Aditya L-1’s launch into space: how did it work?

India’s National Space Research Organization (ISRO) has conducted its first mission to explore the Sun in space, Aditya l-1. The launch took place at 11:50 AM today at the Sriharikota Space Centre. This mission comes less than a month after ISRO successfully soft-landed a spacecraft near the south pole of the Moon.

ADITYA L-1 mission: How did it reach space? Where will it be positioned in space? Objectives of the mission? Contents of the payload? Why does ISRO require to study the Sun? What are the payloads of the mission?

Aditya L-1's launch into space: how did it work?

The Indian Space Research Organization (ISRO) launched the Solar Probe into space using its Polar satellite launch vehicle (PSLV), commonly referred to as the XL configuration. This is due to the fact that the XL configuration of the PSLV is the most robust and versatile of all the ISRO’s workhorse rockets.

Previous missions, such as the 2008 and 2013 Mangalyaan missions, have also been launched using the XL configuration. The XL configuration of PSLV is capable of carrying heavier payloads due to the presence of six Extended Strap-on Boosters, which are larger than those of the other configurations.

The PSLV-XL is capable of carrying a payload capacity of 1,750 kilograms to the Sun-synchronised polar orbit (where spacecraft are always in the same ‘fixed’ position in relation to the Sun) and a payload capacity of 3,800 kilograms to the Earth’s lower orbit (which is typically located at a minimum of 1,000 kilometers above the Earth’s surface, but can range as high as 160 kilometers). Due to the weight of 1,472 kilograms required for the launch of ADITYA L-1, the payload was launched aboard the PSLV.

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How does the Aditya L-1 mission work?

The first stage of the PSLV will carry out a low-Earth orbit placement of the ADITYA L-1. After that, the orbit of the spacecraft around the earth will be raised several times before the spacecraft is placed on a halo trajectory around the L 1 Lagrange point.

The spacecraft will eventually be placed in a solar halo orbit, located in the vicinity of the Lagrange Point 1 of the Solar-Earth System (more on that below). This point is approximately one and a half million km away from Earth. 

The spacecraft, which has been named after the rising sun, will cover its distance to L1 in approximately four months. It will be accompanied by seven payloads, which will observe solar activities over a period of five years.

L-1 objectives of Aditya: what are they?

The main goal of the mission is to get to know more about the Sun and how it affects us. We’ll also be looking at how it emits radiation, how it heats up, how it moves particles around, and how it has a magnetic field. Here’s a list of other things the mission will be doing.

  • To explore the Sun’s upper atmosphere, which is made up of the chromosphere and the corona.
  • The chromosphere is at the top of the Sun’s atmosphere, while the corona is at the bottom.
  • To study CMEs, which are big chunks of plasma and magnetic energy that come out of the Sun’s corona.
  • To study the magnetic field in the Sun and how it affects space weather.
  • To figure out why the Sun’s not-so-flattering corona is so hot when the Sun’s surface is only 5,500 degrees Celsius.

 

According to NASA, the points can serve as “parking spots” for spacecraft in space, allowing them to remain in a stationary state with minimal fuel consumption. The points are named after the Italian-French mathematician, Joseph-Lucas Lagrange, who discovered the positions in 1736-1813.

A satellite can be in any of five different Lagrangian positions between the earth and the sun. Of these, three are “unstable” and two are “stable,” according to NASA. The “unstable” Lagrange points are called L1, “L2, and “L3” and they’re along the line between the two big bodies. The “stable” points are called L4 and “L5” and they’re the top of two sides of an equilateral triangle. They’re also called “trojan points” and celestial objects like asteroids can be found here.

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