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Q.Using Huygens concept of wavefront, derive Snell's law of refraction.

Kerala DhseKerala DHSE Plus Two Board 2025Subjective· 3mImportance★★★★★
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Applying Huygens' principle to a plane wavefront crossing a boundary between two media, and using simple triangle geometry, gives sin i / sin r = v1/v2, which is Snell's law of refraction.

Consider a plane wavefront AB in medium 1 (speed v1v_1) incident on the plane surface XY separating it from medium 2 (speed v2v_2), making angle of incidence i with the normal. Let the wavefront take time τ for the point B on it to reach the surface at C, while the secondary wavelet from A (which reached the surface earlier) spreads into medium 2 with speed v2v_2, tracing a sphere of radius v2τv_2\tau in that time. The new refracted wavefront is the tangent CD drawn from C to this sphere.

From triangle ABC: BC=v1τBC = v_1\tau and ∠BAC=i\angle BAC = i (angle between incident wavefront's normal path and the surface), so

sin⁡i=BCAC=v1τAC\sin i = \dfrac{BC}{AC} = \dfrac{v_1\tau}{AC}

From triangle ACD: AD=v2τAD = v_2\tau and the angle of refraction is r, so

sin⁡r=ADAC=v2τAC\sin r = \dfrac{AD}{AC} = \dfrac{v_2\tau}{AC}

Dividing the two relations, AC cancels: …

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