Cho $a,b$ không đổi và $a < b$. Tính :
             $\mathop {\lim }\limits_{n \to  + \infty } \int\limits_a^b {{e^{{x^2}}}\sin \,nx\,dx = 0} $
Đặt $u = {e^{{x^2}}}\,\,\, \Rightarrow \,\,du = 2x{e^{{x^2}}}dx$
       $dv = \sin \,nx\,dx\,\,\, \Rightarrow \,\,v =    - \frac{1}{n}cosnx$
      ${I_n} = \int\limits_a^b {{e^{{x^2}}}\sin \,nx\,dx}  =   [- \frac{1}{n}\left.
 {{e^{{x^2}}}cos\,nx\,} \right]_a^b + \frac{2}{n}\int\limits_a^b {x{e^{{x^2}}}\,cos\,nx\,dx} $
     Ta có: $\mathop {\lim }\limits_{n \to  + \infty } \left[ {\frac{{ - {e^{{x^2}}}cos\,nx}}{n}}
\right]_a^b \le \mathop {\lim }\limits_{n \to  + \infty } \frac{1}{n}\left( {{e^{{b^2}}} -
{e^{{a^2}}}} \right) = 0$
     $\frac{2}{n}\int\limits_a^b {x{e^{{x^2}}}\,cos\,nx\,dx}  \le \frac{2}{n}\int\limits_a^b {\left|
x \right|{e^{{x^2}}}\,dx}  \le \frac{2}{n}\int\limits_a^b {M\,dx}  = \frac{2}{n}M\left( {b - a}
\right)$
    Trong đó   $M = \mathop {Max}\limits_{a \le x \le b} \left| x \right|{e^{{x^2}}}\,$
     $\mathop {\lim }\limits_{n \to  + \infty } \frac{2}{n}M\left( {b - a} \right) = 0$    Từ đó :   $\mathop {\lim }\limits_{n \to  + \infty } {I_n} = 0$
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