Clay makabaye in the far north Cameroon: study chemical and mineralogical depth

  • Authors

    • Fridolin Tchangnwa Nya University of Maroua
    • Emmanuel Ngale Haulin University of Maroua
    • Clovis Kabe University of Maroua
    • B. Touogam Touolak
    • J. M. Ndjaka
    2015-01-24
    https://doi.org/10.14419/ijbas.v4i1.3942
  • Clay Mineralogy, Absorbing Properties, Clay Materials, Makabaye (Maroua).
  • This scientific work was initiated as a result of many concerns facing most researchers on the nature, properties and characteristics of the clay materials northern Cameroon. Including the city of Maroua in the Far North Region Cameroon. The specific case of Makabaye is indeed the object of this science. This work can serve as a guide, and why not valuable source of information useful to a deeper understanding of the chemical and mineralogical characteristics of Makabaye clay. Judicious use of the results of this work may also lead to the formulation of the products in terracotta, with a valuation of its clays in the cosmetics industry, real estate, pharmaceuticals, and purification of vegetable oils. To achieve our results, we basically made of chemical and mineralogical analysis in the laboratory, along with a team of sworn laboratory for major tests we have done. In particular, it is the XRD X-ray analysis for the determination of mineral elements, and finally, the geochemical analysis by X-ray fluorescence, to better identify the specific chemical characteristics of the clay. We believe the views of the results obtained, absorbent properties of the clay materials, properties that can be put to good use in the purification of vegetable oils and waste water treatment.

  • References

    1. [1] Gavaud, M., Brabant, P., (1985) République du Cameroun. Carte des Ressources en Terres. Provinces du Nord et de l'Extrême-Nord. Legend., ORSTOM et IRA

      [2] Seignobos C., Iyébi Mandjek O., Inc-Ird, 171 p. Page 9. 129 ... Synthèse nationale des analyses de terre : période 1990-1994 par C. Walter, C. Schvartz, B. Claudot, P. Aurousseau et T. Bouedo, avec le concours du Ministère de l'Agriculture et de la Pêche.

      [3] Seignobos, Christian & Thys, Éric, eds.--Des taurins et des hommes. Cameroun, Nigeria. Paris, Éditions de l'Orstom, 1998, 400 p

      [4] A. E. Aksu et al. (2002): Origin of late glacial-Holocene hemipelagic sediments in the Aegean Sea: clay mineralogy and carbonate cementation, Elsevier.

      [5] Adamo, P; Oudka, S; Wilson, MJ and Mc Hardy, W.J. (1996): Chemical and mineralogy forms of Cu and Ni in contaminated soils from Sudbary Mining and Smelting Region, Canada. Environ Pol. 91 (I): pp.II-19.

      [6] Aswathanarayana, U (1995): Geoenvironment: an introduction AA Balkema: pp 270.

      [7] Baldi, M.; Negri. MC and Capodaglio, A.G. (1990): In: Metals speciation, separation and recovery. J.W. patterson. Passino eds., Lewis Publishers. Inc., Chelsa. MI, United States. pp. 377-392.

      [8] Baptista Neto. J.A; Snitu, BJ. And McAllistes, JJ. (2000): Heavy metal concentration in surface sediments in near shore environment, Jurujuba Sound, Southeast Brazil. Environ. Pol. pp. 109: 1-19.

      [9] Barth, T.F.W. (1961): Abundance of the elements, areal averages and geochemical cycles Gochim. Cosmochim Acta, 23: pp.I-8.

      [10] Baskaran, M. and Somayanjulu, B.L.K. (1990): clay minerals distributions in dated Milliolites of the late Quarternary from Saurashtra and Kutch, Gujarat. J. of Geol. Soc. India (35(5), pp. 480-496.

      [11] Baskaran, M.; Sarin, MM and Somayajulu, B.L.K. (1984): Composition of mineral fractions of the Narmada and Tapti estuarine particles and the adjacent Arahian sea sediments of Western India. Chern. Geol. 45: pp. 33-51. http://dx.doi.org/10.1016/0009-2541(84)90114-1.

      [12] Berner R.A. (1971): Principles of chemical sedimentology McGraw Hills Publication, New York 240p.

      [13] Berner, E.K. and Berner, R.A. (1987): The global wat~r cycle. Geochemistry and Environment. Prentice hall; Englewood Cliffs, New Jercy 07632, 397p.

      [14] Bhosle, NB; Dhargalkar, VK and Braganca, AM (1978): Distribution of some biochemical compounds in sediments of the shelf and slope regions of the West Coast ofIndia. Ind. J. Mar. Sci. 7, pp. 155-158.

      [15] Bikshamaiah, G and Subramanian, V (1980): Chemical sediment mass transfer in Godavari River Basin in India, Journal of Hydrology, 46, pp. 331-342. http://dx.doi.org/10.1016/0022-1694(80)90085-2.

      [16] Biscaye, P.E. (1965): Mineralogy and sedimentation of recent deep see clay in the Atlantic Ocean and adjacent seas and oceans, Geol. Soc. Am. Bull., 76: pp. 803-832. http://dx.doi.org/10.1130/0016-7606(1965)76[803:MASORD]2.0.CO;2.

      [17] Bukhari, Sand Nayak, GN (1996): Clay minerals in identification of provenance of sediments of Mandovi estuary, Goa, west coast of India. Ind. J. Mar. Sci. 25, pp.34]-345.

      [18] Cam bier, P. (1997): Evaluation of the mobility of toxic elements in contaminated soils. Anal Mag. 25, pp. 35-38.

      [19] Carrol, D. (1970): clay minerals -a guide to their identification G.S.A. Spec. Pap 126, 80p.

      [20] Chakrapani GJ and Subramanian V (1990): Preliminary studies of the geochemistry of the Mahanadi river basin, India, Chern. Geol., 81, pp. 241-253. http://dx.doi.org/10.1016/0009-2541(90)90118-Q.

      [21] Chester, R. and Hughee, (1967): A chemical technique for the separation of ferromanganese minerals carbonate minerals and adsorbed trace elements from pelagic sediments. Chemical Geol. 2, pp. 249-262. http://dx.doi.org/10.1016/0009-2541(67)90025-3.

      [22] Chiao, L.L. (1972): Selective dissolution of manganese oxides from soils and sediments with acidified hydroxylamine hydrochloride. Soil. Sci. Soc. Arne. Proc. 36, pp. 764-768. http://dx.doi.org/10.2136/sssaj1972.03615995003600050024x.

      [23] Forstner, U. (1993): Metal speciation general concept and applications. International Journal of Analytical Chemistry, 51, pp. 5-23. http://dx.doi.org/10.1080/03067319308027608.

      [24] Forstner, U. and Muller, G. (1974): Schwerme in Flussen and und see. Berlin: Springer. 255p.

      [25] Galloway, IN; Schlesinger WH; Levy II H; Michaels A and Schnoor JL (1995): Nitrogen fixation: anthropogenic enhancement ~nvironmental response Global Biogeochemical Cycle, 9, pp. 235-252.

      [26] Jackson, M.L. (1973): Soil chemical analysis, advanced course. Madison Winconsin. 530p.

      [27] Jenne, F.A. (1968). Controls of Mn, Fe, Co, Ni, Cu and Zn concentrations in soils and waters: the significance of hydrous Mn and Fe Oxides. Am. Chern. Soc. Adv. Chern. Ser., 73. Pp.337-387.

      [28] Johnson, A.G., J. Kelly. (1984): Temporal spatial and textural variation in the mineralogy of Mississippi river suspended sediments. J. Sed. Petrol. Vol. 54: No.1.

      [29] Knedler, Ke; Glassby, GP and Preeman, AJ (1983): Mineralogy and geochemistry of iron in some recent continental shelf sediments off Goa. Ind. J. mars. Sci. 12, pp. 133-137.

      [30] Konta, J (1985): Mineralogy and chemical maturity of suspended matter in major rivers sampled under the SCOPE! UNEP Project. In, ET Degens ET aI (eds) Transpori of carbon and minerals in major worid rivers Pt. j Mitt GeolPalaont Inst, Univ. Hamburg, SCOPE! UNEP, 58, pp. 569-592.

      [31] Konta, J. (1988): Minerals in rivers. In (eds.) Degens E.T., Kempe, S., and Sathy Naidu, Transport of carbon and minerals in major world rivers, lakes and estuarine. Part 5, mil Geol-Palaont. Inst. Univ. Hamburg. SCOPEIUNEP, 66, pp.341-365.

      [32] Krishnamurty, G.S.R.; Huang, P.M.; Van Rees, K.CJ; Kozak, L.M. and Rostad, H. P.W. (1995). Speciation of particulate-bound Cadmium of soils and its bioavailability. Analyst. 120, pp. 659-665. http://dx.doi.org/10.1039/an9952000659.

      [33] Martin, J. M.; Nirel, P. and Thomas, A.G. (1987): Sequential extraction techniques: promises and problems. Mar Chern. 22, pp. 313-341. http://dx.doi.org/10.1016/0304-4203(87)90017-X

      [34] Matricic, D., Kwokal, Z. and Branica, M. (1990): Distribution of Zn, Pb, Cd, and Cu between different size fractions of sediments. Sci. Trace metal geochemical associations in sediments from the culture bed of Anadara Granosa. Mar Pollut Bull. 28, pp. 319-323.

      [35] Prabhaker Rao, P; Raju, A V and Nair, MM (1985): Geomorphology of Goa. In: Earth Res. of Goa Development (Seminar, GSI, Hydrabad, pp.583-588.

      [36] Soman K. (1997): Geology of Kerala, published by Geological Society of India, Bangalore, India- 560 019, 280p.

      [37] Tack, F.M. G. and Valoo, M. G. (1995): Chemical speciation and fractionation in soil and sediment heavy metal analysis: A review. Int. J Envion. Anal Chern. 59, pp. 225-238.

      [38] Whitney, P.R. (1975). Relationship of manganese -iron oxides and associated heavy metals to grain sizein stram sediments. J. Geochem Explor. 4, pp. 251-263. http://dx.doi.org/10.1016/0375-6742(75)90005-9.

      [39] Yu, S., He, Z. L., Huang, C.Y., Chen, G.C. and Calvert, D.V. (2004: Copper fractionation and extractability in two contaminated variable charge soils. Geoderma, 123 pp. 163-175. http://dx.doi.org/10.1016/j.geoderma.2004.02.003.

      [40] Zhang, J.G.; Huang, W.W. and Wary, Q. (1990): Concentration and partitioning of particulate trace metals in the Changjiang. Water, Air and Soil pollut. 52 pp. 57-70. http://dx.doi.org/10.1007/BF00283114.

      [41] Ingersoll, K.V., P.F. Bullard., R.L. Frd., J.P. Grim., J8. Puckle and S.W. Sares. (1984): The effect of grain size on detrital modes: a test of the GazziDickinson Point Counting Method. J. Sed. Petrol. 54, pp. 103-116.

      [42] Ittekkot, V. and S. Zhang. (1989): Pattern of particulate nitrogen transport in World Rivers. Global Biogeochemical cycles, Vol. 3(4), pp. 383-391. http://dx.doi.org/10.1029/GB003i004p00383.

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    Tchangnwa Nya, F., Ngale Haulin, E., Kabe, C., Touolak, B. T., & Ndjaka, J. M. (2015). Clay makabaye in the far north Cameroon: study chemical and mineralogical depth. International Journal of Basic and Applied Sciences, 4(1), 109-115. https://doi.org/10.14419/ijbas.v4i1.3942