The value of ∫ (x d x/(. x + 3 .) √x + 1) is (where, c is the constant of integration)

Question

The value of ∫ (x d x/(. x + 3 .) √x + 1) is (where, c is the constant of integration) (A) 2√x + 1+3 tan- 1√x + 1+c (B) 2√x + 1+3√2 tan- 1√(x + 1/2)+c (C) 2√x + 1-3√2 tan- 1√(x + 1/2)+c (D) 2√x + 1-3 tan- 1√x + 1+c

Tardigrade Admin · Accepted Answer

Substitute √x + 1=t , we get, 2∫ (t2 - 1/t2 + 2) dt=2t-6∫ (1/t2 + 2) dt =2t-3√2tan- 1(t/√2)+c =2√x + 1-3√2tan- 1√(x + 1/2)+c

Q. The value of $\int \frac{x d x}{( x + 3 ) x + 1}$ is (where, $c$ is the constant of integration)

$2 x + 1 + 3 t a n^{- 1} x + 1 + c$

$2 x + 1 + 32 t a n^{- 1} \frac{x + 1}{2} + c$

$2 x + 1 - 32 t a n^{- 1} \frac{x + 1}{2} + c$

$2 x + 1 - 3 t a n^{- 1} x + 1 + c$

Substitute $x + 1 = t$ , we get,
$2 \int \frac{t ^{2} - 1}{t ^{2} + 2} d t = 2 t - 6 \int \frac{1}{t ^{2} + 2} d t$
$= 2 t - 32 t a n^{- 1} \frac{t}{2} + c$
$= 2 x + 1 - 32 t a n^{- 1} \frac{x + 1}{2} + c$

Q. The value of ∫(x+3)x+1​xdx​ is (where, c is the constant of integration)

2x+1​+3tan−1x+1​+c

2x+1​+32​tan−12x+1​​+c

2x+1​−32​tan−12x+1​​+c

2x+1​−3tan−1x+1​+c