Understanding the provenance and trigger mechanisms of lahars at Mt. Ruapehu, NZ to construct new hazard analysis approaches : a thesis presented in partial fulfilment of the requirements for the degree of Doctor of Philosophy in Earth Science at Massey University, Palmerston North, New Zealand

dc.confidentialEmbargo : No
dc.contributor.advisorProcter, Jonathan
dc.contributor.authorPerttu, Brian Kai
dc.date.accessioned2026-09-09T22:19:10Z
dc.date.issued2026-09-09
dc.descriptionThe attached files constitute Appendices A-E of the thesis.
dc.description.abstractLahars (volcanic flows of mixed water and sediment) represent one of the most frequent and significant volcanic hazard at Mt. Ruapehu, New Zealand. However, modern hazard assessments primarily rely on short historical records (≤150 yr) despite the prehistoric record containing events that are orders of magnitude larger than those observed historically. This study addresses key knowledge gaps by integrating advanced stratigraphic and sedimentological understanding of the depositional characteristics of historic and modern deposits, spectral geochemistry to determine the provenance and triggers of the flows, and numerical modelling to better understand the source conditions of lahars to refine the late Holocene lahar history (approximately the last 2,000 years) of Ruapehu, ultimately improving hazard risk assessment. The research focused initially on the Onetapu Formation on the eastern ring plain, involving a reassessment of lahar deposition to refine stratigraphy and define the relationships between discrete deposits. Detailed grain-size and lithofacies analyses were used to characterize deposits and revealed evidence of downstream debulking and contributions from the Wahianoa catchment following the 232 CE Taupo Ignimbrite emplacement. A key methodological contribution to better understand the provenance and triggers of lahars was the development of a multi-criteria analytical approach, employing Short-Wave Infrared Reflectance (SWIR) spectroscopy supported by X-ray fluorescence (XRF), to successfully "fingerprint" lahar provenance and infer triggering mechanisms. SWIR proved capable of resolving hydrothermal alteration signatures (e.g., smectite and kaolinite) at abundances below the detection limits of bulk X-ray diffraction (XRD) methods, offering a sensitive, globally applicable forensic toolset for distinguishing flow origins. Complementary numerical simulations investigated the dynamics of Crater Lake eruption induced waves, a frequent lahar trigger. Modelling underwater explosions using different cavity size formulations demonstrated that even individually small, bore-generating eruptions can rapidly escalate lahar hazard through cumulative lake drainage, particularly within Ruapehu’s multi-phase eruptive sequences. The integrated results produce the most comprehensive analysis of Ruapehu's late Holocene lahar record to date. This work highlights the critical need for next-generation multi-trigger probabilistic models that explicitly account for changing physical conditions, such as lake volume, rainfall, eruptive state, and sediment availability, to provide more accurate evaluations of expected flow size and downstream impact for hazard management at Ruapehu and other lahar-prone volcanoes
dc.identifier.urihttps://mro.massey.ac.nz/handle/10179/74787
dc.identifier.urihttps://doi.org/10.82921/mro-64
dc.language.isoen
dc.publisherMassey University
dc.rights© The Author
dc.subjectlahars
dc.subjectvolcanic hazard assessment
dc.subjectMt. Ruapehu
dc.subjectNew Zealand
dc.subjectShort-Wave Infrared (SWIR) spectroscopy
dc.subjectlahar provenance and triggering mechanisms
dc.subjectsedimentology
dc.subjectunderwater eruption modelling
dc.subjectVolcanic hazard analysis
dc.subjectHazardous geographic environments
dc.subject.anzsrc37 Earth sciences::3705 Geology::370512 Volcanology
dc.subject.anzsrc37 Earth sciences::3709 Physical geography and environmental geoscience::370903 Natural hazards
dc.subject.anzsrc37 Earth sciences::3704 Geoinformatics::370401 Computational modelling and simulation in earth sciences
dc.titleUnderstanding the provenance and trigger mechanisms of lahars at Mt. Ruapehu, NZ to construct new hazard analysis approaches : a thesis presented in partial fulfilment of the requirements for the degree of Doctor of Philosophy in Earth Science at Massey University, Palmerston North, New Zealand
dc.typeThesisen
thesis.degree.disciplineEarth Science
thesis.degree.nameDoctor of Philosophy (Ph.D.)
thesis.description.doctoral-citation-abridgedThis study combined field mapping and historic records as well as developing a new technique to trace where volcanic mudflows originated and their triggering mechanisms. These findings show lahar risk depends on multiple, changing factors, improving future hazard assessment.
thesis.description.doctoral-citation-longLahars (fast-moving flows of volcanic mud, water and debris) are among the most frequent and destructive hazards at Mt. Ruapehu, New Zealand, yet hazard assessments have often relied on a short historical record, understating prehistoric events. This study reconstructed ~1,800 years of Ruapehu's lahar deposits, combining field mapping of prehistoric deposits with a spectral fingerprinting technique identifying where flows originated and what triggered them. Additional modelling of underwater eruptions gives a lower threshold for lahar generation. This study identifies multiple, changing factors related to lahar generation, offering a stronger basis for hazard planning.
thesis.description.name-pronunciationBrian Kai Perttu BRY-an KY PAIR-too

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