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Hydrothermal Alterations of Hisingerite Material from a Basalt Quarry Near Geelong, Victoria, Australia

Published online by Cambridge University Press:  02 April 2024

Ahmad Shayan
Affiliation:
CSIRO Division of Construction and Engineering, P.O. Box 56, Highett, Victoria 3190, Australia
John V. Sanders
Affiliation:
CSIRO Division of Materials Science and Technology, P.O. Box 160, Clayton, Victoria 3168, Australia
Christopher J. Lancucki
Affiliation:
CSIRO Division of Construction and Engineering, P.O. Box 56, Highett, Victoria 3190, Australia
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Abstract

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To understand the genetic relationship between hisingerite material in the joints of an overlying grey basalt and nontronite and Fe-rich saponite in the joints and matrix of a more deuterically altered, underlying green basalt, the hisingerite material was treated in a series of hydrothermal experiments. No well-ordered clay mineral was produced at temperatures <340°C, although extended treatment for 445 days and at 110°C or 42 days at 180°C resulted in the formation of materials that gave broad, weak, basal X-ray powder diffraction (XRD) reflections characteristic of 2:1 phyllosilicates. Hematite did not form at 110°C, but it did form at 180°C in 1- and 6-week runs. Treatments at 340°C in Pt, Ag-Pd, and Au containers resulted in mixtures of Fe-rich saponite + hematite, but the same starting material treated at 340°C in stainless steel yielded, in addition, some chlorite, probably due to the more reducing conditions in the stainless steel container. Treatment of the unaltered grey basalt at 340°C and 50 MPa for 10 days resulted in complete alteration of olivine (and probably glass) to a trioctahedral smectite.

The Fe-rich saponite produced by the hydrothermal treatment of the hisingerite material has a composition and XRD pattern similar to the Fe-rich saponite found in the green basalt and an XRD pattern similar to that produced by the hydrothermal treatment of the grey basalt; thus these clays may have had a similar origin. The compositions and XRD patterns of these clays are not similar, however, to those of the nontronite in the joints of the green basalt. The nontronite probably formed during a subsequent low-temperature alteration.

Type
Research Article
Copyright
Copyright © 1988, The Clay Minerals Society

References

Bain, D. C., Ritchie, P. F. S. Clark, D. R. and Duthie, D. M. L., 1980 Geochemistry and mineralogy of weathered basalt from Morvern, Scotland Mineral. Mag. 43 865872.CrossRefGoogle Scholar
Bain, D. C. and Russell, J. D., 1980 Swelling minerals in basalts and its weathering products from Morvern, Scotland: I. Interstratified montmorillonite-vermiculite Clay Miner. 15 445451.CrossRefGoogle Scholar
Bain, D. C. and Russell, J. D., 1981 Swelling minerals in basalt and its weathering products from Morvern, Scotland: II. Swelling chlorite Clay Miner. 16 203212.CrossRefGoogle Scholar
Bischoff, J. L. and Dickson, F. W., 1975 Seawater-basalt interaction at 200°C and 500 bars: Implications for origin of sea-floor heavy-metal deposits and regulation of seawater chemistry Earth Planet. Sci. Lett. 25 285397.CrossRefGoogle Scholar
Brindley, G. W. and Brown, G., 1972 Chlorite minerals X-ray Identification and Crystal Structures of Clay Minerals London Mineralogical Society 242297.Google Scholar
Cole, W. F., Lancucki, C. J. and Bailey, S. W., 1976 Clay minerals developed by deuteric alteration of basalt Proc. Int. Clay Conf, Mexico City, 1975 Wilmette, Illinois Applied Pubi. 3543.Google Scholar
Cole, W.F. Lancucki, C.J. and Shayan, A., 1984 Verifying quarry potential Proc. 12th Aust. Road Res. Board Conf. Vol. 12, Part 2, Hobart, 1984 Vermont South, Victoria Australian Road Research Board 98102.Google Scholar
Coulson, A., 1977 Age-relationships of Newer Basalts in the Geelong district, Victoria Proc. Royal Soc. Victoria 89 159165.Google Scholar
Cowking, A., Wilson, M. J., Tait, J. M. and Robertson, R. H. S., 1983 Structure and swelling of fibrous and granular saponitic clay from Orrock Quarry, Fife, Scotland Clay Miner. 18 4964.CrossRefGoogle Scholar
Eggleton, R. A., Foudoulis, C. and Varkevisser, D., 1987 Weathering of basalt: Changes in rock chemistry and mineralogy Clays & Clay Minerals 35 161169.CrossRefGoogle Scholar
Hajash, A., 1975 Hydrothermal processes along mid-ocean ridges: An experimental investigation Contrib. Mineral. Petrol. 53 205226.CrossRefGoogle Scholar
Harder, H., 1977 Clay mineral formation under lateritic weathering conditions Clay Miner. 12 281288.CrossRefGoogle Scholar
Kohyama, N., Shimoda, S. and Sudo, T., 1973 Iron-rich saponite (ferrous and ferric forms) Clays & Clay Minerals 21 229237.CrossRefGoogle Scholar
Luke, K., Taylor, HFW and Kalousek, G. L., 1981 Some factors affecting formation of truscottite and xonotlite at 300°-350°C Cem. Conv. Res. 11 197203.CrossRefGoogle Scholar
Mehra, O. P., Jackson, M. L. and Swineford, A., 1960 Iron oxide removal from soils and clays by a dithionite-citrate system buffered with sodium bicarbonate Clays and Clay Minerals, Proc. 7th Natl. Conf, Washington, D.C. New York Pergamon Press 317327.Google Scholar
Motti, M. J. and Holland, H. D., 1978 Chemical exchange during hydrothermal alteration of basalt by seawater: I. Experimental results for major and minor components of seawater Geochim. Cosmochim. Acta 42 11031115.CrossRefGoogle Scholar
Noack, Y., Emmermann, R., Hubberten, H. W. et al. , Cann, J. R., Langseth, M. G., Honnorez, J., von Horzen, R. P. and White, S. M. 1979 et al. , Alteration in site 501 (leg 68) and site 504 (leg 69) basalts: Preliminary results Initial Reports of the Deep Sea Drilling Project, Leg 69 Washington, D.C. U.S. Government Printing Office 497508.Google Scholar
Papavassiliou, C Th and Cosgrove, M. E., 1981 Chemical and mineralogical changes during basalt-seawater interactions: Site 223, leg 23, D.S.D.P., north-west Indian Ocean Mineral. Mag. 44 141146.CrossRefGoogle Scholar
Post, J. L., 1984 Saponite from near Ballarat, California Clays & Clay Minerals 32 147153.CrossRefGoogle Scholar
Russell, J.D. Goodman, B. A. and Fraser, A. R., 1979 Infrared and Mössbauer studies of reduced nontronite Clays & Clay Minerals 27 6371.CrossRefGoogle Scholar
Scheidegger, K. F. and Stakes, D. S., 1977 Mineralogy, chemistry and crystallization sequence of clay minerals in altered tholeiitic basalts from the Peru trench Earth Planet. Sci. Lett. 36 413422.CrossRefGoogle Scholar
Scott, R. B. and Hajash, A Jr., 1976 Initial submarine alteration of basaltic pillow lavas: A microprobe study Amer. J. Sci. 276 480501.CrossRefGoogle Scholar
Senkayi, A. L., Dixon, J. B., Hassner, L. R. and Viani, B. E., 1983 Mineralogical transformation during weathering of lignite overburden in East Texas Clays & Clay Minerals 31 4956.CrossRefGoogle Scholar
Seyfried, W. E. Jr. and Bischoff, J. L., 1979 Low temperature basalt alteration by seawater: An experimental study at 70°C and 150°C Geochim. Cosmochim. Acta 43 19371947.CrossRefGoogle Scholar
Seyfried, W. E. Jr. and Bischoff, J. L., 1981 Experimental seawater-basalt interaction at 300°C, 500 bars, chemical exchange, secondary mineral formation and implications for the transport of heavy metals Geochim. Cosmochim. Acta 45 135147.CrossRefGoogle Scholar
Seyfried, W. E., Shanks, W. C., Bischoff, J. L. et al. , Yeats, R. S. and Hart, S. R. 1976 et al. , Alteration and vein formation in site 321 basalts Initial Reports of the Deep Sea Drilling Project, Leg 34 Washington, D.C. U.S. Government Printing Office 385392.Google Scholar
Shayan, A., 1984 Hisingerite material from a basalt quarry near Geelong, Victoria, Australia Clays & Clay Minerals 32 272278.CrossRefGoogle Scholar
Shayan, A. and Lancucki, C. J., 1984 Konyaite in salt efflorescence from a Tertiary marine deposit near Geelong, Victoria, Australia Soil Sci. Soc. Amer. J. 48 939942.CrossRefGoogle Scholar
Stevula, L. and Petrovic, J., 1983 Formation of an intermediate C-S-H phase during the hydrothermal synthesis of gyrolite Cem. Conc. Res. 13 684688.CrossRefGoogle Scholar
Stucki, J. W., Golden, D. C. and Roth, C. B., 1984 Preparation and handling of dithionite-reduced smectite suspensions Clays & Clay Minerals 32 191197.CrossRefGoogle Scholar
Van der Marel, H. W. and Beutelspacher, H., 1976 Atlas of Infrared Spectroscopy of Clay Minerals and their Admixtures Amsterdam Elsevier 144.Google Scholar
Walters, S. G. and Ineson, P. R., 1983 Clay minerals in the basalts of the South Pennines Mineral. Mag. 47 2126.CrossRefGoogle Scholar