Question

How do you integral `int (x^2+3x+7)/sqrtxdx` ?

`int (x^2+3x+7)/sqrtxdx`

Answer 1

`2/5sqrt(x)*(x^(4)+5x+35)+C`

Explanation:

We have the integral:

`int(x^2+3x+7)/sqrt(x)dx`

Rewrite in terms of the rule of addition of fractions

`int(x^2)/sqrt(x)+(3x)/sqrt(x)+7/sqrt(x)dx`

Use the quotient rule for exponents `a^n/a^m=a^(n-m)`

`intx^(3/2)+3x^(1/2)+7x^(-1/2)dx`

Use the sum rule for integrals `int(f+g)dx=intfdx+intgdx`

`intx^(3/2)dx+int3x^(1/2)dx+int7x^(-1/2)dx`

Integrate by the power rule `intx^ndx=1/(n+1)*x^(n+1)`

`2/5x^(5/2)+3*2/3x^(3/2)+2*7x^(1/2)+C`

Simplify

`2/5x^(5/2)+2x^(3/2)+14x^(1/2)+C`

Or

`2/5sqrt(x)*(x^(4)+5x+35)+C`