Javascript must be enabled to continue!
Quantifying the forebulge of the last glaciation
View through CrossRef
A glacial forebulge is a load-driven bending-related upheaval of the lithosphere outside a glaciated area. As a typical feature of the glacial isostatic adjustment process the forebulge forms contemporaneously to the depression of the lithosphere below the ice sheet. Forebulge development and collapse related to the last glaciation has led to significant topographic changes in the order of several tens of meters in North America and Europe. Furthermore, forebulge behaviour has a significant effect on the evolution of lithospheric stresses, which can induce intraplate earthquakes, even in areas that were not covered by an ice sheet. Therefore, quantifying the present-day position, amplitude and subsidence of the forebulge is crucial for the estimation of future sea-level changes, the evolution of fluvial networks and understanding the distribution of deglaciation seismicity. Though the forebulge of the last glaciation attracted attention over more than one century, quantitative descriptions on the geometry and position of the forebulge are still rare. Key controlling factors for the position, amplitude and dynamic behaviour of the forebulge are the flexural rigidity of the lithosphere, asthenospheric flow processes, as well as ice-sheet geometry and history. Numerical simulations indicate that a higher flexural rigidity of the lithosphere leads to a lower amplitude of the forebulge and a greater distance to the load. Forebulge formation is also supported by the flow of asthenospheric material, which can occur as channel-flow or deep flow. In case of channel-flow, the forebulge shows an outward migration during collapse, whereas deep-flow leads to an inward migration. A non-linear mantle rheology is seen as a reason for stationary forebulge collapse. The height of the glacial forebulge of the last glaciation was in a range of several tens of meters, with a greater height in North America than in Europe due to the larger Laurentide ice sheet.
Title: Quantifying the forebulge of the last glaciation
Description:
A glacial forebulge is a load-driven bending-related upheaval of the lithosphere outside a glaciated area.
As a typical feature of the glacial isostatic adjustment process the forebulge forms contemporaneously to the depression of the lithosphere below the ice sheet.
Forebulge development and collapse related to the last glaciation has led to significant topographic changes in the order of several tens of meters in North America and Europe.
Furthermore, forebulge behaviour has a significant effect on the evolution of lithospheric stresses, which can induce intraplate earthquakes, even in areas that were not covered by an ice sheet.
Therefore, quantifying the present-day position, amplitude and subsidence of the forebulge is crucial for the estimation of future sea-level changes, the evolution of fluvial networks and understanding the distribution of deglaciation seismicity.
Though the forebulge of the last glaciation attracted attention over more than one century, quantitative descriptions on the geometry and position of the forebulge are still rare.
Key controlling factors for the position, amplitude and dynamic behaviour of the forebulge are the flexural rigidity of the lithosphere, asthenospheric flow processes, as well as ice-sheet geometry and history.
Numerical simulations indicate that a higher flexural rigidity of the lithosphere leads to a lower amplitude of the forebulge and a greater distance to the load.
Forebulge formation is also supported by the flow of asthenospheric material, which can occur as channel-flow or deep flow.
In case of channel-flow, the forebulge shows an outward migration during collapse, whereas deep-flow leads to an inward migration.
A non-linear mantle rheology is seen as a reason for stationary forebulge collapse.
The height of the glacial forebulge of the last glaciation was in a range of several tens of meters, with a greater height in North America than in Europe due to the larger Laurentide ice sheet.
.
Related Results
Forebulge migration in the Cretaceous Western Interior basin of the central United States
Forebulge migration in the Cretaceous Western Interior basin of the central United States
ABSTRACT This study combines stratigraphic evidence with geodynamic modelling to demonstrate that a forebulge played an identifiable role in Cenomanian–Turonian erosion and sedimen...
Foreland basin systems
Foreland basin systems
A foreland basin system is defined as: (a) an elongate region of potential sediment accommodation that forms on continental crust between a contractional orogenic belt and the adja...
The diversification and extinction of Doushantuo‐Pertatataka acritarchs in South China: causes and biostratigraphic significance
The diversification and extinction of Doushantuo‐Pertatataka acritarchs in South China: causes and biostratigraphic significance
AbstractThe Ediacaran Period immediately follows the last Cryogenian glaciation—the ∼635 Ma Marinoan or Nantuo glaciation, and it is also punctuated by another brief glaciation—the...
Boron isotopes indicate a possibility of subglacial geochemical cycles
Boron isotopes indicate a possibility of subglacial geochemical cycles
Snowball events are one of the most drastic episodes of climate change in Earth’s history. Its impact is considered to propagate every aspect of the planet, from atmospheric and oc...
On the age and extent of the Serra da Peneda glaciation, NW Portugal
On the age and extent of the Serra da Peneda glaciation, NW Portugal
<p>Geomorphological vestiges in the mountains of NW Portugal testify a low altitude, sheltered, and precipitation-driven glaciation. These vestiges have already been ...
Asian pika populations track local glaciation events through the Pleistocene
Asian pika populations track local glaciation events through the Pleistocene
Abstract
Background
The Pleistocene glaciation cycles (2.6 mya - 11 kya) were major climatic events that s...
The effect of uncertain historical ice information on GIA modelling
The effect of uncertain historical ice information on GIA modelling
<p><span>When inferring mantle viscosity by modelling the effects of glacial isostatic adjustment (GIA) a necessary constraint is the external forcing b...
Late Quaternary Glaciation of the Eastern Queen Elizabeth Islands, N.W.T., Canada: Alternative Models
Late Quaternary Glaciation of the Eastern Queen Elizabeth Islands, N.W.T., Canada: Alternative Models
It has been suggested that during the last glaciation the Innuitian Ice Sheet existed over the eastern Queen Elizabeth Islands. This is based on the pattern of postglacial emergenc...

