The Challenge: A Heavy Fuel Tank
For decades, satellites have navigated space using chemical propulsion. Think of it like a car's engine, but for space: a propellant and an oxidizer mix and ignite, creating a powerful burst of thrust. This method is excellent for big, fast manoeuvres,
like getting a satellite into its final orbit quickly. However, it comes with a significant drawback. The chemical fuel is heavy and bulky. On a large communications satellite, the propellant required for its 15-year mission can account for a massive portion of its total weight at launch. This leaves less room for the parts that actually do the job, like transponders for broadband or sensors for Earth observation.
ISRO's Solution: The Power of Electricity
Enter electric propulsion (EP), a game-changing technology ISRO is now mastering. Instead of a violent chemical reaction, EP systems use electrical power, typically from the satellite's own solar panels, to create thrust. One of the most common methods is a Hall-effect thruster. These devices use electric and magnetic fields to ionize a small amount of inert gas, like xenon, turning it into plasma. The system then accelerates these ions and shoots them out at incredibly high speeds. While the resulting thrust is very gentle—sometimes compared to the force of a piece of paper resting on your hand—it is phenomenally efficient.
Benefit 1: Trimming the Fat
The primary advantage of electric propulsion is its incredible fuel efficiency. Because the propellant is ejected at such high velocity, a satellite needs far less of it compared to a chemical system to achieve the same change in momentum over time. This efficiency gain is transformative. Instead of tonnes of chemical fuel, an all-electric satellite might only need a few hundred kilograms of xenon gas. This massive weight saving means ISRO can build satellites that are either significantly lighter, making them cheaper to launch, or use that saved mass to pack in more revenue-generating hardware. More transponders on a communication satellite like the GSAT-N2, for instance, means more capacity for broadband services across India.
Benefit 2: A Marathon, Not a Sprint
The low-and-slow approach of electric propulsion also dramatically extends a satellite's operational lifespan. A satellite's life in geostationary orbit isn't just about how long its electronics last; it's about how long it can fight the gravitational pulls of the Sun and Moon to hold its correct position, a process called 'station-keeping'. Chemical thrusters perform these corrections in short, powerful bursts, using up their limited fuel supply. Electric thrusters, however, can run for thousands of hours, making tiny, precise adjustments almost continuously. This sip-not-gulp approach to fuel consumption means a satellite can maintain its orbit for much longer, extending its useful life from a typical 15 years to potentially 20 years or more, providing a better return on investment.
The Bigger Picture for India
ISRO's adoption of this technology, demonstrated in various missions and set to be a cornerstone of future satellites like the Technology Demonstrator Satellite (TDS-01), is a major strategic and commercial leap. By developing its own electric propulsion systems, India reduces its reliance on foreign technology and enhances its self-reliance in space. Lighter, more powerful, and longer-lasting satellites make India's space program more competitive in the multi-billion dollar global launch market. It allows NSIL, ISRO's commercial arm, to offer more capable satellites for telecommunications, in-flight connectivity, and national security, ensuring India remains at the forefront of space innovation.














