MHTCET 14 May 2023 Shift 2 Solved Paper

To solve this problem, we need to understand the relationship between the surface energy of a drop and its radius. The surface energy E of a drop is proportional to its surface area A. The surface area of a sphere (which is the shape of a water drop) can be calculated using the formula:
A=4πr2
where r is the radius of the sphere. The surface energy is then given by:
E=σA=σ4πr2
where σ is the surface tension of the liquid. When 1000 small drops combine to form one large drop, the volume of the large drop is equal to the sum of the volumes of the small drops. The volume of a sphere is given by
V=‌

4

3

πr3
If the radius of each small drop is r, the total volume of the small drops is 1000×‌

4

3

πr3. Let the radius of the large drop be R. Then,
1000×‌

4

3

πr3=‌

4

3

πR3
Canceling common terms and taking the cube root of both sides, we get
10001∕3×r=R
Since 1000=103, the cube root of 1000 is 10 .
10×r=R
So the radius of the large drop is ten times the radius of each small drop.
Now we can compare the initial surface energy of all small drops with the final surface energy of the large drop. Let's denote the initial surface energy as E‌initial ‌ and the final surface energy as E‌final ‌.
E‌initial ‌=1000×σ4πr2E‌final ‌=σ4πR2
Substituting R=10r into the final energy equation, we get:
Now, we compare the final energy to the initial energy:
Hence, the ratio of the final surface energy to the total initial surface energy is 1:10 . Therefore, the correct answer is:
Option B 1 : 10