Bimodal magmatism produced by progressively inhibited crustal assimilation
F C Meade1, V R Troll2, R M Ellam3
1Department of Earth Sciences, CEMPEG, Uppsala University, Villavägen 16, 752 36 Uppsala, Sweden.
Nature Communications
|June 21, 2014
Summary
Bimodal volcanism, seen in mafic-felsic rock suites, is explained by progressively inhibited crustal assimilation (PICA). This process limits granite formation, creating compositional gaps in magmatic activity.
Area of Science:
- Geoscience
- Volcanology
- Igneous Petrology
Background:
- Bimodal rock suites (mafic and felsic) are common but their origin remains a key question in volcanology.
- Understanding bimodal magmatism is crucial for interpreting the evolution of volcanic centers and crustal processes.
Purpose of the Study:
- To investigate the mechanisms driving bimodal magmatism at the Carlingford Igneous Centre, Ireland.
- To elucidate the role of crustal assimilation in generating mafic-felsic rock suites.
Main Methods:
- Analysis of major and trace elements and high-resolution Sr, Nd, and Pb isotopes.
- Conducting experimental petrology and thermodynamic modeling.
- Investigating the Carlingford Igneous Centre, a well-known example of bimodal magmatism.
Main Results:
- Early microgranites formed via assimilation of metasiltstone partial melts into mafic magmas.
- Crustal melting experiments showed high fusibility, but thermodynamic modeling revealed rapid decreases in melt production capacity with repeated heating.
- Granite generation ceased as enriched melts diminished, leading to subsequent magmatism incorporating less fertile restite and a compositional gap.
Conclusions:
- Progressively inhibited crustal assimilation (PICA) is proposed as a primary driver of bimodality in continental volcanism.
- The PICA model explains the cessation of granite formation and the development of compositional gaps in bimodal suites.
- This mechanism is likely significant in the North Atlantic Igneous Province and other continental volcanic settings.
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