Integrate the function: \(\frac {1}{\sqrt {8+3x-x^2}}\)

8+3x-x 2 can be written as 8 - (x 2 - 3x + \(\frac 94\) - \(\frac 94\) ). Therefore, 8 - (x 2 - 3x + \(\frac 94\) - \(\frac 94\) ) = \(\frac {41}{4}\) - (x- \(\frac 32\) ) 2 ⇒ \(∫\) \(\frac {1}{\sqrt {8+3x-x^2}}\ dx\) = \(∫\frac {1}{\sqrt {\frac {41}{4}-(x-\frac 32)^2}} dx\) Let x- \(\frac 32\) = t ∴ dx = dt ⇒ \(∫\frac {1}{\sqrt {\frac {41}{4}-(x-\frac 32)^2}}\ dx\) = \(∫\frac {1}{\sqrt {(\frac {\sqrt {41}}{2})^2-t^2}} \ dt\) = \(sin^{-1}(\frac {t}{\frac {\sqrt {41}}{2}})+ C\) = \(sin^{-1}(\frac {x-\frac 32}{\frac {\sqrt {41}}{2}})+ C\) = \(sin^{-1}(\frac {2x-3}{\sqrt {41}})+C\)

Integrate the function: 1/√8+3x-x2

Integrals of Some Particular Functions:

∫1/(x² – a²) dx = (1/2a) log|(x – a)/(x + a)| + C
∫1/(a² – x²) dx = (1/2a) log|(a + x)/(a – x)| + C
∫1/(x² + a²) dx = (1/a) tan-1(x/a) + C
∫1/√(x² – a²) dx = log|x + √(x² – a²)| + C
∫1/√(a² – x²) dx = sin-1(x/a) + C
∫1/√(x² + a²) dx = log|x + √(x² + a²)| + C

These are tabulated below along with the meaning of each part.

Integrate the function: \(\frac {1}{\sqrt {8+3x-x^2}}\)

Solution and Explanation

Top CBSE CLASS XII Mathematics Questions

Top CBSE CLASS XII integral Questions

Top CBSE CLASS XII Questions

Concepts Used:

Integrals of Some Particular Functions

Integrals of Some Particular Functions: