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Engineers just designed a better 'shock absorber' for spacecraft

Engineers just designed a better 'shock absorber' for spacecraft

phys.org 24.09.2026 21:40 3 views
Rocket launches are among the most violent ways humans have devised to travel. They generate millions of pounds of thrust and subject passengers to intense g-forces. Humans must undergo serious training to withstand thos

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Rocket launches are among the most violent ways humans have devised to travel. They generate millions of pounds of thrust and subject passengers to intense g-forces.

Humans must undergo serious training to withstand those forces, while machines must be designed to survive them. If a delicate mirror or solder joint cracks before a multibillion-dollar satellite even begins its mission, the years of effort that went into its design and assembly could be lost. Now, researchers in Switzerland have come up with an ingenious way to make that less likely.

During a rocket launch, a satellite doesn't just sit loosely inside the rocket's nose cone (also called its fairing). It bolts directly onto an interface known as a payload adapter. Usually, these are rigid mechanical mounts designed to make sure the spacecraft doesn't move during flight.

But because they are so stiff, they are also excellent at transmitting vibrations—especially longitudinal vibrations that shake the satellite straight up and down along with the rocket. That is exactly the kind of stress that could cause those failures, so engineers have long sought ways to lessen the impact of the vibrations. However, their solutions were less than ideal: giant rubber cushions (which have their own history of space-based failures) or motorized dampeners that added more weight to the rocket's payload.

Swiss researchers from the Swiss Federal Laboratories for Materials Science and Technology (Empa) and aerospace supplier Beyond Gravity turned to a completely different technology for their novel payload adapter—phononic crystals. These metamaterials are designed to control, bend or completely block mechanical waves, similar to how photonic crystals manipulate light. The researchers built a prototype that redirects sharp vertical shocks into rotational motion, transferring that kinetic energy from the shaking rocket body into a set of movable aluminum rings.

After the energy is transferred, the shocks lose force, lowering the stress on the satellites' internal systems. Satellites are designed to survive the extreme conditions of a rocket launch, so any technology that reduces their need for structural reinforcement is a welcome development. That, in turn, frees up payload capacity, either cutting launch costs or allowing more useful payload on the satellite itself.

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