A newly developed method for mapping the bedrock
beneath Greenland’s ice sheet reveals the island’s hidden topography. Among the
most striking finds are long, straight valleys in the west-central region, some
mapped for the first time and others extending farther inland than previously
known (inset 3).
NASA Earth Observatory/Lauren Dauphin, based on data
from Chartrand et al.
Greenland
is capped with a vast ice sheet that spans
1.7 million square kilometers (656,000 square miles) and measures more than 3
kilometers (1.9 miles) at its thickest point. Below all this ice lies a
landscape human eyes have never seen directly. But a newly developed method for
mapping this hidden bedrock has produced the most detailed and accurate view of
it yet.
The new map reveals an expansive network
of valleys carved into the surface beneath the Greenland Ice Sheet. Many of the
features formed well before most of the ice above them existed, offering new
context for the island’s geologic history—and potentially helping scientists
refine projections of the ice sheet’s future. Scientists described the newly
mapped valleys in a NASA-led paper published in Geophysical
Research Letters.
The map, shown above, was derived from a
method called Ice Flow Perturbation Analysis. As ice flows over a valley or
ridge, the topography leaves a faint signature on the ice surface. Satellites
map the ice surface in fine detail, and scientists can use these subtle bumps
and dips to infer the shape of the landscape buried below. The work aims to
improve future versions of BedMachine Greenland, a high-resolution dataset of the terrain beneath the ice sheet.
Using the technique, researchers
manually mapped 1,943 subglacial valleys beneath the Greenland Ice Sheet, about
a third of which are newly identified. About half of the valleys included in
BedMachine Greenland, primarily near the ice sheet’s edge, are now known to
extend farther inland than that map indicates, in some cases by hundreds of
kilometers.
Some aspects of the new map align with
the current understanding of how Greenland's landscapes formed. For instance,
many of the valleys appear to begin in the southern and eastern highlands,
where the ice sheet is thought to have first formed. Near the eastern
highlands, the map reveals a mountain range beneath the ice, with
interconnected valleys and relief that increases toward the coast. These
alpine-style landforms may have survived under the ice since at least the
Pliocene.
Other aspects of the topography are more
puzzling. The analysis indicates numerous valleys, especially in the
west-central region, that are long, straight, and consistently aligned in a
southwest-northeast direction. This orientation suggests a tectonic influence,
generating preferential pathways along which water could flow and valleys could
form. “That’s a riddle to us,” said Joe MacGregor, a NASA cryospheric scientist
and co-author of the study. “Greenland is justifiably usually treated as a
rigid block of old rock that is simply translated as needed to accommodate the
motion and interactions of other tectonic plates.”
Separately, the angles at which the
valleys branch offer another insight into their origin. Their relatively wide
branching angles suggest that surface water didn't act alone; instead, a
widespread groundwater network—seeping upward and eroding the surrounding
rock—likely helped carve the valleys before the ice sheet formed.
Mapping these valleys matters for
understanding the ice sheet, which has continued to dramatically reshape the
landscape. Ice flow concentrates in valleys, where it forms glaciers that
eventually calve into fjords at the periphery of the ice sheet. This creates a
reinforcing cycle: ice funneling through a valley gets thicker, thicker ice
flows faster, and faster flow carves the valley even deeper.
This carving power is especially evident
along western Greenland. MacGregor likened it to the glacially incised
landscape at Yosemite, with Greenland’s western coast resembling, as he put it,
"El Capitan after El Capitan."
Studying the valleys also matters for
the ice sheet’s future. Because the relationship between ice flow and valleys
is well understood, scientists expect that as the ice sheet retreats, flow will
continue to concentrate wherever the valleys already are. “The better we
understand the topography now,” MacGregor said, “the better sense we'll have of
what it will look like in the longer term—beyond the next decade or two—as
faster ice flow propagates into Greenland’s interior.”
NASA Earth Observatory map by Lauren Dauphin using data from Chartrand et al. Story by Kathryn Hansen.
Source: Uncovering the Valleys Hidden Below Greenland’s Ice - NASA Science

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