Áp dụng bất đẳng thức cauchy:

\(P=\sum\dfrac{x^2\left(y+z\right)}{y\sqrt{y}+2z\sqrt{z}}\ge\sum\dfrac{2x^2\sqrt{yz}}{y\sqrt{y}+2z\sqrt{z}}=\sum\dfrac{2\sqrt{x^3}\sqrt{xyz}}{\sqrt{y^3}+2\sqrt{z^3}}=\sum\dfrac{2\sqrt{x^3}}{\sqrt{y^3}+2\sqrt{z^3}}\)(vì xyz=1).

đặt \(\left\{{}\begin{matrix}\sqrt{x^3}=a\\\sqrt{y^3}=b\\\sqrt{z^3}=c\end{matrix}\right.\)(\(a,b,c>0\))thì giả thiết trở thành cho abc=1. tìm Min \(P=\dfrac{2a}{b+2c}+\dfrac{2b}{c+2a}+\dfrac{2c}{a+2b}\)

Áp dụng BĐT cauchy-schwarz:

\(P=2\left(\dfrac{a^2}{ab+2ac}+\dfrac{b^2}{bc+2ab}+\dfrac{c^2}{ac+2bc}\right)\ge\dfrac{2\left(a+b+c\right)^2}{3\left(ab+bc+ca\right)}\ge\dfrac{2\left(a+b+c\right)^2}{\left(a+b+c\right)^2}=2\)( AM-GM \(3\left(ab+bc+ca\right)\le\left(a+b+c\right)^2\))

Dấu = xảy ra khi a=b=c=1 hay x=y=z=1

\(\dfrac{1}{x+y}+\dfrac{1}{x+z}+\dfrac{1}{y+z}\le\dfrac{1}{4}\left(\dfrac{1}{x}+\dfrac{1}{y}+\dfrac{1}{x}+\dfrac{1}{z}+\dfrac{1}{y}+\dfrac{1}{z}\right)\)

\(\Rightarrow\dfrac{1}{x+y}+\dfrac{1}{x+z}+\dfrac{1}{y+z}\le\dfrac{1}{2}\left(\dfrac{1}{x}+\dfrac{1}{y}+\dfrac{1}{z}\right)=2\)

Lại có \(\dfrac{1}{2x+y+z}=\dfrac{1}{x+y+x+z}\le\dfrac{1}{4}\left(\dfrac{1}{x+y}+\dfrac{1}{x+z}\right)\)

Tương tự \(\dfrac{1}{x+2y+z}\le\dfrac{1}{4}\left(\dfrac{1}{x+y}+\dfrac{1}{y+z}\right)\)

\(\dfrac{1}{x+y+2z}\le\dfrac{1}{4}\left(\dfrac{1}{x+z}+\dfrac{1}{y+z}\right)\)

Cộng vế với vế: \(P\le\dfrac{1}{2}\left(\dfrac{1}{x+y}+\dfrac{1}{x+z}+\dfrac{1}{y+z}\right)=\dfrac{1}{2}.2=1\)

\(\Rightarrow P_{max}=1\) khi \(x=y=z=\dfrac{3}{4}\)

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 $x=y=z=1$

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Lời giải:

Áp dụng BĐT Bunhiacopxky ta có:

\(\left (\frac{1}{x}+\frac{1}{x}+\frac{1}{x}+\frac{1}{y}+\frac{1}{y}+\frac{1}{z}\right)(x+x+x+y+y+z)\geq (1+1+1+1+1+1)^2\)

\(\Leftrightarrow \frac{3}{x}+\frac{2}{y}+\frac{1}{z}\geq \frac{36}{3x+2y+z}\)

Thực hiện tương tự:

\(\frac{3}{y}+\frac{2}{z}+\frac{1}{x}\geq \frac{36}{3y+2z+x}\)

\(\frac{3}{z}+\frac{2}{x}+\frac{1}{y}\geq \frac{36}{3z+2x+y}\)

Cộng theo vế các BĐT vừa có thu được:

\(6\left(\frac{1}{x}+\frac{1}{y}+\frac{1}{z}\right)\geq 36\left(\frac{1}{3x+2y+z}+\frac{1}{3y+2z+x}+\frac{1}{3z+2x+y}\right)\)

\(\Leftrightarrow 72\geq 36\left(\frac{1}{3x+2y+z}+\frac{1}{3y+2z+x}+\frac{1}{3z+2x+y}\right)\)

\(\Leftrightarrow P\leq 2\)

Vậy \(P_{\max}=2\). Dấu bằng xảy ra khi \(x=y=z=\frac{1}{4}\)