Find \(\int 6x(x^2+6)dx\).(a) \(\frac{3x^4}{2}+18x^2+C\)(b) \(\frac{3x^4}{2}-18x+C\)(c) \(\frac{3x^4}{2}-18x^2+C\)(d) \(\frac{3x^4}{2}+x^2+C\)I had been asked this question in final exam.My query is from Methods of Integration-1 in portion Integrals of Mathematics – Class 12

Find \(\int 6x(x^2+6)dx\).(a) \(\frac{3x^4}{2}+18x^2+C\)(b) \(\frac{3x

1.	Find \(\int 6x(x^2+6)dx\).(a) \(\frac{3x^4}{2}+18x^2+C\)(b) \(\frac{3x^4}{2}-18x+C\)(c) \(\frac{3x^4}{2}-18x^2+C\)(d) \(\frac{3x^4}{2}+x^2+C\)I had been asked this question in final exam.My query is from Methods of Integration-1 in portion Integrals of Mathematics – Class 12
Answer» Right choice is (a) \(\FRAC{3x^4}{2}+18x^2+C\) To EXPLAIN I would SAY: LET x^2=t Differentiating w.r.t x, we get 2x dx=dt \(\int 6x(x^2+6)dx=3\int (t+6) dt\) 3\(\int (t+6)dt=3\left (\frac{t^2}{2}+6t\right )=\frac{3t^2}{2}+18t\) Replacing t with x^2 \(\int 6x(x^2+6)dx=\frac{3x^4}{2}+18x^2+C\)

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