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Petrophysical properties of rocks from the Bargilt iron ore deposit, Mongolia

https://doi.org/10.21285/2686-9993-2026-49-2-1

EDN: TJRMIG

Abstract

Abstract. Iron ore deposits play a significant role in Mongolia’s mineral-based economy and require detailed geological and geophysical investigation for effective exploration and resource evaluation. This study focuses on the Bargilt iron ore deposit located in Khentii Province, Mongolia, within the MV-016657 license area operated by the state-owned enterprise Mongolrostsvetmet. The main objective of the study is to characterize the mineralogical composition, rock properties, and subsurface distribution of ore-bearing zones for better understanding of the deposit’s structure and potential. A combination of field geological mapping, petrographic analysis, and petrophysical interpretation was used to determine the mineral composition and textural relationships. Representative samples of ore-bearing (59 samples) and host rocks (440 samples) have been collected, measured and analyzed. Magnetite was identified as the dominant ore mineral accompanied by minor accessory minerals, while the host rocks are mainly composed of silicate gangue minerals. Petrophysical data were interpreted to identify subsurface anomalies associated with iron-enriched zones and to identify structural factors influencing mineralization. The study results indicate that the iron ore mineralization is structure-controlled and exhibits a variable spatial distribution influenced by lithological boundaries and fault systems. Integration of geological and petrophysical datasets provides a more reliable model of ore body geometry and its continuity. The study results demonstrate the effectiveness of combined methods for improving exploration accuracy and can serve as a basis for further detailed assessment of the Bargilt iron ore deposit for future development planning.

About the Authors

T. Byambasuren
Mongolian University of Science and Technology
Mongolia

Turtogtokh Byambasuren, PhD, Senior Lecturer, Director of the Research, Production, and Educational Center of Geophysics

Ulaanbaatar


Competing Interests:

The authors declare no conflict of interests.



T. Tsogt
Bor-Undur Mineral Processing Plant
Mongolia

Tumur Tsogt, Master of Science, Сhief Engineer

Khentii Province


Competing Interests:

The authors declare no conflict of interests.



U. Khulan
Mongolian University of Science and Technology
Mongolia

Ulziijargal Khulan, Student

Ulaanbaatar


Competing Interests:

The authors declare no conflict of interests.



S. Urjinkhand
Mongolian University of Science and Technology
Mongolia

Sodnomdarjaa Urjinkhand, Master of Science, Lecturer

Ulaanbaatar


Competing Interests:

The authors declare no conflict of interests.



References

1. Telford W.M., Geldart L.P., Sheriff R.E. Applied geophysics. Cambridge: Cambridge University Press; 1990, 807 p.

2. Dentith M., Mudge S.T. Geophysics for the mineral exploration geoscientist. Cambridge: Cambridge University Press; 2014, 454 p.

3. Menke W. Geophysical data analysis: discrete inverse theory. London: Academic press; 2018, 342 p. https://doi.org/10.1016/C2016-0-05203-8.

4. Vakhromeev G.S., Davydenko A.Yu. Modeling in exploration geophysics. Moscow: Nedra; 1987, 192 p. (In Russ.).

5. Schön J.H. Physical properties of rocks: fundamentals and principles of petrophysics. Amsterdam: Elsevier; 2015, 512 p.

6. Yang T., Gao J., Gu Z., Dagva B., Tserenpil B. Petrophysical properties (density and magnetization) of rocks from the Suhbaatar–Ulaanbaatar–Dalandzadgad geophysical profile in Mongolia and their implications. The Scientific World Journal. 2013;1:791918. https://doi.org/10.1155/2013/791918.

7. Konstantinov K.M., Kuzina D.M., Khoroshikh M.S. Petrophysical taxa of diamond deposit of Komsomolskaya kimberlite pipe (Yakutsk diamondiferous province). Earth sciences and subsoil use. 2024;47(2):190-219. https://doi.org/10.21285/2686-9993-2024-47-2-190-219. EDN: TBAMTC.

8. Emerson D.W. Physical properties of skarns. Exploration Geophysics. 1986;17(4):201-212. https://doi.org/10.1071/EG986201.

9. Sandrin A., Elming S.-Å. Geophysical and petrophysical study of an iron oxide copper gold deposit in northern Sweden. Ore Geology Reviews. 2006;29(1):1-18. https://doi.org/10.1016/j.oregeorev.2005.06.001.

10. Navaanchimed A., Khuut T., Turtogtokh B., Sengee M., Purev D., Kh K. Geophysical exploration for skarn-type iron deposits in western Mongolia. In: SEG Global Meeting Abstracts: proceedings of the 12th SEGJ International symposium. 18–20 November 2015, Tokyo. Tokyo: Society of Exploration Geophysicists; 2015, p. 221-223. https://doi.org/10.1190/segj122015-072.

11. Turai E., Turtogtokh B., Dobróka M., Baracza M.K. Newer results of Monte Carlo inversion of IP data in water base protection and ore exploration. Acta Geodaetica et Geophysica. 2021;56(4):667-679. https://doi.org/10.1007/s40328-021-00352-6.

12. Akimoto S. Magnetic properties of FeO–Fe<sub>2</sub>O<sub>3</sub>–TiO<sub>2</sub> system as a basis of rock magnetism. Journal of the Physical Society of Japan. 1962;17(B1):706-710.

13. Henkel H. Standard diagrams of magnetic properties and density – a tool for understanding magnetic petrology. Journal of Applied Geophysics. 1994;32(1):43-53. https://doi.org/10.1016/0926-9851(94)90008-6.

14. Clark D.A., Emerson J.B. Notes on rock magnetization characteristics in applied geophysical studies. Exploration Geophysics. 1991;22(3):547-555. https://doi.org/10.1071/EG991547.

15. Clark D.A. Magnetic petrophysics and magnetic petrology: aids to geological interpretation of magnetic surveys. AGSO Journal of Australian Geology & Geophysics. 1997;17(2):83-103.

16. Leväniemi H., Hokka J. Petrophysical target characterization with lithogeochemical clustering: the Metsämonttu Zn–Pb–Cu deposit, southern Finland. Near Surface Geophysics. 2022;20(6):637-660. https://doi.org/10.1002/nsg.12182.

17. Davis J.C. Statistics and data analysis in geology. New York: John Wiley & Sons; 1986, 663 р.

18. Everitt B., Hothorn T. An introduction to applied multivariate analysis with R. New York: Springer; 2011, 289 р.

19. Chapman S.J. MATLAB programming for engineers. Boston: Brooks/Cole-Thomson Learning; 2002, 478 р.


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For citations:


Byambasuren T., Tsogt T., Khulan U., Urjinkhand S. Petrophysical properties of rocks from the Bargilt iron ore deposit, Mongolia. Earth sciences and subsoil use. https://doi.org/10.21285/2686-9993-2026-49-2-1. EDN: TJRMIG

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ISSN 2686-9993 (Print)
ISSN 2686-7931 (Online)