Big stars can go boom. 

Some stars are very big. 


A gamma-ray burst is a giant explosion in space. 

These bursts come from different ways stars die. A very massive star may collapse. It can form a black hole or a neutron star. This collapse lets out a huge flash of light. This light is made of gamma rays. Other short bursts happen when two neutron stars crash into each other. 
A burst can last for just a tiny moment. It can also last for several hours. After the first flash, there is an afterglow. This is a fading light that stays for a while. Scientists use satellites like BeppoSAX to find these glows. 
A gamma-ray burst is a massive explosion in space. 

These explosions happen in a few different ways. 
Scientists first found these bursts by accident in 1967. 
For a long time, scientists did not know how far away these bursts were. 
Today, we use special tools to study these amazing events. 
A gamma-ray burst, or GRB, is an extremely energetic electromagnetic event. 

These massive explosions generally happen through two distinct mechanisms. 
When a burst occurs, it follows a specific sequence of light emissions. First, there is an initial, momentary flash of gamma rays. This flash can last anywhere from a few milliseconds to several hours. Following this initial burst, a longer-lived phenomenon called an afterglow is emitted. 
Humans first discovered gamma-ray bursts by accident in 1967. 
For many years, scientists debated the distance of these bursts. Early models suggested they might be located within our own Milky Way galaxy. However, data from the Compton Gamma Ray Observatory and its BATSE instrument changed this view. 
A major breakthrough occurred in 1997 with the Italian-Dutch BeppoSAX satellite. 
Modern astronomy uses specialized spacecraft to study these phenomena in real-time. 
While GRBs are mostly distant, they represent a significant cosmic risk if they occurred nearby. All recorded GRBs have originated from outside the Milky Way. However, a related class called soft gamma repeaters is associated with magnetars within our galaxy. If a true gamma-ray burst occurred within the Milky Way and pointed at Earth, it could potentially cause a mass extinction. Some researchers have even hypothesized that the Late Ordovician mass extinction was caused by such a burst. Understanding these events helps us map the most violent and energetic processes in our universe.
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