SPITZER SPACE TELESCOPE

Similar documents
Spitzer Space Telescope

Benefits of Infrared. The Spitzer Space Telescope. Instruments/Components of Spitzer. Cryostat. Infrared Telescope

The Space InfraRed Telescope Facility - SIRTF SIRTF an Overview

Sun Shield. Solar Paddle

Introduction to SDSS -instruments, survey strategy, etc

Infrared Astronomical Satellite IRAS. Dr. Dusan Petrac

Properties of Thermal Radiation

Scientific Capability of the James Webb Space Telescope and the Mid-InfraRed Instrument

James Webb Space Telescope Cycle 1 Call for Proposals

Formation and Evolution of Planetary Systems

Exoplanet Detection and Characterization with Mid-Infrared Interferometry

Baffle Telescope Tube. Bus Module Bus MLI

ASTRO-F SURVEY AS INPUT CATALOGUES FOR FIRST. Takao Nakagawa

James Webb Space Telescope (JWST)

Spitzer Space Telescope Current Status and Future Plans

Herschel Mission Overview and Key Programmes

Searching for Other Worlds

9/13/18. ASTR 1040: Stars & Galaxies. Topics for Today and Tues. Nonvisible Light X-ray, UV, IR, Radio. SPITZER Infrared Telescope

Infrared Astronomy. Generally ~ 1μm (10,000 Å) few hundred μm

Using Spitzer to Observe the Solar System

Herschel and Planck: ESA s New Astronomy Missions an introduction. Martin Kessler Schloss Braunshardt 19/03/2009

The next-generation Infrared astronomy mission SPICA Space Infrared Telescope for Cosmology & Astrophysics

Foundations of Astronomy 13e Seeds. Chapter 6. Light and Telescopes

MIRI The Mid-InfraRed Instrument for JWST The James Webb Space Telescope

The Infrared Universe as Seen by Spitzer and Beyond. February 20, 2007

SOFIA Stratospheric Observatory For Infrared Astronomy

Educational Product Teachers Grades K-12 EG MSFC

ASTR-1010: Astronomy I Course Notes Section VI

Cryogenic Detectors for Infrared Astronomy: the Single Aperture Far-InfraRed (SAFIR) Observatory

Gaia ESA's billion star telescope

1. Star: A object made of gas found in outer space that radiates.

TEK 8 Test Review. 15. Galaxies are best described as -

The James Webb Space Telescope Overview

Earth Space Systems. Semester 1 Exam. Astronomy Vocabulary

Why Go To Space? Leon Golub, SAO BACC, 27 March 2006

Some References. Measuring the Universe - G. Reike, Chapt. 3.2, 3.4, 3.5

The SPICA infrared space observatory project status

Todays Topics 3/19/2018. Light and Telescope. PHYS 1403 Introduction to Astronomy. CCD Camera Makes Digital Images. Astronomical Detectors

Development of the Space Infrared Telescope Facility (SIRTF) David B. Gallagher*, William R. Irace*, Michael W. Werner*

FIRST carrier spacecraft

What s Up in Space? Dean W McCall, Ed.D.

The Porcupine Survey: Spitzer Warm Mission Followup of WISE Brown Dwarf Candidates

1 Lecture, 2 September 1999

Outline HST HST. HST& JWST CARMA and ALMA SOFIA Chandra Blackbodies. Doppler Effect. Homework #5 was due today.

1/29/14. Topics for Today. UV, X-rays and Gamma-rays. Atmospheric Absorption of Light. Why bother with other light? ASTR 1040: Stars & Galaxies

The Stars. Chapter 14

Spitzer s View of Planetary Nebulae

The SPICA Coronagraph

The Near-Infrared Spectrograph on JWST: Killer Science Enabled by Amazing Technology. Jason Tumlinson STScI Hubble Science Briefing Nov.

Telescopes 3 Feb. Purpose

Kepler, a Planet Hunting Mission

Grand Canyon 8-m Telescope 1929

Reading Clicker Q. Spectroscopy analyzing the light. What light gets through? Instruments in the Focal Plane. ASTR 1040 Accel Astro: Stars & Galaxies

Astro 201: Sept. 23, 2010

Directed Reading. Section: Viewing the Universe THE VALUE OF ASTRONOMY. Skills Worksheet. 1. How did observations of the sky help farmers in the past?

Tools of Astronomy Tools of Astronomy

Optics and Telescope. Chapter Six

Science with the New Hubble Instruments. Ken Sembach STScI Hubble Project Scientist

Universe Now. 9. Interstellar matter and star clusters

Light and Telescopes

Midterm Results. The Milky Way in the Infrared. The Milk Way from Above (artist conception) 3/2/10

Synergy between the Thirty Meter Telescope and the James Webb Space Telescope: When > 2.

Chapter 26 Section 1 pages Directed Reading Section: Viewing the Universe

TMT Overview Telescope / Instruments / Sites

IRS SPECTRA OF SOLAR-TYPE STARS: A SEARCH FOR ASTEROID BELT ANALOGS

LEARNING ABOUT THE OUTER PLANETS. NASA's Cassini spacecraft. Io Above Jupiter s Clouds on New Year's Day, Credit: NASA/JPL/University of Arizona

Astronomical Experiments for the Chang E-2 Project

International Olympiad on Astronomy and Astrophysics (IOAA)

WISE - the Wide-field Infrared Survey Explorer

FMOS. A Wide-field Multi-Object Infra-red Spectrograph for the Subaru Telescope. David Bonfield, Gavin Dalton

Opaque Atmosphere. Astronomy 210. Question. Why would it be useful to place telescopes in. Section 1 MWF Astronomy Building. space?

HST AND BEYOND EXPLORATION AND THE SEARCH FOR ORIGINS: A VISION FOR ULTRAVIOLET- OPTICAL-INFRARED SPACE ASTRONOMY

Test Name: 09.LCW.0352.SCIENCE.GR Q1.S.THEUNIVERSE-SOLARSYSTEMHONORS Test ID: Date: 09/21/2017

AST 2010: Descriptive Astronomy EXAM 2 March 3, 2014

Section 25.1 Exploring the Solar System (pages )

Large Area Imaging Survey of Near-Infrared Sky with Korean Compact Space Telescopes

The Milky Way Galaxy

CHAPTER 28 STARS AND GALAXIES

Foundations of Astrophysics

Coriolis Effect - the apparent curved paths of projectiles, winds, and ocean currents

Astro 1010 Planetary Astronomy Sample Questions for Exam 3

Escaping the Zodi Light! Harvey Moseley! NASA/GSFC! The View from 5 AU! March 26, 2010!

Status of the James Webb Space Telescope (JWST) Observatory

Notes: Infrared Processing and Analysis Center (IPAC). IPAC was founded to process IRAS data and has been expanded to other space observatories.

Announcement of Opportunity AKARI (ASTRO-F)

CASE/ARIEL & FINESSE Briefing

The JWST mission: status and overview

Science In Action 9 Unit 5 Space Exploration Summary of Key Concepts and Review Questions Booklet

Planet Detection. AST 105 Intro Astronomy The Solar System

Copyright 2014 Edmentum - All rights reserved.

Spitzer Space Telescope Calibration Strategy: The Use of Asteroids

Astronomy 102: Stars and Galaxies Examination 3 April 11, 2003

PHYS 160 Astronomy Test #2 Fall 2017 Version A

Which type of electromagnetic wave has a wavelength longer than that of yellow light? A. Infrared radiation C. X-rays B. Gamma Rays D.

You are here! The Solar System! Jo-Anne Brown

Decadal Survey: Summary of the ExoPAG s Response to Paul Hertz s Charge Regarding Large Missions"

EarthFinder A NASA-selected Probe Mission Concept Study for input to the 2020 Astrophysics Decadal Survey

Spectroscopy for planetary upper atmospheres きょくたん

Chapter 26. Objectives. Describe characteristics of the universe in terms of time, distance, and organization

Introduction of near-infrared (NIR) spectroscopy. Ken-ichi Tadaki (NAOJ)

Transcription:

SPITZER SPACE TELESCOPE

The Rationale for Infrared Astronomy reveal cool states of matter explore the hidden Universe provide access to many spectral features probe the early life of the cosmos

WANT TO SEE... Formation of Planets and Stars Origin of Energetic Galaxies and Quasars Spectra of Luminous Galaxies Distribution of Matter and Galaxies Comets, Primordial Solar System Planetary Debris Disks Protostellar Winds Brown Dwarf Surveys Deep 10 to 100 Micron Surveys Galactic Halos and Missing Mass Formation and Evolution of Galaxies Protogalaxies

OVERVIEW Recent History Innovations Clever Choice of Orbit Cryogenic Architecture Technology Telescope Multiple Instrument Chamber InfraRed Array Camera InfraRed Spectrograph Multiband Imaging Photometer Outer Shell Final Notes

DE EVOLUTION OF SPITZER

Innovations: Clever Choice of Orbit An important breakthrough in the redesign of Spitzer was to abandon the idea of placing the observatory into Earth orbit and instead to insert it into an Earth trailing heliocentric orbit.

Innovations: Clever Choice of Orbit A consequential benefit of the solar orbit is that Spitzer will have a large instantaneous view of the celestial sky....the Observatory cannot point closer than 80 degrees in the direction of the Sun, in order to minimize the thermal heating of the telescope by solar radiation. it cannot point more than 120 degrees away from the direction of the Sun, because of need to illuminate the solar panels and produce electricity to power the Observatory.

Spitzer Sky Visibility in ecliptic (top), equatorial (middle), and Galactic (bottom) celestial coordinates. About a third of the sky will be instantaneously visible to Spitzer at any given time. This broad window on the sky will simplify scheduling and operations of Spitzer, and will allow it to achieve very high astronomical observing efficiency.

Innovations: Cryogenic Architecture Unlike IRAS and ISO, Spitzer adopts an innovative "warm launch" cryogenic architecture This innovative launch architecture, combined with 360 liters of liquid helium, yields an estimated mission lifetime of about 5 years IRAS used 520 liters of cryogen during its 10 month mission and ISO used 2140 liters for to achieve a mission lifetime of nearly 2.5 years

Spitzer Technology Overview

The Cryo Telescope Assembly, shown in blue, is cooled to within a few degrees above absolute zero with liquid helium. The warmer spacecraft, shown in red, is uncooled.

Spitzer's Telescope a lightweight reflector of Ritchey Chrétien (less than 50 kg ) has an 85 cm diameter aperture all of its parts, except for the mirror supports, are made of light weight beryllium (because of its low heat capacity at very low temperatures ) attached to the top of the vapor cooled cryostat vacuum shell

Two views of the assembled telescope (Ball Aerospace)

Spitzer's Multiple Instrument Chamber contains the cold parts of Spitzer's three science instruments, IRAC, IRS, and MIPS, as well as the pointing calibration reference sensor built to be so tight that no light can get through it except that which is allowed to be detected directly by the instruments

Spitzer's Infrared Array Camera provides imaging capabilities at near and mid infrared wavelengths a four channel camera that provides simultaneous 5.12 x 5.12 arcmin images at 3.6, 4.5, 5.8, and 8 microns Each of the four detector arrays in the camera are 256 x 256 pixels in size two short wavelength channels are imaged by composite detectors made from indium and antimony long wavelength channels use silicon detectors that have been specially treated with arsenic

Spitzer's Infrared Spectrograph provides both high and low resolution spectroscopy at mid infrared wavelengths has four separate modules: a low resolution, short wavelength mode covering the 5.3 14 micron interval; a high resolution, short wavelength mode covering 10 19.5 microns; a low resolution, long wavelength mode for observations at 14 40 microns; a high resolution, long wavelength mode for 19 37 microns Each module has its own entrance slit to let infrared light in shorter wavelength silicon detectors are treated with arsenic; the longer wavelength silicon detectors are treated with antimony

Spitzer's Multiband Imaging Photometer has three detector arrays a 128 x 128 array for imaging at 24 microns is composed of silicon, specially treated with arsenic a 32 x 32 array for imaging at 70 microns a 2 x 20 array for imaging at 160 microns both use germanium, treated with gallium 32 x 32 array will also take spectra from 50 100 microns MIPS field of view varies from about 5x5 arcmin at the shortest wavelength to about 0.5x5 arcmin at the longest wavelength

Spitzer's CTA Outer Shell made up of: a dust cover, outer shield (cooled by helium vapor) thermal shields (which block radiation from space) solar panels shell keeps exterior heat from reaching the telescope and instuments by radiating it out into cold space

Lyman Spitzer, Jr. one of the 20th century's great scientists made major contributions in the areas of stellar dynamics, plasma physics, thermonuclear fusion, and space astronomy was the first person to propose the idea of placing a large telescope in space and was the driving force behind the development of the Hubble Space Telescope.

The beginning of the end, Just long enough to keep you running, and why? Heaven only knows! The beginning, of the end, the beginning of the end, It's all a vicious circle and the race is run again.