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प्रश्न
If sin θ = `3/5`, tan φ = `1/2 and pi/2` < θ < π < φ < `(3pi)/2,`, then find the value of 8 tan θ – `sqrt5` sec φ.
उत्तर
Given that sin θ = `3/5 = "Opposite side"/"Hypotenuse"`
∵ AB = `sqrt(5^2 - 3^2)`
`= sqrt(25 - 9) = sqrt 16` = 4
Here θ lies in second quadrant [∵ `pi/2` < θ < π]
∵ tan θ is negative.
tan θ = `- 3/4`
Also given that tan Φ = `1/2 = "Opposite side"/"Adjacent side"`
∴ PR = `sqrt("PQ"^2 + "QP"^2)`
`= sqrt(4 + 1) = sqrt5`
Here Φ lies in third quadrant `(∵ π < Φ < (3pi)/2)`
∴ sec Φ is negative.
`sec phi = 1/(cos phi) = - 1/(2/sqrt3) = - sqrt5/2`
Now 8 tan θ – `sqrt5` sec Φ = `8(- 3/4) - sqrt5 ((- sqrt5)/2)`
= 2 × (-3) + `5/2`
`= - 6 + 5/2`
`= (-12+5)/2`
`= (-7)`
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