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GUJCET · Physics · Ray Optics and Optical Instruments
Angle of minimum deviation for a prism of refractive index 1.5 is equal to the angle of prism of given prism. Then the angle of prism is ________ . \(\left(\sin 48^{\circ} 36^{\prime}=0.75\right) \quad\)
- A \(80^{\circ}\)
- B \(41^{\circ} 24^{\prime}\)
- C \(60^{\circ}\)
- D \(82.8^{\circ}\)
Answer & Solution
Correct Answer
(D) \(82.8^{\circ}\)
Step-by-step Solution
Detailed explanation
(D) \(82.8^{\circ}\)
\(n=\frac{\sin \left(\frac{\mathrm{A}+\mathrm{D}_{m}}{2}\right)}{\sin \frac{\mathrm{A}}{2}}\)
\(1.5=\frac{\sin \left(\frac{\mathrm{A}+\mathrm{A}}{2}\right)}{\sin \frac{\mathrm{A}}{2}}\)
\(1.5=\frac{\sin \mathrm{A}}{\sin \frac{\mathrm{A}}{2}}\)
\(1.5=\frac{2 \sin \frac{\mathrm{~A}}{2} \cos \frac{\mathrm{~A}}{2}}{\sin \frac{\mathrm{~A}}{2}}\)
\(1.5=2 \cos \frac{\mathrm{~A}}{2}\)
\(0.7500=\cos \frac{\mathrm{A}}{2}\)
\(\therefore \quad \frac{\mathrm{A}}{2}=\cos ^{-1} 0.7500\)
\(\therefore \quad \frac{\mathrm{A}}{2}=41.4^{\circ}\)
\(\therefore \mathrm{A}=82.8^{\circ}\)
\(n=\frac{\sin \left(\frac{\mathrm{A}+\mathrm{D}_{m}}{2}\right)}{\sin \frac{\mathrm{A}}{2}}\)
\(1.5=\frac{\sin \left(\frac{\mathrm{A}+\mathrm{A}}{2}\right)}{\sin \frac{\mathrm{A}}{2}}\)
\(1.5=\frac{\sin \mathrm{A}}{\sin \frac{\mathrm{A}}{2}}\)
\(1.5=\frac{2 \sin \frac{\mathrm{~A}}{2} \cos \frac{\mathrm{~A}}{2}}{\sin \frac{\mathrm{~A}}{2}}\)
\(1.5=2 \cos \frac{\mathrm{~A}}{2}\)
\(0.7500=\cos \frac{\mathrm{A}}{2}\)
\(\therefore \quad \frac{\mathrm{A}}{2}=\cos ^{-1} 0.7500\)
\(\therefore \quad \frac{\mathrm{A}}{2}=41.4^{\circ}\)
\(\therefore \mathrm{A}=82.8^{\circ}\)
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