Nayeli Duran_LAB1_Solar system models Student Guide

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Name: Nayeli Duran Solar System Models – Student Guide Background Material Review the Geocentric Model background material. The simulation of Ptolemy’s model demonstrates the dominate model when Copernicus presented his heliocentric model. Thoroughly review the Heliocentric Model background material. Question 1: Look at the Animation of the Copernican Solar System on the “Heliocentricism” page. What relationship do you notice between how fast a planet moves in its orbit and its distance from the Sun? I noticed that the closer the planet is to the sun the faster it moves around the sun. Question 2: The table below concerns various elongation configurations for a hypothetical superior planet. Complete any missing elongations, terminology, or lettered labels on the drawing where the Sun and Earth are shown. NAAP – Solar System Models 1/9
Question 3: The table below concerns various elongation configurations for a hypothetical inferior planet. Complete any missing elongations, terminology, or lettered labels on the drawing where the Sun and Earth are shown. Location Elongation Term A 0 degrees Superior Conjunction B 0 degrees Inferior Conjunction C 46.1 degrees Greatest elongation D West 20° XXX Simulator Exercises Open up the Planetary Configurations Simulator and complete the following exercises. Question 4: In this exercise we will measure the synodic period of Mercury. Set the observer’s planet to Earth and the target planet to Mercury. The synodic period of a planet is the time it takes to go from one elongation configuration to the next occurrence of that same configuration. NAAP – Solar System Models 2/9 C Sun Earth C Sun Earth Location Elongation Term A 180° opposition B 90 degrees Western Quadrature C 0 degrees conjunction D East 120° XXX
However, it makes sense to use an easily recognized configuration like superior conjunction. Drag a planet (or the timeline) until Mercury is at superior conjunction. Now zero the counter, click start animation, and observe the counter. A synodic period is that time until Mercury is once again at superior conjunction. What is the synodic period of Mercury? .322 years Question 5: In the previous exercise superior conjunction was used as the reference configuration, but in practice it is not the best elongation configuration to use. Explain why. What is the best elongation configuration to use? (Hint: when is an inferior planet easiest to observe in the sky?) Do you get the same result for the synodic period you got in Question 4? Superior conjunction isn’t the best elongation configuration to use because the sun will be in the middle of both planets making it harder to see whereas, with inferior conjunction, which is a better one to use, both planets are on the same side of the sun. For both Superior and inferior conjunction, I got 0.322 years as the synodic period. Question 6: Use greatest elongation as the reference configuration to calculate the synodic period of Venus. (Be careful. There are two different occurrences of greatest elongation for an inferior planet: eastern and western.) Also, record the value of the greatest elongation of Venus Synodic period of Venus: 1.570 years Greatest elongation of Venus: 46.1 degrees What general trend do you notice between an inferior planet's distance from the Earth and its synodic period? I noticed that a planet that is close to Earth like Venus has a longer synodic year than one that is further away like Mercury. Question 7: Now use the simulator to find the value of Mercury's greatest elongation. NAAP – Solar System Models 3/9
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Greatest elongation of Mercury: 23 degrees Compare the values of greatest elongation for Mercury and Venus. What relationship do you notice between the value of greatest elongation of a planet and its distance from the Sun? Can you create a hypothetical 3 rd inferior planet in the simulator to check your reasoning? I notice that the further away a planet is from the sun, the larger the greatest elongation will be. Question 8: Now we will measure the synodic period of Mars. As before, set Mars up in a particular elongation configuration, zero the counter, and then animate the simulator again to see how long it takes Mars to return to the same configuration. Synodic period of Mars: 2.144 years Question 9: Just as with superior conjunction in Question 2, conjunction is not the best configuration to observe a superior planet in the sky. Explain why this is and explain which configuration is best for observing a superior planet. Conjunction is not the best configuration to observe a superior planet because just like in question 2 Earth and the planet will be on opposite sides of the sun making it a lot harder to see. The best configuration to observe a superior planet would be opposition because both planets are on the same side as the sun in a line. Measure the synodic periods of Jupiter and Saturn. Synodic period of Jupiter: 1.092 years Synodic period of Saturn: 1.035 years NAAP – Solar System Models 4/9
Question 10: Look over the synodic periods of the superior planets. Is there a trend? What value does the synodic period of a superior planet approach as we consider planets farther and farther away from Earth? Explain this trend. As planets get further away from Earth, the synodic period gets shorter. Question 11: Compare your answer above and your answer to the last part of Question 5, and then state a relationship between a planet’s synodic period and its distance from Earth that is valid for both inferior and superior planets. As planets become further away from Earth their synodic period gets smaller for both Inferior and superior planets. Venus which is inferior and right next to Earth has a synodic period of 1.570 years Mars is superior and has a synodic period of 2.144 years. Mercury which is inferior and farther from Earth than Venus has a smaller synodic year. Jupiter and Saturn are superior planets and farther from Earth than Mars and have a smaller synodic year. The only difference was that Inferior planets had bigger gaps in their synodic years. Question 12: So far we have only considered elongations of planets as viewed from Earth. Suppose you were standing on Mars, watching the planets go through their motions. Could you use the same terminology as before to explain the configurations of other planets? Yes, you could – the only difference would be that there is an additional inferior planet: the Earth. As an observer on Mars, you would see the Earth go through the same configurations as any other inferior planet. For example, when the Earth appears on the opposite side of the Sun as viewed NAAP – Solar System Models 5/9
from Mars, it is at superior conjunction. When the Earth appears at superior conjunction from Mars, at what configuration does Mars have as seen from Earth? Mars would have an opposition configuration seen from Earth. Set up the simulator so that the Earth appears at superior conjunction from Mars and time how long it takes the Earth to return to this same elongation configuration – that is, the synodic period of Earth as observed from Mars. Record the synodic period of Earth as viewed from Mars: 2.144 years How does this answer compare with the synodic period of Mars as found in Question 8? Explain why they are related. This answer compares to the one from question 8 because they are the same number. Mars being superior to Earth has a synodic period of 2.144 years and Earth being inferior to Mars also had a synodic period of 2.144 years. Question 13: Copernicus was interested in measuring the synodic periods of the planets so that he could calculate their sidereal periods. In this exercise we will calculate the sidereal periods of the planets using the data you have already collected. You may use a handheld calculator or make use the “Synodic Period Caclulator” on the Elongations and Configurations background page. Recall that the sidereal and synodic periods of a planet are related by 1 = 1 1 , for inferior planets S P E 1 = 1 1 , for superior planets S E P NAAP – Solar System Models 6/9
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where P stands for the planet's sidereal period, S stands for the planet's synodic period, and E stands for the Earth's sidereal period. We will now work an example to see how these formulas are used to find a planet’s sidereal period. The synodic period of Jupiter is 1.09 yr. Since E is 1 year, we have 1 = 1 1 , so 1 = 0.0826 1 , therefore P = 12yr. 1.09yr 1yr P P yr Now calculate the sidereal periods of the rest of the planets to complete the table below. (Be sure to use the same units of time for each of the variables. If you measured S in days then you should convert it to years by dividing by 365.25 days/year.) Planet Synodic Period (from exercises above) Sidereal Period (calculated) Mercury .322 years 1 yr Venus 1.570 years 2.75 yr Earth Not Applicable 1 yr Mars 2.144 years 1.87 yr Jupiter 1.09 yr 12 yr Saturn 1.035 yr 29.57 yr Is there a relationship between the sidereal period of a planet and its distance from the Sun? How does this relate to your observations in Question 1? Most planets have a larger sidereal profile the furthest they are from the Sun. From the planets listed on the table Saturn is the furthest from the sun and it has the largest sideral period in the graph. Question 14: Put yourself on the planet Mars and carefully note the location of the sun on the Zodiac Strip. Now zero the counter, animate, and time how long it takes for the apparent position of the sun relative to the background to return to the same position. How does this value for the Sidereal Period of Mars agree with your value in the table from Question 12? NAAP – Solar System Models 7/9
This took 2.144 years which was the same as the synodic period meaning the calculation would be the same making the sidereal period 1.87 years. Question 15: Make Earth the Observer’s Planet and Mars the target planet. Zero the Counter and note the location of Mars in the Zodiac Strip. Animate the planets until Mars (the target planet) comes back to the same place in the Zodiac Strip. How long did it take? It this number related to either the sidereal or synodic period? Why or why not? It took 2.144 years to get back to the same place in the zodiac strip. This number was the same as the synodic period for Mars in the graph above. Since we are looking at how long the planet takes to reach the same position in the zodiac strip it is related to the synodic period. Question 16: Let’s use the simulator to observe the retrograde loops of a superior planet. Set up the simulator for being located on the Earth and viewing Mars at conjunction. Zero the counter and start the animation. How long after conjunction does retrograde motion start and how long does it last? Retrograde motion starts at 1.363 years and keeps going until 2.925. Retrograde motion lasted 1.6 years. NAAP – Solar System Models 8/9
NAAP – Solar System Models 9/9
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