaheba Ophiolite Complex, Eastern Junggar, NW China: Implications for the Tectonic Environment and Genesis
    Wang, Zhaolin
    Yan, Jiayong
    Tang, Hejun
    Xiao, Yandong
    Deng, Zhen
    Meng, Guixiang
    Sun, Hui
    Qi, Yaogang
    Yuan, Lulu
    MINERALS, 2023, 13 (08)
  • [33] Metallogeny of the Chrome Ores of the Xerolivado-Skoumtsa Mine, Vourinos Ophiolite, Greece: Implications on the genesis of IPGE-bearing high-Cr chromitites within a heterogeneously depleted mantle section
    Tzamos, E.
    Kapsiotis, A.
    Filippidis, A.
    Koroneos, A.
    Grieco, G.
    Rassios, A. Ewing
    Kantiranis, N.
    Papadopoulos, A.
    Gamaletsos, P. N.
    Godelitsas, A.
    ORE GEOLOGY REVIEWS, 2017, 90 : 226 - 242
  • [34] Petrogenesis and PGE distribution in the Al- and Cr-rich chromitites of the Qalander ophiolite, northeastern Iraq: Implications for the tectonic environment of the Iraqi Zagros Suture Zone (vol 202, pg 21, 2014)
    Ismail, Sabah A.
    Kettanah, Yawooz A.
    Chalabi, Sawsan N.
    Ahmed, Ahmed H.
    Arai, Shoji
    LITHOS, 2014, 206 : 454 - 455
  • [35] Lithological mapping of Nidar ophiolite complex, Ladakh using high-resolution data
    Chauhan, Mamta
    Sur, Koyel
    Chauhan, Prakash
    Joshi, Himani
    Singh, Arya Pratap
    Borkar, Aakanksha S.
    ADVANCES IN SPACE RESEARCH, 2024, 73 (08) : 4091 - 4105
  • [36] Petrogenesis and tectonic implications of gabbro and plagiogranite intrusions in mantle peridotites of the Myitkyina ophiolite, Myanmar
    Xu, Yang
    Liu, Chuan-Zhou
    Chen, Yi
    Guo, Shun
    Wang, Jian-Gang
    Sein, Kyaing
    LITHOS, 2017, 284 : 180 - 193
  • [37] Compositional diversity in spinels from the Nidar ophiolite peridotites, Ladakh, India: A record of complex petrogenetic evolution
    Duraiswami, Raymond A.
    Kelkar, Akshay A.
    Shaikh, Tahira N.
    Karmalkar, Nitin R.
    Jonnalagadda, Mallika K.
    Monteiro, Aristle
    Pednekar, Hemant
    Sahu, Deepak Kumar
    HIMALAYAN GEOLOGY, 2024, 45 (01): : 1 - 25
  • [38] Geochemistry of trondhjemites and mafic rocks in the Bymarka ophiolite fragment, Trondheim, Norway: Petrogenesis and tectonic implications
    Slagstad, T
    NORWEGIAN JOURNAL OF GEOLOGY, 2003, 83 (03): : 167 - 185
  • [39] Petrology and geochemistry of mafic and ultramafic rocks in the north Tianshan ophiolite: Implications for petrogenesis and tectonic setting
    Feng, Wanyi
    Zhu, Yongfeng
    LITHOS, 2018, 318 : 124 - 142
  • [40] Podiform chromitites from the Variscan ophiolite serpentinites of Lower Silesia (SW Poland) - petrologic and tectonic setting implications
    Wojtulek, Piotr Marian
    Puziewicz, Jacek
    Ntaflos, Theodoros
    Bukala, Michel
    GEOLOGICAL QUARTERLY, 2016, 60 (01): : 56 - 66