Rescuing satellites is harder than it looks

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Rescuing satellites is harder than it looks – a growing space junk problem will make doing so more important

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An illustration of the plan for the European Space Agency’s ClearSpace mission, where a servicing spacecraft will deorbit an ESA satellite.<br>ClearSpace/ESA, CC BY-NC

https://theconversation.com/rescuing-satellites-is-harder-than-it-looks-a-growing-space-junk-problem-will-make-doing-so-more-important-286737

https://theconversation.com/rescuing-satellites-is-harder-than-it-looks-a-growing-space-junk-problem-will-make-doing-so-more-important-286737

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A commercial robotic spacecraft called LINK launched on an emergency mission to save NASA’s Neil Gehrels Swift Observatory, which has been slowly falling toward Earth, on July 3, 2026. Over the coming weeks, LINK, built by Katalyst Space Technologies, will try to grasp the telescope, then spend months raising it to a safer orbit.

A commercial satellite is the key to a difficult mission that aims to rescue NASA’s Swift telescope in orbit.

For most of the space age, satellites have been disposable: moved aside or replaced when they ran low on fuel or failed. That wasn’t much of an issue decades ago, when orbit was far less crowded. Now, space surveillance networks track tens of thousands of human-made objects, and the European Space Agency estimates that more than 1.2 million pieces of satellite and spacecraft debris larger than half an inch (1 centimeter) are in orbit. Even chunks that small are large enough to cause severe damage in a collision.

You might say “just clean up the junk” because space debris looks motionless in photographs. But as a Ph.D. candidate researching satellite servicing, I know that the hardest part of removing a dead satellite before it breaks apart into new debris is not reaching it – it is understanding how it moves, how to approach without hitting it, and controlling the instant that two free-flying objects touch.

A tow hook changes the problem

So, how do you catch a dead or broken satellite? The spacecraft doing the catching is a servicer: a robotic mechanic that flies up to refuel, repair or move a disabled satellite.

Some satellites, called prepared satellites, are easier to catch. They carry a built-in feature that works like a car’s tow hook. The servicer knows where to attach, what loads the hook can bear and what its cameras can use as landmarks. That feature removes several unknowns at once.

Many older, unprepared satellites have no docking plate, beacon or navigation marker. Some can still be serviced by gripping a strong structural feature. Northrop Grumman’s Mission Extension Vehicles, for example, have docked onto communications satellites and taken over their propulsion and pointing.

To grab the satellite, engineers first identify a safe attachment point and estimate the object’s shape, mass and motion, often while working off incomplete information. But even if they find a potential attachment point, this strategy may not work. A solar panel, antenna or insulation blanket may not be strong enough to carry the load from the servicer.

A cooperative satellite stays steady and carries a docking interface and navigation markers so that a servicer can follow a known approach path. A noncooperative satellite may tumble, offer no dedicated fixture and leave the servicer chasing a moving target. Original schematic, not to scale.<br>Wanjiku Chebet Kanjumba, CC BY-NC-ND

The target does not hold still

Even if a satellite is prepared with some sort of tow hook, capturing it is still extremely difficult.

A dead or disabled satellite is not parked in space. It keeps orbiting Earth and may spin or tumble because it can no longer control its orientation or reorient itself to face the servicer.

Imagine fitting a key into a lock while the lock, or even the door, keeps rotating, your hands float freely and a hard touch sends everything spinning. Reaching the lock is only half the task. Matching its motion closely enough for controlled contact is the rest of the challenge.

Swift is an example of an unprepared satellite. It was not built with any standardized fixture that a repair craft can latch onto. Without one, there is no obvious place to grab and no guarantee it survives capture. LINK’s mission is a vivid case of what engineers call noncooperative capture: catching a spacecraft that cannot help the servicer, may be tumbling unpredictably and was never built to be caught.

To catch a tumbling satellite, the servicer has to estimate several things at once: where the target is, how fast it is moving, which way it is facing and how that orientation is changing. Cameras and laser-ranging sensors on the servicer offer clues, and data from those readings can provide an estimate of how the satellite is moving before the servicer edges close enough to touch.

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