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posted by CoolHand on Thursday June 22 2017, @03:17PM   Printer-friendly
from the new-vacay-home dept.

The Kepler space telescope has found 219 new planet candidates, 10 of which are "Earth-like":

NASA's Kepler space telescope team has released a mission catalog of planet candidates that introduces 219 new planet candidates, 10 of which are near-Earth size and orbiting in their star's habitable zone, which is the range of distance from a star where liquid water could pool on the surface of a rocky planet.

This is the most comprehensive and detailed catalog release of candidate exoplanets, which are planets outside our solar system, from Kepler's first four years of data. It's also the final catalog from the spacecraft's view of the patch of sky in the Cygnus constellation.

With the release of this catalog, derived from data publicly available on the NASA Exoplanet Archive, there are now 4,034 planet candidates identified by Kepler. Of which, 2,335 have been verified as exoplanets. Of roughly 50 near-Earth size habitable zone candidates detected by Kepler, more than 30 have been verified.

Also at Space.com, New Scientist, and CNN.

Previously: Kepler Exoplanet Results Briefing on June 19th, Conference From 19th-23rd


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  • (Score: 2) by takyon on Thursday June 22 2017, @10:53PM

    by takyon (881) <takyonNO@SPAMsoylentnews.org> on Thursday June 22 2017, @10:53PM (#529692) Journal

    http://www.tmt.org/science-case [tmt.org]

    A 30-meter telescope, operating in wavelengths ranging from the ultraviolet to the mid-infrared, is an essential tool to address questions in astronomy ranging from understanding star and planet formation to unraveling the history of galaxies and the development of large-scale structure in the universe.

    [...] In addition to providing nine times the collecting area of the current largest optical/infrared telescopes (the 10-meter Keck Telescopes), TMT will be used with adaptive optics systems to allow diffraction-limited performance, i.e., the best that the optics of the system can theoretically provide. This will provide unparalleled high-sensitivity spatial resolution more than 12 times sharper than what is achieved by the Hubble Space Telescope. For many applications, diffraction-limited observations give gains in sensitivity that scale like the diameter of the mirror to the fourth power, so this increase in size has major implications.

    [...] Spectroscopic exploration of the “dark ages” when the first sources of light and the first heavy elements in the universe formed and when the universe, which had recombined at redshift (z) ~1000, became re-ionized by these sources of light. The nature of “first-light” objects and their effects on the young universe are among the outstanding open questions in astrophysics. Here TMT and the James Webb Space Telescope (JWST) will work hand-in-hand, with JWST providing the targets for detailed study with TMT’s spectrometers.

    https://en.wikipedia.org/wiki/James_Webb_Space_Telescope#Infrared_astronomy [wikipedia.org]

    Since water vapor and carbon dioxide in the Earth's atmosphere strongly absorbs most infrared, ground-based infrared astronomy is limited to narrow wavelength ranges where the atmosphere absorbs less strongly. Additionally, the atmosphere itself radiates in the infrared, often overwhelming light from the object being observed. This makes space the ideal place for infrared observation.

    Adaptive optics is a game changer, but it can only take you so far.

    TMT was planned to begin operating in 2022 but that has been delayed due to the construction/permiting controversy. JWST is designed to last 5-10 years and begins collecting data around early 2019. There may be less overlap than you expect between the missions.

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