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AstroSat

Adapted from Wikipedia Β· Adventurer experience

A stunning view of the spiral galaxy NGC 2336 taken by the Astrosat space telescope using ultraviolet light.

AstroSat is India's first special space telescope. It looks at stars and other objects in space using many kinds of light. It went into space on September 28, 2015, on a rocket called PSLV-XL.

This satellite helped scientists at ISRO study space in new ways. Because it worked well, they plan to launch a second one called AstroSat-2 to learn even more about space.

Overview

After a successful space experiment in 1996, India's space agency, the Indian Space Research Organisation, started planning a special astronomy satellite called AstroSat in 2004.

AstroSat has five instruments that study different kinds of light, from visible light to special high-energy light called X-rays. This helps scientists learn about objects in space, from nearby planets to faraway stars and galaxies. The satellite was launched successfully on September 28, 2015, from India.

Mission

Artist's conception of a binary star system with one black hole and one main sequence star

AstroSat is a space telescope from India. It studies many different objects in space at once. These objects include stars and galaxies.

The telescope looks at these objects using different types of light. This includes visible light, ultraviolet light, and X-rays.

AstroSat helps scientists watch how bright these objects change over time. It also studies their properties. Sometimes it finds new objects that appear suddenly in the X-ray sky. By looking at many kinds of light together, AstroSat gives a fuller picture of what is happening in space.

Payloads

The AstroSat satellite has six important tools to study space.

The Ultra Violet Imaging Telescope (UVIT) looks at ultraviolet light using three different channels. It has special mirrors and detectors to capture clear images and information about light.

The Soft X-ray imaging Telescope (SXT) uses special mirrors and a camera to study X-ray light. It can see light in the 0.3–8.0 keV range with very sharp detail.

The Large Area X-ray Proportional Counter (LAXPC) studies X-rays in the 3–80 keV range. It has three identical detectors that work together to give detailed information about X-ray sources.

The Cadmium Zinc Telluride Imager (CZTI) looks at hard X-rays from 10 to 150 keV. It uses special detectors that can see these high-energy rays very well and can also measure how the light is twisted.

The Scanning Sky Monitor (SSM) has three tools to watch the sky for X-rays. It uses a special pattern to figure out where the X-rays are coming from.

The Charged Particle Monitor (CPM) helps protect the other tools. When the satellite passes through areas with lots of charged particles, the CPM tells the satellite to turn down its power to keep the tools safe.

Ground support

The commands and control for AstroSat are handled by the ISRO Telemetry, Tracking and Command Network (ISTRAC) in Bangalore, India. When AstroSat passes over Bangalore, scientists send commands and get data. Each day, AstroSat orbits Earth 14 times. Ten of those times, it can be seen from the ground station. AstroSat collects 420 gigabits of data each day. This data is downloaded during these passes using the tracking center in Bangalore. In July 2009, a third 11-meter antenna at the Indian Deep Space Network (IDSN) started operating to help track AstroSat.

AstroSat support cell

The Indian Space Research Organisation (ISRO) made a support cell for AstroSat at IUCAA in Pune. They signed an agreement in May 2016. This cell helps scientists use AstroSat data. It gives them tools, training, and support.

Participants

The Astrosat project had many research institutions working together. Some of the main groups were the Indian Space Research Organisation, the Tata Institute of Fundamental Research in Mumbai, the Indian Institute of Astrophysics in Bangalore, and the Raman Research Institute in Bangalore. Other important groups were the Inter-University Centre for Astronomy and Astrophysics in Pune, the Physical Research Laboratory in Ahmedabad, and the Bhabha Atomic Research Centre in Mumbai. International partners were the Canadian Space Agency and the University of Leicester.

Timeline

This image of NGC 2336 was one of the first images takes by Astrosat-1, The Near-UV (200-300 nm) and Far-UV (130-180 nm) images were captured by Ultra-Violet Imaging Telescope(UVIT)
  • April 2009: Scientists from the Tata Institute of Fundamental Research finished making the science tools for the Astrosat satellite and started putting them together. They planned to deliver the tools to the ISRO Satellite Centre in early 2010 for a launch that year.
  • May 2015: The building of Astrosat was finished and final checks were happening. ISRO announced plans to launch it later that year using PSLV C-34 to an orbit 650 km above Earth.
  • 24 July 2015: Tests to prepare Astrosat for space were done. Its solar panels were attached. It began last checks to make sure it could handle shaking during launch.
  • 10 August 2015: All tests were successful. A final review was completed.
  • 28 September 2015: ASTROSAT was successfully launched into orbit.
  • 15 April 2016: The satellite finished its checks and began its science work.
  • 29 September 2018: The satellite marked three years since its launch in 2015. It had observed over 750 objects and led to nearly 100 science papers.
  • 29 September 2020: The satellite finished its planned five-year mission but will keep working for many more years.
  • 29 September 2025: The satellite celebrated 10 years in space. A conference was held in Bengaluru to discuss what was learned from its data.

Results

AstroSat made several important discoveries. On 5 January 2017, it detected a gamma-ray burst. This helped scientists understand it was a different event from a gravitational wave signal detected by LIGO.

AstroSat also observed many interesting space events. It watched a small star taking material from a larger star, saw a big explosion on a star close to Earth, and captured images of faraway galaxy clusters. In 2025, researchers used AstroSat to study how a black hole’s brightness changes, which helps us learn more about black holes.

In popular culture

In 2019, a documentary named Indian Space Dreams came out. It shows how the Astrosat satellite was made. The director was Sue Sudbury.

Images

A stunning view of a globular cluster taken by the AstroSat in 2017, showing thousands of stars packed together in a spherical shape.
A stunning view of stars in the NGC 288 cluster captured by a space telescope.
A detailed image of the planet Pluto taken by NASA's New Horizons spacecraft in 2015, showing its surface features and craters.
Illustration of two black holes merging and producing gravitational waves, an important discovery in space science.
A stunning view of Earth rising over the lunar horizon, as seen by the Apollo 8 astronauts during their historic journey to the Moon.
India's first satellite, Aryabhata, used for studying stars and space weather.

Related articles

This article is a child-friendly adaptation of the Wikipedia article on AstroSat, available under CC BY-SA 4.0.

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