If the length of the day is T, the height of that TV satellite above the earth's surface which always appears stationary from earth, will be: ( R = radius of earth, M = Mass of earth, G = Gravitational constant)

Question

If the length of the day is T, the height of that TV satellite above the earth's surface which always appears stationary from earth, will be: ( R = radius of earth, M = Mass of earth, G = Gravitational constant) (A) h =[(4 π2 GM / T 2)]1 / 3 (B) h=[(4 π GM / T 2)]1 / 2- R (C) h=[(G M T2/4 π2)]1 / 3-R (D) h=[(G M T2/4 π2)]1 / 3+R

Tardigrade Admin · Accepted Answer

The time period must be T. Let the height be h radius of the orbit a=R + h From the kepler third law T 2=(( a )3(4 π2)/ GM ) T 2=(( R + h )3(4 π2)/ GM ) h =[( T 2 GM /4 π2)]1 / 3- R

Q. If the length of the day is $T$ , the height of that TV satellite above the earth's surface which always appears stationary from earth, will be : $(R =$ radius of earth, $M =$ Mass of earth, $G =$ Gravitational constant)

$h = [\frac{4 π ^{2} GM}{T ^{2}}]^{1/3}$

$h = [\frac{4 π GM}{T ^{2}}]^{1/2} - R$

$h = [\frac{GM T ^{2}}{4 π ^{2}}]^{1/3} - R$

$h = [\frac{GM T ^{2}}{4 π ^{2}}]^{1/3} + R$

The time period must be $T$ .
Let the height be $h$ radius of the orbit $a = R$ + h
From the kepler third law
$T^{2} = \frac{( a ) ^{3} ( 4 π ^{2} )}{GM}$
$T^{2} = \frac{( R + h ) ^{3} ( 4 π ^{2} )}{GM}$
$h = [\frac{T ^{2} GM}{4 π ^{2}}]^{1/3} - R$

Q. If the length of the day is T, the height of that TV satellite above the earth's surface which always appears stationary from earth, will be : (R= radius of earth, M= Mass of earth, G= Gravitational constant)

h=[T24π2GM​]1/3

h=[T24πGM​]1/2−R

h=[4π2GMT2​]1/3−R

h=[4π2GMT2​]1/3+R