$\int\limits_{0}^{3ln2}\frac{dx}{(\sqrt[3]{e^x}+2)^2}$
$I=\int\limits_{0}^{3\ln2}\frac{dx}{(\sqrt[3]{e^x}+2)^2}=\int\limits_{0}^{3\ln2}\frac{dx}{(e^{\frac{x}{3}}+2)^2}=\int\limits_{0}^{3\ln2}\frac{e^{\frac{x}{3}}dx}{e^{\frac{x}{3}}(e^{\frac{x}{3}}+2)^2}$

Đặt   $t=e^{\frac{x}{3}}+2\Rightarrow dt=\frac{1}{3}e^{\frac{x}{3}}dx\Leftrightarrow 3dt=e^{\frac{x}{3}}dx$

Đổi cận:  $x=0\Rightarrow t=3$               
              $x=3\ln2\Rightarrow t=4$

$\Rightarrow I=3\int\limits_{3}^{4}\frac{dt}{t^2(t-2)}=3\int\limits_{3}^{4}(\frac{1}{4(t-2)}-\frac{1}{4t}-\frac{1}{2t^2})dt$  (sử dụng đồng nhất thức để tách)

$=3(\frac{1}{4}\ln|t-2|-\frac{1}{4}\ln|t|+\frac{1}{2t})|^4_3=\frac{3}{4}\ln\frac{3}{2}-\frac{1}{8}$
hay đấy. –  manhtuongbgvnvn 27-12-13 04:39 PM
Ta có $I = \int\limits_0^{3\ln 2} {\frac{{{e^{\frac{x}{3}}}dx}}{{{e^{\frac{x}{3}}}{{({e^{\frac{x}{3}}} + 2)}^2}}}} $
Đặt $u=e^{\frac{x}{3}}\Rightarrow $$3du = {e^{\frac{x}{3}}}dx$;
Đổi cận $x = 0 \Rightarrow u = 1;x = 3\ln 2 \Rightarrow u = 2$
Ta được $I = \int\limits_1^2 {\frac{{3du}}{{u{{(u + 2)}^2}}}} =3$$\int\limits_1^2 {\left( {\frac{1}{{4u}} - \frac{1}{{4(u + 2)}}} \right.\left. { - \frac{1}{{2{{(u + 2)}^2}}}} \right)} du$
                    $=3\left. {\left( {\frac{1}{4}\ln \left| u \right| - \frac{1}{4}\ln \left| {u + 2} \right| + \frac{1}{{2(u + 2)}}} \right)} \right|_1^2$
                    $\boxed{= \frac{3}{4}\ln (\frac{3}{2}) - \frac{1}{8}} $

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