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c) third law d) law of gravity 6. what does the \ represent in the equa…

Question

c) third law
d) law of gravity

  1. what does the

\ represent in the equation $t=r^{3/2}$?
a) the planet’s radius
b) the average distance from the sun (in au)
c) the planet’s temperature
d) the time it takes to orbit the sun

open - ended questions: answer the following questions in complete sentences.

  1. explain how kepler’s first law describes the path of a planet around the sun.
  2. how does kepler’s second law help us understand the speed of a planet in its orbit?
  3. why is kepler’s third law useful for scientists studying other planets?

kepler’s first law of planetary motion
two diagrams of planetary orbits, one elliptical with the sun and a planet, one more circular with the sun and a planet
describe what kepler’s 1st law tells us about a planet’s orbit in your own words.
what is eccentricity? what does it tell us about a planet’s orbit?
how is eccentricity connected to kepler’s 1st law?

kepler’s second law of planetary motion
describe what kepler’s 2nd law tells us about a planet’s orbit in your own words.
how is a planet’s velocity different at its aphelion versus at the perihelion? why does this happen?
diagram of an elliptical orbit with the sun at the center, points a, b, c, d on the orbit, $a_1$ and $a_2$ as areas, $t = 25$ days for a to b, $t =?$ for c to d, and $a_1 = a_2$
use this image to answer questions 25 - 26.
if the planet takes 25 days to travel from point a to b, how long will it take to travel from point c to d? explain how you know using kepler’s 2nd law.
is the planet traveling faster between points a and b or between points c and d? explain how you know using kepler’s 2nd law.

Explanation:

Question 6 (Multiple Choice)
Brief Explanations

The equation \( T = R^{3/2} \) is related to Kepler's Third Law (simplified for AU and years), where \( T \) is the orbital period (in years) and \( R \) is the average distance from the Sun in astronomical units (AU). Option a is incorrect as it's not the planet’s radius. Option c is incorrect (temperature is not \( R \) here). Option d is \( T \), not \( R \). So \( R \) represents the average distance from the Sun (in AU).

Brief Explanations

Kepler’s First Law states that a planet’s orbit around the Sun is an ellipse, with the Sun located at one of the two foci of the ellipse. This means the planet’s path is not a perfect circle but a stretched - out circle (ellipse), and the Sun is off - center along the major axis of this ellipse.

Brief Explanations

Kepler’s Second Law (Law of Equal Areas) says that a line segment joining a planet and the Sun sweeps out equal areas in equal intervals of time. When a planet is closer to the Sun (at perihelion), the distance it needs to travel to sweep out the same area in a given time is shorter, so it moves faster. When it is farther from the Sun (at aphelion), it has to travel a longer distance to sweep out the same area in the same time, so it moves slower. This law helps us understand that a planet’s orbital speed is not constant; it varies depending on its distance from the Sun.

Answer:

b) The average distance from the Sun (in AU)

Open - Ended Question 1: Explain how Kepler’s First Law describes the path of a planet around the Sun.