(C)
24. Two stones of masses in the ratio of 3 : 4 fall
from heights in the ratio 4: 9. The ratio of their
momenta on reaching the ground
Answers
Answer:
1/2
Explanation:
velocity ratio will be 2/3 using equation of motion
and mass ratio is 3/4
so momentum ratio is 1/2
Let us assume that the mass of first stone is 3J and mass of second stone is 4J. Aslo, the height of first stone is 4M and height of second stone is 9M.
Since, both the stones fall from heights in ratio 4:9. Means, their initial velocity i.e. u is 0 m/s.
Using the First Equation Of Motion,
v = u + at
→ v = 0 + at1
→ v = at1
Now, using the Second Equation Of Motion,
s = ut + 1/2 at²
→ 4M = (0)t1 + 1/2 a(t1)²
→ 4M = 1/2 a(t1)²
→ 8M = a(t1)²
→ √(8M/a) = t1
So,
→ v = a√(8M/a)
→ v = √[(8Ma²)/a]
→ v = √(8aM)
Now,
Momentum (p1) = mass × velocity
= 3J × √(8aM) ..........(1st equation)
Similarly,
Using the First Equation Of Motion,
v = u + at
→ v = 0 + at1
→ v = at1
Now, using the Second Equation Of Motion,
s = ut + 1/2 at²
→ 9M = (0)t1 + 1/2 a(t2)²
→ 9M = 1/2 a(t2)²
→ 18M = a(t2)²
→ √(18M/a) = t2
So,
→ v = a√(18M/a)
→ v = √[(18Ma²)/a]
→ v = √(18aM)
Now,
Momentum (p2) = mass × velocity
= 4J × √(18aM) ..........(2nd equation)
We have to find the ratio of momenta on reaching the ground.
[3J × √(8aM)] / [4J × √(18aM)]
Squaring both sides
[3J × √(8aM)]² / [4J × √(18aM)]²
(9J × 8aM) / (16J × 18aM)
(9 × 8)/(16 × 18)
(1 × 1)/(2 × 2)
1/4
Now,
(p1)²/(p2)² = 1/4
(p1)²/(p2)² = (1)²/(2)²
p1/p2 = √(1/2)²
p1/p2 = 1/2
Therefore, ratio of their momenta on reaching the ground is 1:2.