Four particle each of mass m are undergo...

Four particle each of mass m are undergoing circular motion under the influence of action of their mutual gravitationa interaction while being at the vertices of a square of side a.Their speeds are. (A) `sqrt(2Gm)/a` (B) `1.16sqrt(Gm)/a` (C) `1.5sqrt(Gm)/a` (D) `sqrt(Gm)/a`

Similar Questions

Explore conceptually related problems

Two particles of equal masses m go round a circle of radius R under the action of their mutual gravitational attraction. The speed of each particle is v=sqrt((Gm)/(nR)) . Find the value of n.

If A(1,-1,2),B(2,1,-1)C(3,-1,2) are the vertices of a triangle then the area of triangle ABC is (A) sqrt(12) (B) sqrt(3) (C) sqrt(5) (D) sqrt(13)

The lengths of the sides of a right triangle given by a (A) (1+sqrt(5))/(4), (B) (1+sqrt(5))/(2) (C) 1+sqrt(5), (D) (1-sqrt(5))/(2)

The ratio of the area of a square of side a and that of an equilateral triangle of side a , is (a) 2:1\ (b) 2:sqrt(3)\ (c) 4:3 (d) 4:sqrt(3)

Four identical particles each of mass 1 kg are arranged at the corners of a square of side length 2sqrt(2) m. If one of the particles is removed, the shift in the centre of mass is

If mass of earth is M ,radius is R and gravitational constant is G,then work done to take 1kg mass from earth surface to infinity will be (A) sqrt((GM)/(2R)) (B) (GM)/(R)] (C) sqrt((2GM)/(R))]

Each side of an equilateral triangle is 8 cm. Its area is (a) 16sqrt(3)\ c m^2 (b) 32sqrt(3)\ c m^2 (c) 24sqrt(3)\ c m^2 (d) 8sqrt(3)\ c m^2

Four particle each of mass m are undergoing circular motion under the influence of action of their mutual gravitationa interaction while being at the vertices of a square of side a.Their speeds are. (A) `sqrt(2Gm)/a` (B) `1.16sqrt(Gm)/a` (C) `1.5sqrt(Gm)/a` (D) `sqrt(Gm)/a`

Similar Questions

Recommended Questions