1 Answer

Shivani Garg · Answer 1 · 2022-04-18T21:56:38+0000

Step-by-step explanation:

The density of earth
$\rho_E$ is given by

$\rho_E = (M_E)/(\left((4\pi)/(3)R_E^3\right))$

and in terms of this density, we can write the acceleration due to gravity on earth as

$g_E =G(M_E)/(R_E^2) = (4\pi G)/(3)\rho_ER_E$

Similarly, the acceleration due to gravity
g_P on this new planet is given by

$g_P = G(M_P)/(R_P^2) = G((4\pi)/(3)R_p^3\rho_P)/(R_P^2)$

$\:\:\:\:\:= (4\pi G)/(3)\rho_PR_P$

We know that this planet has the same density as earth and has a radius 2 times as large. We can then rewrite
g_P as

$g_P = (4\pi G)/(3)\rho_E(2R_E)$

$\:\:\:\:\:= 2\left((4\pi G)/(3)\rho_ER_E\right) = 2g_E$

$\:\:\:\:\:= 2(9.8\:\text{m/s}^2) = 19.6\:\text{m/s}^2$

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