Investigation of the Structure of the Ancient Copper Smelting Furnace in Western Javadiyeh Kerman: Petrographic and Geochemical Analysis of Slags - Journal of Research on Archaeometry
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year 11, Issue 2 (2025)                   JRA 2025, 11(2): 0-0 | Back to browse issues page


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Kamali A A, Mehri M. (2025). Investigation of the Structure of the Ancient Copper Smelting Furnace in Western Javadiyeh, Kerman: Petrographic and Geochemical Analysis of Slags. JRA. 11(2), : 1 doi:10.66224/jra.2025.11.201
URL: http://jra-tabriziau.ir/article-1-449-en.html
1- Research Center for Conservation of Cultural Relics (RCCCR), Cultural Heritage and Tourism Research Institute, Tehran, Iran
2- Omid Geosciences Company, Safaieh, Kaj Square, Yazd, Iran , Mehri.moh@gmail.com
Abstract:   (863 Views)
The present study investigates an ancient smelting furnace located 19.5 km west of Javadiyeh and 51.5 km southeast of Bafq in Kerman Province, Iran, with an area of 216 square meters and geographic coordinates (356007, 3448674). The research was conducted using field surveys, sampling of slag, ore-bearing rocks, and flux materials, followed by data analysis through petrographic and ICP-OES methods. The results indicate that the furnace was designed for smelting copper ores, utilizing andesite and dacite as host rocks for copper minerals such as malachite, chalcocite, and chalcopyrite. Carbonate rocks, quartz, schist, and sodic feldspar were employed as flux materials in the smelting process. The furnace design comprises three main sections—smelting, tapping, and molding—distinguished by specific elevation differences, reflecting the advanced technical expertise of its builders in managing metallurgical processes. Petrographic analysis of the slag confirms the presence of minerals such as pyroxene (green swallowtail-shaped crystals), olivine (colorless elongated blades), wüstite, and copper sulfides (covellite and native copper), suggesting a reductive environment and high temperatures of approximately 1200°C. Pores observed in the slag indicate rapid solidification or gas release. Chemical analysis reveals elevated levels of Fe₂O₃ (26.09–53.75%), SiO₂ (27.35–51.13%), and CaO (11.05–14.66%), confirming the formation of fayalite and the use of siliceous and alkaline fluxes. The copper content in the slag (14,044–20,737 ppm) suggests either incomplete smelting or the use of high-grade ore, while the low sulfur content (0.16–0.20%) indicates strongly reductive conditions. These findings establish the Western Javadiyeh furnace as a notable example of copper smelting technology in Iran’s Central Plateau, designed with optimized resource use and precise control over extraction and smelting processes. This research underscores the significance of ancient metallurgical knowledge and highlights the need for further studies to deepen our understanding of such technologies.
Article number: 1
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Technical Note: Original Research | Subject: Archaeometry
Received: 2025/01/7 | Accepted: 2025/09/14 | Published: 2025/12/30 | ePublished: 2025/12/30

References
1. Alipur, K. A. (1993). History of geology and mining in Iran. Tehran.
2. Elikay Dehno, S., Kamali, A. A., Beheshti, S. I., Ebrahimi, M., & Aarab, A. (2025). Unveiling Shahdad: Exploring ancient copper reserves and metallurgical practices on Iran's southeast plateau. L'Anthropologie, 129, 103343. [DOI:10.1016/j.anthro.2024.103343]
3. Emami, M. (2006). Phase transition induced by solid solution in the pyroxene-rich ancient copper slags from Toroud, Iran. In Proceedings of the International Symposium of Archaeometallurgy. Canada.
4. Emami, M. (2014). TOROUD: The late motion for As-Sb bearing Cu production from 2nd millennium B.C. in Iran: An archaeometal-lurgical approach. Mediterranean Archaeology and Archaeometry, 14(2), 185-204.
5. Emami, S. M. A. (2016). Archaeometry, a discipline for linking archae-ology to natural sciences (aims and scopes). Journal of Research on Archaeometry, 1(2). http://jra-tabriziau.ir/article-1-50-fa.html [DOI:10.29252/jra.1.2.75]
6. Emami, S. M. A., & Shahsavari, M. (2020). Kahiro II: The importance of copper oxide extraction technology in 4th millennium BC in Halil River Basin. Journal of Research on Archaeometry, 6(2), 41-55. [DOI:10.52547/jra.6.2.41]
7. Eskandari, N., & Emami, S. M. (2022). Retracing copper metallurgy in the Shahdad region (3rd millennium BCE). Journal of Archaeo-logical Studies, 12(4), 23-45.
8. Frame, L. L. D., & Pleiner, R. (2004). Investigations at Tal-i Iblis: Evidence for copper smelting during the Chalcolithic period. Mas-sachusetts Institute of Technology.
9. Hakemi, A. (1989). The copper smelting furnaces of the Bronze Age in Shahdad. In South Asian Archaeology (pp. 119-132).
10. Hauptmann, A., Rehren, T., & Schmitt-Strecker, S. (2003). Early Bronze Age copper metallurgy at Shahr-i Sokhta (Iran) reconsidered. In Deutsches Bergbau-Museum.
11. Majidzadeh, Y. (1979). An early prehistoric coppersmith workshop at Tepe Ghabristan. In Akten des VII. Internationalen Kongresses für Iranische Kunst und Archäologie (pp. 82-92). Berlin.
12. Momenzadeh, M. (2005). An overview of ancient mines and mining in Iran. Bronze, 2(5).
13. Muhly, J. D. (1989). Çayönü Tepesi and the beginnings of metallurgy in the Old World. In Old World Archaeometallurgy (pp. 1-13).
14. Nezafati, N., Momenzadeh, M., Ahmadi, K., et al. (2017). A road map for the ancient mining and metallurgical studies in Iran. Journal of Research on Archaeometry, 3(1), 77-98. http://jra-tabriziau.ir/article-1-80-en.html [DOI:10.29252/jra.3.1.77]
15. Pezeshkan, A. J., & Damghani, B. (2005). Mines and mining in Iran.
16. Pleiner, R. (1967). Preliminary evaluation of 1966 metallurgical inves-tigation in Iran: Investigation at Tal-i Iblis.
17. Ramtin, I. (2008). Summary of 10,000 years of Iran's history (Pre-Islamic).
18. Rashidinejad, F. (2015). Iran mining industry based on the 20-year perspective 2025. In Proceedings of the 2nd International Future Mining Conference (pp. 235-244). Sydney, NSW.
19. Razani, M., Sohati, F., & Bagherzadeh-Kasiri, M. (2021). Archaeometry in cultural heritage and art studies (definitions, trends, and future challenges). Journal of Research on Archaeometry, 7(1), 1-30. [DOI:10.52547/jra.7.1.1]
20. Rehren, T., Boscher, L., & Pernicka, E. (2012). Large-scale smelting of speiss and arsenical copper at Early Bronze Age Arisman, Iran. Journal of Archaeological Science, 39(6), 1717-1727. [DOI:10.1016/j.jas.2012.01.009]
21. Rostoker, W., Pigott, V. C., & Dvorak, J. R. (1989). Direct reduction to copper metal by oxide-sulfide mineral interaction. Archeomaterials, 3(1), 69-87.
22. Thornton, C. P. (2009). The Chalcolithic and Early Bronze Age metal-lurgy of Tepe Hissar, northeast Iran: A challenge to the "Levantine paradigm" (Doctoral dissertation). University of Pennsylvania.
23. Thornton, C., & Lamberg-Karlovsky, C. (2004). A new look at the prehistoric metallurgy of southeastern Iran. Iran, 42(1), 47-59. https://doi.org/10.2307/4300662 [DOI:10.1080/05786967.2004.11834645]
24. Weeks, L. (2016). Iran and the Bronze Age metals trade in the Persian Gulf. International Journal of the Society of Iranian Archaeologists, 2(3), 13-25.
25. Wertime, T. A. (1968). A metallurgical expedition through the Persian Desert. Science, 159. [DOI:10.1126/science.159.3818.927]

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