Ice sheet
Massive glacial ice covering land, driving sea level and climate.
Jeremy Harbeck (NASA) · CC BY 3.0
The two currently existing ice sheets are the Antarctic ice sheet and the Greenland ice sheet. Ice sheets are the largest glacial bodies on Earth, distinguished from smaller ice caps or alpine glaciers, and play a major role in climate change and sea level rise.
- existing_ice_sheets
- Antarctic ice sheet (14 million km²) and Greenland ice sheet (1.7 million km²)
- average_thickness
- 2 km (1 mi)
- base_temperature
- Generally warmer than surface due to geothermal heat
- flow_driven_by
- Gravity, controlled by temperature and glacier base strength
- key_feature
- Can have multiple ice domes and ice streams
Lore & Background
Lakes larger than ~300 m in diameter can create fluid-filled crevasses to the glacier bed in 2–18 hours, lubricating the base and causing surges.
Reader's Guide
Ice sheets are significant because they are the largest glacial bodies on Earth and their retreat or disappearance marks the beginning of interglacial periods, such as the current Holocene. The ongoing retreat of the Greenland and Antarctic ice sheets plays a major role in climate change and sea level rise. Marine ice sheet instability (MISI) can occur when ice sheets grounded below sea level thin, as seawater is denser than ice. The West Antarctic Ice Sheet, grounded below sea level, is vulnerable to rapid ice loss, particularly the Thwaites and Pine Island glaciers, which have been rapidly thinning and accelerating. Ice shelves stabilize ice sheets; their thinning or collapse can accelerate glacial flow. Understanding these dynamics is crucial for predicting future sea level rise.
Did You Know?
- The two existing ice sheets are the Antarctic ice sheet (14 million km²) and the Greenland ice sheet (1.7 million km²).
- Lakes larger than ~300 m in diameter can drain to a glacier's base in 2–18 hours, causing surges.
Vastness and Geographic Reach
The Laurentide Ice Sheet was the dominant geological feature of North America's Pleistocene epoch, a colossal mass of frozen water that repeatedly blanketed millions of square miles across the continent from 2.58 million years ago through the present. At its most extreme, the ice stretched from the Rocky Mountains eastward, swallowing nearly all of Canada east of the Rockies and plunging deep into the northern United States. Its southern boundary at peak advance reached roughly the 38th parallel mid-continent, touching the present-day locations of Chicago, St. Louis, Boston, and New York City. Three principal ice centers organized this vast system: the Keewatin dome over the western interior plains, the Labrador dome across eastern Canada and the northeastern US, and the Cordilleran sheet along the Pacific to the Rocky Mountains' eastern front. The Keewatin dome itself spawned four or five major lobes radiating from a high point over west-central Kivalliq, flowing toward Manitoba, Hudson Bay, the Gulf of Boothia, and the Beaufort Sea. The Labrador dome, meanwhile, surged across Maine, the Maritime Provinces, and into the Gulf of St. Lawrence, while the Appalachian Ice Complex pushed over New Brunswick, Nova Scotia, and the Magdalen Shelf.
Sculpting a Continent's Landscape
The Laurentide Ice Sheet did not merely sit upon the land; it actively carved and reshaped it. Its passage gouged out the five Great Lakes and scattered numerous smaller lakes across the Canadian Shield, stretching from the eastern Northwest Territories through northern Canada and the upper Midwest—Minnesota, Wisconsin, Michigan—eastward to the Finger Lakes, Lake Champlain, and Lake George in New York, and across the northern Appalachians into New England and Nova Scotia. The ice left behind a rich inheritance of glacially scoured valleys, moraines, eskers, and glacial till defining much of southern Canada's and the northern US's surface geology. It also repeatedly altered the shape, size, and drainage of the Great Lakes; near the end of the last glaciation, for instance, Lake Iroquois sprawled far beyond modern Lake Ontario's borders and discharged its waters down the Hudson River to the Atlantic. Even after the ice vanished, its removal triggered measurable isostatic rebound: the ground beneath New York has risen more than 150 feet since the roughly 2,000-foot-thick ice that once buried Manhattan melted away around 10,000 BC. Today, the Barnes and Penny Ice Caps in Nunavut stand as the oldest surviving ice remnants of the entire Laurentide system.
A Lever on Global Climate
Far from being a passive frozen blanket, the Laurentide Ice Sheet actively reorganized atmospheric and oceanic circulation across the globe. By its sheer mass, it deflected the polar jet stream southward—away from its usual path over Montana and Minnesota—channeling moisture into the Southwestern United States and granting that otherwise arid region abundant rainfall during glacial periods. This stood in stark contrast to much of the rest of the world, which grew exceedingly dry, though analogous effects from European ice sheets boosted winter precipitation in Afghanistan, parts of Iran, possibly western Pakistan, and North Africa. The sheet's cycles of growth and melt also disrupted ocean circulation. When the ice melted, enormous volumes of low-salinity freshwater poured into the Arctic Ocean via the Mackenzie River, believed to have disrupted the formation of North Atlantic Deep Water—that dense, cold, saline current flowing from the Greenland Sea. This interruption of thermohaline circulation triggered the brief Younger Dryas cold snap and a temporary re-advance of the ice. The ultimate collapse of the Laurentide sheet, by raising global sea levels, is even suspected to have indirectly influenced the development of European agriculture.
The Final Retreat and Its Aftermath
The Laurentide Ice Sheet's final chapter was neither swift nor simple. The last major advance had covered most of northern North America between roughly 95,000 and 20,000 years before present, but the retreat that followed was punctuated by dramatic reversals. The Younger Dryas episode, driven by disrupted thermohaline circulation, caused a temporary re-advance of the ice. In the far north, the ice clung to Nunavik, Quebec, until as recently as 6,500 years ago. In the New York region, the ice that once stood about 2,000 feet above Manhattan began melting around 16,000 BC and was fully gone by approximately 10,000 BC. After the Younger Dryas ended, the sheet retreated rapidly, shrinking to the Canadian Shield before that last remnant too deglaciated. At peak thickness the ice reached 3 kilometers in Nunavik, though it thinned dramatically toward its margins where nunataks—peaks poking through the ice—were common in hilly terrain. The sheet's southern margin at times included the sites of coastal Northeastern towns and cities, and it extended up the Missouri River valley to the northern slopes of the Cypress Hills, where it merged with the Cordilleran Ice Sheet.
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Frequently Asked Questions
Which ice sheets exist on Earth today?
Only two remain: the Antarctic ice sheet, covering roughly 14 million square kilometers, and the Greenland ice sheet at about 1.7 million square kilometers. Together they represent the last surviving examples of these massive frozen landforms.
How thick is an ice sheet on average?
Ice sheets average around 2 kilometers (roughly 1 mile) in thickness. Interestingly, their bases are generally warmer than their surfaces because geothermal heat from the Earth's interior warms the ice from below.
What drives the flow of an ice sheet?
Gravity is the primary force pulling ice downslope, but the actual speed and routing are controlled by local temperature and the mechanical strength of the glacier's base. A single ice sheet can also contain multiple domes and fast-moving ice streams that shape its internal structure.
Why are ice sheets important for climate and sea level?
Because they store enormous quantities of frozen freshwater, any significant melting directly raises global ocean levels. Their growth and retreat over geological time are therefore central to understanding past climate shifts and projecting future sea level change.
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