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Lời giải:
Sử dụng quy nạp:
Với \(n=1\Rightarrow \frac{1}{2}< \frac{1}{\sqrt{3}}\) (đúng)
Với \(n=2\Rightarrow \frac{1.3}{2.4}< \frac{1}{\sqrt{5}}\) (đúng)
.............
Giả sử bài toán đúng với \(n=k\), tức là :
\(\frac{1.3.5...(2k-1)}{2.4.6...2k}< \frac{1}{\sqrt{2k+1}}\) (*)
Ta cần chỉ ra nó cũng đúng với \(n=k+1\) hay :
\(\frac{1.3.5....(2k-1)(2k+1)}{2.4.6....(2k)(2k+2)}< \frac{1}{\sqrt{2k+3}}\). Thật vậy, theo (*) ta có:
\(\frac{1.3.5....(2k-1)(2k+1)}{2.4.6....(2k)(2k+2)}< \frac{1}{\sqrt{2k+1}}.\frac{2k+1}{2k+2}=\frac{\sqrt{2k+1}}{2k+2}\) (1)
Xét \(\frac{\sqrt{2k+1}}{2k+2}-\frac{1}{\sqrt{2k+3}}=\frac{\sqrt{(2k+1)(2k+3)}-(2k+2)}{(2k+2)\sqrt{2k+3}}\) \(=\frac{-1}{[\sqrt{(2k+1)(2k+3)}+(2k+2)](2k+2)\sqrt{2k+3}}<0\)
Suy ra \(\frac{\sqrt{2k+1}}{2k+2}< \frac{1}{\sqrt{2k+3}}(2)\)
Từ \((1);(2)\Rightarrow \frac{1.3.5....(2k-1)(2k+1)}{2.4.6....(2k)(2k+2)}< \frac{1}{\sqrt{2k+3}}\)
Vậy bài toán đúng với \(n=k+1\), phép quy nạp hoàn thành.
Do đó ta có đpcm.
\(A_n=\dfrac{\sqrt{2n-1}}{\left(2n+1\right)\left(2n-1\right)}=\dfrac{\sqrt{2n-1}}{2}\left(\dfrac{1}{2n-1}-\dfrac{1}{2n+1}\right)\)
\(=\dfrac{\sqrt{2n-1}}{2}\left(\dfrac{1}{\sqrt{2n-1}}-\dfrac{1}{\sqrt{2n+1}}\right)\left(\dfrac{1}{\sqrt{2n-1}}+\dfrac{1}{\sqrt{2n+1}}\right)\)
\(< \dfrac{\sqrt{2n-1}}{2}\left(\dfrac{1}{\sqrt{2n-1}}-\dfrac{1}{\sqrt{2n+1}}\right)\left(\dfrac{1}{\sqrt{2n-1}}+\dfrac{1}{\sqrt{2n-1}}\right)\)
\(=\dfrac{1}{\sqrt{2n-1}}-\dfrac{1}{\sqrt{2n+1}}\)
\(\Rightarrow A_1+A_2+...+A_n< 1-\dfrac{1}{\sqrt{3}}+\dfrac{1}{\sqrt{3}}-\dfrac{1}{\sqrt{5}}+...+\dfrac{1}{\sqrt{2n-1}}-\dfrac{1}{\sqrt{2n+1}}=1-\dfrac{1}{\sqrt{2n+1}}< 1\)
do \(a,b,c\ge1\)\(=>\left\{{}\begin{matrix}b+c\ge2\\c+a\ge2\\a+b\ge2\end{matrix}\right.\)
\(=>\left\{{}\begin{matrix}a\left(b+c\right)\ge2a\\b\left(c+a\right)\ge2b\\c\left(a+b\right)\ge2c\end{matrix}\right.\)
\(=>\) biểu thức đề bài cho\(\ge2\left(a+b+c+\dfrac{1}{a^2+1}+\dfrac{1}{b^2+1}+\dfrac{1}{c^2+1}\right)\)
\(2\left(1+1+1+\dfrac{1}{2}+\dfrac{1}{2}+\dfrac{1}{2}\right)=9\)
dấu= xảy ra<=>a=b=c=1
a)√x−1=2(x≥1)
\(x-1=4
\)
x=5
b)
\(\sqrt{3-x}=4\) (x≤3)
\(\left(\sqrt{3-x}\right)^2=4^2\)
x-3=16
x=19
a: Ta có: \(\sqrt{x-1}=2\)
\(\Leftrightarrow x-1=4\)
hay x=5
b: Ta có: \(\sqrt{3-x}=4\)
\(\Leftrightarrow3-x=16\)
hay x=-13
c: Ta có: \(2\cdot\sqrt{3-2x}=\dfrac{1}{2}\)
\(\Leftrightarrow\sqrt{3-2x}=\dfrac{1}{4}\)
\(\Leftrightarrow-2x+3=\dfrac{1}{16}\)
\(\Leftrightarrow-2x=-\dfrac{47}{16}\)
hay \(x=\dfrac{47}{32}\)
d: Ta có: \(4-\sqrt{x-1}=\dfrac{1}{2}\)
\(\Leftrightarrow\sqrt{x-1}=\dfrac{7}{2}\)
\(\Leftrightarrow x-1=\dfrac{49}{4}\)
hay \(x=\dfrac{53}{4}\)
e: Ta có: \(\sqrt{x-1}-3=1\)
\(\Leftrightarrow\sqrt{x-1}=4\)
\(\Leftrightarrow x-1=16\)
hay x=17
f:Ta có: \(\dfrac{1}{2}-2\cdot\sqrt{x+2}=\dfrac{1}{4}\)
\(\Leftrightarrow2\cdot\sqrt{x+2}=\dfrac{1}{4}\)
\(\Leftrightarrow\sqrt{x+2}=\dfrac{1}{8}\)
\(\Leftrightarrow x+2=\dfrac{1}{64}\)
hay \(x=-\dfrac{127}{64}\)
Bài 1:
\((x,y,z)=(\frac{2a^2}{bc}; \frac{2b^2}{ca}; \frac{2c^2}{ab})\) (\(a,b,c>0\) )
Khi đó:
\(\text{VT}=\frac{\frac{4a^4}{b^2c^2}}{\frac{4a^4}{b^2c^2}+\frac{4a^2}{bc}+1}+\frac{\frac{4b^4}{c^2a^2}}{\frac{4b^4}{c^2a^2}+\frac{4b^2}{ca}+4}+\frac{\frac{4c^4}{a^2b^2}}{\frac{4c^4}{a^2b^2}+\frac{4c^2}{ab}+4}\)
\(=\frac{a^4}{a^4+a^2bc+b^2c^2}+\frac{b^4}{b^4+b^2ac+a^2c^2}+\frac{c^4}{c^4+c^2ab+a^2b^2}\)
\(\geq \frac{(a^2+b^2+c^2)^2}{a^4+b^4+c^4+a^2bc+b^2ac+c^2ab+(a^2b^2+b^2c^2+c^2a^2)}\)
(Áp dụng BĐT Cauchy_Schwarz)
Theo BĐT Cauchy dễ thấy:
\(a^2b^2+b^2c^2+c^2a^2\geq a^2bc+b^2ca+c^2ab\)
\(\Rightarrow \text{VT}\geq \frac{(a^2+b^2+c^2)^2}{a^4+b^4+c^4+2(a^2b^2+b^2c^2+c^2a^2)}=\frac{(a^2+b^2+c^2)^2}{(a^2+b^2+c^2)^2}=1\) (đpcm)
Dấu "=" xảy ra khi $a=b=c$ hay $x=y=z=2$
Bài 2:
Đặt \((x,y,z)=\left(\frac{a}{b};\frac{b}{c}; \frac{c}{a}\right)\)
Ta có:
\(\text{VT}=\left(\frac{a}{b}+\frac{c}{b}-1\right)\left(\frac{b}{c}+\frac{a}{c}-1\right)\left(\frac{c}{a}+\frac{b}{a}-1\right)\)
\(=\frac{(a+c-b)(b+a-c)(c+b-a)}{abc}\)
Áp dụng BĐT Cauchy:
\((a+c-b)(b+a-c)\leq \left(\frac{a+c-b+b+a-c}{2}\right)^2=a^2\)
\((b+a-c)(c+b-a)\leq \left(\frac{b+a-c+c+b-a}{2}\right)^2=b^2\)
\((a+c-b)(c+b-a)\leq \left(\frac{a+c-b+c+b-a}{2}\right)^2=c^2\)
Nhân theo vế:
\(\Rightarrow [(a+c-b)(b+a-c)(c+b-a)]^2\leq (abc)^2\)
\(\Rightarrow (a+c-b)(b+a-c)(c+b-a)\leq abc\)
\(\Rightarrow \text{VT}\leq 1\) (đpcm)
Dấu "=" xảy ra khi $a=b=c$ hay $x=y=z=1$
Ta có: \(\dfrac{1}{9}=\left(\dfrac{1}{3}\right)^2=\dfrac{1}{3.3}< \dfrac{1}{2.3}\)
\(\dfrac{1}{16}=\left(\dfrac{1}{4}\right)^2=\dfrac{1}{4.4}< \dfrac{1}{3.4}\)
................
\(\dfrac{1}{\left(2n+1\right)^2}< \dfrac{1}{2n\left(2n+1\right)}\)
⇒\(\dfrac{1}{9}+\dfrac{1}{16}+......+\dfrac{1}{\left(2n+1\right)^2}\)< \(\dfrac{1}{2.3}+\dfrac{1}{3.4}+.....+\dfrac{1}{2n.\left(2n+1\right)}\)
= \(\dfrac{1}{2}-\dfrac{1}{3}+\dfrac{1}{3}-\dfrac{1}{4}+.....+\dfrac{1}{2n}-\dfrac{1}{2n+1}\)
= \(\dfrac{1}{2}-\dfrac{1}{2n+1}\)
= \(\dfrac{2n+1-2}{2n+1}\)
= \(\dfrac{2n-1}{2n+1}\)= \(1-\dfrac{2}{2n+1}\)
Ta có: n ≥ 1⇒ 2n+1 ≥ 3
⇒ \(1-\dfrac{2}{2n+1}\) ≤ \(\dfrac{1}{3}\)
hình như đề sai thì phải