S= u₁.u₁ + u₂.u₂+...+u_n.u_n 

S = u₁.(u₂ - d) + u₂.(u₃ - d)+...+u_n(u_n+1 - d)

S = u₁.u₂ + u₂.u₃ +...+u_n.u_n+1-d(u₁+u₂+...+u_n)

Đặt A = u₂.u₃ + u₃.u₄+...+u_n.u_n+1

3d.A = u₂.u₃.(u₄-u₁) + u₃.u₄.(u₅-u₂)+...+u_n.u_n+1.(u_n+2-u_n-1) 

3d.A = u₂.u₃.u₄ - u₁.u₂.u₃ + u₃.u₄.u₅ - u₂.u₃.u₄+...+u_n.u_n+1.u_n+2 - u_n-1.u_n.u_n+1

3d.A = u_n.u_n+1.u_n+2 - u₁.u₂.u₃

3d.A = (u₁ + d.n - d)(u₁ + d.n)(u₁ + d.n + d) - u₁.(u₁+d).(u₁+2.d) 

A = [(u₁ + d.n - d)(u₁ + d.n)(u₁ + d.n + d) - u₁.(u₁+d).(u₁+2.d)]/(3.d) 

S = A + u₁.(u₁ + d) + d[2.u₁+(n-1).d].n/2 

B

Câu 1.

Vì \(\sqrt{2},\left(\sqrt{2}\right)^2,...,\left(\sqrt{2}\right)^n\) lập thành cấp số nhân có \(u_1=\sqrt{2}=q\) nên

\({u_n} = \sqrt 2 .\dfrac{{1 - {{\left( {\sqrt 2 } \right)}^n}}}{{1 - \sqrt 2 }} = \left( {2 - \sqrt 2 } \right)\left[ {{{\left( {\sqrt 2 } \right)}^n} - 1} \right] \to \lim {u_n} = + \infty \) vì \(\left\{{}\begin{matrix}a=2-\sqrt{2}>0\\q=\sqrt{2}>1\end{matrix}\right.\)

Câu 3.

Ta có biến đổi:

\(\lim \left( {\dfrac{{{n^2} - n}}{{1 - 2{n^2}}} + \dfrac{{2\sin {n^2}}}{{\sqrt n }}} \right) = \lim \dfrac{{{n^2} - n}}{{1 - 2{n^2}}} = \dfrac{1}{2}\)

Câu 4.

\(\lim \left( {{n^2}\sin \dfrac{{n\pi }}{5} - 2{n^3}} \right) = \lim {n^3}\left( {\dfrac{{\sin \dfrac{{n\pi }}{5}}}{n} - 2} \right) = - \infty \)

Vì \(\lim {n^3} = + \infty ;\lim \left( {\dfrac{{\sin \dfrac{{n\pi }}{5}}}{n} - 2} \right) = - 2 \)

\(\left| {\dfrac{{\sin \dfrac{{n\pi }}{5}}}{n}} \right| \le \dfrac{1}{n};\lim \dfrac{1}{n} = 0 \Rightarrow \lim \left( {\dfrac{{\sin \dfrac{{n\pi }}{5}}}{n} - 2} \right) = - 2\)

Câu 5.

Ta có: \(\left\{ \begin{array}{l} 0 \le \left| {{u_n}} \right| \le \dfrac{1}{{{n^2} + 1}} \le \dfrac{1}{n} \to 0\\ 0 \le \left| {{v_n}} \right| \le \dfrac{1}{{{n^2} + 2}} \le \dfrac{1}{n} \to 0 \end{array} \right. \to \lim {u_n} = \lim {v_n} = 0 \to \lim \left( {{u_n} + {v_n}} \right) = 0\)

5.

\(\lim\limits_{x\rightarrow-\infty}\frac{-3x^5+7x^3-11}{x^5+x^4-3x}=\lim\limits_{x\rightarrow-\infty}\frac{-3+\frac{7}{x^2}-\frac{11}{x^5}}{1+\frac{1}{x}-\frac{3}{x^4}}=\frac{-3}{1}=-3\)

6.

\(\lim\limits_{x\rightarrow-4}\frac{\left(x+4\right)\left(x-1\right)}{x\left(x+4\right)}=\lim\limits_{x\rightarrow-4}\frac{x-1}{x}=\frac{-5}{-4}=\frac{5}{4}\)

7.

Khi \(x< 2\Rightarrow x-2< 0\) mà \(x+2\rightarrow4\Rightarrow\lim\limits_{x\rightarrow2^-}\frac{x+2}{x-2}=\frac{4}{-0}=-\infty\)

8.

\(\lim\limits_{x\rightarrow1}\frac{9-\left(2x+7\right)}{\left(x-1\right)\left(x+1\right)\left(3+\sqrt{2x+7}\right)}=\lim\limits_{x\rightarrow1}\frac{-2\left(x-1\right)}{\left(x-1\right)\left(x+1\right)\left(3+\sqrt{2x+7}\right)}\)

\(=\lim\limits_{x\rightarrow1}\frac{-2}{\left(x+1\right)\left(3+\sqrt{2x+7}\right)}=\frac{-2}{2.\left(3+3\right)}=-\frac{1}{6}\)

9.

\(\lim\limits_{x\rightarrow4}\frac{\left(4-x\right)\left(16-4x+x^2\right)}{4-x}=\lim\limits_{x\rightarrow4}\left(16-4x+x^2\right)=16\)

1.

\(\lim\limits_{x\rightarrow-\infty}\frac{x^2-7x+1-\left(x^2-3x+2\right)}{\sqrt{x^2-7x+1}+\sqrt{x^2-3x+2}}=\lim\limits_{x\rightarrow-\infty}\frac{-4x-1}{\sqrt{x^2-7x+1}+\sqrt{x^2-3x+2}}\)

\(=\lim\limits_{x\rightarrow-\infty}\frac{x\left(-4-\frac{1}{x}\right)}{-x\sqrt{1-\frac{7}{x}+\frac{1}{x^2}}-x\sqrt{1-\frac{3}{x}+\frac{2}{x^2}}}=\frac{-4}{-1-1}=2\)

2.

\(\lim\limits_{x\rightarrow0^+}\frac{\sqrt{x}\left(\sqrt{x}+1\right)}{\sqrt{x}\left(\sqrt{x}-1\right)}=\lim\limits_{x\rightarrow0^+}\frac{\sqrt{x}+1}{\sqrt{x}-1}=-1\)

3.

\(\lim\limits_{x\rightarrow-1}\frac{x^2-3}{x^3+2}=\frac{1-3}{-1+2}=-2\) (ko phải dạng vô định, cứ thay số tính)

4.

\(\lim\limits_{x\rightarrow1}f\left(x\right)=\lim\limits_{x\rightarrow1}\frac{2x^2-x-1}{x-1}=\lim\limits_{x\rightarrow1}\frac{\left(x-1\right)\left(2x+1\right)}{x-1}=\lim\limits_{x\rightarrow1}\left(2x+1\right)=3\)

Để hs có giới hạn tại \(x=1\Rightarrow m=3\)