Log in Sign up
Back to Discover
⚛️

Thermal runaway

physical science Maturity 9-11

Sometimes things get too hot.

ThermalRunaway vector en.svg
ThermalRunaway vector en.svg
Heat can make things even hotter. This happens very fast. It can cause a big pop or fire. This is a tricky loop. Can you stay cool?
ThermalRunaway vector en.svg
ThermalRunaway vector en.svg

38 words

Sometimes things get too hot.

ThermalRunaway vector en.svg
ThermalRunaway vector en.svg

Heat can make things even hotter. This happens in a loop. The heat makes a change. This change makes more heat.

ThermalRunaway vector en.svg
ThermalRunaway vector en.svg

This can happen with chemicals. It can happen with electricity too. Sometimes it can even happen in stars.

In a lab, small things stay cool. But big machines can get too hot. This can cause a big pop or fire.

It is a fast and tricky loop. We must find ways to stay cool.

86 words

Sometimes, heat can get out of control. This is called thermal runaway. It happens when a rise in temperature causes a change. This change then makes even more heat.

ThermalRunaway vector en.svg
ThermalRunaway vector en.svg
This creates a loop. The heat builds up faster and faster. This can lead to big accidents.

In chemistry, this happens during exothermic reactions. These are reactions that give off heat. If a cooling system fails, the heat can grow. This can cause an explosion. In a lab, small amounts of chemicals are easy to cool. But big machines are harder to cool. This is because the heat grows much faster than the cooling area.

ThermalRunaway vector en.svg
ThermalRunaway vector en.svg

Thermal runaway also happens with electricity. Some parts let more power flow as they get hot. This extra power makes them even hotter. This can cause fires or broken parts. In stars, this can even lead to huge explosions called supernovas. To stay safe, engineers use tools like fuses. These tools stop the heat before it gets too big.

169 words

Thermal runaway is a process where heat gets out of control. It happens when a rise in temperature causes a change. This change then makes even more heat. This creates a loop called positive feedback. The heat builds up faster and faster. This can lead to very destructive results.

ThermalRunaway vector en.svg
ThermalRunaway vector en.svg
It can happen in many different areas of science.

In chemistry, this happens during exothermic reactions. These are reactions that release heat. If the temperature rises, the reaction rate also increases. This makes even more heat, which speeds up the reaction again. This can lead to a thermal explosion. In a lab, small amounts of chemicals are easy to cool. But large machines are much harder to cool. This is because heat production grows faster than the cooling area as things get bigger.

ThermalRunaway vector en.svg
ThermalRunaway vector en.svg

History shows us how dangerous this can be. In 1947, the Texas City disaster happened. Overheated ammonium nitrate in a ship's hold caused a huge event. In 1976, an explosion of zoalene happened at King's Lynn. Another event was the Seveso disaster. There, a runaway reaction made poisonous chemicals. In 2007, an explosion involving metallic sodium killed four people. These events show why scientists must be very careful.

Thermal runaway also happens with electricity. Some parts let more power flow as they get hot. This extra power makes them even hotter through Joule heating. This can cause fires or broken parts. In electronics, this can happen in transistors or capacitors. For example, some metal oxide varistors can catch fire. Even stars experience this in space. Runaway nuclear fusion can lead to a supernova explosion.

ThermalRunaway vector en.svg
ThermalRunaway vector en.svg

Engineers use many ways to stay safe. They use cooling systems to take heat away. They also use thermal fuses or circuit breakers. These tools stop the electricity before it gets too hot. In big factories, they add chemicals slowly. This helps the cooling system keep up with the heat. By watching the temperature closely, we can prevent these accidents.

ThermalRunaway vector en.svg
ThermalRunaway vector en.svg

338 words

Thermal runaway is a physical process driven by uncontrolled positive feedback. It occurs when an increase in temperature changes conditions in a way that triggers even more heat. This creates a self-reinforcing loop where rising temperatures cause faster energy release. The result is often a rapid, destructive escalation. This phenomenon appears in many scientific fields, including chemistry, electrical engineering, and astrophysics.

ThermalRunaway vector en.svg
ThermalRunaway vector en.svg

In chemical engineering, thermal runaway is often called a runaway reaction. It is closely linked to exothermic reactions, which are processes that release heat. When these reactions start to heat up, the reaction rate increases. This higher rate releases even more heat, which further accelerates the reaction. This cycle can lead to a thermal explosion. In some cases, a process called chain branching acts as an additional feedback mechanism. This can cause the temperature to skyrocket very quickly.

Managing these reactions is difficult because of how scale affects physics. In a laboratory, small amounts of chemicals are easy to cool. However, industrial-scale production faces a much larger challenge. The amount of reaction volume scales with the cube of the size (V ∝ r³). Meanwhile, the surface area available for cooling only scales with the square of the size (A ∝ r²). This means that as a vessel gets larger, the ratio of heat production to cooling area increases. A reaction that is safe in a small flask might become a runaway hazard at the ton scale.

History provides several examples of the dangers of uncontrolled heat. In 1947, the Texas City disaster occurred when overheated ammonium nitrate exploded in a ship's hold. In 1976, a zoalene explosion happened in a drier at King's Lynn. The Seveso disaster was another major event where a runaway reaction produced poisonous 2,3,7,8-tetrachlorodibenzo-p-dioxin. This happened because the temperature rose enough to create unintended side products. More recently, in 2007, an explosion during the metalation of methylcyclopentadiene with metallic sodium cost four lives. These events show why engineers use high-volume emergency venting and controlled reagent addition.

In electrical engineering, thermal runaway involves increased current and power dissipation. Some components experience Joule heating, where electrical energy is converted into heat. As these parts get hotter, their resistance may drop. This allows even more current to flow through them. This creates a "vicious circle" of increasing heat and increasing current. In semiconductors like silicon, resistance decreases once temperatures pass about 160 °C. This can lead to current crowding and the formation of current filaments within a single device.

Specific electronic components are particularly vulnerable to these effects. Bipolar junction transistors (BJTs) can suffer from increased leakage current as they warm up. This can cause a push–pull stage in an amplifier to destroy its own devices. In power transistors, a version of this called "second breakdown" can occur. This happens when one part of the transistor becomes hotter than the others. Even power MOSFETs can face thermal runaway if they produce more heat than a heatsink can remove. Engineers prevent these failures using thermal fuses, circuit breakers, or thermal feedback sensors.

Thermal runaway also reaches far beyond human technology into the cosmos. In the field of astrophysics, runaway nuclear fusion reactions can occur within stars. These massive energy releases can lead to a nova or various types of supernova explosions. On a smaller scale, solar-mass stars experience a less dramatic runaway event known as the "helium flash." Whether in a tiny circuit or a massive star, the underlying principle remains the same: a small change triggers a cycle that grows beyond control.

587 words
🖼️ Images & Media (1)
File:ThermalRunaway vector en.svg
ThermalRunaway vector en.svg
Up Next
⚛️
Thermal decomposition
Physical 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.