{"id":748,"date":"2017-12-19T23:45:45","date_gmt":"2017-12-20T04:45:45","guid":{"rendered":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/chapter\/23-7-collaborative-group-activities-questions-and-exercises\/"},"modified":"2017-12-20T13:45:39","modified_gmt":"2017-12-20T18:45:39","slug":"23-7-collaborative-group-activities-questions-and-exercises","status":"publish","type":"chapter","link":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/chapter\/23-7-collaborative-group-activities-questions-and-exercises\/","title":{"raw":"23.7 Collaborative Group Activities, Questions and Exercises","rendered":"23.7 Collaborative Group Activities, Questions and Exercises"},"content":{"raw":"\n<section id=\"fs-id1168048302021\" class=\"group-activities\">\n<h1>Collaborative Group Activities<\/h1>\n<ol id=\"fs-id1168048286345\">\n<li>Someone in your group uses a large telescope to observe an expanding shell of gas. Discuss what measurements you could make to determine whether you have discovered a planetary nebula or the remnant of a supernova explosion.<\/li>\n<li>The star Sirius (the brightest star in our northern skies) has a white-dwarf companion. Sirius has a mass of about 2 <em>M<\/em><sub>Sun<\/sub> and is still on the main sequence, while its companion is already a star corpse. Remember that a white dwarf can\u2019t have a mass greater than 1.4 <em>M<\/em><sub>Sun<\/sub>. Assuming that the two stars formed at the same time, your group should discuss how Sirius could have a white-dwarf companion. Hint: Was the initial mass of the white-dwarf star larger or smaller than that of Sirius?<\/li>\n<li>Discuss with your group what people today would do if a brilliant star suddenly became visible during the daytime? What kind of fear and superstition might result from a supernova that was really bright in our skies? Have your group invent some headlines that the tabloid newspapers and the less responsible web news outlets would feature.<\/li>\n<li>Suppose a supernova exploded only 40 light-years from Earth. Have your group discuss what effects there may be on Earth when the radiation reaches us and later when the particles reach us. Would there be any way to protect people from the supernova effects?<\/li>\n<li>When pulsars were discovered, the astronomers involved with the discovery talked about finding \u201clittle green men.\u201d If you had been in their shoes, what tests would you have performed to see whether such a pulsating source of radio waves was natural or the result of an alien intelligence? Today, several groups around the world are actively searching for possible radio signals from intelligent civilizations. How might you expect such signals to differ from pulsar signals?<\/li>\n<li>Your little brother, who has not had the benefit of an astronomy course, reads about white dwarfs and neutron stars in a magazine and decides it would be fun to go near them or even try to land on them. Is this a good idea for future tourism? Have your group make a list of reasons it would not be safe for children (or adults) to go near a white dwarf and a neutron star.<\/li>\n<li>A lot of astronomers\u2019 time and many instruments have been devoted to figuring out the nature of gamma-ray bursts. Does your group share the excitement that astronomers feel about these mysterious high-energy events? What are some reasons that people outside of astronomy might care about learning about gamma-ray bursts?<\/li>\n<\/ol>\n<\/section>\n<section id=\"fs-id1168048338548\" class=\"review-questions\">\n<h1>Review Questions<\/h1>\n<div class=\"exercise\">\n<div class=\"problem\">\n<p id=\"fs-id1168046112997\"><strong>1:<\/strong> How does a white dwarf differ from a neutron star? How does each form? What keeps each from collapsing under its own weight?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048434933\">\n<div class=\"problem\" id=\"fs-id1168048287488\">\n<p id=\"fs-id1168046091205\"><strong>2:<\/strong> Describe the evolution of a star with a mass like that of the Sun, from the main-sequence phase of its evolution until it becomes a white dwarf.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048302164\">\n<div class=\"problem\" id=\"fs-id1168048740737\">\n<p id=\"fs-id1168048513231\"><strong>3:<\/strong> Describe the evolution of a massive star (say, 20 times the mass of the Sun) up to the point at which it becomes a supernova. How does the evolution of a massive star differ from that of the Sun? Why?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046065970\">\n<div class=\"problem\" id=\"fs-id1168046017848\">\n<p id=\"fs-id1168048360675\"><strong>4:<\/strong> How do the two types of supernovae discussed in this chapter differ? What kind of star gives rise to each type?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048571919\">\n<div class=\"problem\" id=\"fs-id1168048378558\">\n<p id=\"fs-id1168048539340\"><strong>5:<\/strong> A star begins its life with a mass of 5 <em>M<\/em><sub>Sun<\/sub> but ends its life as a white dwarf with a mass of 0.8 <em>M<\/em><sub>Sun<\/sub>. List the stages in the star\u2019s life during which it most likely lost some of the mass it started with. How did mass loss occur in each stage?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048306961\">\n<div class=\"problem\" id=\"fs-id1168048791368\">\n<p id=\"fs-id1168048775071\"><strong>6:<\/strong> If the formation of a neutron star leads to a supernova explosion, explain why only three of the hundreds of known pulsars are found in supernova remnants.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046063918\">\n<div class=\"problem\" id=\"fs-id1168048284910\">\n<p id=\"fs-id1168048507062\"><strong>7:<\/strong> How can the Crab Nebula shine with the energy of something like 100,000 Suns when the star that formed the nebula exploded almost 1000 years ago? Who \u201cpays the bills\u201d for much of the radiation we see coming from the nebula?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048281830\">\n<div class=\"problem\">\n<p id=\"fs-id1168046000495\"><strong>8:<\/strong> How is a nova different from a type Ia supernova? How does it differ from a type II supernova?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048370258\">\n<div class=\"problem\" id=\"fs-id1168048333510\">\n<p id=\"fs-id1168048280721\"><strong>9:<\/strong> Apart from the masses, how are binary systems with a neutron star different from binary systems with a white dwarf?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046007486\">\n<div class=\"problem\" id=\"fs-id1168048595760\">\n<p id=\"fs-id1168048526033\"><strong>10:<\/strong> What observations from SN 1987A helped confirm theories about supernovae?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048787503\">\n<div class=\"problem\" id=\"fs-id1168046105994\">\n<p id=\"fs-id1168048365504\"><strong>11:<\/strong> Describe the evolution of a white dwarf over time, in particular how the luminosity, temperature, and radius change.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048354671\">\n<div class=\"problem\" id=\"fs-id1168048699067\">\n<p id=\"fs-id1168048543629\"><strong>12:<\/strong> Describe the evolution of a pulsar over time, in particular how the rotation and pulse signal changes over time.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048372422\">\n<div class=\"problem\" id=\"fs-id1168048592100\">\n<p><strong>13:<\/strong> How would a white dwarf that formed from a star that had an initial mass of 1 <em>M<\/em><sub>Sun<\/sub> be different from a white dwarf that formed from a star that had an initial mass of 9 <em>M<\/em><sub>Sun<\/sub>?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046020873\">\n<div class=\"problem\" id=\"fs-id1168048517489\">\n<p id=\"fs-id1168046114229\"><strong>14:<\/strong> What do astronomers think are the causes of longer-duration gamma-ray bursts and shorter-duration gamma-ray bursts?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046146503\">\n<div class=\"problem\" id=\"fs-id1168048482361\">\n<p id=\"fs-id1168048282019\"><strong>15:<\/strong> How did astronomers finally solve the mystery of what gamma-ray bursts were? What instruments were required to find the solution?<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"fs-id1168048322442\" class=\"thought-questions\">\n<h1>Thought Questions<\/h1>\n<div class=\"exercise\" id=\"fs-id1168048363725\">\n<div class=\"problem\" id=\"fs-id1168048345178\">\n<p><strong>16:<\/strong> Arrange the following stars in order of their evolution:<\/p>\n<ol id=\"fs-id1168046131288\">\n<li>A star with no nuclear reactions going on in the core, which is made primarily of carbon and oxygen.<\/li>\n<li>A star of uniform composition from center to surface; it contains hydrogen but has no nuclear reactions going on in the core.<\/li>\n<li>A star that is fusing hydrogen to form helium in its core.<\/li>\n<li>A star that is fusing helium to carbon in the core and hydrogen to helium in a shell around the core.<\/li>\n<li>A star that has no nuclear reactions going on in the core but is fusing hydrogen to form helium in a shell around the core.<\/li>\n<\/ol>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048467139\">\n<div class=\"problem\" id=\"fs-id1168048337029\">\n<p id=\"fs-id1168048266583\"><strong>17:<\/strong> Would you expect to find any white dwarfs in the Orion Nebula? (See <a href=\"\/contents\/a4d25617-b0da-4fe3-8542-322122f7e7d3\" class=\"target-chapter\">The Birth of Stars and the Discovery of Planets outside the Solar System<\/a> to remind yourself of its characteristics.) Why or why not?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048484019\">\n<div class=\"problem\" id=\"fs-id1168048545522\">\n<p id=\"fs-id1168048516202\"><strong>18:<\/strong> Suppose no stars more massive than about 2 <em>M<\/em><sub>Sun<\/sub> had ever formed. Would life as we know it have been able to develop? Why or why not?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048348888\">\n<div class=\"problem\" id=\"fs-id1168048511625\">\n<p id=\"fs-id1168048784407\"><strong>19:<\/strong> Would you be more likely to observe a type II supernova (the explosion of a massive star) in a globular cluster or in an open cluster? Why?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048527875\">\n<div class=\"problem\">\n<p id=\"fs-id1168048393710\"><strong>20:<\/strong> Astronomers believe there are something like 100 million neutron stars in the Galaxy, yet we have only found about 2000 pulsars in the Milky Way. Give several reasons these numbers are so different. Explain each reason.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048365652\">\n<div class=\"problem\" id=\"fs-id1168048484964\">\n<p><strong>21:<\/strong> Would you expect to observe every supernova in our own Galaxy? Why or why not?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046017668\">\n<div class=\"problem\" id=\"fs-id1168048319518\">\n<p id=\"fs-id1168048473519\"><strong>22:<\/strong> The Large Magellanic Cloud has about one-tenth the number of stars found in our own Galaxy. Suppose the mix of high- and low-mass stars is exactly the same in both galaxies. Approximately how often does a supernova occur in the Large Magellanic Cloud?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046108576\">\n<div class=\"problem\" id=\"fs-id1168048773103\">\n<p id=\"fs-id1168048686134\"><strong>23:<\/strong> Look at the list of the nearest stars in <a href=\"\/contents\/d648a9b8-e2a5-4b2d-8979-1a075cb91899\" class=\"target-chapter\">Appendix I<\/a>. Would you expect any of these to become supernovae? Why or why not?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046064402\">\n<div class=\"problem\" id=\"fs-id1168048324244\">\n<p id=\"fs-id1168048760009\"><strong>24:<\/strong> If most stars become white dwarfs at the ends of their lives and the formation of white dwarfs is accompanied by the production of a planetary nebula, why are there more white dwarfs than planetary nebulae in the Galaxy?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048492756\">\n<div class=\"problem\" id=\"fs-id1168048378385\">\n<p id=\"fs-id1168046047071\"><strong>25:<\/strong> If a 3 and 8 <em>M<\/em><sub>Sun<\/sub> star formed together in a binary system, which star would:<\/p>\n<ol id=\"fs-id1168048359739\">\n<li>Evolve off the main sequence first?<\/li>\n<li>Form a carbon- and oxygen-rich white dwarf?<\/li>\n<li>Be the location for a nova explosion?<\/li>\n<\/ol>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046067471\">\n<div class=\"problem\" id=\"fs-id1168046300714\">\n<p id=\"fs-id1168046122581\"><strong>26:<\/strong> You have discovered two star clusters. The first cluster contains mainly main-sequence stars, along with some red giant stars and a few white dwarfs. The second cluster also contains mainly main-sequence stars, along with some red giant stars, and a few neutron stars\u2014but no white dwarf stars. What are the relative ages of the clusters? How did you determine your answer?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048356090\">\n<div class=\"problem\" id=\"fs-id1168048365487\">\n<p id=\"fs-id1168048348214\"><strong>27:<\/strong> A supernova remnant was recently discovered and found to be approximately 150 years old. Provide possible reasons that this supernova explosion escaped detection.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048320990\">\n<div class=\"problem\" id=\"fs-id1168048653220\">\n<p id=\"fs-id1168048565732\"><strong>28:<\/strong> Based upon the evolution of stars, place the following elements in order of least to most common in the Galaxy: gold, carbon, neon. What aspects of stellar evolution formed the basis for how you ordered the elements?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048276049\">\n<div class=\"problem\" id=\"fs-id1168048311177\">\n<p id=\"fs-id1168048483866\"><strong>29:<\/strong> What observations or types of telescopes would you use to distinguish a binary system that includes a main-sequence star and a white dwarf star from one containing a main-sequence star and a neutron star?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048377194\">\n<div class=\"problem\" id=\"fs-id1168048311083\">\n<p><strong>30:<\/strong> How would the spectra of a type II supernova be different from a type Ia supernova? Hint: Consider the characteristics of the objects that are their source.<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"fs-id1168046008280\" class=\"figuring-for-yourself\">\n<h1>Figuring for Yourself<\/h1>\n<div class=\"exercise\" id=\"fs-id1168048353090\">\n<div class=\"problem\" id=\"fs-id1168048498361\">\n<p id=\"fs-id1168046227133\"><strong>31:<\/strong> The ring around SN 1987A (<a href=\"\/contents\/a567ba98-3507-49d5-893c-c05cd42eefa5#OSC_Astro_23_03_Ring\" class=\"autogenerated-content\">[link]<\/a>) initially became illuminated when energetic photons from the supernova interacted with the material in the ring. The radius of the ring is approximately 0.75 light-year from the supernova location. How long after the supernova did the ring become illuminated?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048742351\">\n<div class=\"problem\" id=\"fs-id1168046047611\">\n<p id=\"fs-id1168048323325\"><strong>32:<\/strong> What is the acceleration of gravity (<em>g<\/em>) at the surface of the Sun? (See <a href=\"\/contents\/73d49c7c-b8ec-4bb4-a3e8-2fdf9acdf2b3\" class=\"target-chapter\">Appendix E<\/a> for the Sun\u2019s key characteristics.) How much greater is this than <em>g<\/em> at the surface of Earth? Calculate what you would weigh on the surface of the Sun. Your weight would be your Earth weight multiplied by the ratio of the acceleration of gravity on the Sun to the acceleration of gravity on Earth. (Okay, we know that the Sun does not have a solid surface to stand on and that you would be vaporized if you were at the Sun\u2019s photosphere. Humor us for the sake of doing these calculations.)<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048336278\">\n<div class=\"problem\" id=\"fs-id1168048590895\">\n<p id=\"fs-id1168048359145\"><strong>33:<\/strong> What is the escape velocity from the Sun? How much greater is it than the escape velocity from Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048291444\">\n<div class=\"problem\" id=\"fs-id1168048784455\">\n<p id=\"fs-id1168048661362\"><strong>34:<\/strong> What is the average density of the Sun? How does it compare to the average density of Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048511396\">\n<div class=\"problem\" id=\"fs-id1168046112956\">\n<p id=\"fs-id1168046107679\"><strong>35:<\/strong> Say that a particular white dwarf has the mass of the Sun but the radius of Earth. What is the acceleration of gravity at the surface of the white dwarf? How much greater is this than <em>g<\/em> at the surface of Earth? What would you weigh at the surface of the white dwarf (again granting us the dubious notion that you could survive there)?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048750906\">\n<div class=\"problem\" id=\"fs-id1168048583305\">\n<p id=\"fs-id1168048526330\"><strong>36:<\/strong> What is the escape velocity from the white dwarf in <a href=\"#fs-id1168048511396\" class=\"autogenerated-content\">[link]<\/a>? How much greater is it than the escape velocity from Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048516727\">\n<div class=\"problem\" id=\"fs-id1168048320458\">\n<p id=\"fs-id1168048315331\"><strong>37:<\/strong> What is the average density of the white dwarf in <a href=\"#fs-id1168048511396\" class=\"autogenerated-content\">[link]<\/a>? How does it compare to the average density of Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048353391\">\n<div class=\"problem\" id=\"fs-id1168048663565\">\n<p id=\"fs-id1168046058868\"><strong>38:<\/strong> Now take a neutron star that has twice the mass of the Sun but a radius of 10 km. What is the acceleration of gravity at the surface of the neutron star? How much greater is this than <em>g<\/em> at the surface of Earth? What would you weigh at the surface of the neutron star (provided you could somehow not become a puddle of protoplasm)?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048726220\">\n<div class=\"problem\" id=\"fs-id1168048471057\">\n<p id=\"fs-id1168048314988\"><strong>39:<\/strong> What is the escape velocity from the neutron star in <a href=\"#fs-id1168048353391\" class=\"autogenerated-content\">[link]<\/a>? How much greater is it than the escape velocity from Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048251746\">\n<div class=\"problem\" id=\"fs-id1168046067878\">\n<p id=\"fs-id1168048320117\"><strong>40:<\/strong> What is the average density of the neutron star in <a href=\"#fs-id1168048353391\" class=\"autogenerated-content\">[link]<\/a>? How does it compare to the average density of Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048585449\">\n<div class=\"problem\" id=\"fs-id1168048349687\">\n<p id=\"fs-id1168048592691\"><strong>41:<\/strong> One way to calculate the radius of a star is to use its luminosity and temperature and assume that the star radiates approximately like a blackbody. Astronomers have measured the characteristics of central stars of planetary nebulae and have found that a typical central star is 16 times as luminous and 20 times as hot (about 110,000 K) as the Sun. Find the radius in terms of the Sun\u2019s. How does this radius compare with that of a typical white dwarf?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048684040\">\n<div class=\"problem\" id=\"fs-id1168048773753\">\n<p id=\"fs-id1168048320602\"><strong>42:<\/strong> According to a model described in the text, a neutron star has a radius of about 10 km. Assume that the pulses occur once per rotation. According to Einstein\u2019s theory of relatively, nothing can move faster than the speed of light. Check to make sure that this pulsar model does not violate relativity. Calculate the rotation speed of the Crab Nebula pulsar at its equator, given its period of 0.033 s. (Remember that distance equals velocity \u00d7 time and that the circumference of a circle is given by 2\u03c0<em>R<\/em>).<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048547099\">\n<div class=\"problem\" id=\"fs-id1168048376242\">\n<p id=\"fs-id1168046004356\"><strong>43:<\/strong> Do the same calculations as in <a href=\"#fs-id1168048684040\" class=\"autogenerated-content\">[link]<\/a> but for a pulsar that rotates 1000 times per second.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048781813\">\n<div class=\"problem\" id=\"fs-id1168048478398\">\n<p id=\"fs-id1168048544202\"><strong>44:<\/strong> If the Sun were replaced by a white dwarf with a surface temperature of 10,000 K and a radius equal to Earth\u2019s, how would its luminosity compare to that of the Sun?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048429118\">\n<div class=\"problem\" id=\"fs-id1168048514290\">\n<p id=\"fs-id1168048332604\"><strong>45:<\/strong> A supernova can eject material at a velocity of 10,000 km\/s. How long would it take a supernova remnant to expand to a radius of 1 AU? How long would it take to expand to a radius of 1 light-years? Assume that the expansion velocity remains constant and use the relationship expansion time = distance\/ (expansion velocity).&nbsp; &nbsp;Remember that velocity = distance \/ time.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048759982\">\n<div class=\"problem\" id=\"fs-id1168048759984\">\n<p id=\"fs-id1168048483746\"><strong>46:<\/strong> A supernova remnant was observed in 2007 to be expanding at a velocity of 14,000 km\/s and had a radius of 6.5 light-years. Assuming a constant expansion velocity, in what year did this supernova occur?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048305330\">\n<div class=\"problem\" id=\"fs-id1168048305332\">\n<p id=\"fs-id1168048732435\"><strong>47:<\/strong> The ring around SN 1987A (<a href=\"\/contents\/a567ba98-3507-49d5-893c-c05cd42eefa5#OSC_Astro_23_03_Ring\" class=\"autogenerated-content\">[link]<\/a>) started interacting with material propelled by the shockwave from the supernova beginning in 1997 (10 years after the explosion). The radius of the ring is approximately 0.75 light-year from the supernova location. How fast is the supernova material moving, assume a constant rate of motion in km\/s?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048458140\">\n<div class=\"problem\" id=\"fs-id1168048458142\">\n<p id=\"fs-id1168046023038\"><strong>48:<\/strong> Before the star that became SN 1987A exploded, it evolved from a red supergiant to a blue supergiant while remaining at the same luminosity. As a red supergiant, its surface temperature would have been approximately 4000 K, while as a blue supergiant, its surface temperature was 16,000 K. How much did the radius change as it evolved from a red to a blue supergiant?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048459846\">\n<div class=\"problem\" id=\"fs-id1168048459848\">\n<p id=\"fs-id1168048738004\"><strong>49:<\/strong> What is the radius of the progenitor star that became SN 1987A? Its luminosity was 100,000 times that of the Sun, and it had a surface temperature of 16,000 K.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048781988\">\n<div class=\"problem\" id=\"fs-id1168046283873\">\n<p id=\"fs-id1168046283875\"><strong>50:<\/strong> What is the acceleration of gravity at the surface of the star that became SN 1987A? How does this <em>g<\/em> compare to that at the surface of Earth? The mass was 20 times that of the Sun and the radius was 41 times that of the Sun.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046133206\">\n<div class=\"problem\" id=\"fs-id1168046133209\">\n<p id=\"fs-id1168046063105\"><strong>51:<\/strong> What was the escape velocity from the surface of the SN 1987A progenitor star? How much greater is it than the escape velocity from Earth? The mass was 20 times that of the Sun and the radius was 41 times that of the Sun.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048616110\">\n<div class=\"problem\" id=\"fs-id1168048616112\">\n<p id=\"fs-id1168048349473\"><strong>52:<\/strong> What was the average density of the star that became SN 1987A? How does it compare to the average density of Earth? The mass was 20 times that of the Sun and the radius was 41 times that of the Sun.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046281560\">\n<div class=\"problem\" id=\"fs-id1168048753200\">\n<p id=\"fs-id1168048753202\"><strong>53:<\/strong> If the pulsar shown in <a href=\"\/contents\/bfeda56d-0942-4640-9f37-619d208eb106#OSC_Astro_23_04_Pulsar\" class=\"autogenerated-content\">[link]<\/a> is rotating 100 times per second, how many pulses would be detected in one minute? The two beams are located along the pulsar\u2019s equator, which is aligned with Earth.<\/p>\n<\/div>\n<\/div>\n<\/section>\n\n","rendered":"<section id=\"fs-id1168048302021\" class=\"group-activities\">\n<h1>Collaborative Group Activities<\/h1>\n<ol id=\"fs-id1168048286345\">\n<li>Someone in your group uses a large telescope to observe an expanding shell of gas. Discuss what measurements you could make to determine whether you have discovered a planetary nebula or the remnant of a supernova explosion.<\/li>\n<li>The star Sirius (the brightest star in our northern skies) has a white-dwarf companion. Sirius has a mass of about 2 <em>M<\/em><sub>Sun<\/sub> and is still on the main sequence, while its companion is already a star corpse. Remember that a white dwarf can\u2019t have a mass greater than 1.4 <em>M<\/em><sub>Sun<\/sub>. Assuming that the two stars formed at the same time, your group should discuss how Sirius could have a white-dwarf companion. Hint: Was the initial mass of the white-dwarf star larger or smaller than that of Sirius?<\/li>\n<li>Discuss with your group what people today would do if a brilliant star suddenly became visible during the daytime? What kind of fear and superstition might result from a supernova that was really bright in our skies? Have your group invent some headlines that the tabloid newspapers and the less responsible web news outlets would feature.<\/li>\n<li>Suppose a supernova exploded only 40 light-years from Earth. Have your group discuss what effects there may be on Earth when the radiation reaches us and later when the particles reach us. Would there be any way to protect people from the supernova effects?<\/li>\n<li>When pulsars were discovered, the astronomers involved with the discovery talked about finding \u201clittle green men.\u201d If you had been in their shoes, what tests would you have performed to see whether such a pulsating source of radio waves was natural or the result of an alien intelligence? Today, several groups around the world are actively searching for possible radio signals from intelligent civilizations. How might you expect such signals to differ from pulsar signals?<\/li>\n<li>Your little brother, who has not had the benefit of an astronomy course, reads about white dwarfs and neutron stars in a magazine and decides it would be fun to go near them or even try to land on them. Is this a good idea for future tourism? Have your group make a list of reasons it would not be safe for children (or adults) to go near a white dwarf and a neutron star.<\/li>\n<li>A lot of astronomers\u2019 time and many instruments have been devoted to figuring out the nature of gamma-ray bursts. Does your group share the excitement that astronomers feel about these mysterious high-energy events? What are some reasons that people outside of astronomy might care about learning about gamma-ray bursts?<\/li>\n<\/ol>\n<\/section>\n<section id=\"fs-id1168048338548\" class=\"review-questions\">\n<h1>Review Questions<\/h1>\n<div class=\"exercise\">\n<div class=\"problem\">\n<p id=\"fs-id1168046112997\"><strong>1:<\/strong> How does a white dwarf differ from a neutron star? How does each form? What keeps each from collapsing under its own weight?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048434933\">\n<div class=\"problem\" id=\"fs-id1168048287488\">\n<p id=\"fs-id1168046091205\"><strong>2:<\/strong> Describe the evolution of a star with a mass like that of the Sun, from the main-sequence phase of its evolution until it becomes a white dwarf.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048302164\">\n<div class=\"problem\" id=\"fs-id1168048740737\">\n<p id=\"fs-id1168048513231\"><strong>3:<\/strong> Describe the evolution of a massive star (say, 20 times the mass of the Sun) up to the point at which it becomes a supernova. How does the evolution of a massive star differ from that of the Sun? Why?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046065970\">\n<div class=\"problem\" id=\"fs-id1168046017848\">\n<p id=\"fs-id1168048360675\"><strong>4:<\/strong> How do the two types of supernovae discussed in this chapter differ? What kind of star gives rise to each type?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048571919\">\n<div class=\"problem\" id=\"fs-id1168048378558\">\n<p id=\"fs-id1168048539340\"><strong>5:<\/strong> A star begins its life with a mass of 5 <em>M<\/em><sub>Sun<\/sub> but ends its life as a white dwarf with a mass of 0.8 <em>M<\/em><sub>Sun<\/sub>. List the stages in the star\u2019s life during which it most likely lost some of the mass it started with. How did mass loss occur in each stage?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048306961\">\n<div class=\"problem\" id=\"fs-id1168048791368\">\n<p id=\"fs-id1168048775071\"><strong>6:<\/strong> If the formation of a neutron star leads to a supernova explosion, explain why only three of the hundreds of known pulsars are found in supernova remnants.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046063918\">\n<div class=\"problem\" id=\"fs-id1168048284910\">\n<p id=\"fs-id1168048507062\"><strong>7:<\/strong> How can the Crab Nebula shine with the energy of something like 100,000 Suns when the star that formed the nebula exploded almost 1000 years ago? Who \u201cpays the bills\u201d for much of the radiation we see coming from the nebula?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048281830\">\n<div class=\"problem\">\n<p id=\"fs-id1168046000495\"><strong>8:<\/strong> How is a nova different from a type Ia supernova? How does it differ from a type II supernova?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048370258\">\n<div class=\"problem\" id=\"fs-id1168048333510\">\n<p id=\"fs-id1168048280721\"><strong>9:<\/strong> Apart from the masses, how are binary systems with a neutron star different from binary systems with a white dwarf?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046007486\">\n<div class=\"problem\" id=\"fs-id1168048595760\">\n<p id=\"fs-id1168048526033\"><strong>10:<\/strong> What observations from SN 1987A helped confirm theories about supernovae?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048787503\">\n<div class=\"problem\" id=\"fs-id1168046105994\">\n<p id=\"fs-id1168048365504\"><strong>11:<\/strong> Describe the evolution of a white dwarf over time, in particular how the luminosity, temperature, and radius change.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048354671\">\n<div class=\"problem\" id=\"fs-id1168048699067\">\n<p id=\"fs-id1168048543629\"><strong>12:<\/strong> Describe the evolution of a pulsar over time, in particular how the rotation and pulse signal changes over time.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048372422\">\n<div class=\"problem\" id=\"fs-id1168048592100\">\n<p><strong>13:<\/strong> How would a white dwarf that formed from a star that had an initial mass of 1 <em>M<\/em><sub>Sun<\/sub> be different from a white dwarf that formed from a star that had an initial mass of 9 <em>M<\/em><sub>Sun<\/sub>?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046020873\">\n<div class=\"problem\" id=\"fs-id1168048517489\">\n<p id=\"fs-id1168046114229\"><strong>14:<\/strong> What do astronomers think are the causes of longer-duration gamma-ray bursts and shorter-duration gamma-ray bursts?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046146503\">\n<div class=\"problem\" id=\"fs-id1168048482361\">\n<p id=\"fs-id1168048282019\"><strong>15:<\/strong> How did astronomers finally solve the mystery of what gamma-ray bursts were? What instruments were required to find the solution?<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"fs-id1168048322442\" class=\"thought-questions\">\n<h1>Thought Questions<\/h1>\n<div class=\"exercise\" id=\"fs-id1168048363725\">\n<div class=\"problem\" id=\"fs-id1168048345178\">\n<p><strong>16:<\/strong> Arrange the following stars in order of their evolution:<\/p>\n<ol id=\"fs-id1168046131288\">\n<li>A star with no nuclear reactions going on in the core, which is made primarily of carbon and oxygen.<\/li>\n<li>A star of uniform composition from center to surface; it contains hydrogen but has no nuclear reactions going on in the core.<\/li>\n<li>A star that is fusing hydrogen to form helium in its core.<\/li>\n<li>A star that is fusing helium to carbon in the core and hydrogen to helium in a shell around the core.<\/li>\n<li>A star that has no nuclear reactions going on in the core but is fusing hydrogen to form helium in a shell around the core.<\/li>\n<\/ol>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048467139\">\n<div class=\"problem\" id=\"fs-id1168048337029\">\n<p id=\"fs-id1168048266583\"><strong>17:<\/strong> Would you expect to find any white dwarfs in the Orion Nebula? (See <a href=\"\/contents\/a4d25617-b0da-4fe3-8542-322122f7e7d3\" class=\"target-chapter\">The Birth of Stars and the Discovery of Planets outside the Solar System<\/a> to remind yourself of its characteristics.) Why or why not?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048484019\">\n<div class=\"problem\" id=\"fs-id1168048545522\">\n<p id=\"fs-id1168048516202\"><strong>18:<\/strong> Suppose no stars more massive than about 2 <em>M<\/em><sub>Sun<\/sub> had ever formed. Would life as we know it have been able to develop? Why or why not?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048348888\">\n<div class=\"problem\" id=\"fs-id1168048511625\">\n<p id=\"fs-id1168048784407\"><strong>19:<\/strong> Would you be more likely to observe a type II supernova (the explosion of a massive star) in a globular cluster or in an open cluster? Why?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048527875\">\n<div class=\"problem\">\n<p id=\"fs-id1168048393710\"><strong>20:<\/strong> Astronomers believe there are something like 100 million neutron stars in the Galaxy, yet we have only found about 2000 pulsars in the Milky Way. Give several reasons these numbers are so different. Explain each reason.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048365652\">\n<div class=\"problem\" id=\"fs-id1168048484964\">\n<p><strong>21:<\/strong> Would you expect to observe every supernova in our own Galaxy? Why or why not?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046017668\">\n<div class=\"problem\" id=\"fs-id1168048319518\">\n<p id=\"fs-id1168048473519\"><strong>22:<\/strong> The Large Magellanic Cloud has about one-tenth the number of stars found in our own Galaxy. Suppose the mix of high- and low-mass stars is exactly the same in both galaxies. Approximately how often does a supernova occur in the Large Magellanic Cloud?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046108576\">\n<div class=\"problem\" id=\"fs-id1168048773103\">\n<p id=\"fs-id1168048686134\"><strong>23:<\/strong> Look at the list of the nearest stars in <a href=\"\/contents\/d648a9b8-e2a5-4b2d-8979-1a075cb91899\" class=\"target-chapter\">Appendix I<\/a>. Would you expect any of these to become supernovae? Why or why not?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046064402\">\n<div class=\"problem\" id=\"fs-id1168048324244\">\n<p id=\"fs-id1168048760009\"><strong>24:<\/strong> If most stars become white dwarfs at the ends of their lives and the formation of white dwarfs is accompanied by the production of a planetary nebula, why are there more white dwarfs than planetary nebulae in the Galaxy?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048492756\">\n<div class=\"problem\" id=\"fs-id1168048378385\">\n<p id=\"fs-id1168046047071\"><strong>25:<\/strong> If a 3 and 8 <em>M<\/em><sub>Sun<\/sub> star formed together in a binary system, which star would:<\/p>\n<ol id=\"fs-id1168048359739\">\n<li>Evolve off the main sequence first?<\/li>\n<li>Form a carbon- and oxygen-rich white dwarf?<\/li>\n<li>Be the location for a nova explosion?<\/li>\n<\/ol>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046067471\">\n<div class=\"problem\" id=\"fs-id1168046300714\">\n<p id=\"fs-id1168046122581\"><strong>26:<\/strong> You have discovered two star clusters. The first cluster contains mainly main-sequence stars, along with some red giant stars and a few white dwarfs. The second cluster also contains mainly main-sequence stars, along with some red giant stars, and a few neutron stars\u2014but no white dwarf stars. What are the relative ages of the clusters? How did you determine your answer?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048356090\">\n<div class=\"problem\" id=\"fs-id1168048365487\">\n<p id=\"fs-id1168048348214\"><strong>27:<\/strong> A supernova remnant was recently discovered and found to be approximately 150 years old. Provide possible reasons that this supernova explosion escaped detection.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048320990\">\n<div class=\"problem\" id=\"fs-id1168048653220\">\n<p id=\"fs-id1168048565732\"><strong>28:<\/strong> Based upon the evolution of stars, place the following elements in order of least to most common in the Galaxy: gold, carbon, neon. What aspects of stellar evolution formed the basis for how you ordered the elements?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048276049\">\n<div class=\"problem\" id=\"fs-id1168048311177\">\n<p id=\"fs-id1168048483866\"><strong>29:<\/strong> What observations or types of telescopes would you use to distinguish a binary system that includes a main-sequence star and a white dwarf star from one containing a main-sequence star and a neutron star?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048377194\">\n<div class=\"problem\" id=\"fs-id1168048311083\">\n<p><strong>30:<\/strong> How would the spectra of a type II supernova be different from a type Ia supernova? Hint: Consider the characteristics of the objects that are their source.<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"fs-id1168046008280\" class=\"figuring-for-yourself\">\n<h1>Figuring for Yourself<\/h1>\n<div class=\"exercise\" id=\"fs-id1168048353090\">\n<div class=\"problem\" id=\"fs-id1168048498361\">\n<p id=\"fs-id1168046227133\"><strong>31:<\/strong> The ring around SN 1987A (<a href=\"\/contents\/a567ba98-3507-49d5-893c-c05cd42eefa5#OSC_Astro_23_03_Ring\" class=\"autogenerated-content\">[link]<\/a>) initially became illuminated when energetic photons from the supernova interacted with the material in the ring. The radius of the ring is approximately 0.75 light-year from the supernova location. How long after the supernova did the ring become illuminated?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048742351\">\n<div class=\"problem\" id=\"fs-id1168046047611\">\n<p id=\"fs-id1168048323325\"><strong>32:<\/strong> What is the acceleration of gravity (<em>g<\/em>) at the surface of the Sun? (See <a href=\"\/contents\/73d49c7c-b8ec-4bb4-a3e8-2fdf9acdf2b3\" class=\"target-chapter\">Appendix E<\/a> for the Sun\u2019s key characteristics.) How much greater is this than <em>g<\/em> at the surface of Earth? Calculate what you would weigh on the surface of the Sun. Your weight would be your Earth weight multiplied by the ratio of the acceleration of gravity on the Sun to the acceleration of gravity on Earth. (Okay, we know that the Sun does not have a solid surface to stand on and that you would be vaporized if you were at the Sun\u2019s photosphere. Humor us for the sake of doing these calculations.)<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048336278\">\n<div class=\"problem\" id=\"fs-id1168048590895\">\n<p id=\"fs-id1168048359145\"><strong>33:<\/strong> What is the escape velocity from the Sun? How much greater is it than the escape velocity from Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048291444\">\n<div class=\"problem\" id=\"fs-id1168048784455\">\n<p id=\"fs-id1168048661362\"><strong>34:<\/strong> What is the average density of the Sun? How does it compare to the average density of Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048511396\">\n<div class=\"problem\" id=\"fs-id1168046112956\">\n<p id=\"fs-id1168046107679\"><strong>35:<\/strong> Say that a particular white dwarf has the mass of the Sun but the radius of Earth. What is the acceleration of gravity at the surface of the white dwarf? How much greater is this than <em>g<\/em> at the surface of Earth? What would you weigh at the surface of the white dwarf (again granting us the dubious notion that you could survive there)?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048750906\">\n<div class=\"problem\" id=\"fs-id1168048583305\">\n<p id=\"fs-id1168048526330\"><strong>36:<\/strong> What is the escape velocity from the white dwarf in <a href=\"#fs-id1168048511396\" class=\"autogenerated-content\">[link]<\/a>? How much greater is it than the escape velocity from Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048516727\">\n<div class=\"problem\" id=\"fs-id1168048320458\">\n<p id=\"fs-id1168048315331\"><strong>37:<\/strong> What is the average density of the white dwarf in <a href=\"#fs-id1168048511396\" class=\"autogenerated-content\">[link]<\/a>? How does it compare to the average density of Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048353391\">\n<div class=\"problem\" id=\"fs-id1168048663565\">\n<p id=\"fs-id1168046058868\"><strong>38:<\/strong> Now take a neutron star that has twice the mass of the Sun but a radius of 10 km. What is the acceleration of gravity at the surface of the neutron star? How much greater is this than <em>g<\/em> at the surface of Earth? What would you weigh at the surface of the neutron star (provided you could somehow not become a puddle of protoplasm)?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048726220\">\n<div class=\"problem\" id=\"fs-id1168048471057\">\n<p id=\"fs-id1168048314988\"><strong>39:<\/strong> What is the escape velocity from the neutron star in <a href=\"#fs-id1168048353391\" class=\"autogenerated-content\">[link]<\/a>? How much greater is it than the escape velocity from Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048251746\">\n<div class=\"problem\" id=\"fs-id1168046067878\">\n<p id=\"fs-id1168048320117\"><strong>40:<\/strong> What is the average density of the neutron star in <a href=\"#fs-id1168048353391\" class=\"autogenerated-content\">[link]<\/a>? How does it compare to the average density of Earth?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048585449\">\n<div class=\"problem\" id=\"fs-id1168048349687\">\n<p id=\"fs-id1168048592691\"><strong>41:<\/strong> One way to calculate the radius of a star is to use its luminosity and temperature and assume that the star radiates approximately like a blackbody. Astronomers have measured the characteristics of central stars of planetary nebulae and have found that a typical central star is 16 times as luminous and 20 times as hot (about 110,000 K) as the Sun. Find the radius in terms of the Sun\u2019s. How does this radius compare with that of a typical white dwarf?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048684040\">\n<div class=\"problem\" id=\"fs-id1168048773753\">\n<p id=\"fs-id1168048320602\"><strong>42:<\/strong> According to a model described in the text, a neutron star has a radius of about 10 km. Assume that the pulses occur once per rotation. According to Einstein\u2019s theory of relatively, nothing can move faster than the speed of light. Check to make sure that this pulsar model does not violate relativity. Calculate the rotation speed of the Crab Nebula pulsar at its equator, given its period of 0.033 s. (Remember that distance equals velocity \u00d7 time and that the circumference of a circle is given by 2\u03c0<em>R<\/em>).<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048547099\">\n<div class=\"problem\" id=\"fs-id1168048376242\">\n<p id=\"fs-id1168046004356\"><strong>43:<\/strong> Do the same calculations as in <a href=\"#fs-id1168048684040\" class=\"autogenerated-content\">[link]<\/a> but for a pulsar that rotates 1000 times per second.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048781813\">\n<div class=\"problem\" id=\"fs-id1168048478398\">\n<p id=\"fs-id1168048544202\"><strong>44:<\/strong> If the Sun were replaced by a white dwarf with a surface temperature of 10,000 K and a radius equal to Earth\u2019s, how would its luminosity compare to that of the Sun?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048429118\">\n<div class=\"problem\" id=\"fs-id1168048514290\">\n<p id=\"fs-id1168048332604\"><strong>45:<\/strong> A supernova can eject material at a velocity of 10,000 km\/s. How long would it take a supernova remnant to expand to a radius of 1 AU? How long would it take to expand to a radius of 1 light-years? Assume that the expansion velocity remains constant and use the relationship expansion time = distance\/ (expansion velocity).&nbsp; &nbsp;Remember that velocity = distance \/ time.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048759982\">\n<div class=\"problem\" id=\"fs-id1168048759984\">\n<p id=\"fs-id1168048483746\"><strong>46:<\/strong> A supernova remnant was observed in 2007 to be expanding at a velocity of 14,000 km\/s and had a radius of 6.5 light-years. Assuming a constant expansion velocity, in what year did this supernova occur?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048305330\">\n<div class=\"problem\" id=\"fs-id1168048305332\">\n<p id=\"fs-id1168048732435\"><strong>47:<\/strong> The ring around SN 1987A (<a href=\"\/contents\/a567ba98-3507-49d5-893c-c05cd42eefa5#OSC_Astro_23_03_Ring\" class=\"autogenerated-content\">[link]<\/a>) started interacting with material propelled by the shockwave from the supernova beginning in 1997 (10 years after the explosion). The radius of the ring is approximately 0.75 light-year from the supernova location. How fast is the supernova material moving, assume a constant rate of motion in km\/s?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048458140\">\n<div class=\"problem\" id=\"fs-id1168048458142\">\n<p id=\"fs-id1168046023038\"><strong>48:<\/strong> Before the star that became SN 1987A exploded, it evolved from a red supergiant to a blue supergiant while remaining at the same luminosity. As a red supergiant, its surface temperature would have been approximately 4000 K, while as a blue supergiant, its surface temperature was 16,000 K. How much did the radius change as it evolved from a red to a blue supergiant?<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048459846\">\n<div class=\"problem\" id=\"fs-id1168048459848\">\n<p id=\"fs-id1168048738004\"><strong>49:<\/strong> What is the radius of the progenitor star that became SN 1987A? Its luminosity was 100,000 times that of the Sun, and it had a surface temperature of 16,000 K.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048781988\">\n<div class=\"problem\" id=\"fs-id1168046283873\">\n<p id=\"fs-id1168046283875\"><strong>50:<\/strong> What is the acceleration of gravity at the surface of the star that became SN 1987A? How does this <em>g<\/em> compare to that at the surface of Earth? The mass was 20 times that of the Sun and the radius was 41 times that of the Sun.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046133206\">\n<div class=\"problem\" id=\"fs-id1168046133209\">\n<p id=\"fs-id1168046063105\"><strong>51:<\/strong> What was the escape velocity from the surface of the SN 1987A progenitor star? How much greater is it than the escape velocity from Earth? The mass was 20 times that of the Sun and the radius was 41 times that of the Sun.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168048616110\">\n<div class=\"problem\" id=\"fs-id1168048616112\">\n<p id=\"fs-id1168048349473\"><strong>52:<\/strong> What was the average density of the star that became SN 1987A? How does it compare to the average density of Earth? The mass was 20 times that of the Sun and the radius was 41 times that of the Sun.<\/p>\n<\/div>\n<\/div>\n<div class=\"exercise\" id=\"fs-id1168046281560\">\n<div class=\"problem\" id=\"fs-id1168048753200\">\n<p id=\"fs-id1168048753202\"><strong>53:<\/strong> If the pulsar shown in <a href=\"\/contents\/bfeda56d-0942-4640-9f37-619d208eb106#OSC_Astro_23_04_Pulsar\" class=\"autogenerated-content\">[link]<\/a> is rotating 100 times per second, how many pulses would be detected in one minute? The two beams are located along the pulsar\u2019s equator, which is aligned with Earth.<\/p>\n<\/div>\n<\/div>\n<\/section>\n","protected":false},"author":61,"menu_order":1,"template":"","meta":{"pb_show_title":"on","pb_short_title":"","pb_subtitle":"","pb_authors":[],"pb_section_license":""},"chapter-type":[],"contributor":[],"license":[],"class_list":["post-748","chapter","type-chapter","status-publish","hentry"],"part":710,"_links":{"self":[{"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/pressbooks\/v2\/chapters\/748","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/pressbooks\/v2\/chapters"}],"about":[{"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/wp\/v2\/types\/chapter"}],"author":[{"embeddable":true,"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/wp\/v2\/users\/61"}],"version-history":[{"count":1,"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/pressbooks\/v2\/chapters\/748\/revisions"}],"predecessor-version":[{"id":749,"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/pressbooks\/v2\/chapters\/748\/revisions\/749"}],"part":[{"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/pressbooks\/v2\/parts\/710"}],"metadata":[{"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/pressbooks\/v2\/chapters\/748\/metadata\/"}],"wp:attachment":[{"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/wp\/v2\/media?parent=748"}],"wp:term":[{"taxonomy":"chapter-type","embeddable":true,"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/pressbooks\/v2\/chapter-type?post=748"},{"taxonomy":"contributor","embeddable":true,"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/wp\/v2\/contributor?post=748"},{"taxonomy":"license","embeddable":true,"href":"https:\/\/pressbooks.bccampus.ca\/astronomy1105dl\/wp-json\/wp\/v2\/license?post=748"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}