The James Webb Space Telescope

Космический телескоп Джеймса Уэбба
Jonathan P. Gardner, John C. Mather, Mark Clampin, René Doyon, Matthew A. Greenhouse, Heidi B. Hammel, J. B. Hutchings, P. Jakobsen, S. J. Lilly, Knox S. Long, J. I. Lunine, M. J. McCaughrean, Matt Mountain, John Nella, G. H. Rieke, Marcia Rieke, Hans‐Walter Rix, Eric P. Smith, G. Sonneborn, M. Stiavelli, H. S. Stockman, Rogier A. Windhorst, Gillian Wright
2006-04-01

James Webb Space Telescopeassembly of galaxiesfirst light and reionizationinfrared space observatoryprotoplanetary systems
The James Webb Space Telescope (JWST) is a large (6.6 m), cold (<50 K), infrared (IR)-optimized space observatory that will be launched early in the next decade into orbit around the second Earth–Sun Lagrange point. The observatory will have four instruments: a near-IR camera, a near-IR multiobject spectrograph, and a tunable filter imager will cover the wavelength range, 0.6 < ; < 5.0 μ m, while the mid-IR instrument will do both imaging and spectroscopy from 5.0 < ; < 29 μ m. The JWST science goals are divided into four themes. The key objective of The End of the Dark Ages: First Light and Reionization theme is to identify the first luminous sources to form and to determine the ionization history of the early universe. The key objective of The Assembly of Galaxies theme is to determine how galaxies and the dark matter, gas, stars, metals, morphological structures, and active nuclei within them evolved from the epoch of reionization to the present day. The key objective of The Birth of Stars and Protoplanetary Systems theme is to unravel the birth and early evolution of stars, from infall on to dust-enshrouded protostars to the genesis of planetary systems. The key objective of the Planetary Systems and the Origins of Life theme is to determine the physical and chemical properties of planetary systems including our own, and investigate the potential for the origins of life in those systems. Within these themes and objectives, we have derived representative astronomical observations. To enable these observations, JWST consists of a telescope, an instrument package, a spacecraft, and a sunshield. The telescope consists of 18 beryllium segments, some of which are deployed. The segments will be brought into optical alignment on-orbit through a process of periodic wavefront sensing and control. The instrument package contains the four science instruments and a fine guidance sensor. The spacecraft provides pointing, orbit maintenance, and communications. The sunshield provides passive thermal control. The JWST operations plan is based on that used for previous space observatories, and the majority of JWST observing time will be allocated to the international astronomical community through annual peer-reviewed proposal opportunities.
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Its instruments provide imaging, spectroscopy, multiobject spectroscopy, and tunable-filter observations spanning approximately 0.6–29 μm.
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JWST is a 6.6-meter, cryogenically cooled, infrared-optimized space observatory designed for operation near the second Earth–Sun Lagrange point.
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JWST targets four major science themes: first light and reionization, galaxy assembly, star and protoplanetary-system formation, and planetary systems and the origins of life.
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The observatory integrates a segmented telescope, four science instruments, a fine guidance sensor, spacecraft systems, and a sunshield to enable its planned observations.
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The telescope uses 18 deployable beryllium segments that will be aligned in orbit through periodic wavefront sensing and control.

The James Webb Space Telescope (JWST) observatory

Its infrared astronomical capabilities, scientific objectives, and observatory design and operation for studying the early universe, galaxy evolution, star and planetary-system formation, and planetary-system properties

Publication Details
Publication Date
2006-04-01
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Authors
Jonathan P. Gardner
John C. Mather
Mark Clampin
René Doyon
Matthew A. Greenhouse
Heidi B. Hammel
J. B. Hutchings
P. Jakobsen
S. J. Lilly
Knox S. Long
J. I. Lunine
M. J. McCaughrean
Matt Mountain
John Nella
G. H. Rieke
Marcia Rieke
Hans‐Walter Rix
Eric P. Smith
G. Sonneborn
M. Stiavelli
H. S. Stockman
Rogier A. Windhorst
Gillian Wright
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