RESIDENCE OF TRACE-ELEMENTS IN METASOMATIZED SPINEL IHERZOLITE XENOLITHS - A PROTON-MICROPROBE STUDY

被引:174
作者
OREILLY, SY [1 ]
GRIFFIN, WL [1 ]
RYAN, CG [1 ]
机构
[1] CSIRO,DIV EXPLORAT GEOSCI,N RYDE,NSW 2113,AUSTRALIA
关键词
D O I
10.1007/BF00687203
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Minerals occurring in dry and modally metasomatized spinel lherzolites from western Victoria have been analysed by proton microprobe for Ni, Cu, Zn, Ga, Rb, Sr, Y, Zr, Nb, Ba, Pb, Br, rare-earth elements (REE), Th and U. Mass-balance calculations demonstrate that these trace elements are contained in specific acceptor minerals and do not occur in significant concentrations at clean grain boundaries. The level of particular trace elements in the rock depends on the presence of specific phases: for example high levels of REE, Sr (and U, Th, Br) require apatite, while Ba, Nb and Ta are strongly concentrated in amphibole +/- mica. Mantle metasomatism in these spinel lherzolites is inferred to result from an open-system process involving infiltration of fluids released by crystallizing silicate melts. This process produces metasomatic zones with different modal mineralogy and hence greatly different trace-element signatures. The data demonstrate that large-ion-lithophile (LIL) and high-field strength (HFS) elements in metasomatized spinel lherzolites are strongly concentrated in non-refractory phases, which will break down easily in heated volumes such as the walls of magma conduits. The heterogeneity observed in trace-element patterns of intraplate alkali basaltic rocks may not reflect source heterogeneity, but may result largely from contamination by metasomatized mantle wall rock. The K(D)S for most trace elements show little temperature dependence except for K(D)Sr between orthopyroxene and clinopyroxene where K(D) decreases with increasing temperature. The generally uniform K(D)S can be used to test for disequilibrium in such assemblages.
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页码:98 / 113
页数:16
相关论文
共 41 条
[1]   EVIDENCE FOR LIQUID IMMISCIBILITY IN THE UPPER MANTLE [J].
AMUNDSEN, HEF .
NATURE, 1987, 327 (6124) :692-695
[2]   THE TRAPPED FLUID PHASE IN UPPER MANTLE XENOLITHS FROM VICTORIA, AUSTRALIA - IMPLICATIONS FOR MANTLE METASOMATISM [J].
ANDERSEN, T ;
OREILLY, SY ;
GRIFFIN, WL .
CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1984, 88 (1-2) :72-85
[3]  
BODINIER JL, 1987, AM MINERAL, V72, P902
[4]   GEOTHERMOBAROMETRY IN 4-PHASE LHERZOLITES .1. EXPERIMENTAL RESULTS FROM 10 TO 60 KB [J].
BREY, GP ;
KOHLER, T ;
NICKEL, KG .
JOURNAL OF PETROLOGY, 1990, 31 (06) :1313-1352
[5]   PETROLOGY AND TRACE-ELEMENT GEOCHEMISTRY OF THE HONOLULU VOLCANICS, OAHU - IMPLICATIONS FOR THE OCEANIC MANTLE BELOW HAWAII [J].
CLAGUE, DA ;
FREY, FA .
JOURNAL OF PETROLOGY, 1982, 23 (03) :447-504
[6]  
Dawson J.B., 1980, KIMBERLITES THEIR XE
[7]  
FREY FA, 1980, AM J SCI, V280, P427
[8]   MINERALOGY, GEOCHEMISTRY AND ORIGIN OF ILHERZOLITE INCLUSIONS IN VICTORIAN BASANITES [J].
FREY, FA ;
GREEN, DH .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1974, 38 (07) :1023-1059
[9]   INTEGRATED MODELS OF BASALT PETROGENESIS - STUDY OF QUARTZ THOLEIITES TO OLIVINE MELILITIES FROM SOUTH EASTERN AUSTRALIA UTILIZING GEOCHEMICAL AND EXPERIMENTAL PETROLOGICAL DATA [J].
FREY, FA ;
GREEN, DH ;
ROY, SD .
JOURNAL OF PETROLOGY, 1978, 19 (03) :463-513
[10]  
GREEN DH, 1967, CONTRIB MINERAL PETR, V5, P103