What is Helium and Why is it Used in Rockets?

India's Geosynchronous Satellite Launch Vehicle Mk III-M1 blasts off carrying Chandrayaan-2, from the Satish Dhawan Space Centre at Sriharikota, India, July 22, 2019. REUTERS/P. Ravikumar/File Photo Purchase Licensing Rights
India's Geosynchronous Satellite Launch Vehicle Mk III-M1 blasts off carrying Chandrayaan-2, from the Satish Dhawan Space Centre at Sriharikota, India, July 22, 2019. REUTERS/P. Ravikumar/File Photo Purchase Licensing Rights
TT

What is Helium and Why is it Used in Rockets?

India's Geosynchronous Satellite Launch Vehicle Mk III-M1 blasts off carrying Chandrayaan-2, from the Satish Dhawan Space Centre at Sriharikota, India, July 22, 2019. REUTERS/P. Ravikumar/File Photo Purchase Licensing Rights
India's Geosynchronous Satellite Launch Vehicle Mk III-M1 blasts off carrying Chandrayaan-2, from the Satish Dhawan Space Centre at Sriharikota, India, July 22, 2019. REUTERS/P. Ravikumar/File Photo Purchase Licensing Rights

Two NASA astronauts aboard Boeing's (BA.N) Starliner will stay on the International Space Station for months, because of a faulty propulsion system whose problems included helium leaks. Back on Earth, SpaceX's Polaris Dawn mission has been delayed because of helium issues on ground equipment.

Boeing's Starliner spacecraft landed uncrewed in a New Mexico desert late on Friday.

Past missions have that have been affected by pesky helium leaks include ISRO's Chandrayaan 2 and ESA's Ariane 5. Why do spacecraft and rockets use helium, and what is so tricky about it?

WHY HELIUM?

Helium is inert - it does not react with other substances or combust - and its atomic number is 2, making it the second lightest element after hydrogen.

Rockets need to achieve specific speeds and altitude to reach and maintain orbit. A heavier rocket requires more energy, not only increasing fuel consumption but also needing more powerful engines, which are more expensive to develop, test, and maintain.

Helium also has a very low boiling point (-268.9°C or -452°F), allowing it to remain a gas even in super-cold environments, an important feature because many rocket fuels are stored in that temperature range.

The gas is non-toxic, but cannot be breathed on its own, because it displaces the oxygen humans need for respiration.

HOW IS IT USED?

Helium is used to pressurize fuel tanks, ensuring fuel flows to the rocket's engines without interruption; and for cooling systems.

As fuel and oxidiser are burned in the rocket's engines, helium fills the resulting empty space in the tanks, maintaining the overall pressure inside.

Because it is non-reactive, it can safely mingle with the tanks' residual contents.

IS IT PRONE TO LEAKS?

Helium’s small atomic size and low molecular weight mean its atoms can escape through small gaps or seals in storage tanks and fuel systems.

But because there is very little helium in the Earth's atmosphere, leaks can be easily detected - making the gas important for spotting potential faults in a rocket or spacecraft's fuel systems.

In May, hours before Boeing's Starliner spacecraft made an initial attempt to launch its first astronaut crew, tiny sensors inside the spacecraft detected a small helium leak on one of Starliner's thrusters that NASA spent several days analysing before deeming it low-risk, according to Reuters.

Additional leaks were detected in space after Starliner launched in June, contributing to NASA's decision to bring Starliner back to Earth without its crew.

The frequency of helium leaks across space-related systems, some engineers say, have highlighted an industry-wide need for innovation in valve design and more precise valve-tightening mechanisms.

ARE THERE ALTERNATIVES?

Some rocket launches have experimented with gases such as argon and nitrogen, which are also inert and can sometimes be cheaper. Helium, however, is much more prevalent in the industry.

Europe's new Ariane 6 rocket ditched the helium of its predecessor Ariane 5 for a novel pressurization system that converts a small portion of its primary liquid oxygen and hydrogen propellants to gas, which then pressurizes those fluids for the rocket engine.

That system failed in space during the final phase of Ariane 6's otherwise successful debut launch in July, adding to the global rocket industry's long list of pressurization challenges.



Images Show China Building Huge Fusion Research Facility

A satellite photo shows a new large-scale laser fusion research center in Mianyang, China. Courtesy of Planet Labs
A satellite photo shows a new large-scale laser fusion research center in Mianyang, China. Courtesy of Planet Labs
TT

Images Show China Building Huge Fusion Research Facility

A satellite photo shows a new large-scale laser fusion research center in Mianyang, China. Courtesy of Planet Labs
A satellite photo shows a new large-scale laser fusion research center in Mianyang, China. Courtesy of Planet Labs

China appears to be building a large laser-ignited fusion research center in the southwestern city of Mianyang, experts at two analytical organisations say, a development that could aid nuclear weapons design and work exploring power generation.

Satellite photos show four outlying "arms" that will house laser bays, and a central experiment bay that will hold a target chamber containing hydrogen isotopes the powerful lasers will fuse together, producing energy, said Decker Eveleth, a researcher at US-based independent research organisation CNA Corp.

It is a similar layout to the $3.5 billion US National Ignition Facility (NIF) in Northern California, which in 2022 generated mceore energy from a fusion reaction than the lasers pumped into the target - "scientific breakeven".

Eveleth, who is working with analysts at the James Martin Center for Nonproliferation Studies (CNS), estimates the experiment bay at the Chinese facility is about 50% bigger than the one at NIF, currently the world's largest.

The development has not been previously reported.

"Any country with an NIF-type facility can and probably will be increasing their confidence and improving existing weapons designs, and facilitating the design of future bomb designs without testing" the weapons themselves, said William Alberque, a nuclear policy analyst at the Henry L. Stimson Center.

China's foreign ministry referred Reuters questions to the "competent authority". China's Science and Technology Ministry did not respond to a request for comment.

The US Office of the Director of National Intelligence declined to comment.

In November 2020, US arms control envoy Marshall Billingslea released satellite images he said showed China's buildup of nuclear weapons support facilities. It included images of Mianyang showing a cleared plot of land labeled "new research or production areas since 2010".

That plot is the site of the fusion research center, called the Laser Fusion Major Device Laboratory, according to construction documents that Eveleth shared with Reuters.

NUCLEAR TESTING

Igniting fusion fuel allows researchers to study how such reactions work and how they might one day create a clean power source using the universe's most plentiful resource, hydrogen. It also enables them to examine nuances of detonation that would otherwise require an explosive test.

The Comprehensive Nuclear Test Ban Treaty, of which both China and the United States are signatories, prohibits nuclear explosions in all environments.

Countries are allowed "subcritical" explosive tests, which do not create nuclear reactions. Laser fusion research, known as inertial confinement fusion, is also allowed.

Siegfried Hecker, a senior fellow at the Freeman Spogli Institute for International Studies and the former director of Los Alamos National Laboratory, another key US nuclear weapons research facility, said that with testing banned, subcritical and laser fusion experiments were crucial to maintaining the safety and reliability of the US nuclear arsenal.

But for countries that have not done many test detonations, he said - China has tested 45 nuclear weapons, compared with 1,054 for the United States - such experiments would be less valuable because they do not have a large data set as a base.

"I don't think it would make an enormous difference," Hecker said. "And so ... I'm not concerned about China getting ahead of us in terms of their nuclear facilities."

Other nuclear powers, such as France, the United Kingdom and Russia, also operate inertial confinement fusion facilities.

The size of those facilities reflects the amount of power designers estimate is needed to apply to the target to achieve ignition, said Omar Hurricane, chief scientist for the inertial confinement fusion programme at Lawrence Livermore National Laboratory, which operates NIF.

"These days, I think you probably can build a facility that's of equal energy or even more energetic (than NIF) and a smaller footprint," Hurricane said. But, he added, at too small a scale, experimental fusion does not appear possible.

That other countries operate laser-driven fusion research centers is not a cause for alarm in itself, Hurricane said.

"It's kind of hard to stop scientific progress and hold information back," he said. "People can use science for different means and different ends, and that's a complicated question."