X-Ray Diffraction Technique: A Powerful Method Of Characterizing Of Minerals From Mamuniyat Formation Concession NC174, Murzuq Basin, SW Libya

Main Article Content

afaf ali alrabib
Zahra K Rahoumah
Mohamed Alrabib
Lutfia M Grabel
Suad A Khamaj

Abstract

X-ray diffraction techniques are a very useful characterization tool to study, non-destructively, the crystallographic structure, chemical composition and physical properties of materials and thin films. It can also be used to measure various structural properties of these crystalline phases, such as strain, grain size, phase composition, and defect structure. X-ray diffraction has long been used as a definitive technique for mineral documentation based on measuring the internal atomic or crystal structures present in powdered rocks, soils and other mineral mixtures. Recent developments in data gathering and processing, though, have provided an improved basis for its use as a quantitative tool, determining not only the nature of the minerals but also the relative proportions of the different minerals present. The mineralogy of a series of sandstone samples from the Mamuniyat Formations, Murzuq Basin, SW Libya has been evaluated by X-ray diffraction (XRD) on a quantitative basis using the SIROQUANT data processing technique. Based on engaged principles, this technique generates a synthetic X-ray diffractogram by correcting and combining full-profile patterns of minerals designated as being present in the sample and interactively matches the synthetic diffractogram under operator instructions to the observed diffractogram of the sample being analysed. Six minerals have been identified: quartz, microcline, kaolinite, illite, muscovite, chlorite, dolomite and siderite. The most common minerals are quartz, kaolinite, siderite, and illite.

Article Details

How to Cite
[1]
afaf Alrabib, Z. K. Rahoumah, M. Alrabib, L. M. Grabel, and S. A. Khamaj, “X-Ray Diffraction Technique: A Powerful Method Of Characterizing Of Minerals From Mamuniyat Formation Concession NC174, Murzuq Basin, SW Libya”, UZJNS, vol. 3, no. 2, pp. 52–62, Aug. 2026.
Section
Physics
Author Biographies

afaf ali alrabib, Department of Physics, Faculty of Sciences, university of Zawia, Zawia, Libya

Afaf  A. Alrabib

Department of Physics

lecturer in electronic physics

Zahra K Rahoumah, Department of Physics, Faculty of Sciences, University of Zawia, Zawia, Libya

 Department of Physics, Faculty of Science, University of Zawia, Zawia, Libya

Mohamed Alrabib, Department of Geology, University of Zawia, Faculty of sciences, Zawia Libya

PhD in Reservoir Clastic Sedimentology

research interest  Clastic Sedimentology

Teaching subsurface geology, physical geology, petroleum geology, stratigraphy, and formation evaluation.

Lutfia M Grabel, Department of Geology, Faculty of Sciences, University of Zawia, Zawia, Libya

Department of Geology, Faculty of Sciences, University of Zawia, Zawia, Libya

Suad A Khamaj, Department of Physics, Faculty of Sciences, University of Zawia, Zawia, Libya

Department of Physics

References

[1] M Lee.. X-ray Diffraction for Materials Research From Fundamentals to Applications, 2021.

[2] D. Massa and G. R. Collomb, Observations nouvelles sur la région d’Aouinet Ouenine et du Djebel Fezzan (Libya), in Proc. 21st Int. Geological Congr., vol. 12, pp. 65 73, 1960. `

[3] A. Grubic et al., Stratigraphy of western Fezzan, SW Libya,” in The Geology of Libya, vol. IV, M. J. Salem and M. N. Belaid, Eds. London: Academic Press, 1991, pp. 1529 1565.`

[4] E. S. T. Pierobon,. Contribution to the stratigraphy of the Murzuq Basin, SW. Libya. In: Salem, M. J., and Belaid, M. N. (eds.). The geology of Libya, Academic Press London, vol. V, 1991, pp. 1767-1784.

[5] F. J. Pettijohn, P. E. Potter, and R. R. Slever,. Sand and sandstones, SpringerVerlag,

2nd edition 1987, pp. 1- 553.

[6] F. J. Pettijohn, P. E. Potter, and R. R. Slever,. Sand and sandstones, Springer Verlag, Berlin, Heidberg, New York, 1973, pp.1-618

[7] S. JR. Boggs, Principles of sedimentology and stratigraphy. Merrill, Columbus, Ohio-Hall. Upper sander River, New Jersey, 2nd edition, 1995, pp. 1-774

[8] H. Blatt, Sedimentary petrology, second ed. W.H. Freeman and Company, New York, 514, 1992, p. 8

[9] M. Bucke,. NC174 on shore Murzuq Basin 1995, pp. 1-27.

[10] E. D. Pittman, Recent advances in sandstone diagenesis. Annual review. Earth Planetology Science, vol. 7, 1979, .pp. 39-62.

[11] M. D. Wilson, and E. D. Pittman, Authigenic clays in sandstones: Recognition and influence on reservoir properties and paleoenvironmental analysis. Journal of Sedimentary Petrology, vol. 47. No. 1. 1977, pp. 3-31.

[12] J.R. Boles and S.G. Franks. Clay diagenesis in the Wi1cox Sandstones of Southwest Texas: implications of smectite on sandstone cementation. Journal of Sedimentary Petrology, vol. 49, 1979, pp. 55-70.

[13] R/ Marfil,, A. Delgado, C. Rossl,. A..Laiglesia, and R. Ramseyer,. Origin and diagenetic evolution of kaolin in reservoir sandstone and associated shales of the Jurassic and Cretaceous, Salam Field, Western Desert (Egypt). In: Clay minerals cements in sandstone. R. H. Worden., and S. Morad,. (eds.). International Association, Sedimentology Special Publication, vol. 34, 2003, pp. 319-342.

[14] S. Hillier. Quantitative analysis of clay and other minerals in sandstones by X-ray powder diffraction (XRD), In: Clay minerals cements in sandstone. Worden, R. H., Morad, S (eds.). International Association. Sedimentology, Special Publication 34, 2003, pp. 213-2.51.

[15] A. Hurst, and H. Irwin. Geological modelling of clay diagenesis in sandstones. Journal of Clay Minerals, vol. 17, 1982, pp. 5-22

[16] R H. Worden, and S. Morad,. Clay minerals in sandstones: controls on formation, distribution and evolution. In: Clay mineral cements in sandstone Worden R H, Morad S (eds.). International Association ofSedimentology. Special Publication, vol. 34, 2003, pp. 3-41.

[17] J. B. Hayes. Polytypism of chlorite in sedimentary rocks. Clay and Clay Minerals, vol. 18. 1970, pp. 285-306.

[18] A. M. Thompson. Geochemistry of colour genesis in red-bed sequence. Juniata and Bald Eagle Formations, Pennsylvania. Journal of Sedimentary Petrology, vol. 40. 1970, pp. 599-615.

[19] E. D. Pittman, R. E. Larese, and M. T. Heald,. . Clay coats: Occurrence and relevance to preservation of porosity in sandstone. In: Houseknecht, D. W., and Pittman E. (eds.). Origin, Diagenesis and Petrophysics of Clay Minerals in Sandstone. SEPM, Special Publication, No. 47. 1992, pp. 241-255.

[20] S. J. Needham, R. H. Worden, and D. McIlroy. Experimental production of clay rims by macrobiotic sediment ingestion and excretion processes. Journal of Sedimentary Research, vol. 75, 2005, pp. 1028-1037.

[21] B. Fultz, J. Howe,. Transmission Electron Microscopy and Diffractometry of Materials; Springer: Berlin/Heidelberg, Germany, 2013.

[22] D.G. Lamas, M.D.O. Neto, G. Kellermann, A.F. Craievich. X-ray Diffraction and Scattering by Nanomaterials. In Nanocharacterization Techniques;William Andrew Publishing: Oxford, UK, Chapter 5, 2017, pp. 111–182.

[23] J.K. Sjöström, R. Bindler, T. Granberg, M.E. Kylander. Procedure for Organic Matter Removal from Peat Samples for XRD Mineral Analysis. Wetlands, 39, 2019, pp. 473–481.

[24] M. Y. Nikolaev, and A. V. Kazak, Liquid saturation evaluation in organicrich unconventional reservoirs: A comprehensive review. Earth-science Rev. 194, 2019, pp. 327–349.

[25] Z. P. Li, C. Q. Gao, B. Zhao, Y. Guan, and J. Y. Liu. Application of uclear magnetic resonance logging in the low-resistivity reservoir-Taking the XP area as an example. Interpretation 8, 2021, pp. 885–893.

[26] R. Hardy, and M. Tucker. X-ray powder diffraction of sediments. In: Technques in sedimentology. Tucker, M. (ed.). Black well scientific publication. 1988, pp. 1-394.

[27] S. D. Burley, J. D. Kantorowicz, and B. Waugh, Clastic diagenesis In: Brenchley P. J. and Williams B. J. P., (eds.). Journal of Sedimentology, Recent development, and Applied Aspects. Blackwell, London.1985, pp. 189-226.

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