Document Type : Original Research Paper

Authors

1 Associate Professor, Faculty of Mining Engineering, Sahand University of Technology, Tabriz, Iran

2 M.Sc. Student, Faculty of Mining Engineering, Sahand University of Technology, Tabriz, Iran

3 Ph.D. Student, Faculty of Mining Engineering, Sahand University of Technology, Tabriz, Iran

Abstract

The Ghezildash massive sulphide copper deposit is located in the northwest of Iran. The area is a part of the ophiolotic colored mélange zone of NW Iran, also known as Khoy–Maku colored mélange. Copper mineralization occurred in part of basaltic meta-volcanic rocks, and extensive alteration zones such as chloritic–epidoitic along with minor carbonate and sericitic zones are consequently developed in the area. This paper aims at identifying hydrothermal alteration zones related to massive sulphide deposit particularly those associated with chloritic zones where the mineralization have been identified. Another aspect is to determine the elemental enrichment and depletion before and after alterations in the host rock. For this purpose, the alteration box plot was used, which approved Trend 4 of chlorite-carbonate zone in much of the samples and Trend 5 of sericite–carbonate in few samples. Furthermore, thin section studies showed similar results, confirming the method used. Maclean method as a useful reconnaissance tool for mineralized zones was then applied to identify the enriched and depleted alteration zones between unaltered host rock and altered chloritic and sericitic zones. Results of McLean method revealed in the chloritic alteration zone large enrichment of Fe and Mg and depletion of Na, K and Ca elements, which have occurred due to decomposition of feldspars in the rock during chloritic alteration. It was also observed that these rocks in the chloritic alteration zone were subjected to a moderate increase in Cu, Zn, Co, and V contents. Also, sericitic alteration zone showed a moderate enrichment in Fe and Mg. Therefore, alteration zone detection using box plot and mass change calculations by McLean method enabled us to identify mineralization zones in the Gezildash massive sulphide deposit of Khoy. Characteristic features of detected alterations and geochemical indices obtained by this study suggest the Cyprus type massive sulphide mineralization for the area associated with Cu-Zn enrichment and Ca and Na depletion. In some cases, very minor amount of K enrichment in sericitic zones was also observed. Overview of the deposit represents cluster form in a particular trend that emphasizes its structural control by faults. The presence of ophiolitic mafic volcanic rocks, Ocher horizons, exhalative cherts and regional pyrite horizons are considered as exploration signs for this deposit.

Keywords

Baumgartner, L. P. and Olsen, S. N., 1995- A least-squares approach to mass transport calculations using the isocon method. Economic Geology, 90(5), 1261-1270.
Derakhshani, R. and Abdolzadeh, M., 2009- Geochemistry, mineralization and alteration zones of Darrehzar porphyry copper deposit, Kerman, Iran. Journal of Applied Sciences, 9(9), 1628-1646.
Grant, J. A., 1986- The; a simple solution to Gresens’ equation for metasomatic alteration. Economic Geology, 81(8), 1976-1982.
Grant, J. A., 2005- Isocon analysis: a brief review of the method and applications. Physics and Chemistry of the Earth, Parts A/B/C, 30(17), 997-1004
Gresens, R. L., 1967- Composition-volume relationships of metasomatism. Chemical geology, 2, 47-65.
Gu, J., Huang, Z., Jin, Z. and Xiang, X., 2011- Immobile elements geochemistry and mass balance calculate of bauxite in Wuchuan–Zheng’an–Daozhen area, Northern Guizhou Province, China. Acta Mineralogica Sinica, 31, 397-405.
Guo, S., Ye, K., Chen, Y. and Liu, J. B., 2009- A normalization solution to mass transfer illustration of multiple progressively altered samples using the ISOCON diagram. Economic Geology, 104(6), 881-886.
Ishikawa, Y., Sawaguchi, T., Iwaya, S. and Horiuchi, M., 1976- Delineation of prospecting targets for Kuroko deposits based on modes of volcanism of underlying dacite and alteration haloes. Mining Geology, 26, 105-117.
Kalinowski, A. and Oliver, S., 2004- ASTER mineral index processing manual. Remote Sensing Applications, Geoscience Australia, 37.
Large, R. R., Gemmell, J. B., Paulick, H. and Huston, D. L., 2001- The alteration box plot: A simple   approach to understanding the relationship between alteration mineralogy and lithogeochemistry associated with volcanic-hosted massive sulfide deposits. Economic Geology, 96(5), 957-971.
Lowenstern, J. B., 2001- Carbon dioxide in magmas and implications for hydrothermal systems. Mineralium Deposita, 36(6), 490-502.
MacLean, W. H. and Kranidiotis, P., 1987- Immobile elements as monitors of mass transfer in hydrothermal alteration; Phelps Dodge massive sulfide deposit, Matagami, QuebecEconomic Geology, 82(4), 951-962.
MacLean, W. H., 1990- Mass change calculations in altered rock series. Mineralium Deposita, 25(1), 44-49.
Mercier-Langevin, P., Lafrance, B., Bécu, V., Dubé, B., Kjarsgaard, I. and Guha, J., 2014- The Lemoine Auriferous Volcanogenic Massive Sulfide Deposit, Chibougamau Camp, Abitibi Greenstone Belt, Quebec, Canada: Geology and Genesis. Economic Geology, 109(1), 231-269.
Sánchez-España, J., Velasco, F. and Yusta, I., 2000- Hydrothermal alteration of felsic volcanic rocks associated with massive sulphide deposition in the northern Iberian Pyrite Belt (SW Spain). Applied Geochemistry, 15(9), 1265-1290.
Shriver, N. A. and MacLean, W. H., 1993- Mass, volume and chemical changes in the alteration zone at the Norbec mine, Noranda, Quebec. Mineralium deposita, 28(3), 157-166.
Spitz, G. and Darling, R., 1973- Petrographie de roches encaissantes du gisement cuprifere de Louvem. Canadian Journal of Earth Sciences. Vol.10, pp.760-777.
Stocklin, J., 1968- Structural history and tectonic of Iran: A Review, APPG Bulletin, Vol.52, p.1258.
Zarasvandi, A., Zamanian, H. and Hejazi, E., 2010- Immobile elements and mass changes geochemistry at Sar-Faryab bauxite deposit, Zagros Mountains, Iran. Journal of Geochemical Exploration, 107(1), 77-85.