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The critical angle for total internal reflection at a liquid-air interface is 41.0. (1) If a ray of light traveling in the liquid has an angle of incidence of 34.5 at the interface with respect to the normal, what angle does the refracted ray in the air make with the normal?(2) If a ray of light traveling in air has an angle of incidence of 34.5 at the interface with respect to the normal, what angle does the refracted ray in the liquid make with the normal?

Respuesta :

jolis1796

Answer:

a) θ₂ = 60.9593º

b)  θ₂ = 21.8141º

Explanation:

a) Given

1 → liquid

2 → the air

θcrit = 41º

n₂ = 1

θ₁ = 35º

θ₂ = ?

We apply the formula

Sin θcrit = n₂ / n₁    ⇒    n₁ = n₂ / Sin θcrit = 1 / Sin 41º = 1.5242

Now, we apply Snell's Law

n₁*Sin θ₁ = n₂*Sin θ₂      

⇒   θ₂ = ArcSin (n₁*Sin θ₁ / n₂)

⇒   θ₂ = ArcSin (1.5242*Sin 35º / 1) = 60.9593º

b) From air to liquid

1 → the air

2 → liquid

n₁ = 1

θ₁ = 34.5º

n₂ = 1.5242

we apply Snell's Law

n₁*Sin θ₁ = n₂*Sin θ₂      

⇒   θ₂ = ArcSin (n₁*Sin θ₁ / n₂)

⇒   θ₂ = ArcSin (1*Sin 34.5º / 1.5242) = 21.8141º

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