Related Experiment Video
Updated: Feb 19, 2026

Simulating Impacts of Ice Storms on Forest Ecosystems
Published on: June 30, 2020
Giant boulders and Last Interglacial storm intensity in the North Atlantic
Alessio Rovere1,2,3, Elisa Casella2, Daniel L Harris4,2,5
1Center for Marine Environmental Sciences (MARUM), University of Bremen, D-28359 Bremen, Germany; arovere@marum.de raymo@ldeo.columbia.edu.
Abstract:
As global climate warms and sea level rises, coastal areas will be subject to more frequent extreme flooding and hurricanes. Geologic evidence for extreme coastal storms during past warm periods has the potential to provide fundamental insights into their future intensity. Recent studies argue that during the Last Interglacial (MIS 5e, ∼128-116 ka) tropical and extratropical North Atlantic cyclones may have been more intense than at present, and may have produced waves larger than those observed historically. Such strong swells are inferred to have created a number of geologic features that can be observed today along the coastlines of Bermuda and the Bahamas. In this paper, we investigate the most iconic among these features: massive boulders atop a cliff in North Eleuthera, Bahamas. We combine geologic field surveys, wave models, and boulder transport equations to test the hypothesis that such boulders must have been emplaced by storms of greater-than-historical intensity. By contrast, our results suggest that with the higher relative sea level (RSL) estimated for the Bahamas during MIS 5e, boulders of this size could have been transported by waves generated by storms of historical intensity. Thus, while the megaboulders of Eleuthera cannot be used as geologic proof for past "superstorms," they do show that with rising sea levels, cliffs and coastal barriers will be subject to significantly greater erosional energy, even without changes in storm intensity.
Related Concept Videos
Global Climate Change
Frost Resistant Concrete
Introducing microscopic air bubbles into the concrete mix through air entrainment creates small voids that accommodate ice expansion, thereby reducing internal pressures and preventing cracking. The optimal amount of...
Frost Action on Concrete
This freeze-thaw cycle primarily causes surface scaling, where...
Threats to Biodiversity
Elastic Collisions: Case Study
Tidal Forces

