Log in Sign up
Back to Discover
🌍

Ice–albedo feedback

earth science Maturity 9-11 climate
This article covers sensitive topics: climate. Parents can manage visibility in Parental Controls.

Ice is very bright.

Ice albedo feedback.jpg
Ice albedo feedback.jpg
It acts like a mirror. It bounces sunlight away. This helps keep Earth cool. But when ice melts, the dark water soaks up heat. This makes things even warmer. Can you see the white ice?
Greenland Albedo Change.png
Greenland Albedo Change.png

45 words

Ice is very bright.

Ice albedo feedback.jpg
Ice albedo feedback.jpg
It acts like a mirror. It bounces sunlight away. This helps keep Earth cool.

But when things get warm, ice melts. This leaves dark water or land behind. Dark colors soak up more heat.

Greenland Albedo Change.png
Greenland Albedo Change.png
This makes the area even warmer.

This heat can melt even more ice. It is like a cycle. The more ice melts, the more heat stays.

This happens at the North Pole. It also happens at the South Pole. These places stay very cold because of the ice.

Scientists use models to study this. They want to see how much ice will be left. It is an important part of our world.

116 words

Earth has a special way of staying cool. It uses ice to bounce sunlight away. This is called albedo. Albedo is how much light a surface reflects.

Ice albedo feedback.jpg
Ice albedo feedback.jpg
White ice has a high albedo. It acts like a mirror for the sun. This helps keep our planet cold.

But a cycle can change this. When the world warms up, ice melts. This leaves behind dark land or ocean. Dark colors do not bounce light away. Instead, they soak up heat. This makes the area even warmer.

Greenland Albedo Change.png
Greenland Albedo Change.png
This extra heat melts even more ice. This set of steps is called ice–albedo feedback.

This is happening in the Arctic right now. As sea ice shrinks, the Arctic warms up fast. It warms nearly four times faster than the rest of Earth.

Wunderling 2020 regional impact.jpg
Wunderling 2020 regional impact.jpg
Scientists use models to study these changes. They want to see how much ice will be left. Some models say the Arctic could lose its summer ice by 2050. This would change how much heat the Earth holds.

173 words

Earth has a special way of managing heat. This way of working is called the ice–albedo feedback. Albedo is a word for how much light a surface reflects.

Ice albedo feedback.jpg
Ice albedo feedback.jpg
White ice has a very high albedo. It acts like a mirror for the sun. This reflects solar energy back into space. This process helps keep our planet cool. Without this reflective ice, the Earth would be much warmer.

This feedback works like a cycle of cause and effect. When the world gets warmer, ice begins to melt. This melting leaves behind dark ocean water or land. These dark surfaces have a low albedo. Instead of bouncing light away, they absorb it.

Greenland Albedo Change.png
Greenland Albedo Change.png
This absorbed energy makes the area even warmer. That extra heat then melts even more ice. This cycle can continue in the other direction too. Cooler temperatures can grow more ice, which reflects more light and causes more cooling.

Scientists have studied this cycle for a long time. In the 1950s, a scientist named Syukuro Manabe studied how ice affects Earth's energy. Later, in 1969, Mikhail Ivanovich Budyko and William D. Sellers published important papers. They used energy-balance climate models to show how ice reflectivity works.

De Vrese 2021 albedo diagram.png
De Vrese 2021 albedo diagram.png
These models showed that changes in snow and ice are very powerful. Their work helped scientists understand how the climate changes over time.

We can see this feedback happening in the Arctic today. As sea ice shrinks, the Arctic warms up very fast. It is warming nearly four times faster than the global average.

Wunderling 2020 regional impact.jpg
Wunderling 2020 regional impact.jpg
Between 1992 and 2018, ice loss had a large impact. This impact was equal to 10% of all human-caused greenhouse gas emissions. In the Arctic, scientists think the summer ice might disappear by 2050. This could happen even sooner if emissions keep growing quickly.

This cycle is similar to how a dark shirt feels hotter than a white one in the sun. Just as the dark fabric soaks up heat, the dark ocean soaks up solar energy. This changes how much heat the whole planet holds. While losing summer ice is a big change, losing ice all year is even more serious.

Wunderling 2020 global impact.jpg
Wunderling 2020 global impact.jpg
An ice-free winter might be a point where the change cannot be reversed. Scientists use many complex models to predict these future changes.

388 words

Ice–albedo feedback is a powerful climate change feedback mechanism. It describes how changes in the area of ice caps, glaciers, and sea ice alter a planet's albedo. Albedo is a measure of how much light a surface reflects.

Ice albedo feedback.jpg
Ice albedo feedback.jpg
Because ice is highly reflective, it sends far more solar energy back into space than open water or land. This process is a major driver of global climate change. It occurs on Earth and can also happen on exoplanets. This feedback loop can either accelerate warming or increase cooling depending on the starting conditions.

The mechanism works through a continuous cycle of cause and effect. When temperatures rise, ice-covered areas decrease. This exposes more open water or land. These darker surfaces have a lower albedo, meaning they reflect less light. Instead, they absorb more solar energy. This absorption leads to further warming, which causes even more ice to melt.

Greenland Albedo Change.png
Greenland Albedo Change.png
Inversely, cooler temperatures increase ice cover. This higher albedo reflects more energy away, resulting in greater cooling. This cooling then makes further ice formation more likely.

This feedback affects different regions in distinct ways. In the Arctic, the decline of sea ice is a primary driver of Arctic amplification. This is a phenomenon where the Arctic warms nearly four times faster than the global average.

Wunderling 2020 regional impact.jpg
Wunderling 2020 regional impact.jpg
In contrast, Antarctica shows high stability in its ice cover. The East Antarctic ice sheet is so thick that it rises nearly 4 km above sea level. Consequently, this continent has experienced very little net warming over the last seven decades. Most Antarctic warming has been concentrated in West Antarctica, driven largely by the warming of the Southern Ocean.

Scientists have worked to understand this process for decades. In the 1950s, climatologist Syukuro Manabe studied how ice cover affects Earth's energy budget. In 1969, Mikhail Ivanovich Budyko and William D. Sellers published papers using energy-balance climate models. They demonstrated that ice reflectivity has a substantial impact on climate. They showed that changes in snow and ice cover act as a powerful feedback. By 1975, models used by Manabe and Richard T. Wetherald already incorporated "snow cover feedback" to describe atmospheric changes.

The significance of this feedback is reflected in large numbers. Between 1992 and 2018, the warming impact from Arctic and Antarctic ice loss was equivalent to 10% of all anthropogenic greenhouse gas emissions. In the Arctic, the decline of sea ice between 1979 and 2011 caused 0.21 W/m2 of radiative forcing. This is a quarter of the radiative forcing from greenhouse gas increases in that same period.

De Vrese 2021 albedo diagram.png
De Vrese 2021 albedo diagram.png
If Arctic sea ice were to melt away every June, it could increase global temperatures by 0.16 to 0.21 °C.

Future projections suggest these impacts will intensify. Under all climate change scenarios, the Arctic may see a near-complete loss of sea ice cover below 1 million km2 during the September summer end before 2050. If emissions accelerate, this could happen around 2035. While losing summer ice is significant, losing ice throughout the entire year is a much larger concern. An ice-free Arctic winter could represent an irreversible tipping point. This total loss of sea ice would be equivalent to a trillion tons of emissions.

Wunderling 2020 global impact.jpg
Wunderling 2020 global impact.jpg

This feedback connects to many other complex climate systems. For example, the loss of sea ice impacts water vapor concentrations and regional cloud feedbacks. The loss of larger ice masses, like the Greenland or West Antarctic ice sheets, also contributes to warming. However, these large-scale melts are expected to take centuries or even millennia to complete. Scientists also study how light-absorbing particles, such as dust, can enhance the feedback by darkening the snow and ice surfaces.

613 words
🖼️ Images & Media (5)
File:Ice albedo feedback.jpg
Ice albedo feedback.jpg
File:Greenland Albedo Change.png
Greenland Albedo Change.png
File:Wunderling_2020_regional_impact.jpg
Wunderling_2020_regional_impact.jpg
File:Wunderling_2020_global_impact.jpg
Wunderling_2020_global_impact.jpg
File:De Vrese 2021 albedo diagram.png
De Vrese 2021 albedo diagram.png
Up Next
🌍
Climate change feedbacks
Earth Science
More to explore

What is Nepedia?

A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.