Answer:
a. 1.06R b. 1.32R c. GMm/R
Step-by-step explanation:
a. Considering the conservation of mechanical energy,
K₁ + U₁ = K₂ + U₂ (1)where K₁ and K₂ = initial and final kinetic energies of projectile, and U₁ and U₂ = initial and final potential energies of projectile
K₁ = 1/2mv², K₂ = 0, U₁ = -GMm/R where R = radius of earth , U₂ = '-GMm/r where r = radius at maximum height.
So, inputting the variables into (1), we have
1/2mv² - GMm/R = 0 - GMm/r
1/2mv² = -GMm/r + GMm/R (2)
Now v = 0.241v₁ where v₁ =√(2GM/R) escape velocity
Substituting v into (2) above, we have
1/2m[0.241√(2GM/R)]² = -GMm/r + GMm/R
0.058GMm/R = -GMm/r + GMm/R
GMm/r = GMm/R -'0.058GMm/R
GMm/r = 0.942GMm/R
r = R/0.942
r = 1.06R
b. When K₁ = 0.241K wh6ere K = escape kinetic energy = GMm/R. So
K₁ + U₁ = K₂ + U₂
0.241GMm/R -'GMm/R = 0 -' GMm/r
-'0.759GMm/R = '-GMm/r
r = R/0.759 = 1.32R
c. If it is to escape earth, its initial velocity must equal the escape velocity.
So its least initial mechanical energy is its escape kinetic energy
1/2m[√(2GM/R)]² = GMm/R