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Câu 1:
Ta có \(I_1=\int ^{1}_{0}\frac{4x+2}{x^2+x+1}dx=2\int ^{1}_{0}\frac{2x+1}{x^2+x+1}dx\)
\(=2\int ^{1}_{0}\frac{d(x^2+x+1)}{x^2+x+1}=2.\left.\begin{matrix} 1\\ 0\end{matrix}\right|\ln |x^2+x+1|=2\ln 3\)
Câu 2:
\(I_2=\int ^{1}_{0}\frac{4x+1}{(2-x)^4}dx=\int ^{1}_{0}\frac{4(x-2)+9}{(2-x)^4}dx\)
\(=4\int ^{1}_{0}\frac{dx}{(x-2)^3}+9\int \frac{dx}{(2-x)^4}=4\int ^{1}_{0}\frac{d(x-2)}{(x-2)^3}-9\int ^{1}_{0}\frac{d(2-x)}{(2-x)^4}\)
\(=4\int ^{-1}_{-2}\frac{dt}{t^3}-9\int ^{1}_{2}\frac{dk}{k^4}\) với \(x-2=t; 2-x=k\)
\(=4.\left.\begin{matrix} -1\\ -2\end{matrix}\right|\frac{t^{-3+1}}{-3+1}-9.\left.\begin{matrix} 1\\ 2\end{matrix}\right|\frac{k^{-4+1}}{-4+1}=\frac{9}{8}\)
Câu 3:
Phân số \(\frac{x^2+1}{(x^3+3x)^3}\) không xác định trên \([0;1]\); hàm không liên tục nên không có tích phân.
Biến đổi: ʃ\(\int\dfrac{1dx}{cosx\dfrac{\sqrt{2}}{2}\left(cosx-sinx\right)}=\int\dfrac{\sqrt{2}dx}{cos^2x\left(1-tanx\right)}=\int\dfrac{\sqrt{2}d\left(tanx\right)}{1-tanx}=-\sqrt{2}\ln trituyetdoi\left(1-tanx\right)\)
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1/ \(I=\int\limits^1_0\dfrac{2x+1}{x^2+x+1}dx=\int\limits^1_0\dfrac{d\left(x^2+x+1\right)}{x^2+x+1}=ln\left|x^2+x+1\right||^1_0=ln3\)
2/ \(\int\limits^{\dfrac{1}{2}}_0\dfrac{5x}{\left(1-x^2\right)^3}dx=-\dfrac{5}{2}\int\limits^{\dfrac{1}{2}}_0\dfrac{d\left(1-x^2\right)}{\left(1-x^2\right)^3}=\dfrac{5}{4}\dfrac{1}{\left(1-x^2\right)^2}|^{\dfrac{1}{2}}_0=\dfrac{35}{36}\)
3/ \(\int\limits^1_0\dfrac{2x}{\left(x+1\right)^3}dx\Rightarrow\) đặt \(x+1=t\Rightarrow x=t-1\Rightarrow dx=dt;\left\{{}\begin{matrix}x=0\Rightarrow t=1\\x=1\Rightarrow t=2\end{matrix}\right.\)
\(I=\int\limits^2_1\dfrac{2\left(t-1\right)dt}{t^3}=\int\limits^2_1\left(\dfrac{2}{t^2}-\dfrac{2}{t^3}\right)dt=\left(\dfrac{-2}{t}+\dfrac{1}{t^2}\right)|^2_1=\dfrac{1}{4}\)
4/ \(\int\limits^1_0\dfrac{4x-2}{\left(x^2+1\right)\left(x+2\right)}dx\)
Kĩ thuật chung là tách và sử dụng hệ số bất định như sau:
\(\dfrac{4x-2}{\left(x^2+1\right)\left(x+2\right)}=\dfrac{ax+b}{x^2+1}+\dfrac{c}{x+2}=\dfrac{\left(a+c\right)x^2+\left(2a+b\right)x+2b+c}{\left(x^2+1\right)\left(x+2\right)}\)
\(\Rightarrow\left\{{}\begin{matrix}a+c=0\\2a+b=4\\2b+c=-2\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}b=0\\a=-c=2\end{matrix}\right.\)
\(\Rightarrow I=\int\limits^1_0\left(\dfrac{2x}{x^2+1}-\dfrac{2}{x+2}\right)dx=\int\limits^1_0\dfrac{d\left(x^2+1\right)}{x^2+1}-2\int\limits^1_0\dfrac{d\left(x+2\right)}{x+2}=ln\dfrac{8}{9}\)
5/ \(\int\limits^1_0\dfrac{x^2dx}{x^6-9}\Rightarrow\) đặt \(x^3=t\Rightarrow3x^2dx=dt\Rightarrow x^2dx=\dfrac{1}{3}dt;\left\{{}\begin{matrix}x=0\Rightarrow t=0\\x=1\Rightarrow t=1\end{matrix}\right.\)
\(I=\dfrac{1}{3}\int\limits^1_0\dfrac{dt}{t^2-9}=\dfrac{1}{18}\int\limits^1_0\left(\dfrac{1}{t-3}-\dfrac{1}{t+3}\right)dt=\dfrac{1}{18}ln\left|\dfrac{t-3}{t+3}\right||^1_0=-\dfrac{1}{18}ln2\)
6/ Tương tự câu 4, sử dụng hệ số bất định ta tách được:
\(\int\limits^2_1\dfrac{2x-1}{x^2\left(x+1\right)}dx=\int\limits^2_1\left(\dfrac{3x-1}{x^2}-\dfrac{3}{x+1}\right)dx=\int\limits^2_1\left(\dfrac{3}{x}-\dfrac{1}{x^2}-\dfrac{3}{x+1}\right)dx\)
\(=\left(3ln\left|\dfrac{x}{x+1}\right|+\dfrac{1}{x}\right)|^2_1=3ln\dfrac{4}{3}-\dfrac{1}{2}\)
Nhìn đề dữ dội y hệt cr của tui z :( Để làm từ từ
Lập bảng xét dấu cho \(\left|x^2-1\right|\) trên đoạn \(\left[-2;2\right]\)
x | -2 | -1 | 1 | 2 |
\(x^2-1\) | 0 | 0 |
\(\left(-2;-1\right):+\)
\(\left(-1;1\right):-\)
\(\left(1;2\right):+\)
\(\Rightarrow I=\int\limits^{-1}_{-2}\left|x^2-1\right|dx+\int\limits^1_{-1}\left|x^2-1\right|dx+\int\limits^2_1\left|x^2-1\right|dx\)
\(=\int\limits^{-1}_{-2}\left(x^2-1\right)dx-\int\limits^1_{-1}\left(x^2-1\right)dx+\int\limits^2_1\left(x^2-1\right)dx\)
\(=\left(\dfrac{x^3}{3}-x\right)|^{-1}_{-2}-\left(\dfrac{x^3}{3}-x\right)|^1_{-1}+\left(\dfrac{x^3}{3}-x\right)|^2_1\)
Bạn tự thay cận vô tính nhé :), hiện mình ko cầm theo máy tính
2/ \(I=\int\limits^e_1x^{\dfrac{1}{2}}.lnx.dx\)
\(\left\{{}\begin{matrix}u=lnx\\dv=x^{\dfrac{1}{2}}\end{matrix}\right.\Rightarrow\left\{{}\begin{matrix}du=\dfrac{dx}{x}\\v=\dfrac{2}{3}.x^{\dfrac{3}{2}}\end{matrix}\right.\)
\(\Rightarrow I=\dfrac{2}{3}.x^{\dfrac{3}{2}}.lnx|^e_1-\dfrac{2}{3}\int\limits^e_1x^{\dfrac{1}{2}}.dx\)
\(=\dfrac{2}{3}.x^{\dfrac{3}{2}}.lnx|^e_1-\dfrac{2}{3}.\dfrac{2}{3}.x^{\dfrac{3}{2}}|^e_1=...\)
a/ \(I=\int\limits^1_0\dfrac{1}{\left(x^2+3\right)\left(x^2+1\right)}dx=\dfrac{1}{2}\int\limits^1_0\left(\dfrac{1}{x^2+1}-\dfrac{1}{x^2+3}\right)dx\)
\(=\dfrac{1}{2}\left(arctanx-\dfrac{1}{\sqrt{3}}arctan\dfrac{x}{\sqrt{3}}\right)|^1_0=\dfrac{\pi}{8}-\dfrac{\pi\sqrt{3}}{36}\)
b/ \(I=\int\dfrac{x^2-1}{x^4+1}dx=\int\dfrac{1-\dfrac{1}{x^2}}{x^2+\dfrac{1}{x^2}}dx\)
Đặt \(x+\dfrac{1}{x}=t\Rightarrow\left(1-\dfrac{1}{x^2}\right)dx=dt\) ; \(x^2+\dfrac{1}{x^2}=t^2-2\)
\(\Rightarrow I=\int\dfrac{dt}{t^2-2}=\int\dfrac{dt}{\left(t-\sqrt{2}\right)\left(t+\sqrt{2}\right)}=\dfrac{1}{2\sqrt{2}}\int\left(\dfrac{1}{t-\sqrt{2}}-\dfrac{1}{t+\sqrt{2}}\right)dt\)
\(\Rightarrow I=\dfrac{1}{2\sqrt{2}}ln\left|\dfrac{t-\sqrt{2}}{t+\sqrt{2}}\right|+C=\dfrac{1}{2\sqrt{2}}ln\left|\dfrac{x^2-\sqrt{2}x+1}{x^2+\sqrt{2}x+1}\right|+C\)
c/ \(I=\int\dfrac{dx}{x\left(x^3+1\right)}=\int\dfrac{x^2dx}{x^3\left(x^3+1\right)}\)
Đặt \(x^3+1=t\Rightarrow3x^2dx=dt\)
\(\Rightarrow I=\dfrac{1}{3}\int\dfrac{dt}{\left(t-1\right)t}=\dfrac{1}{3}\int\left(\dfrac{1}{t-1}-\dfrac{1}{t}\right)dt=\dfrac{1}{3}ln\left|\dfrac{t-1}{t}\right|+C\)
\(\Rightarrow I=\dfrac{1}{3}ln\left|\dfrac{x^3}{x^3+1}\right|+C\)
d/ \(I=\int\limits^1_0\dfrac{xdx}{x^4+x^2+1}\)
Đặt \(x^2=t\Rightarrow2xdx=dt\) ; \(\left\{{}\begin{matrix}x=0\Rightarrow t=0\\x=1\Rightarrow t=1\end{matrix}\right.\)
\(I=\dfrac{1}{2}\int\limits^1_0\dfrac{dt}{t^2+t+1}=\dfrac{1}{2}\int\limits^1_0\dfrac{dt}{\left(t+\dfrac{1}{2}\right)^2+\dfrac{3}{4}}=\dfrac{2}{3}\int\limits^1_0\dfrac{dt}{\dfrac{4}{3}\left(t+\dfrac{1}{2}\right)^2+1}\)
Đặt \(t+\dfrac{1}{2}=\dfrac{\sqrt{3}}{2}tanu\Rightarrow dt=\dfrac{\sqrt{3}}{2}.\dfrac{du}{cos^2u}\); \(\left\{{}\begin{matrix}t=0\Rightarrow u=\dfrac{\pi}{6}\\t=1\Rightarrow u=\dfrac{\pi}{3}\end{matrix}\right.\)
\(\Rightarrow I=\dfrac{2}{3}.\dfrac{\sqrt{3}}{2}\int\limits^{\dfrac{\pi}{3}}_{\dfrac{\pi}{6}}\dfrac{du}{cos^2u\left(tan^2u+1\right)}=\dfrac{\sqrt{3}}{3}\int\limits^{\dfrac{\pi}{3}}_{\dfrac{\pi}{6}}du=\dfrac{\pi\sqrt{3}}{18}\)
giup minh voi