The garnet–clinopyroxene Fe2+–Mg geothermometer: an updated calibration
Krogh Ravna
Abstract
Krogh Ravna
Abstract
Multiple regression analysis on an extended dataset has been performed to refine the relationship between temperature, pressure, composition and the Fe–Mg distribution between garnet and clinopyroxene. In addition to a significant dependence between the distribution coefficientKDandXGrtCaandXGrtMg#, as shown by the experimental data, the effect ofXGrtMnhas also been incorporated using data from natural Mn‐rich garnet–clinopyroxene pairs. Multiple regression of data (n=360) covering a large span in pressure, temperature and composition from 27 experimental datasets, combined with 49 natural high‐Mn granulites from Ruby Range, Montana, USA, and Karnataka, India, yields theP–T –compositional relationship (r2=0.98): whereKD=(Fe2+/Mg)Grt/(Fe2+/Mg)Cpx,XGrtCa=Ca/(Ca+Mn+Fe2++Mg) in garnet,XGrtMn= Mn/(Ca+Mn+Fe2++Mg) in garnet, andXGrtMg#=Mg/(Mg+Fe2+) in garnet. The Fe2+–Mg equilibrium between garnet and clinopyroxene does not seem to be affected by variations in the sodic content of the co‐existing clinopyroxene in the rangeXCpxNa=0–0.51. Comparisons between the new and former calibrations of the garnet–clinopyroxene Fe2+–Mg geothermometer clearly demonstrate how the various parameters in each case affect the calculated temperatures. Application of the new expression gives reasonable results for natural garnet–clinopyroxene pairs from various rock types and settings, and should be preferred to previous formulations. Using the new calibration to the self‐consistent dataset of Pattison & Newton (Contributions to Mineralogy and Petrology, 1989,101,87–103) suggests a systematic deviation with regard to both temperature and composition between their dataset and the datasets used in the present calibration.
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Multiple regression analysis on an extended dataset has been performed to refine the relationship between temperature, pressure, composition and the Fe–Mg distribution between garnet and clinopyroxene. In addition to a significant dependence between the distribution coefficientKDandXGrtCaandXGrtMg#, as shown by the experimental data, the effect ofXGrtMnhas also been incorporated using data from natural Mn‐rich garnet–clinopyroxene pairs. Multiple regression of data (n=360) covering a large span in pressure, temperature and composition from 27 experimental datasets, combined with 49 natural high‐Mn granulites from Ruby Range, Montana, USA, and Karnataka, India, yields theP–T –compositional relationship (r2=0.98): whereKD=(Fe2+/Mg)Grt/(Fe2+/Mg)Cpx,XGrtCa=Ca/(Ca+Mn+Fe2++Mg) in garnet,XGrtMn= Mn/(Ca+Mn+Fe2++Mg) in garnet, andXGrtMg#=Mg/(Mg+Fe2+) in garnet. The Fe2+–Mg equilibrium between garnet and clinopyroxene does not seem to be affected by variations in the sodic content of the co‐existing clinopyroxene in the rangeXCpxNa=0–0.51. Comparisons between the new and former calibrations of the garnet–clinopyroxene Fe2+–Mg geothermometer clearly demonstrate how the various parameters in each case affect the calculated temperatures. Application of the new expression gives reasonable results for natural garnet–clinopyroxene pairs from various rock types and settings, and should be preferred to previous formulations. Using the new calibration to the self‐consistent dataset of Pattison & Newton (Contributions to Mineralogy and Petrology, 1989,101,87–103) suggests a systematic deviation with regard to both temperature and composition between their dataset and the datasets used in the present calibration.
Key concepts: Mineralogy, Geology, Granulite, Analytical Chemistry (journal), Calibration, Pyroxene, Metamorphic rock, Geochemistry