Download App

STD 12 - 7.1 inderfinite integral — JEE STD 11 Science — Question

Gujarat BoardEnglish MediumSTD 11 ScienceJEESTD 12 - 7.1 inderfinite integral4 Marks
MCQ
$\int_{}^{} {\frac{{dx}}{{{{(2\sin x + \cos x)}^2}}}} = $
  • A
    $\frac{1}{2}\left( {\frac{1}{{2\tan x + 1}}} \right) + c$
  • B
    $\frac{1}{2}\log (2\tan x + 1) + c$
  • $\frac{1}{{2 + \cot x}} + c$
  • D
    $ - \frac{1}{2}\left( {\frac{1}{{2\tan x - 1}}} \right) + c$

Answer

Correct option: C.
$\frac{1}{{2 + \cot x}} + c$
c
(c) $\int_{}^{} {\frac{{dx}}{{{{(2\sin x + \cos x)}^2}}} = \int_{}^{} {\frac{{dx}}{{{{\sin }^2}x{{(2 + \cot x)}^2}}}} } = \int_{}^{} {\frac{{{\rm{cose}}{{\rm{c}}^{\rm{2}}}x\,dx}}{{{{(2 + \cot x)}^2}}}} $
Put $(2 + \cot x) = t \Rightarrow - {\rm{cose}}{{\rm{c}}^{\rm{2}}}x\,dx = dt$
$ = \int_{}^{} {\frac{{ - dt}}{{{t^2}}}} = \frac{1}{t} + c = \frac{1}{{2 + \cot x}} + c.$

Need a full question paper?

Generate a complete, print-ready paper with questions like this in minutes — across 16+ boards, with answer keys.

Start Generating Free

Explore more

JEE STD 11 Science question papersGujarat Board STD 11 Science question papersGujarat Board question paper generator

Similar questions

If $A = \left[ {\begin{array}{*{20}{c}}{\,\,\,\cos \alpha }&{\sin \alpha }\\{ - \sin \alpha }&{\cos \alpha }\end{array}} \right]$, then ${A^2} = $
If $(\vec{a}+3 \vec{b})$ is perpendicular to $(7 \vec{a}-5 \vec{b})$ and $(\vec{a}-4 \vec{b})$ is perpendicular to $(7 \vec{a}-2 \vec{b})$, then the angle between $\vec{a}$ and $\vec{b}$ (in degrees) is $......$
If $a=2i+j+2k$  and $b=5i-3j+k,$  then the projection of $b $ on  $ a $ is
Let $f : R \rightarrow R$ be a differentiable function such that $f (2) = 2$. Then the value of $\mathop {Limit}\limits_{x\,\, \to \,\,2}\, \int\limits_2^{f\,(x)} {\,\,\frac{{4\,{t^3}}}{{x\, - \,2}}}\,dt$ is
Consider a sequence whose sum of first $n$ -terms is given by $S_n = 4n^2 + 6n, n \in N$, then $T_{15}$ of this sequence is -
For an initial screening of an admission test, a candidate is given fifty problems to solve. If the probability that the candidate can solve any problem is $\frac{4}{5}$ , then the probability that he is unable to solve less than two problems is
Locus of mid points of chords of hyperbola $x^2 -y^2 = a^2$ which are tangents to the parabola $x^2 = 4by$ will be -
${\cot ^{ - 1}}[{(\cos \alpha )^{1/2}}] - {\tan ^{ - 1}}[{(\cos \alpha )^{1/2}}] = x,$ then $\sin x = $
Let $\vec a = \hat i - \hat j,$ $\vec b = \hat i + \hat j + \hat k$ and $\vec c$ be a vector such that $\vec a \times \vec c + \vec b = 0$ and $\vec a.\vec c = 4$, then ${\left| {\vec c} \right|^2}$ is equal to
The number of solutions of $tan\, (5\pi\, cos\, \theta ) = cot (5 \pi \,sin\, \theta )$ for $\theta$ in $(0, 2\pi )$ is :