Crystallization experiments on three comendites provide evi-dence for the genetic relationships between peralkaline rhyolites in the central Kenya rift valley. The crystallization of calcic clinopyroxene in slightly peralkaline rhyolites inhibits increase in peralkalinity by counteracting the effects of feldspar. Frac-tionation under high fO2 conditions produces residual liquids that are less, or only slightly more, peralkaline than the bulk composition. In contrast, crystallization under reduced condi-tions (5FMQ, where FMQ is the fayalite---magnetite---quartz buffer) and at high fF2 inhibits calcic clinopyroxene and yields residual liquids that are more peralkaline than coexisting alkali feldspar, whose subsequent crystallization increases the peralkalinity of the liquid. A marginally peralka-line rhyolite [molar (Na2O K2O)/Al2O3 (NK/A) 105] can yield a more typically comenditic rhyolite (NK/A 128) after 95 wt % of crystallization. This comendite yields pantelleritic derivatives (NK/A414) after 25 wt % crystal-lization. Upon further crystallization, extreme peralkaline com-positions (NK/A25) are obtained, with relatively low SiO2 (66 wt %) and Al2O3 (74 wt %), and high FeO (102 wt %) and Na2O (84 wt %) contents. In the absence of crystal-lization of sodic phases such as arfvedsonite or aegirine, fractionation may yield even more extreme compositions. Pantelleritic rhyolites can be produced at temperatures below 800C, at low fO2, high fF2, by either extreme fractional crystallization or near-solidus melting of less peralkaline, but more silicic, sources.
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Bruno Scaillet (2003) studied this question.
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