Answer:
Explanation:
Given
initial velocity of particle u=274 m/s
one Particle moves up with velocity of v=235 m/s
and other moves u=484 m/s towards east
let [tex]v_y[/tex] and [tex]v_x[/tex] be the velocity of third Particle is Y and x direction
conserving momentum in y direction
[tex]m(274)=\frac{m}{3}\times v_y+\frac{m}{3}\times 0+\frac{m}{3}\times 235[/tex]
[tex]v=587 m/s[/tex]
Now conserving momentum in x direction
[tex]m\times 0=\frac{m}{3}\times v_x+\frac{m}{3}\times 0+\frac{m}{3}\times 484[/tex]
[tex]v_x=-484 m/s[/tex]
Net Velocity of third Particle
[tex]v^2=v_x^2+v_y^2[/tex]
[tex]v=\sqrt{v_x^2+v_y^2}[/tex]
[tex]v=\sqrt{484^2+587^2}[/tex]
[tex]v=760.80 m/s[/tex]
