Log in Sign up
Back to Discover
🚀

GW170817

space Maturity 5-7

Two stars crashed in space.

Artist NSIllustration CREDIT NSF LIGO Sonoma State University A. Simonnet.jpg
Artist NSIllustration CREDIT NSF LIGO Sonoma State University A. Simonnet.jpg
This made a big shake. It sent a wave to us. Many tools saw the light. It was a big find!
NGC 4993 and GRB170817A after glow.gif
NGC 4993 and GRB170817A after glow.gif
Can you look at the stars?

48 words

Two small, heavy stars crashed in space. This crash sent a big shake through space. The shake reached our tools on Earth.

NGC 4993 and GRB170817A after glow.gif
NGC 4993 and GRB170817A after glow.gif
This crash also made a bright flash of light. Many tools in space saw the light too. Scientists used seventy tools to watch it. They saw a cloud of stuff fly out. The cloud moved very fast. It was a very big find for science!

83 words

In August 2017, something big happened in space. Two neutron stars crashed together. Neutron stars are very small and heavy stars.

Artist NSIllustration CREDIT NSF LIGO Sonoma State University A. Simonnet.jpg
Artist NSIllustration CREDIT NSF LIGO Sonoma State University A. Simonnet.jpg
This crash sent out gravitational waves. These are shakes in the fabric of space.
GW170817 NASA.ogv
GW170817 NASA.ogv
Detectors on Earth felt these shakes. This was the first time we saw waves and light from the same event.

First, the waves reached our tools. Then, a short gamma-ray burst happened. This is a quick flash of light.

NGC 4993 and GRB170817A after glow.gif
NGC 4993 and GRB170817A after glow.gif
Many telescopes looked at the area. They found a kilonova. A kilonova is a bright flash from a star crash. It was a fast-moving cloud of debris. This cloud was made of neutron-rich material. The cloud cooled down quickly. It even changed from blue to red. Scientists used 70 different tools to study it. This helped them learn a lot about space.
Eso1733f(1).jpg
Eso1733f(1).jpg

155 words

In August 2017, scientists witnessed a massive event in deep space. Two neutron stars crashed into each other.

Artist NSIllustration CREDIT NSF LIGO Sonoma State University A. Simonnet.jpg
Artist NSIllustration CREDIT NSF LIGO Sonoma State University A. Simonnet.jpg
This collision happened in a galaxy called NGC 4993. That galaxy is about 140 million light years away from Earth. The crash sent out ripples called gravitational waves. These waves are shakes in the fabric of space itself.
GW170817 NASA.ogv
GW170817 NASA.ogv
This discovery was very important for astronomy. It was the first time we saw both waves and light from one event. Because of this, it won the Breakthrough of the Year award for 2017.

The event worked in a few clear steps. First, the two neutron stars spiraled inward toward each other. This movement created gravitational waves that lasted about 100 seconds.

Artist’s impression of strontium emerging from a neutron star merger.jpg
Artist’s impression of strontium emerging from a neutron star merger.jpg
Next, the stars merged into one. This merger created a short gamma-ray burst called GRB 170817A. This was a quick flash of light lasting about 2 seconds. The light arrived just 1.7 seconds after the gravitational waves. Finally, the crash threw out a cloud of debris. This debris created a bright flash known as a kilonova.
Eso1733f(1).jpg
Eso1733f(1).jpg

Many special tools helped find this event. Detectors called LIGO and Virgo felt the gravitational waves. The LIGO detectors are in the United States. One is in Louisiana and one is in Washington. The Virgo detector is in Italy.

NGC 4993 and GRB170817A after glow.gif
NGC 4993 and GRB170817A after glow.gif
Spacecraft like Fermi and INTEGRAL saw the gamma-ray burst. After the waves were found, 70 different observatories joined the search. They used many types of light, from radio waves to X-rays. This huge team worked across seven different continents. They even used telescopes in space.

Scientists found many specific details about the crash. The total mass of the two stars was about 2.7 solar masses. One star was likely between 1.17 and 1.60 solar masses. The other star was likely between 1.14 and 1.62 solar masses. The kilonova debris moved at 10 percent of the speed of light. This cloud of material cooled down very quickly. As it cooled, its color changed from blue to red. The Hubble Space Telescope watched the light fade over many days. Some X-ray signals were even seen 940 days later.

This event helps us understand how the universe works. Before this, scientists mostly saw black hole mergers. Those mergers do not make light that we can see. This neutron star merger was different because it was visible. It showed that star crashes can create a kilonova. This is a bright, fast-moving cloud of material. By watching the light and the waves together, we learn more. We can now see how heavy elements are made in space. It is like seeing a cosmic firework show from very far away.

475 words

GW170817 was a historic gravitational wave event observed on 17 August 2017.

GW170817 NASA.ogv
GW170817 NASA.ogv
This signal originated from a shell elliptical galaxy named NGC 4993. That galaxy is located approximately 140 million light years away from Earth. The event was caused by the final moments of a binary neutron star inspiral. An inspiral occurs when two dense objects orbit each other while spiraling closer. This process ended in a violent merger of the two stars. This discovery was a massive breakthrough for the field of multi-messenger astronomy. It marked the first time a gravitational wave detection was definitively linked to electromagnetic observations.
Artist NSIllustration CREDIT NSF LIGO Sonoma State University A. Simonnet.jpg
Artist NSIllustration CREDIT NSF LIGO Sonoma State University A. Simonnet.jpg

The mechanism of the event followed a specific sequence of physical actions. First, the two neutron stars spiraled inward toward one another. This movement produced gravitational waves that lasted for approximately 100 seconds. The signal started at a frequency of 24 hertz. It covered roughly 3,000 cycles as the stars moved closer. The frequency and amplitude increased in a pattern known as a chirp. The signal ended with the collision at 12:41:04.4 UTC. Following the merger, a short gamma-ray burst called GRB 170817A occurred. This burst lasted about 2 seconds and began 1.7 seconds after the gravitational waves.

Artist’s impression of strontium emerging from a neutron star merger.jpg
Artist’s impression of strontium emerging from a neutron star merger.jpg

Scientists used several different types of detectors to observe these stages. The gravitational waves were caught by the LIGO and Virgo interferometers. The LIGO detectors are located in Louisiana and Washington in the United States. The Virgo detector is located in Italy. The arrival times at these three locations helped scientists find the direction of the source. The gamma-ray burst was detected by the Fermi and INTEGRAL spacecraft. These spacecraft identified a large region of the sky that overlapped with the gravitational wave direction. This overlap confirmed that neutron star mergers are progenitors of short gamma-ray bursts.

NGC 4993 and GRB170817A after glow.gif
NGC 4993 and GRB170817A after glow.gif

The aftermath of the merger created a unique astronomical transient. This event was designated AT 2017gfo, but it is often called a kilonova. About 11 hours after the initial signal, the 1M2H team observed optical light. They used the Swope Telescope at the Las Campanas Observatory in Chile. This kilonova was a fast-moving, rapidly-cooling cloud of neutron-rich material. This material was the debris ejected from the collision. The cloud moved at roughly 10 percent of the speed of light. As the debris expanded and cooled, its color changed from blue to red.

Eso1733f(1).jpg
Eso1733f(1).jpg

Detailed analysis provided specific numbers regarding the mass of the stars. The total mass of the binary system was approximately 2.7 solar masses. The larger progenitor star had a 90% probability of being between 1.17 and 1.60 solar masses. The smaller star had a 90% probability of being between 1.14 and 1.62 solar masses. Scientists also measured the chirp mass, which is a specific parameter of the orbit. This mass was measured at 1.188 solar masses. Initially, researchers thought a black hole formed immediately. However, later analysis suggested a hypermassive magnetar might have existed for a few seconds.

Eso1733j X-shooter spectra montage of kilonova in NGC4993.png
Eso1733j X-shooter spectra montage of kilonova in NGC4993.png

Many different observatories participated in the global follow-up campaign. Over 70 observatories on seven continents used the electromagnetic spectrum to study the event. These observations included radio, optical, infrared, ultraviolet, and X-ray wavelengths. The Chandra X-ray Observatory detected the source 9 days after the merger. The Very Large Array in New Mexico detected radio waves 16 days later. The light from the radio and X-ray emissions peaked 150 days after the merger. Even 940 days later, the Chandra Observatory still observed X-ray emission. This massive coordination allowed for a very precise localization of the source.

Eso1733j X-shooter spectra montage of kilonova in NGC4993.png
Eso1733j X-shooter spectra montage of kilonova in NGC4993.png

GW170817 connects several major ideas in modern physics and astronomy. It proved that gravitational waves and light can come from the same event. This allows scientists to use two different "messengers" to study the universe. It also provided evidence for how heavy elements are produced in space. The merger of neutron stars creates a cloud of debris that carries new elements. This event was so significant that the journal Science named it the Breakthrough of the Year for 2017. It changed how we look at the violent deaths of stars.

715 words
🖼️ Images & Media (6)
GW170817 NASA.ogv
File:Artist NSIllustration CREDIT NSF LIGO Sonoma State University A. Simonnet.jpg
Artist NSIllustration CREDIT NSF LIGO...
File:NGC 4993 and GRB170817A after glow.gif
NGC 4993 and GRB170817A after glow.gif
File:Eso1733f(1).jpg
Eso1733f(1).jpg
File:Eso1733j X-shooter spectra montage of kilonova in NGC4993.png
Eso1733j X-shooter spectra montage of...
File:Artist’s impression of strontium emerging from a neutron star merger.jpg
Artist’s impression of strontium emerging...
Up Next
🚀
Kilonova
Space
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.