NASAs Roman telescope is cruising. Heres a look at the next 100 days.

An artist's rendering of Nancy Grace Roman Space Telescope propelling through space

NASA‘s new Nancy Grace Roman Space Telescope is headed to its frigid space outpost, where it is expected to gather unprecedented data on some of the universe’s biggest mysteries.  

Over the next few months, mission controllers will guide it out into deep space, deploy its hardware, test every system, and tune its vision before it begins major infrared observations of the cosmos.

Following a successful launch on Sunday, Aug. 30, Roman is now flying to a point about 1 million miles from Earth, similar to where the James Webb Space Telescope operates. It will spend roughly three months checking out its systems and instruments before NASA releases its first images in early 2027.

First hours after launch

Right after Roman separated from its SpaceX Falcon Heavy rocket, several maneuvers happened quickly:

That location is called the second sun‑Earth Lagrange point, or L2. It’s a spot in space where the gravity of the sun and Earth, plus Roman’s motion, allows the telescope to maintain a steady position as it orbits the sun.

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100‑day trip to deep space

Roman’s cruise to get to L2 takes about 100 days. During that time, controllers do more than just wait for the spacecraft’s arrival:

“We look at it all with a fine-tooth comb,” said Jeremy Perkins, Roman’s integration and test scientist. “The people that built and tested and delivered Roman are the same folks that are going to make sure it’s working as we expect it to on orbit.”

As Roman travels farther from Earth, it passes beyond the moon’s orbit and settles into a looping path around the L2 point.

Under the hood, Roman is about the size of a tour bus and as heavy as a male killer whale.
Credit: NASA’s Goddard Space Flight Center infographic

Opening the telescope and turning on the cameras

On the way out and near L2, the team starts to wake up the science gear:

At this stage, Roman takes test images. Engineers use these early pictures to check focus, sharpness, and pointing. If the team chooses, they may release some of these images publicly on NASA’s mission blog.  

Three‑month checkout and tweaking

Fortunately, the team doesn’t have to wait for Roman to arrive at L2 before it begins commissioning, that three‑month checkout period. That work can overlap with the journey, said Julie McEnery, Roman’s senior project scientist.

“We can start our science operations before we’ve actually inserted into our orbit,” she said. “You can expect ‘first light‘ sometime before the beginning of next year.”

The three-month commissioning phase will overlap with the spacecraft’s flight to the second sun-Earth Lagrange point, or L2.
Credit: NASA’s Goddard Space Flight Center infographic

During this time, teams will:

Scientists also run small “practice surveys” on limited areas of sky. These rehearsals make sure Roman and its software can handle the full‑size surveys planned for the main five-year mission.

“We’re using this early time, this commissioning time, to shake out all the techniques, to find the gotchas, find the bugs, and basically do the early calibrations we need to do so that we’re ready when the torrent of data starts,” Perkins said. 

First images and the start of the mission

Once Roman passes its early tests and calibrations, NASA plans to release the first glamor shots in January 2027. These pictures will highlight what Roman does best, such as:

The Roman Space Telescope will orbit the sun 1 million miles away from Earth so that the planet’s atmosphere doesn’t obscure the view.
Credit: NASA’s Goddard Space Flight Center infographic

After the checkout phase, Roman moves into its five‑year primary mission, rotating through three main tasks:

  1. Mapping more than a billion galaxies to study dark matter and dark energy.

  2. Watching the same patches of sky over and over to catch changing events like exploding stars.

  3. Staring toward the crowded center of our galaxy to find planets, including free‑floating “rogue” worlds that don’t orbit a star.

Roman carries enough fuel for at least those first five years. Engineers also built it so a future mission could refuel it in space, which could keep the telescope working well beyond its original lifetime if that technology becomes available.

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