Answer:
a) mg = 11m
b) Vg2 = 0.3×10^7m/s
Explanation:
Taking initial directions of the proton as the positive
Vpq= 1.80×10^7m/s
Vp2 = -1.5×10^7m/s
In elastic collision,there is no external net force on the system, the total momentum before the collision is equal to the total momentum after the collision
P1 = P2
In the collision between two particles (A and B), we get:
PA1 + PB1 = PA2 + PB2
Where the momentum of a particle is given by:
P = mc
The collision equation will be:
MaVA + MBVB= MAVA2 + MBVB2 ... eq1
In elastic collision between two particles, the relative velocities before and after the collision have the same magnitude but opposite signs.VA1 - VB1 = VB2 - VA2 ...eq2
b) VP1 - 0 = Vg2 - VP2
Vg2 = Vp1 + Vp2
Vg2 = (1.8×10^7) + (-1.5×10^7)
Vg2 = 0.3 ×10^7m/s
a) substituting into eq 1
(1.8×10^7) + mg ×0 = m × (1.8×10^7) + mg × (0
3×10^7)
mg = [(1.8×10^7) + (1.5×10^7) m] / (0.3×10^7)
mg= 11 m
