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The origin and significance of large, tabular dunite bodies in the Trinity peridotite, northern California

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Abstract

Kilometer-sized, tabular dunite bodies are contained within harzburgite, lherzolite and plagioclase lherzolite host rocks in the Trinity peridotite, northern California. An igneous origin for the dunite by crystal fractionation of olivine from a melt is suggested by their tabular shapes, clots of poikilitic clinopyroxene grains, chromite pods, and by analogy to dunite bodies in the Samail and Vourinos ophiolites (Hopson et al. 1981; Harkins et al. 1980; Moores 1969). However, structures and systematic variations in mineralogy and mineral chemistry suggest that at least the marginal few meters of the bodies are residues produced by extraction of a basaltic component from a plagioclase lherzolite protolith. A model is suggested in which a picritic melt ascended through the upper mantle in vertically oriented channels. Part of the dunite in the tabular bodies was produced by fractional crystallization of olivine from the melt. Additional dunite at the margins of the bodies was formed by extraction of a basaltic component from plagioclase lherzolite wall-rocks during partial assimilation by the picritic melt. The latter process is similar to the “wall-rock reaction” discussed by Green and Ringwood (1967) and is essentially zone refining of the the mantle wall rocks by the migrating melt. It is significant because it suggests a mechanism in addition to fractional crystallization for enrichment of incompatible elements in basalts.

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References

  • Albee AL, Beaty DW, Chodos AA, Quick JE (1977) Quantitative analysis of petrographic properties and of mineral compositions with a computer-controlled energy-dispersive system. Proc 12th Natl Conf on Electron Probe Analysis

  • Boudier F, Coleman RG (1981) Cross section through the peridotite in the Samail ophiolite. Oman, Southeastern Oman Mountains. J Geophys Res 86:2573–2592

    Google Scholar 

  • Burch SH (1969) Tectonic emplacement of the Burro Mountain ultra-mafic body, Santa Lucia Range, California. Geol Soc Am Bull 79:527–544

    Google Scholar 

  • Cameron EN, Desborough GA (1964) Origin of certain magnetitebearing pegmatites in the eastern part of the Bushveld Complex, South, Africa. Econ Geology 59:197–225

    Google Scholar 

  • Chodos AA, Albee AL, Gancarz AJ, Laird J (1973) Optimization of computer-controlled quantitative analysis of minerals. Proc 8th Natl Conf on Electron Probe Analysis, New Orleans, Louisiana

    Google Scholar 

  • Coleman RG (1977) Ophiolites, PJ Wyllie (ed) Springer-Verlag, New York, 229 p

    Google Scholar 

  • Davis GA, Holdaway MJ, Lipman PW, Romey WD (1965) Struture, metamorphism, and plutonism in the south-central Klamath Mountains, California. Geol Soc Am Bull 76:933–966

    Google Scholar 

  • Delaney JR, Muenow DW, Graham DG (1978) Abundance and distribution of water, carbon and sulphur in the glassy rims of submarine pillow basalts. Geochim Cosmochim Acta 42:581–594

    Google Scholar 

  • DePaolo DJ, Wasserburg GJ (1976a) Nd isotopic variations and petrogenetic models. Geophys Res Lett 3:249–252

    Google Scholar 

  • DePaolo DJ, Wasserburg GJ (1976b) Inferences about magma sources and mantle structure from variations of 143Nd/144Nd. Geophys Res Lett 3:743–746

    Google Scholar 

  • DePaolo DJ, Wasserburg GJ (1977) The sources of island arcs as indicated by Nd and Sr isotopic studies. Geophys Res Lett 4:465–468

    Google Scholar 

  • Dick HJR (1980) Vesicularity of Shikoku Basin basalt: a possible correlation with the anomalous depth of back-arc basins. Initial Reports of the Deep Sea Drilling Project 58:895–904

    Google Scholar 

  • Dick HJB (1977a) Evidence of partial melting in the Josephine peridotite. In: Magma Genesis, 1977. Ore Dept Geol Min Ind Bull 96:384–442

    Google Scholar 

  • Dick HJB (1977b) Partial melting in the Josephine Peridotite I, the effect on mineral composition and its consequence for geobarometry. Am J Sci 277:768–800

    Google Scholar 

  • Dick HJB, Marsh NG, Bullen TD (1980) Deep sea drilling project leg 58 abyssal basalts from the Shikoku Basin: their petrology and major element geochemistry. Initial Reports of the Deep Sea Drilling Project, 58:843–872

    Google Scholar 

  • Dick HJB, Sinton JM (1979) Compositional layering in apline peridotites: evidence for pressure solution creep in the mantle. J Geol 87:403–416

    Google Scholar 

  • Dungan MA, Avé Lallemant HG (1977) Formation of small dunite bodies by metasomatic transformation of harzburgite in the Canyon Mountain ophiolite, northeast Oregon. In: Magma Genesis, 1977. Ore Dept Geol Min Ind Bull 96:109–128

    Google Scholar 

  • Garcia MO, Liu NWK, Muenow DW (1979) Volatiles in submarine volcanic rocks from the Mariana island arc and trough. Geochim Cosmochim Acta 43:305–312

    Google Scholar 

  • Goullaud L (1977) Structure and petrology in the Trinity mafic-ultra-mafic complex, Klamath Mountains, Northern California. In: N Lindsley-Griffin, JC Kramer (eds) Geology of the Klamath Mountains, Northern California 73rd annual meeting, Cordilleran Section, Geol Soc Am p 112–133

  • Green DH, Hibberson WO, Jaques AL (1979) Petrogenesis of midocean ridge basalts. The Earth: Its Origin, Structure Evolution, MW McElhinney (ed) Academic Press, London

    Google Scholar 

  • Green DH (1973) Experimental melting studies on model upper mantle compositions at high pressure under both water-saturated and water-undersaturated conditions. Earth Planet Sci Lett 19:37–53

    Google Scholar 

  • Green DH, Ringwood AE (1967) The genesis of basaltic Magmas. Contrib Mineral Petrol 15:103–190

    Google Scholar 

  • Griscom A (1977) Aeromagnetic and gravity interpretation of the Trinity ophiolite complex, northern California (abstr). Geol Soc Am Abst Prog 9(4):426–427

    Google Scholar 

  • Harkins ME, Green MW II, Moores EH (1980) Multiple intrusive events documented from the Vourinous ophiolite complex, northern Greece. Am J Sci 280-A: 284–295

    Google Scholar 

  • Hess HH (1960) Stillwater igneous complex, Montana, a quantitative mineralogical study. Geol Soc Am Mem 80:230 p

    Google Scholar 

  • Hopson CA, Coleman RC, Gregory RT, Pallister JS, Bailey EH (1981) Geologic section through the Samail ophiolite and associated rocks along a Muscat-Ibra transect, southeastern Oman Mountains. J Geophys Res 86:2527–2544

    Google Scholar 

  • Irvine TN (1974) Petrology of the Duke Island ultramafic complex, southeastern Alaska. Geol Soc Am Mem 138:240 p

    Google Scholar 

  • Irvine TN, Findlay TC (1972) Alpine peridotite with particular reference to the Bay of Islands complex. In: The Ancient Ocean Lithosphere, Ottawa Can Dept Energy, Mines and Resources, Earth Phys Branch 43:97–126

    Google Scholar 

  • Irving AJ (1980) Petrology and geochemistry of composite ultramafic xenoliths in Alkalic basalts and implications for magmatic processes within the mantle. Am J Sci 280A: 389–426

    Google Scholar 

  • Irving AJ (1978) A review of experimental studies of crystal/liquid trace element partitioning. Geochim Cosmochim Acta 42:743–770

    Google Scholar 

  • Irwin WP (1966) Geology of the Klamath Mountains province. Cal Div Mines Geol Bull 190:19–38

    Google Scholar 

  • Irwin WP (1960) Geologic reconnaissance of the northern Coast Ranges and Klamath Mountains, California, with a summary of the mineral resources. Cal Div Mines Geol Bull 179

  • Jaques AL, Green DH (1980) Anhydrous melting of peridotite at 0–15 kb pressure and the genesis of tholeiitic basalts. Contrib Mineral Petrol 73:287–310

    Google Scholar 

  • Lacroix A (1917) Les peridotites des Pyrenees et les autres roches intrusives nonfeldspathiques qui les accompagnent. Acad Des Sci CR 165:381–387

    Google Scholar 

  • LaFehr TR (1966) Gravity in the eastern Klamath Mountains, California. Geol Soc Am Bull 77:1177–1190

    Google Scholar 

  • Lindsley-Griffin N (1977) The Trinity ophiolite, Klamath Mountains, California. In: RG Coleman, WP Irwin (eds) North American Ophiolites. Ore Dept Geol Min Ind Bull 95:107–120

  • Mercier J-CC, Nicolas A (1975) Textures and fabrics of upper-mantle peridotites as illustrated by xenoliths from basalts. J Petrol 16:454–487

    Google Scholar 

  • Menzies M, Allen C (1974) Plagioclase lherzolite-residual mantle relationships within two eastern Mediterranean ophiolites. Contrib Mineral Petrol 45:197–213

    Google Scholar 

  • Moores E (1969) Petrology and structure of the Vourinous ophiolite complex of northern Greece. Geol Soc Am Spec Pap 118:74

    Google Scholar 

  • Mysen BO, Boettcher AL (1975) Melting of a hydrous mantle: II. Geochemistry of crystals and liquids formed by anatexis of mantle peridotite at high pressures and temperatures as a function of controlled activities of water, hydrogen and carbon dioxide. J Petrol 16:549–593

    Google Scholar 

  • Nelson-Pike JE, Schwarzman EC (1976) Classification of textures in ultramafic xenoliths. J Geol 85:49–61

    Google Scholar 

  • Pike JEN, Meyer CE, Wilshire HC (1980) Petrography and chemical composition of a suite of ultramafic xenoliths from Lashaine, Tanzania. J Geol 88:343–352

    Google Scholar 

  • Quick JE (in press) Petrology and petrogenesis of the Trinity peridotite, an upper mantle diapir in the eastern Klamath Mountains, northern California. J Geophys Res

  • Quick JE, Albee AL, Chodos AA (1981) Detection of small, systematic compositional variations in peridotite by automated electron microprobe point counting analysis (PCA) using an energy dispersive detector. Proc 16th Natl Conf on Electron Probe Analysis, pp 143–147

  • Quick JE, Albee AL, Quick GL (1980) The structural and petrologic evolution of the Trinity peridotite, eastern Klamath Mountains, California (abstract). Geol Soc Am Abst Prog 12:148

    Google Scholar 

  • Quick JE, Albee AL (1979) Evidence for parital melting in the Trinity peridotite — a possible “high-temperature” peridotite in the eastern Klamath Mountains, northern California (Abstr). Geol Soc Am Abstr Prog 11:123

    Google Scholar 

  • Shervais JW (1979) Thermal emplacement model for the alpine lherzolite massif at Balmuccia, Italy. J Petrol 20, 4:795–820

    Google Scholar 

  • Stolper E (1980) A phase diagram for mid-ocean ridge basalt: preliminary results and implications for petrogenesis. Contrib Mineral Petrol 74:13–27

    Google Scholar 

  • Tarney J, Saunders AD, Weaver SD (1977) Geochemistry of volcanic rocks from the island arcs and marginal basins of the Scotia Arc region. In: Talwani M, Pitman WC III (eds) Island Arcs, Deep Sea Trenches and Back Arck Basins, Washington (Am Geophys Union) pp 367–377

    Google Scholar 

  • Taylor HP, Epstein S (1962a) Relationship between 18O/16O ratios in coexisting minerals in igneous and metamorphic rocks. Part I: Principles and experimental results. Geol Soc Am Bull 73:461–480

    Google Scholar 

  • Taylor HD, Epstein S (1962b) Relationship between 18O/16O ratios in coexisting minerals of igneous and metamorphic rocks. Part II: Applications to petrologic problems. Geol Soc Am Bull 73:675–694

    Google Scholar 

  • Wager PA (1929) The platinum deposits and mines of South Africa. Edinburgh, Oliver and Boyd, 326 p

    Google Scholar 

  • Walker D, Shibata T, Delong SE (1979) Abyssal tholeiites form the Oceanographer Fracture Zone II. Phase equilibria and mixing. Contrib Mineral Petrol 70:111–125

    Google Scholar 

  • Wilshire HG, Jackson ED (1975) Problems in determining mantle geothermsfrom pyroxene compositions of ultramafic rocks. J Geol 83:313–329

    Google Scholar 

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Submitted to Contributions to Mineralogy and Petrology, April, 1981. Resubmitted after Review, October, 1981

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Quick, J.E. The origin and significance of large, tabular dunite bodies in the Trinity peridotite, northern California. Contr. Mineral. and Petrol. 78, 413–422 (1982). https://doi.org/10.1007/BF00375203

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