$\int\limits_{\sqrt{3}}^{\sqrt{8}}\frac{dx}{1+x+\sqrt{1+x^2}}$
$\frac{1}{1+x+\sqrt{1+x^2}}=\frac{1+x-\sqrt{1+x^2}}{2x}=\frac{1}{2x}+\frac{1}{2}-\frac{x\sqrt{1+x^2}}{2x^2}$
$\Rightarrow I=\int\limits_{\sqrt{3}}^{\sqrt{8}}(\frac{1}{2x}+\frac{1}{2}-\frac{x\sqrt{1+x^2}}{2x^2})dx=(\frac{1}{2}ln|x|+\frac{1}{2}x)\left| \begin{matrix} \sqrt{8}\\ \sqrt{3} \end{matrix}{} \right.-\int\limits_{a}^{b}\frac{x\sqrt{1+x^2}}{2x^2}$
$=\frac{1}{4}ln\frac{8}{3}+\frac{1}{2}(\sqrt{8}-\sqrt{3})-\int\limits_{\sqrt{3}}^{\sqrt{8}}\frac{x\sqrt{1+x^2}}{2x^2}dx$
đặt $t=\sqrt{1+x^2}\Rightarrow 2tdt=2xdx\Rightarrow tdt=xdt$
đổi cận $x=\sqrt{3}\Rightarrow t=2,x=\sqrt{8}\Rightarrow t=3$
$\Rightarrow I=\frac{1}{4}ln\frac{8}{3}+\frac{1}{2}(\sqrt{8}-\sqrt{3})-\int\limits_{2}^{3}\frac{t^2dt}{2(t^2-1)}$
ta có$\int\limits_{2}^{3}\frac{t^2}{t^2-1}=\int\limits_{2}^{3}(1+\frac{1}{2(t-1)}-\frac{1}{2(t+1)})dt=t+\frac{1}{2}ln|\frac{t-1}{t+1}|=1+\frac{1}{2}ln\frac{3}{2}$
$I=\frac{1}{2}ln\frac{4}{3}+\frac{\sqrt{8}-\sqrt{3}-1}{2}$
Đúng đáp số rồi. Mừng quá! :D –  binhnguyenhoangvu 20-05-13 10:13 AM
$I = \int\limits_{\sqrt 3 }^{\sqrt 8 } {\frac{{dx}}{{1 + x + \sqrt {1 + {x^2}} }}} $
Nhân lượng liên hợp, ta được:
$I = \int\limits_{\sqrt 3 }^{\sqrt 8 } {\frac{{1 + x - \sqrt {1 + {x^2}} }}{{2x}}} dx = \frac{1}{2}\int\limits_{\sqrt 3 }^{\sqrt 8 } {\left( {1 + \frac{{1 - \sqrt {1 + {x^2}} }}{x}} \right)} dx$
$ = \frac{1}{2}(\sqrt 8  - \sqrt 3 ) - \frac{1}{2}\int\limits_{\sqrt 3 }^{\sqrt 8 } {\frac{{\sqrt {1 + {x^2}}  - 1}}{x}} dx$
Đặt $K = \int\limits_{\sqrt 3 }^{\sqrt 8 } {\frac{{\sqrt {1 + {x^2}}  - 1}}{x}} dx$
Lại nhân lượng liên hợp, ta được:
$K = \int\limits_{\sqrt 3 }^{\sqrt 8 } {\frac{x}{{\sqrt {1 + {x^2}}  + 1}}} dx = \int\limits_{\sqrt 3 }^{\sqrt 8 } {\frac{{\sqrt {1 + {x^2}} }}{{(\sqrt {1 + {x^2}}  + 1)}}.\frac{x}{{\sqrt {1 + {x^2}} }}} dx$
Đặt $t = \sqrt {1 + {x^2}}  + 1 \Rightarrow dt = \frac{x}{{\sqrt {1 + {x^2}} }}dx$
$x = \sqrt 3  \Rightarrow t = 3$
$x = \sqrt 8  \Rightarrow t = 4$
$\Rightarrow K = \int\limits_3^4 {\frac{{t - 1}}{t}} dt = (t - \ln t) = 1 + \ln \frac{3}{4}$
Vậy \[I = \frac{1}{2}(\sqrt 8  - \sqrt 3 ) - \frac{1}{2}(1 + \ln \frac{3}{4})\]


Mình ghét tách mẫu lắm! Làm vầy thích hơn. :D –  binhnguyenhoangvu 20-05-13 11:44 AM
chỗ K k cần nhân liên hợp mà tách ra 2 tích phân rồi tích phân thứ nhất nhân tử và mẫu cho x, đặt –  shinigem_1994 20-05-13 10:20 AM

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