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प्रश्न
In ∆ABC, `sqrt(2)`AC = BC, sin A = 1, sin2A + sin2B + sin2C = 2, then ∠A = ?, ∠B = ?, ∠C = ?
योग
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उत्तर
sin A = 1 ...[Given]
But, sin 90° = 1
∴ sin A = sin 90°
∴ A = 90°
`sqrt(2)`AC = BC ...[Given]
∴ `(AC)/(BC) = 1/sqrt(2)` ...(i)
∴ `sin B = (AC)/(BC)` ...(ii) [By definition]
∴ `sin B = 1/sqrt(2)` ...[From (i) and (ii)]
But, `sin 45^circ = 1/sqrt(2)`
∴ sin B = sin 45°
∴ B = 45°
sin2A + sin2B + sin2C = 2 ...[Given]
∴ `(1)^2 + (1/sqrt(2))^2 + sin^2C = 2`
∴ `1 + 1/2 + sin^2C = 2`
∴ `sin^2C = 2 - 3/2`
∴ `sin^2C = 1/2`
∴ `sin C = 1/sqrt(2)`
But, `sin 45^circ = 1/sqrt(2)`
∴ sin C = sin 45°
∴ C = 45°
∴ ∠A = 90°, ∠B = 45°, ∠C = 45°
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