-0-21-4 cos 2 x-9 sin 2 x d x-

The correct option is C π/12∫_0^π/21/4 cos^2x+9 sin^2xdx=∫_0^π/2 sec^2/4+9 tan^2xdx Put tan x=t. Then sec^2x dx=dt. x=0, π/2⇒ t=0, ∞ ∴ ∫_0^π/2sec^2/4+9 tan^2xd ...

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Byju's Answer

Standard XII

Mathematics

Property 1

∫0π/21/4 cos ...

Question

$\int_{0}^{\frac{π}{2}} \frac{1}{4 c o s^{2} x + 9 s i n^{2} x} d x =$

\frac{π}{12}

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\frac{π}{10}

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\frac{π}{5}

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\frac{π}{2}

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Solution

The correct option is A $\frac{π}{12}$
$\int_{0}^{\frac{π}{2}} \frac{1}{4 c o s^{2} x + 9 s i n^{2} x} d x = \int_{0}^{\frac{π}{2}} \frac{s e c^{2}}{4 + 9 t a n^{2} x} d x$
$P u t t a n x = t . T h e n s e c^{2} x d x = d t . x = 0, \frac{π}{2} \Rightarrow t = 0, \infty$
$∴ \int_{0}^{\frac{π}{2}} \frac{s e c^{2}}{4 + 9 t a n^{2} x} d x = \int_{0}^{\infty} \frac{1}{4 + 9 t^{2}} d t = \frac{1}{3} \frac{1}{2} {[T a n^{- 1} \frac{3 t}{2}]}_{0}^{- 1} = \frac{1}{2} [T a n^{- 1} (\infty) - T a n^{- 1} (0)]$
$= \frac{1}{6} [\frac{π}{2} - 0] = \frac{π}{12}$

Suggest Corrections

∫π2014 cos2x+9 sin2xdx=

The correct option is A π12∫π2014 cos2x+9 sin2xdx=∫π20 sec24+9 tan2xdx Put tan x=t. Then sec2x dx=dt. x=0, π2⇒t=0, ∞ ∴ ∫π20sec24+9 tan2xdx=∫∞0 14+9t2dt=1312[Tan−13t2]∞0=12[Tan−1(∞)−Tan−1(0)] =16[π2−0]=π12

$\int_{0}^{\frac{π}{2}} \frac{1}{4 c o s^{2} x + 9 s i n^{2} x} d x =$