Kepler’s laws and planetary motion - One Line Questions
1.
The eccentricity of a perfectly circular orbit is: —
0
2.
If the semi-major axis of a planet's orbit is doubled, its orbital period increases by a factor of: —
2√2
3.
The semi-major axis of the Earth's orbit is approximately 1 Astronomical Unit (AU). If Jupiter's semi-major axis is about 5.2 AU, what is its approximate orbital period in Earth years? —
11.8
4.
Kepler's third law relates the orbital period of a planet to the semi-major axis of its elliptical orbit. If T is the orbital period and a is the semi-major axis, then T² is proportional to... —
a³
5.
If the eccentricity of an elliptical orbit is zero, the orbit is... —
a circle.
6.
Consider two planets orbiting the same star. If Planet X has a period of 8 years and Planet Y has a period of 1 year, how does their semi-major axis (a) compare? —
a_X = 4 * a_Y
7.
The point in a planet's orbit where it is closest to the Sun is called the... —
perihelion.
8.
Kepler's first law of planetary motion states that the orbit of every planet is an ellipse with the Sun at one... —
focus of the ellipse.
9.
Kepler's first law describes the shape of planetary orbits as: —
ellipses.
10.
According to Kepler's second law, a line segment joining any planet and the Sun sweeps out equal areas during equal... —
times.
11.
Kepler's laws are applicable to any system where a smaller body orbits a much larger body due to gravitational attraction, such as... —
all of the above.
12.
Kepler's second law is a statement about the conservation of: —
angular momentum.
13.
The velocity of a planet is highest at perihelion and lowest at aphelion, as per Kepler's second law, due to the conservation of: —
angular momentum.
14.
Kepler's second law implies that the tangential velocity of a planet is greatest when the planet is closest to the Sun and least when it is farthest away. This is a direct result of the conservation of: —
angular momentum.
15.
Which of Kepler's laws implies that planets move faster when they are closer to the Sun and slower when they are farther away? —
Second Law
16.
Which of Kepler's laws provides a direct relationship between the time it takes for a planet to orbit the Sun and the size of its orbit? —
Third Law
17.
The Sun is located at one focus of the elliptical orbit of the Earth. This is stated by Kepler's... —
First Law
18.
The rate at which area is swept by the line joining the planet to the Sun is constant. This is Kepler's... —
Second Law
19.
The statement 'The square of the orbital period of a planet is directly proportional to the cube of the semi-major axis of its orbit' is Kepler's: —
Third Law
20.
Kepler's laws were derived from detailed observations made by which astronomer? —
Tycho Brahe
21.
The eccentricity of the Earth's orbit around the Sun is approximately 0.0167. This means the Earth's orbit is... —
nearly circular.
22.
If the semi-major axis of a planet's orbit decreases, its orbital period will: —
decrease.
23.
The laws of planetary motion were a significant step towards understanding gravity, later formalized by... —
Isaac Newton.
24.
The 'area velocity' (dA/dt) for a planet in orbit around the Sun is constant according to Kepler's second law. This area velocity is given by: —
L/2m
25.
The 'equal areas in equal times' law (Kepler's second law) is a consequence of the conservation of... —
angular momentum.
26.
The Sun's mass (M) can be determined from Kepler's third law if the period (T) and semi-major axis (a) of any planet orbiting it are known. The formula for M is: —
M = (4π²a³) / (GT²)
27.
Consider a comet with a highly elliptical orbit. When it is closest to the Sun, its speed is: —
maximum.
28.
If a planet's orbit had an eccentricity of 0.9, it would be considered: —
highly elliptical.
29.
Kepler's third law relates the square of the orbital period to the cube of the: —
semi-major axis of the orbit.
30.
The conservation of angular momentum in Kepler's second law means that the planet's velocity vector and its position vector relative to the Sun are always... —
coplanar.
31.
Kepler's second law implies that the speed of a planet is not constant throughout its orbit. It is maximum at perihelion and minimum at... —
aphelion.
32.
The point in a planet's orbit where it is farthest from the Sun is called the... —
aphelion.
33.
If the orbital period of a planet is T, and its semi-major axis is a, then Kepler's third law states T² ∝ a³ for planets orbiting the same... —
star.
34.
The unit of the constant (4π²/GM) in Kepler's third law is dependent on the gravitational constant G and the mass M of the central body. Its SI unit is... —
s²/m³
35.
The distance from the center of the ellipse to each focus is denoted by 'c'. For an ellipse, c = √(a² - b²), where 'a' is the semi-major axis and 'b' is the... —
semi-minor axis.
36.
If a planet has a larger semi-major axis for its orbit, its orbital period will be... —
longer.
37.
Kepler's first law is crucial because it replaced the ancient idea of perfect circular orbits with a more accurate description of... —
elliptical orbits.
38.
Kepler's laws are a cornerstone of classical mechanics and have been used to calculate the orbits of spacecraft and predict the positions of... —
planets and comets.
39.
If the semi-major axis of planet B's orbit is twice that of planet A, how does its orbital period (T) compare? —
T_B = 2√2 * T_A
40.
Consider a planet with semi-major axis 'a' and orbital period 'T'. If another planet orbits the same star with semi-major axis '2a', its new period T' will be: —
T' = 2√2 T
41.
Which of the following is NOT one of Kepler's Laws of Planetary Motion? —
The Law of Inertia
42.
The mathematical formulation of Kepler's third law for a planet orbiting the Sun is T² = (4π²/GM)a³, where M is the mass of... —
the Sun.
43.
The constant of proportionality in Kepler's third law (T² / a³ = constant) depends on the mass of the central body, which is... —
the star.
44.
The sum of the distances from any point on the ellipse to the two foci is constant and equal to... —
twice the semi-major axis.
45.
Kepler's laws are empirical laws, meaning they were derived from observations rather than fundamental principles. Newton's law of gravitation provided the theoretical basis for these laws. —
True
46.
If two planets orbit the same star, and Planet 1 has an orbital period T1 and semi-major axis a1, and Planet 2 has T2 and a2, then (T1/T2)² = (a1/a2)³. —
True
47.
The constant in Kepler's third law, T² = (4π²/GM)a³, is independent of the planet's mass. This implies that all objects orbiting the same central body have the same T²/a³ ratio. —
True
48.
Kepler's laws are fundamental to celestial mechanics and were a crucial precursor to Newton's universal law of gravitation, providing observational evidence for the nature of planetary motion. —
True
49.
For a circular orbit, the semi-major axis 'a' is equal to the radius 'r'. In this case, Kepler's third law becomes T² ∝ r³. —
True, for circular orbits
50.
Kepler's third law can be rearranged to find the mass of the central body if the orbital period and semi-major axis of a satellite are known. This is known as the 'mass-radius' relation. —
True, it's a fundamental application.