MHT CET · Physics · Mechanical Properties of Fluids
Liquid drops are falling slowly one by one from vertical glass tube. The relation between the weight of a drop ' \(w\) ', the surface tension ' \(T\) ' and the radius ' \(r\) ' of the bore of the tube is (Angle of contact is zero)
- A \(\mathrm{W}=\pi \mathrm{r}^2 \mathrm{~T}\)
- B \(\mathrm{W}=2 \pi^2 \mathrm{r} T\)
- C \(\mathrm{W}=\left(\frac{4}{2}\right) \pi^2 \mathrm{rT}\)
- D \(\mathrm{W}=2 \pi \mathrm{rT}\)
Answer & Solution
Correct Answer
(D) \(\mathrm{W}=2 \pi \mathrm{rT}\)
Step-by-step Solution
Detailed explanation
\(\begin{array}{ll} & \text { Weight of liquid drop }=\text { Force due to surface } \\ & \text { tension } \\ \therefore & \mathrm{W}=\text { Circumference of the tube } \times \mathrm{T} . \\ \therefore & \mathrm{W}=2 \pi \mathrm{rT}\end{array}\)
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