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Urban heat island

earth science Maturity 9-11

Cities can feel very hot.

Milan skyscrapers aerial view.jpg
Milan skyscrapers aerial view.jpg
Buildings and roads hold heat. This makes cities warmer than the woods. Trees and grass help keep us cool.
New York City-Manhattan-Central Park (Gentry).jpg
New York City-Manhattan-Central Park (Gentry).jpg
They give us nice shade. Do you like playing in the shade?

45 words

Cities can be much hotter than the countryside.

Urban heat island.svg
Urban heat island.svg
This happens because of how cities are built. Dark roads and tall buildings soak up the sun.
High-rise buildings of Manhattan during sunset.jpg
High-rise buildings of Manhattan during sunset.jpg
They hold that heat for a long time. Cities can stay warm even at night.

Trees and plants help keep cities cool.

New York City-Manhattan-Central Park (Gentry).jpg
New York City-Manhattan-Central Park (Gentry).jpg
They give us shade and help the air feel better. We can also use light colors on roofs. This helps reflect the sun away. These things help make cities a better place to live.

95 words

Cities can be much warmer than the countryside. This is called an urban heat island.

Urban heat island.svg
Urban heat island.svg
Many people live in these warm areas. Urban areas cover only a small part of Earth. Yet, they hold more than half of all people.

Why do cities get so hot? One reason is the materials we use. Roads and roofs are often made of dark asphalt or concrete. These parts soak up heat from the sun. Concrete can hold 2,000 times more heat than air.

High-rise buildings of Manhattan during sunset.jpg
High-rise buildings of Manhattan during sunset.jpg
This heat stays in the city even at night. This makes the temperature difference larger after the sun goes down.

Tall buildings also change how heat moves. They can block the wind. This stops the air from moving and cooling. This is sometimes called the urban canyon effect.

We can help cool our cities. Trees and parks are great tools. They provide shade and cool the air.

New York City-Manhattan-Central Park (Gentry).jpg
New York City-Manhattan-Central Park (Gentry).jpg
We can also use green roofs. These are roofs covered in plants. Using lighter colors on buildings also helps. Light colors reflect sunlight away instead of soaking it up.

195 words

Cities can feel much warmer than the quiet countryside. This is called the urban heat island effect.

Urban heat island.svg
Urban heat island.svg
While cities cover only 0.5% of Earth's land, they hold over half of the world's people. As these population centers grow, they often get even hotter. This warming can change the local weather and even increase rainfall downwind of the city. It can also make air and water quality harder to manage.
Dubai skyline 2015 (crop).jpg
Dubai skyline 2015 (crop).jpg

How does this warming happen? During the day, the sun shines on city surfaces. Materials like asphalt and concrete soak up this solar radiation. Concrete is a huge reservoir for heat. It can hold about 2,000 times as much heat as the same amount of air.

High-rise buildings of Manhattan during sunset.jpg
High-rise buildings of Manhattan during sunset.jpg
Tall buildings also create an "urban canyon effect." This means buildings reflect and absorb sunlight many times. These structures can also block the wind that would normally cool the streets.

At night, the heat island effect often becomes even stronger. The sun is gone, so the ground stops getting new heat. However, the city surfaces stay warm and release their stored energy. This can create an inversion layer. This layer traps warm air near the ground instead of letting it rise.

Urban heat island variation.jpg
Urban heat island variation.jpg
In the United States, cities are often 1 to 7 degrees Fahrenheit warmer during the day. At night, they can be 2 to 5 degrees Fahrenheit warmer than rural areas.

Scientists have studied this for a long time. Leonard O. Myrup published the first big study on this in 1969. Today, experts use complex computer models to predict heat. In 2015, the Californian EPA created the Urban Heat Island Index. This index helps estimate how much air conditioning people will need. It uses Celsius-hours to measure the temperature difference between a city and the countryside.

Atlanta thermal.jpg
Atlanta thermal.jpg

We can use many tools to cool our cities down. Adding green spaces like parks provides shade and cooling.

New York City-Manhattan-Central Park (Gentry).jpg
New York City-Manhattan-Central Park (Gentry).jpg
People also use green roofs, which are roofs covered in plants. Using lighter colors on buildings helps because they reflect sunlight.
20080708 Chicago City Hall Green Roof.JPG
20080708 Chicago City Hall Green Roof.JPG
Even small changes like better landscaping can help a city stay comfortable. These steps help protect people from intense heat waves.

382 words

An urban heat island, or UHI, is a meteorological phenomenon. It occurs when urban areas experience significantly warmer temperatures than the rural areas surrounding them.

Urban heat island.svg
Urban heat island.svg
While urban areas occupy only about 0.5% of the Earth's land surface, they host more than half of the global population. As these population centers grow, they tend to expand and increase their average temperature. This relative warmth is caused by many factors. These include land use, the design of the built environment, and heat emissions from human activities.
Dubai skyline 2015 (crop).jpg
Dubai skyline 2015 (crop).jpg

The mechanism of the UHI effect begins with solar radiation. During the daytime, particularly under cloudless skies, urban surfaces absorb sunlight. Materials like concrete and asphalt have high heat capacities. This means they act as a reservoir for heat energy. For instance, concrete can hold roughly 2,000 times as much heat as an equivalent volume of air.

High-rise buildings of Manhattan during sunset.jpg
High-rise buildings of Manhattan during sunset.jpg
This daytime heating can also generate convective winds within the urban boundary layer. As the city absorbs energy, it changes the local energy budget.

At night, the situation in a city reverses. The absence of solar heating causes atmospheric convection to decrease. This can lead to the stabilization of the urban boundary layer. If enough stabilization occurs, an inversion layer is formed. This layer traps urban air near the surface. It keeps the air warm because the urban surfaces are still releasing stored heat. Because of this, the temperature difference between a city and rural areas is often more pronounced at night.

Urban heat island variation.jpg
Urban heat island variation.jpg
In the United States, urban areas are typically 1–7 °F warmer during the day. At night, they are often 2–5 °F warmer than the countryside.

Several distinct factors contribute to this warming. One is the urban canyon effect. This happens when tall buildings provide multiple surfaces for sunlight to reflect and be absorbed. Another factor is the lack of evapotranspiration. This is the process where plants release moisture into the air. Since cities have less vegetation, they lose the cooling effects of shade and moisture.

New York City-Manhattan-Central Park (Gentry).jpg
New York City-Manhattan-Central Park (Gentry).jpg
Additionally, buildings can block the wind. This inhibits cooling by convection and prevents pollutants from dissipating. Finally, waste heat from automobiles, industry, and air conditioning adds directly to the heat.

History shows how scientists have worked to understand these patterns. Leonard O. Myrup published the first comprehensive numerical treatment to predict UHI effects in 1969. He found that reduced evaporation and the thermal properties of materials were the dominant factors. Today, scientists use complex simulations like ENVI-met to study these interactions. In 2015, the Californian EPA created the Urban Heat Island Index (UHII). This index compares a surveyed area to rural reference points at a height of two meters. It uses a measurement called Celsius-hours to help estimate future air conditioning needs.

Atlanta thermal.jpg
Atlanta thermal.jpg

The significance of the UHI effect reaches far beyond simple temperature changes. Increased urban heat can increase the length of growing seasons. However, it also decreases air quality by increasing the production of ozone. Ozone is a greenhouse gas that forms more quickly as temperatures rise.

newyork heat island.jpg
newyork heat island.jpg
Warmer urban temperatures can also decrease water quality. This happens when warm waters flow into area streams and stress local ecosystems. Furthermore, monthly rainfall is often greater downwind of cities due to the UHI effect.

We can take specific actions to mitigate these effects. Increasing tree cover and green spaces provides shade and promotes evaporative cooling.

20080708 Chicago City Hall Green Roof.JPG
20080708 Chicago City Hall Green Roof.JPG
Architects can also use green roofs or lighter-colored surfaces. These lighter materials have a higher albedo, meaning they reflect more sunlight and absorb less heat. Other strategies include creating ventilation corridors and using less absorptive building materials. Even thoughtful landscaping with native plants can help a city remain resilient against heat waves.
Ogród botaniczny UMCS.png
Ogród botaniczny UMCS.png

It is important to note that climate change is not the cause of urban heat islands. Instead, climate change acts as an amplifier. The IPCC Sixth Assessment Report from 2022 noted that climate change increases heat stress risks in cities. It amplifies the UHI effect during more frequent and intense heat waves. This creates a dangerous interaction between rising global temperatures and built infrastructure. As urbanization continues to increase, understanding and managing these heat islands becomes even more vital for human health and economic productivity.

725 words
🖼️ Images & Media (14)
File:Milan skyscrapers aerial view.jpg
Milan skyscrapers aerial view.jpg
File:New York City-Manhattan-Central Park (Gentry).jpg
New York City-Manhattan-Central Park (Gentry).jpg
File:Urban heat island.svg
Urban heat island.svg
File:HeatIsland Kanto en.png
HeatIsland Kanto en.png
File:Urban heat island variation.jpg
Urban heat island variation.jpg
File:High-rise buildings of Manhattan during sunset.jpg
High-rise buildings of Manhattan during sunset.jpg
File:newyork heat island.jpg
newyork heat island.jpg
File:Dubai skyline 2015 (crop).jpg
Dubai skyline 2015 (crop).jpg
File:Atlanta thermal.jpg
Atlanta thermal.jpg
File:NASA SLC Urban Heat Island Effect Roof.jpg
NASA SLC Urban Heat Island Effect Roof.jpg
File:Ogród botaniczny UMCS.png
Ogród botaniczny UMCS.png
File:20080708 Chicago City Hall Green Roof.JPG
20080708 Chicago City Hall Green Roof.JPG

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