Storage, evolution, and mixing in basaltic eruptions from around the Okataina Volcanic Centre, Taupō Volcanic Zone, Aotearoa New Zealand
Abstract
The Okataina Volcanic Centre (OVC) is the most recently active caldera system in the Taupō Volcanic Zone, Aotearoa New Zealand. Although best known for its high rates of explosive rhyolitic volcanism, there are several examples of basaltic to basaltic-andesite contributions to OVC eruptions. These range from minor involvement of basalt in rhyolitic eruptions to the exclusively basaltic 1886 C.E. plinian eruption of Tarawera. To explore the basaltic component supplying this dominantly rhyolitic area, we analyse the textures and compositions (minerals and melt inclusions) of four basaltic eruptions from within and around the OVC that have similar whole rock chemistry, namely: Terrace Rd, Rotomakariri, Rotokawau, and Tarawera. Data from these basaltic deposits provide constraints on the conditions of magma evolution and ascent in the crust prior to eruption, revealing that eruptions sample multiple distinct reservoirs during ascent to the surface. The most abundant basaltic component is generated by cooling-induced crystallisation of a common, oxidised, volatile-rich basaltic melt at various depths within the crust that mixes upon ascent. Despite similar bulk compositions, these four eruptions are texturally distinct from each other as a result of their wide variation in eruption style.
Additional Information
© 2022 Elsevier. We would like to thank the Ruawahia 2B trust for welcoming us onto Mount Tarawera and permitting us to collect samples on the mountain and especially Ken Raureti, Tīpene Marr, and Paul Warbrick for their support of this work; Kaingaroa Timberlands for permits to access Kaingaroa Forest and Waimangu Forest to collect samples; Yves Feisel (now at the University of Mainz, Germany), Marco Michelini (now at the University of Pittsburgh, USA), Brad Scott (Te Pū Ao | GNS Science, Aotearoa New Zealand), and Nick Macdonald (Te Pū Ao | GNS Science, Aotearoa New Zealand) for helping with sample collection; Richard Hinton for his assistance at the NERC ion microprobe facility at the University of Edinburgh, UK (IMF560/0515); Stuart Kearns and Ben Buse for their assistance with the electron probe and SEM at the University of Bristol, UK; three anonymous reviewers for their constructive reviews that improved the clarity and interpretation of the paper; and Prof. Mike Rowe (University of Auckland, Aotearoa New Zealand) for their editorial handling of the paper and comments that greatly improved the paper. ECH was supported by a NERC GW4+ DTP studentship (NE/L002434/1) and is thankful for the support and additional funding from CASE partner Te Pū Ao | GNS Science, Aotearoa New Zealand, and a Geology Option Post-Doctoral Fellowship from Caltech, CA USA. SL was supported by a NERC E³ DTP studentship (NE/L002558/1). GK and ECH are supported by the New Zealand Ministry of Business, Innovation and Employment (MBIE) through the Hazards and Risk Management, and ECH also through the New Zealand Geothermal Futures, programmes (Strategic Science Investment Fund, contract C05X1702). JDB acknowledges support through a Royal Society Research Professorship.Additional details
Identifiers
- Eprint ID
- 121403
- Resolver ID
- CaltechAUTHORS:20230515-138532000.16
Funding
- Natural Environment Research Council (NERC)
- IMF560/0515
- Natural Environment Research Council (NERC)
- NE/L002434/1
- GNS Science | Te Pū Ao
- Caltech Division of Geological and Planetary Sciences
- Natural Environment Research Council (NERC)
- NE/L002558/1
- Ministry of Business, Innovation and Employment (New Zealand)
- New Zealand Geothermal Futures
- C05X1702
- Royal Society
Dates
- Created
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2023-05-24Created from EPrint's datestamp field
- Updated
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2023-05-24Created from EPrint's last_modified field