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Climate model

earth science Maturity 9-11

Smart tools help us study our world.

Global Climate Model.png
Global Climate Model.png
They show us how the air and sea work. These tools help us see the future. They help us stay safe. We can learn so much. Do you want to see how they work?

44 words

Scientists use special tools to study our world.

Global Climate Model.png
Global Climate Model.png
These tools are called models. They act like a map of our air and sea. They also look at ice and land.

Sunlight comes down to Earth. The Earth sends some heat back out. If the heat is not even, the temperature changes.

Models help us see big storms. They can even show heatwaves.

20250712 Climate model inputs and outputs.svg
20250712 Climate model inputs and outputs.svg

These tools help us plan for the future. They help us learn how the world works. We can see how things might change. It is a very big job!

100 words

Scientists use tools to study our world. These tools are called climate models.

Global Climate Model.png
Global Climate Model.png
A model is a set of math rules. These rules follow the laws of physics and chemistry.

To make a model, scientists divide Earth into a 3D grid. This grid is like a box of many small cubes. The model tracks how things move in each cube. It looks at the air, the oceans, the land, and the ice.

20250712 Climate model inputs and outputs.svg
20250712 Climate model inputs and outputs.svg

One big job for models is to track energy. The Sun sends energy to Earth. The Earth then sends energy back out. If these amounts are not even, the temperature changes. This is part of the greenhouse effect.

Some models are very simple. They might treat Earth as a single point. Other models are much more complex. They can show how the ocean and air work together. They can even predict how land use affects nature.

greenhouse slab model.png
greenhouse slab model.png
These models help us see future changes. They help us study big storms and heatwaves. This helps us plan for a changing world.

183 words

Climate models are amazing tools that help us understand our planet.

Global Climate Model.png
Global Climate Model.png
These models use math to study how the Earth's climate works. They help scientists see how things like heatwaves and storms might happen. Scientists use these models to make projections about future climate change. They can also help explain specific weather events that have already occurred. This is called extreme event attribution. It helps us know if a storm was caused by human-driven warming.
20250712 Climate model inputs and outputs.svg
20250712 Climate model inputs and outputs.svg

How do these models actually work? Scientists divide the Earth into a three-dimensional grid. You can imagine this grid as many small cubes filling up the space. The model uses math rules called differential equations in every cube. These equations follow the laws of physics, chemistry, and fluid motion. The model tracks how energy moves between the atmosphere, oceans, land, and ice. It looks at how the Sun sends energy to Earth. It also tracks how Earth sends energy back out into space.

Simple box model.png
Simple box model.png

People have been building these models for a long time. In the late 19th century, a simple model was made to balance energy. In 1896, Svante Arrhenius published a way to use a one-layer model. This helped show how the greenhouse effect works. Before the 1960s, it was too hard to make full 3D models. We needed large computational facilities, which are powerful computer centers, to do it. Now, we can build much bigger and more detailed models than ever before.

There are many different kinds of models used today. Some are very simple and treat Earth as a single point. These are called zero-dimensional models. Others are very complex, like Earth System Models. These include how people use land and how ecosystems change. Many large research groups work on these models. Examples include the National Center for Atmospheric Research in Colorado. There is also the Hadley Centre in the UK and the Max Planck Institute in Germany.

CMIP climate model progress.jpg
CMIP climate model progress.jpg

These models connect to many things we see every day. For example, they help us understand the greenhouse effect. This is when the Earth's atmosphere holds onto heat. We can see this in how the model tracks infrared energy. The models also help us study the water cycle. They look at how clouds and rain move around the world. Even though these models are not perfect, they are essential. They help us use data from satellites to see what is happening on our big, beautiful planet.

greenhouse slab model.png
greenhouse slab model.png

421 words

Climate models are complex mathematical tools used to simulate the Earth's climate system.

Global Climate Model.png
Global Climate Model.png
These models apply knowledge from various sciences to process massive sets of input data. By executing differential equations, they can simulate how different parts of the planet interact. This allows scientists to study the dynamics of the climate and make projections about future changes. They also enable extreme event attribution. This is the science of identifying how human-caused climate change affects the frequency and intensity of weather events.
20250712 Climate model inputs and outputs.svg
20250712 Climate model inputs and outputs.svg
Through these simulations, researchers can better understand the impacts of heatwaves, storms, and other climatic elements.

To understand how these models work, imagine the Earth divided into a three-dimensional grid.

Global Climate Model.png
Global Climate Model.png
Scientists apply mathematical equations to each grid element to track movement and change. These equations are based on the fundamental laws of physics, chemistry, and fluid motion. Atmospheric models calculate specific variables within each grid, such as winds, heat transfer, and relative humidity. These are often coupled with oceanic models. This coupling is vital because the global ocean has a much larger heat storage capacity than the atmosphere. By linking these systems, models can simulate climate variability that occurs over different timescales due to shifting ocean currents.

Climate models vary significantly in their level of complexity. The simplest version is a zero-dimensional model. This model treats the Earth as a single point in space, much like an astronomer viewing a very distant object. While very limited, these models are useful for applying physics to unknown objects in a bulk fashion. Moving up in complexity, there are energy balance models, or EBMs. These seek an economical description of surface temperatures by applying energy conservation to individual columns of the Earth-atmosphere system. Some EBMs are expanded vertically into radiative-convective models. These consider both the upward and downward transport of infrared radiation and the upward transport of heat by air and vapor convection.

More advanced systems are known as coupled atmosphere–ocean–sea ice global climate models. These models solve full equations for mass transfer, energy transfer, and radiant exchange. Even more comprehensive are Earth System Models. These include additional factors like land use and land use changes. This allows researchers to predict the complex interactions between the climate and various ecosystems. Some models may even include an ice-sheet model. Adding this helps researchers better account for long-term effects, such as the rise in global sea levels.

History shows how these tools have evolved alongside technology. In the late 19th century, scientists developed simple quantitative models to balance incoming and outgoing energy. In 1896, Svante Arrhenius published a version of a one-layer model to quantify the greenhouse effect. However, simulating the climate in full 3-D space was impractical for a long time. It was not until the establishment of large computational facilities in the 1960s that full simulations became possible. Today, many major institutions develop these models. These include the National Center for Atmospheric Research in the US, the Hadley Centre in the UK, and the Max Planck Institute for Meteorology in Germany.

At the heart of these models is the balance of energy from the Sun and Earth. The Sun provides incoming energy in the form of short-wave electromagnetic radiation, such as visible light. The Earth sends outgoing energy back into space as long-wave infrared radiation.

Simple box model.png
Simple box model.png
An imbalance between this incoming and outgoing energy results in a change in temperature. For example, a simple model might use the solar constant, which is about 1367 W·m−2. It also considers Earth's average albedo, or reflectivity, which is measured at about 0.3. By calculating these values, scientists can estimate the effective emissivity of the Earth, which is approximately 0.61 to 0.64.

These models are essential for making sense of the vast amount of data we collect.

CMIP climate model progress.jpg
CMIP climate model progress.jpg
They allow us to assimilate observations from space, especially from satellites, to produce comprehensive analyses. While these big models are not perfect, they provide the best way to project how our world might change. They bridge the gap between simple observations and a deep understanding of global systems. By studying these mathematical representations, we gain a clearer picture of the complex, interconnected world we inhabit.

704 words
🖼️ Images & Media (5)
File:20250712 Climate model inputs and outputs.svg
20250712 Climate model inputs and outputs.svg
File:Global Climate Model.png
Global Climate Model.png
File:greenhouse slab model.png
greenhouse slab model.png
File:Simple box model.png
Simple box model.png
File:CMIP climate model progress.jpg
CMIP climate model progress.jpg
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