Answer:
The veolcity of the 7 kilogram body is approximately 0.14 meters per second
Explanation:
Here we have to use the conservation of linear momentum for the bodies asumming the force of the spring an internal force on the system formed by the two blocks. So the change on linear momentum ([tex] \overrightarrow{p}[/tex]) has to be zero.
[tex]\varDelta\overrightarrow{p}=0 [/tex]
[tex]\overrightarrow{p_{f}}=\overrightarrow{p_{i}} [/tex]
The final momentum [tex] \overrightarrow{p_{f}} [/tex] is the sum of the final momentum of each block, and initial linear momentum [tex]\overrightarrow{p_{i}} [/tex] is zero because the blocks were initially at rest, so:
[tex] m_{5}\overrightarrow{v_{5}}+m_{7}\overrightarrow{v_{7}}=0 [/tex]
It's important to note that the linear momentum is a vector quantity so the direction of the velocities are important, assuming positive the velocity of the 5 kilogram body
[tex] m_{5}v_{5}=-m_{7}v_{7}[/tex]
[tex]v_{7}=\frac{-m_{5}v_{5}}{m_{7}}=\frac{-(5)(0.2)}{7} [/tex]
[tex]v_{7}\approx-0.14\,\frac{m}{s} [/tex]
The speed is 0.14 meters per second and the negative sign means the direction is opposite of the 5 kg body velocity.
