A geostationary satellite is orbiting the earth at a height of 5 R above that surface of the earth, R being the radius of the earth. The time period of another satellite in hours at a height of 2 R from the surface of the earth is

Question

A geostationary satellite is orbiting the earth at a height of 5 R above that surface of the earth, R being the radius of the earth. The time period of another satellite in hours at a height of 2 R from the surface of the earth is (A) 5 (B) 10 (C) 6√2 (D)  (6/√2)

Tardigrade Admin · Accepted Answer

According to Kepler's third law T propto r3 / 2 ∴ (T2/T1)=((r2/r1))3 / 2=((R+2 R/R+5 R))3 / 2=(1/23 / 2) Since T1=24 hours So, (T2/24)=(1/23 / 2) or T2=(24/23 / 2)=(24/2 √2)=6 √2 hours

Q. A geostationary satellite is orbiting the earth at a height of $5 R$ above that surface of the earth, $R$ being the radius of the earth. The time period of another satellite in hours at a height of $2 R$ from the surface of the earth is

5

10

$62$

$\frac{6}{2}$

According to Kepler's third law $T \propto r^{3/2}$
$∴ \frac{T _{2}}{T _{1}} = (\frac{r _{2}}{r _{1}})^{3/2} = (\frac{R + 2 R}{R + 5 R})^{3/2} = \frac{1}{2 ^{3/2}}$
Since $T_{1} = 24$ hours
So, $\frac{T _{2}}{24} = \frac{1}{2 ^{3/2}}$
or $T_{2} = \frac{24}{2 ^{3/2}} = \frac{24}{2 2} = 62$ hours

Q. A geostationary satellite is orbiting the earth at a height of 5R above that surface of the earth, R being the radius of the earth. The time period of another satellite in hours at a height of 2R from the surface of the earth is

5

10

62​

2​6​

According to Kepler's third law T∝r3/2 ∴T1​T2​​=(r1​r2​​)3/2=(R+5RR+2R​)3/2=23/21​ Since T1​=24 hours So, 24T2​​=23/21​ or T2​=23/224​=22​24​=62​ hours

Q. A geostationary satellite is orbiting the earth at a height of $5 R$ above that surface of the earth, $R$ being the radius of the earth. The time period of another satellite in hours at a height of $2 R$ from the surface of the earth is

$62$

$\frac{6}{2}$

According to Kepler's third law $T \propto r^{3/2}$
$∴ \frac{T _{2}}{T _{1}} = (\frac{r _{2}}{r _{1}})^{3/2} = (\frac{R + 2 R}{R + 5 R})^{3/2} = \frac{1}{2 ^{3/2}}$
Since $T_{1} = 24$ hours
So, $\frac{T _{2}}{24} = \frac{1}{2 ^{3/2}}$
or $T_{2} = \frac{24}{2 ^{3/2}} = \frac{24}{2 2} = 62$ hours