Showing posts with label jwst. Show all posts
Showing posts with label jwst. Show all posts

Friday, November 27, 2015

James Webb Space Telescope Begins Mirror Installation


NASA’s James Webb Space Telescope (JWST) – the successor to the Hubble Space Telescope – has hit the final assembly phase milestone via the installation of the first of 18 mirrors on the spacecraft’s backbone structure. All 18 segments are expected to be installed by early next year as JWST prepares for launch in 2018 via an Ariane 5 rocket.

Monday, November 16, 2015

Observing the Icy Moons of the Outer Solar System With the James Webb Space Telescope

Observing Outer Planet Satellites (except Titan) with JWST: Science Justification and Observational Requirements

Authors:

Keszthelyi et al

Abstract:

The James Webb Space Telescope (JWST) will allow observations with a unique combination of spectral, spatial, and temporal resolution for the study of outer planet satellites within our Solar System. We highlight the infrared spectroscopy of icy moons and temporal changes on geologically active satellites as two particularly valuable avenues of scientific inquiry. While some care must be taken to avoid saturation issues, JWST has observation modes that should provide excellent infrared data for such studies.

Saturday, November 07, 2015

Using the James Webb Space Telescope to Study Titan

Titan Science with the James Webb Space Telescope (JWST)

Authors:


Nixon et al

Abstract:

The James Webb Space Telescope (JWST), scheduled for launch in 2018, is the successor to the Hubble Space Telescope (HST) but with a significantly larger aperture (6.5 m) and advanced instrumentation focusing on infrared science (0.6-28.0 μm ). In this paper we examine the potential for scientific investigation of Titan using JWST, primarily with three of the four instruments: NIRSpec, NIRCam and MIRI, noting that science with NIRISS will be complementary. Five core scientific themes are identified: (i) surface (ii) tropospheric clouds (iii) tropospheric gases (iv) stratospheric composition and (v) stratospheric hazes. We discuss each theme in depth, including the scientific purpose, capabilities and limitations of the instrument suite, and suggested observing schemes. We pay particular attention to saturation, which is a problem for all three instruments, but may be alleviated for NIRCam through use of selecting small sub-arrays of the detectors - sufficient to encompass Titan, but with significantly faster read-out times. We find that JWST has very significant potential for advancing Titan science, with a spectral resolution exceeding the Cassini instrument suite at near-infrared wavelengths, and a spatial resolution exceeding HST at the same wavelengths. In particular, JWST will be valuable for time-domain monitoring of Titan, given a five to ten year expected lifetime for the observatory, for example monitoring the seasonal appearance of clouds. JWST observations in the post-Cassini period will complement those of other large facilities such as HST, ALMA, SOFIA and next-generation ground-based telescopes (TMT, GMT, EELT).