Three immiscible liquids of densities d_{1}>d_{2}>d_{3} and refractive indices mu _{1}>mu_{2}>mu

Three immiscible liquids of densities $d_{1}>d_{2}>d_{3}$ and refractive indices $\mu _{1}>\mu_{2}>\mu_{3}$ are put in a beaker. The height of each liquid column is $\frac{h}{3}$ . A dot is made at the bottom of the beaker. For near normal vision, find the apparent depth of the dot.

Answers (1)

Key concept : Coordinate convention: At the first surface (+upward and -ve downward)

$\frac{\mu _{2}}{h'}-\frac{\mu _{1}}{(-h)}=\frac{\mu _{2}-\mu _{1}}{\infty }$ (infinity because the surface is plane)

or $h'=\frac{\mu _{2}}{\mu _{1}}h.$ The negative sign shows that it is on the side of the object

$h'$ is the apparent depth of O after refraction from interface.

The position of image O after the refraction from surface-1. If seen from $u_{2}$ , the apparent depth is $h_{1}$

$h_{1}=\frac{\mu _{2}}{\mu _{1}}\frac{h}{3}$

The negative sign indicates that it is on the side of the object.

Since the image formed by surface-1. It will act as an object for surface-2. If seen from $u_{3}$ , the apparent depth is $h_{2}$ .

Similarly, the image formed by medium 2, $O_{2}$ acts as an object for medium 3

$h_{2}=-\frac{\mu _{3}}{\mu _{2}}\left (\frac{\mu _{2}}{\mu _{1}}\frac{h}{3}+\frac{h}{3} \right )=-\frac{h}{3}\left (\frac{\mu _{3}}{\mu _{2}}+\frac{\mu _{2}}{\mu _{1}} \right )$

Finally the image formed by surface -2 will act as an object for surface-2. If seen from outside, the apparent depth is $h_{3}$

$h_{3}=-\frac{1}{\mu _{3}}\left [\frac{h}{3}+ \frac{h}{3}\left (\frac{\mu _{3}}{\mu _{2}}+\frac{\mu _{2}}{\mu _{1}} \right ) \right ]=-\frac{h}{3}\left ( \frac{1}{\mu _{1}}+\frac{1}{\mu _{2}}+\frac{1}{\mu _{3}} \right )$

Hence apparent depth of odt is $\frac{h}{3}\left ( \frac{1}{\mu _{1}}+\frac{1}{\mu _{2}}+\frac{1}{\mu _{3}} \right )$

Important point:

Apparent depth (distance of final image from final surface)

$=\frac{t_{1}}{n_{1\; real}}+\frac{t_{2}}{n_{2\; real}}+\frac{t_{3}}{n_{3\; real}}+...+\frac{t_{n}}{n_{n\; real}}$

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infoexpert23

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Three immiscible liquids of densities and refractive indices are put in a beaker. The height of each liquid column is . A dot is made at the bottom of the beaker. For near normal vision, find the apparent depth of the dot.

Answers (1)

Posted by

infoexpert23

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Three immiscible liquids of densities $d_{1}>d_{2}>d_{3}$ and refractive indices $\mu _{1}>\mu_{2}>\mu_{3}$ are put in a beaker. The height of each liquid column is $\frac{h}{3}$ . A dot is made at the bottom of the beaker. For near normal vision, find the apparent depth of the dot.