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© 2007 Pearson Prentice Hall This work is protected by United States copyright laws and is provided solely for the use of instructors in teaching their courses and assessing student learning. Dissemination or sale of any part of this work (including on the World Wide Web) will destroy the integrity of the work and is not permitted. The work and materials from it should never be made available to students except by instructors using the accompanying text in their classes. All recipients of this work are expected to abide by these restrictions and to honor the intended pedagogical purposes and the needs of other instructors who rely on these materials. Lecture Outlines Chapter 14 Astronomy:  A Beginner’s Guide to the Universe 5 th  Edition Chaisson / McMillan
Chapter 14 The Milky Way Galaxy
Units of Chapter 14 Our Parent Galaxy Measuring the Milky Way Galactic Structure The Formation of the Milky Way Galactic Spiral Arms The Mass of the Milky Way Galaxy The Galactic Center
14.1 Our Parent Galaxy From Earth, see few stars when looking   out   of galaxy (red arrows), many when looking   in   (blue and white arrows).   Milky Way   is how our galaxy appears in the night sky (b).
14.1 Our Parent Galaxy Our galaxy is a   spiral   galaxy. Here are two other spiral galaxies, one viewed from the   side   and the other from the   top , which are thought to resemble the Milky Way:
14.2 Measuring the Milky Way One of the first attempts to   measure   the Milky Way was done by Herschel using visible stars. Unfortunately, he was not aware that most of the galaxy, particularly the center, is blocked from view by vast clouds of   gas   and   dust .
14.2 Measuring the Milky Way We have already encountered   variable stars   – novae, supernovae, and related phenomena – these are called   cataclysmic variables . There are other stars whose luminosity varies in a regular way, but much more subtly. These are called   intrinsic variables . Two types of intrinsic variables have been found:   RR Lyrae   stars, and   Cepheids .
14.2 Measuring the Milky Way The upper plot is an   RR Lyrae   star. All such stars have essentially the same luminosity curve, with periods from   0.5   to  1   day. The lower plot is a   Cepheid   variable; Cepheid periods range from about   1   to   100   days.
14.2 Measuring the Milky Way The variability of these stars comes from a   dynamic   balance between   gravity   and  pressure   – they have large   oscillations   around stability.
14.2 Measuring the Milky Way The usefulness of these stars comes from their   period-luminosity relation :
14.2 Measuring the Milky Way ,[object Object],[object Object],[object Object]
14.2 Measuring the Milky Way Many RR Lyrae stars are found in   globular clusters . These clusters are not all in the   plane   of the galaxy, so they are not   obscured   by dust and can be measured. This yields a much more   accurate   picture of the extent of our Galaxy and our place within it.
14.2 Measuring the Milky Way We have now   expanded   our cosmic distance ladder one more step:
14.3 Galactic Structure This artist’s conception shows the various parts of our   Galaxy , and the position of our   Sun :
14.3 Galactic Structure The  Galactic halo   and   globular clusters   formed very early; the halo is essentially spherical. All the stars in the halo are very   old , and there is no gas or dust. The   Galactic disk   is where the   youngest   stars are, as well as   star formation   regions – emission nebulae, large clouds of gas and dust. Surrounding the Galactic center is the   Galactic bulge , which contains a mix of older and younger stars.
14.3 Galactic Structure This  infrared   view of our Galaxy shows much more detail of the Galactic center than the visible-light view does, as infrared is not as much absorbed by gas and dust.
14.3 Galactic Structure Stellar orbits   in the   disk   are in a plane and in the same direction; orbits in the   halo   and   bulge   are much more random.
14.4 The Formation of the Milky Way Any theory of galaxy formation should be able to account for all the   properties   below:
14.4 The Formation of the Milky Way The  formation   of the Galaxy is believed to be similar to the formation of the solar system, but on a much larger scale:
14.5 Galactic Spiral Arms Measurement of the   position   and   motion   of gas clouds shows that the Milky Way has a spiral form:
14.5 Galactic Spiral Arms The  spiral arms   cannot rotate along with the Galaxy; they would “curl up”:
14.5 Galactic Spiral Arms Rather, they appear to be   density waves , with stars moving in and out of them much as cars move in and out of a traffic jam:
14.5 Galactic Spiral Arms As clouds of   gas   and   dust   move through the spiral arms, the increased   density   triggers   star formation . This may contribute to propagation of the arms. The origin of the spiral arms is not yet understood.
14.6 The Mass of the Milky Way Galaxy The  orbital speed   of an object depends only on the amount of   mass   between it and the Galactic center:
14.6 The Mass of the Milky Way Galaxy Once all the Galaxy is within an orbit, the velocity should   diminish   with distance, as the dashed curve shows.  It doesn’t; more than   twice   the mass of the Galaxy would have to be outside the visible part to reproduce the observed curve.
14.6 The Mass of the Milky Way Galaxy ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
14.6 The Mass of the Milky Way Galaxy The  bending   of spacetime can allow a large mass to act as a   gravitational lens : Observation of such events suggests that   low-mass white dwarfs   could account for about half of the mass needed.  The rest is still a mystery.
14.7 The Galactic Center This is a view towards the   Galactic center , in visible light. The two arrows in the inset indicate the location of the center; it is entirely   obscured   by dust.
14.7 The Galactic Center These images, in   infrared ,  radio , and   X-ray , offer a different view of the Galactic center.
14.7 The Galactic Center The  Galactic center   appears to have a   stellar   density   a million times higher than near Earth; a   ring   of molecular gas 400 pc across; strong   magnetic fields ; a rotating   ring   or   disk   of matter a few parsecs across; and a strong   X-ray   source at the center
14.7 The Galactic Center Apparently, there is an enormous   black hole   at the center of the Galaxy, which is the source of these phenomena.  An   accretion disk   surrounding the black hole emits enormous amounts of radiation.
14.7 The Galactic Center These objects are very close to the   Galactic center . The orbit on the right is the best fit; it assumes a central   black hole   of   3.7 million   solar masses.
Summary of Chapter 14 ,[object Object],[object Object],[object Object],[object Object],[object Object]
Summary of Chapter 14 ,[object Object],[object Object],[object Object]

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Chapter 14 Lecture

  • 1. © 2007 Pearson Prentice Hall This work is protected by United States copyright laws and is provided solely for the use of instructors in teaching their courses and assessing student learning. Dissemination or sale of any part of this work (including on the World Wide Web) will destroy the integrity of the work and is not permitted. The work and materials from it should never be made available to students except by instructors using the accompanying text in their classes. All recipients of this work are expected to abide by these restrictions and to honor the intended pedagogical purposes and the needs of other instructors who rely on these materials. Lecture Outlines Chapter 14 Astronomy: A Beginner’s Guide to the Universe 5 th Edition Chaisson / McMillan
  • 2. Chapter 14 The Milky Way Galaxy
  • 3. Units of Chapter 14 Our Parent Galaxy Measuring the Milky Way Galactic Structure The Formation of the Milky Way Galactic Spiral Arms The Mass of the Milky Way Galaxy The Galactic Center
  • 4. 14.1 Our Parent Galaxy From Earth, see few stars when looking out of galaxy (red arrows), many when looking in (blue and white arrows). Milky Way is how our galaxy appears in the night sky (b).
  • 5. 14.1 Our Parent Galaxy Our galaxy is a spiral galaxy. Here are two other spiral galaxies, one viewed from the side and the other from the top , which are thought to resemble the Milky Way:
  • 6. 14.2 Measuring the Milky Way One of the first attempts to measure the Milky Way was done by Herschel using visible stars. Unfortunately, he was not aware that most of the galaxy, particularly the center, is blocked from view by vast clouds of gas and dust .
  • 7. 14.2 Measuring the Milky Way We have already encountered variable stars – novae, supernovae, and related phenomena – these are called cataclysmic variables . There are other stars whose luminosity varies in a regular way, but much more subtly. These are called intrinsic variables . Two types of intrinsic variables have been found: RR Lyrae stars, and Cepheids .
  • 8. 14.2 Measuring the Milky Way The upper plot is an RR Lyrae star. All such stars have essentially the same luminosity curve, with periods from 0.5 to 1 day. The lower plot is a Cepheid variable; Cepheid periods range from about 1 to 100 days.
  • 9. 14.2 Measuring the Milky Way The variability of these stars comes from a dynamic balance between gravity and pressure – they have large oscillations around stability.
  • 10. 14.2 Measuring the Milky Way The usefulness of these stars comes from their period-luminosity relation :
  • 11.
  • 12. 14.2 Measuring the Milky Way Many RR Lyrae stars are found in globular clusters . These clusters are not all in the plane of the galaxy, so they are not obscured by dust and can be measured. This yields a much more accurate picture of the extent of our Galaxy and our place within it.
  • 13. 14.2 Measuring the Milky Way We have now expanded our cosmic distance ladder one more step:
  • 14. 14.3 Galactic Structure This artist’s conception shows the various parts of our Galaxy , and the position of our Sun :
  • 15. 14.3 Galactic Structure The Galactic halo and globular clusters formed very early; the halo is essentially spherical. All the stars in the halo are very old , and there is no gas or dust. The Galactic disk is where the youngest stars are, as well as star formation regions – emission nebulae, large clouds of gas and dust. Surrounding the Galactic center is the Galactic bulge , which contains a mix of older and younger stars.
  • 16. 14.3 Galactic Structure This infrared view of our Galaxy shows much more detail of the Galactic center than the visible-light view does, as infrared is not as much absorbed by gas and dust.
  • 17. 14.3 Galactic Structure Stellar orbits in the disk are in a plane and in the same direction; orbits in the halo and bulge are much more random.
  • 18. 14.4 The Formation of the Milky Way Any theory of galaxy formation should be able to account for all the properties below:
  • 19. 14.4 The Formation of the Milky Way The formation of the Galaxy is believed to be similar to the formation of the solar system, but on a much larger scale:
  • 20. 14.5 Galactic Spiral Arms Measurement of the position and motion of gas clouds shows that the Milky Way has a spiral form:
  • 21. 14.5 Galactic Spiral Arms The spiral arms cannot rotate along with the Galaxy; they would “curl up”:
  • 22. 14.5 Galactic Spiral Arms Rather, they appear to be density waves , with stars moving in and out of them much as cars move in and out of a traffic jam:
  • 23. 14.5 Galactic Spiral Arms As clouds of gas and dust move through the spiral arms, the increased density triggers star formation . This may contribute to propagation of the arms. The origin of the spiral arms is not yet understood.
  • 24. 14.6 The Mass of the Milky Way Galaxy The orbital speed of an object depends only on the amount of mass between it and the Galactic center:
  • 25. 14.6 The Mass of the Milky Way Galaxy Once all the Galaxy is within an orbit, the velocity should diminish with distance, as the dashed curve shows. It doesn’t; more than twice the mass of the Galaxy would have to be outside the visible part to reproduce the observed curve.
  • 26.
  • 27. 14.6 The Mass of the Milky Way Galaxy The bending of spacetime can allow a large mass to act as a gravitational lens : Observation of such events suggests that low-mass white dwarfs could account for about half of the mass needed. The rest is still a mystery.
  • 28. 14.7 The Galactic Center This is a view towards the Galactic center , in visible light. The two arrows in the inset indicate the location of the center; it is entirely obscured by dust.
  • 29. 14.7 The Galactic Center These images, in infrared , radio , and X-ray , offer a different view of the Galactic center.
  • 30. 14.7 The Galactic Center The Galactic center appears to have a stellar density a million times higher than near Earth; a ring of molecular gas 400 pc across; strong magnetic fields ; a rotating ring or disk of matter a few parsecs across; and a strong X-ray source at the center
  • 31. 14.7 The Galactic Center Apparently, there is an enormous black hole at the center of the Galaxy, which is the source of these phenomena. An accretion disk surrounding the black hole emits enormous amounts of radiation.
  • 32. 14.7 The Galactic Center These objects are very close to the Galactic center . The orbit on the right is the best fit; it assumes a central black hole of 3.7 million solar masses.
  • 33.
  • 34.