The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot trails on Earth. Both formed over a similar time interval on lithosphere with a similar range of ages and thickness. The Hawaii-Emperor seamounts are large and magma productivity appears to be increasing at present. The Louisville seamounts, by contrast, are smaller and the trail appears to be waning. We present new major- and trace element data from five of the older (74–50 Ma) Louisville seamounts drilled during International Ocean Drilling Program (IODP) Expedition 330 and compare these to published data from the Emperor seamounts of the same age. Despite drilling deep into the shield-forming volcanic rocks at three of the Louisville seamount...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
The Hawaii-Emperor and Louisville seamounts form the two most prominent time-progressive hotspot tra...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...
Deep-Earth convection can be understood by studying hotspot volcanoes that form where mantle plumes ...