Posted on 03/17/2022 6:15:34 AM PDT by Red Badger

The single infrared image of 2MASS J17554042+6551277, with a red filter applied to optimize visual contrast. Image: NASA/STScI
The Webb Space Telescope has passed a critical milestone in its commissioning phase, as mission controllers fully aligned the observatory’s primary imager.
Before we get into the details of today’s announcement, take a moment to bask in the glory of this new Webb image. The star is called 2MASS J17554042+6551277, and mission controllers have been using it to align the space telescope’s 18 hexagonal mirrors. But just look at it—look at how sharp it looks. And check out all those galaxies in the background. Unreal, especially considering it’s just a “test” image.
“This is the future from now on—whatever we see will be in the deep field,” said Jane Rigby, Webb operations project scientist, at NASA press conference held earlier today. “The only way for us to make this image any sharper would be to make a bigger mirror,” she added.
Rigby and her colleagues gathered to discuss a major milestone in the alignment process, the end of the fine phasing stage on March 11. The telescope’s primary imager—the Near-Infrared Camera—is fully aligned, and all 18 segments are now working as a single infrared eye that scientists will use to gaze upon the cosmos. More alignments are required, including work with the Near-Infrared Spectrograph, the Mid-Infrared Instrument, the Near InfraRed Imager, and the Slitless Spectrograph, but Webb is already blowing everyone away with its performance.

In mid-February, engineers brought 18 dots of starlight into a coherent pattern.Image: NASA/STScI/J. DePasquale
“This is one of the most magnificent days in my career at NASA,” Thomas Zurbuchen, associate administrator for science, said at the press conference. “Today we can announce that the optics will perform according to expectations, if not better.”
Webb’s 21-foot 4-inch (6.5-meter) mirror had to be folded up for launch and then aligned to precision at the nanometer scale. Plenty of work remains, such as the cooling of the telescope, further instrument preparations, and those aforementioned alignments, but Webb is on track to enter into its science phase in July. At that stage, the commissioning team will turn the telescope over to the science community and view the infrared universe at resolutions not seen before, according to Zurbuchen. He said the team is nearing the top of the mountain, “but the sleepless nights are now behind us.”
During the press conference, I asked the panel if any critical points of failure remain or if there’s still potential for things to go off the rails. Rigby echoed the comments made by Zurbuchen, saying the heavy lifting has ended, and “now if things don’t work” it will only result in the “partial degradation of science.” That said, the telescope’s temperature is something she’s still looking into, as Webb continues to cool down. Marshall Perrin, Webb deputy telescope scientist, chimed in, saying some subsystems might not work at some point, “but we have lots of redundancy in electrical systems” and “we’re in very good shape.”

\ This shot of Webb’s mirrors was captured using a specialized “pupil imaging lens” inside of the NIRCam instrument.Image: NASA
Lee Feinberg, Webb optical telescope element manager, said the optical performance of the telescope is absolutely phenomenal and “is good if not better than our most optimistic predictions.” The success of the mission so far shows that “we’ve pioneered a new way to build space telescopes,” an achievement that “will be of benefit to the next generation.” For Perrin, the biggest surprise was how closely the performance of Webb matched models and predictions on the ground. The images are focused together as “finely as the laws of physics will allow” for a telescope of this size, he said.
The star in the new Webb image was “plucked from obscurity,” said Rigby, a “nice boring star with the right amount of brightness.” The image was captured in infrared and then applied through a red filter to optimize visual contrast. As for the spiky appearance of the star, that’s the result of diffraction.
Marshall said the team is “almost exactly on schedule.” Rigby said they’re on track to meet the “very demanding scientific requirements” of the mission, but they’ve refrained from collecting any science data. Rigby said more than 1,000 proposals were submitted by astronomers requesting access to Webb, with only the “best ones” being picked, adding that the first batch of targets have been selected but not disclosed to the public. She said the first cycle of science will see the telescope peer back in time a few million years after the Big Bang, and that closer targets, such as the moons of Jupiter and Saturn and the Trojan Asteroids, will also be studied by Webb at some future point.
Launched on December 25, 2021, the $10 billion Webb telescope is a joint mission of NASA, the European Space Agency, and the Canadian Space Agency. The telescope finally made it to space after many years of delays, and it’s now apparently working beyond expectations. Webb will provide a new lens for studying the oldest stars and galaxies, the atmospheres of distant exoplanets, and other celestial phenomena.
Awesome. Good news!
Ever notice how they never try to peer before the Big Bang?!
LoL! Maybe the next one will be called the “Chelsea”.
Close ups of Uranus?
But it was weird because a couple of guys I conferenced with at the NSA knew little about the telecom specialty I talked about. I got strange questions. So I thought: what use was my research to them?
Later when I left the firm a few months later, I figured it out. Because he spoke Russian, my boss got a job as an undercover agent I guessed. And the meeting at the NSA was a cover for him to receive a $95K fee for "services" when normally our services cost never over $30K.
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Something I've always been curious about. What good is a optical telescope for viewing galaxies millions of light years away?
Below is the best shot I could find of Jupiter taken by the Hubble telescope. I would think a galaxy so far away would be smaller than a gnat's a$$ on the surface of Jupiter. So I'm confused.
First, Galaxies are HUGE. Millions of times more large than Jupiter.
So, even at great distances we can still see them as spirals, globular clusters, etc.
The only drawback is the farthest galaxies are so red shifted that they can no longer be seen from Earth in VISIBLE LIGHT and can be seen ONLY IN INFRARED LIGHT, thus the need for the Webb...................
Given your “spherical” universe, why are there only a few galaxies that are blue shifted unless our local group is at/near the center of the universe?
I somewhat get the concept of Hubble expansion, but can’t get passed the idea that it describes the universe as an envelope as in the balloon analogies used to explain it. But a spherical universe, to me, would be better explained as a snow globe (in zero gravity) which would then show many blue shift particles at any point within the sphere
Perhaps snow globe would not be a good description since the particles move randomly. I was trying to portray a sphere in which the galaxies populated the entirety of its volume.
Everything is in motion, but moving in all directions AWAY from a local center where the ‘Big Bang’ started.............
Look, I’m sorry to bother you with this, but at this time of day I recently start to have trouble concentrating. Not sure I can have an intelligent conversation as my previous posts are starting to show, so please feel no obligation to answer, FRiend.
No problemo!.................
Interesting...
That would be the coolest thing ever actually.
take another hit and keep pondering!
sorry to be the fart in the car, but is this what the standard is for space imagery now? I cant see how the long streaks can be considered “detailed” or cutting edge... they do nothing but take away from the entire image. while some think its cool...
If the observable universe is 13.8 bln light years but the actual universe is 85 bln light years, then we may only see the red shift in our current revolution around the insanely massive black hole at the center of the universe.
We solved it my friend.
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