Respuesta :
Answer:
period of rotation is 9.9843 years
Explanation:
Given data
sides = 1.0×10^12 m
to find out
period of rotation
solution
first we use the gravititional formula i.e
F(g) = 2 F cos 30
here F = G × mass(sun)² / radius²
F = 6.67 × [tex]10^{-11}[/tex] × (1.99× [tex]10^{30}[/tex])² / (1× [tex]10^{30}[/tex])²
so
F(g) = 2 × 6.67 × [tex]10^{-11}[/tex] × (1.99× [tex]10^{30}[/tex])² / (1× [tex]10^{30}[/tex])² × (1.73/2)
F(g) = 4.57 × [tex]10^{26}[/tex] N
and
by the law of sines
r/sin30 = s/sin120
so r will be
r = 1.0×10^12 (0.5/.87)
r = 5.75 × [tex]10^{11}[/tex] m
we know that gravititional force = centripetal force
so here
centripetal force = mv² /r
centripetal force = 1.99× [tex]10^{30}[/tex] v² / 5.75 × [tex]10^{11}[/tex]
so
4.57 × [tex]10^{26}[/tex] = mv² /r
4.57 × [tex]10^{26}[/tex] = 1.99× [tex]10^{30}[/tex] v² / 5.75 × [tex]10^{11}[/tex]
v² = 4.57 × [tex]10^{26}[/tex] × 5.75 × [tex]10^{11} / 1.99× [tex]10^{30}[/tex]
and
v = 11480 m/sec
and we know period of rotation formula
t = d /v
t = 2 [tex]\pi[/tex] r /v
t = 2 × [tex]\pi[/tex] × 5.75 × [tex]10^{11} / 11480
t = 314 × [tex]10^{5} / 31536000 year
t = 9.9843 year
so period of rotation is 9.9843 years
