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: Halley's Comet captures the imagination in a way that few other astronomical objects do. When it last made its approach toward the sun (admittedly when this author, who is now middle-aged, was 1 year old in 1986), humanity responded with a fleet of spacecraft known informally as the "Halley Armada." Yet because of the comet's trajectory, those spacecraft were only able to visit their target for a fleeting few hours, leaving planetary scientists wanting more.
Now, a new paper by researchers at Khalifa University and their co-authors, available on the arXiv preprint server, describes a mission plan that would allow a spacecraft to rendezvous with this best-known comet for the first time. To be fair, getting there will still not be easy. Halley's Comet has a retrograde orbit and is extremely inclined at 162°.
Such a trajectory would require a massive amount of energy to match, which is why the spacecraft in the Halley Armada, such as ESA's Giotto and the Soviet Vega probes, only performed flybys and were able to collect data in the comet's halo for just a few hours, leaving many unanswered questions about the comet's surface. After the excitement of even those brief visits, various groups around the world started planning a rendezvous mission. However, they relied on speculative technologies, such as high-power nuclear-electric propulsion systems or super-heavy launchers that hadn't been developed yet—and still haven't been fully vetted.
So the authors decided to take a different tack—using not one but two planetary gravitational assists. A traditional, single gravity assist wouldn't fit the bill alone, as many previous mission architectures had discovered. However, by dancing around the gravity wells of both Jupiter and Saturn, the authors found a sweet spot where they could use simple low-power Hall-effect thrusters, which crucially already exist, to catch up to the comet in situ and still have enough "dry" mass left over to do some interesting science.
First, the craft would launch with around 2,000 kg (4,400 pounds) of instrumentation and propellant and conduct a slow, continuous burn of its Hall-effect thruster, powered by a flight-proven radioisotope thermal generator (RTG). A flyby at Jupiter would offer the first speed boost, launching the spacecraft toward Saturn and its rings. A subsequent gravity assist at Saturn would alter the spacecraft's orbital plane to match Halley's high inclination while not requiring it to burn through any additional chemical propellant.
It would reach Halley's Comet in 2060, around a year before its next perihelion and safely outside Mars' orbit. Getting nearby so early means the spacecraft would be ready to watch the fireworks as the cometary nucleus heats up during its approach to the sun. And it would be able to do so with plenty of scientific instrumentation—the mission architecture budgets for 750 kg (1,650 pounds) of payload for science operations.
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