MCQEasyJEE 2023Viscosity & Stoke's Law

JEE Physics 2023 Question with Solution

Eight equal drops of water are falling through air with a steady speed of 10cm/s10 \, \text{cm/s}. If the drops collapse, the new velocity is :-

  • A

    10cm/s10 \, \text{cm/s}

  • B

    40cm/s40 \, \text{cm/s}

  • C

    16cm/s16 \, \text{cm/s}

  • D

    5cm/s5 \, \text{cm/s}

Answer

Correct answer:B

Step-by-step solution

Standard Method

Given: Eight equal water drops fall through air with steady speed 10cm/s10 \, \text{cm/s}.

Find: The new steady speed when they collapse into one bigger drop.

For eight small spherical drops merging into one large spherical drop, volume is conserved:

8×43πr3=43πR38 \times \frac{4}{3}\pi r^3 = \frac{4}{3}\pi R^3

So,

8r3=R38r^3 = R^3

Hence,

R=2rR = 2r

The terminal velocity of a small sphere in a fluid is proportional to the square of its radius:

Vr2V \propto r^2

Therefore,

V1V2=(rR)2\frac{V_1}{V_2} = \left(\frac{r}{R}\right)^2

Substituting R=2rR = 2r,

V1V2=(r2r)2=14\frac{V_1}{V_2} = \left(\frac{r}{2r}\right)^2 = \frac{1}{4}

So,

V2=4V1V_2 = 4V_1

Now using V1=10cm/sV_1 = 10 \, \text{cm/s},

V2=4×10=40cm/sV_2 = 4 \times 10 = 40 \, \text{cm/s}

Therefore, the new velocity is 40cm/s40 \, \text{cm/s} and the correct option is B.

The solution shows km/s in one step, but that is inconsistent with the question and options; the correct unit here is cm/s.

Common mistakes

  • Using radius directly proportional to terminal velocity. This is wrong because for a spherical drop in viscous medium, terminal velocity varies as r2r^2, not rr. Use Vr2V \propto r^2.

  • Adding radii of eight drops to get the new radius. This is wrong because drops combine by conserving volume, not radius. First write 8×43πr3=43πR38 \times \frac{4}{3}\pi r^3 = \frac{4}{3}\pi R^3.

  • Ignoring that eight identical drops mean the new radius is 2r2r. If this cube-root step is missed, the final speed ratio is obtained incorrectly. Always solve R3=8r3R^3 = 8r^3 carefully.

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