Given :
Two astronauts, one of mass 64 kg and the other 86 kg , are initially at rest together in outer space.
To Find :
How far apart are they when the lighter astronaut has moved 10 mm.
Solution :
Since, there is no force in space.
So, applying conservation of momentum :
[tex]64v_1 + 86v_2 = 0\\\\v_2 = - \dfrac{32}{43}v_2[/tex]
We know, distance travelled by smaller astronaut is :
[tex]10 = v_1t[/tex]
For bigger astronaut distance travelled :
[tex]v_2t = -\dfrac{32}{43}(v_1t)\\\\v_2t = -\dfrac{32}{43}\times 10\\\\v_2t = -7.44\ mm[/tex]
Therefore, they are ( 10 + 7.44 ) = 17.44 mm apart from each others.
Hence, this is the required solution.
