Bạn tham khảo lời giải tại đây:

cho \(x,y,z\ge0\) thỏa mãn \(x y z=6\). tìm GTLN và GTNN của biểu thức \(A=x^2 y^2 z^2\) - Hoc24

Theo BĐT Cauchy cho 2 số dương, ta có:

\(2x^2+y^2+5=\left(x^2+y^2\right)+\left(x^2+1\right)+4\ge2\left(xy+x+2\right)\)

\(\Rightarrow\frac{x}{2x^2+y^2+5}\le\frac{x}{2\left(xy+x+2\right)}\)(1)

Tương tự ta có: \(\frac{2y}{6y^2+z^2+6}\le\frac{2y}{4\left(yz+y+1\right)}=\frac{y}{2\left(yz+y+1\right)}\)(2)

\(\frac{4z}{3z^2+4x^2+16}\le\frac{4z}{4\left(zx+2z+2\right)}=\frac{z}{zx+2z+2}\)(3)

Cộng theo vế của 3 BĐT (1), (2), (3), ta được: \(\frac{x}{2x^2+y^2+5}+\frac{2y}{6y^2+z^2+6}+\frac{4z}{3z^2+4x^2+16}\)

\(\le\frac{1}{2}\left(\frac{x}{xy+x+2}+\frac{y}{yz+y+1}+\frac{2z}{zx+2z+2}\right)\)

\(=\frac{1}{2}\left(\frac{zx}{xyz+xz+2z}+\frac{xyz}{xyz^2+xyz+xz}+\frac{2z}{zx+2z+2}\right)\)

\(=\frac{1}{2}\left(\frac{zx}{2+xz+2z}+\frac{2}{2z+2+xz}+\frac{2z}{zx+2z+2}\right)\)(Do xyz = 2)

\(=\frac{1}{2}.\frac{zx+2z+2}{zx+2z+2}=\frac{1}{2}\)

Đẳng thức xảy ra khi x = y = 1; z = 2

/\(2020\left(\dfrac{1}{x^2+y^2}+\dfrac{1}{y^2+z^2}+\dfrac{1}{x^2+y^2}\right)ápdụngBDT\)

\(\dfrac{1}{x^2+y^2}+\dfrac{1}{y^2+z^2}+\dfrac{1}{x^2+z^2}\ge\dfrac{9}{2\left(x^2+y^2+z^2\right)}=\dfrac{9}{2\cdot2020}\)

\(ápdụngBĐTcosi\)

\(x^3+y^3+z^3\ge3xyz\)

\(\)=> VP\(\ge\) 9/2

Ta có: \(\left\{{}\begin{matrix}x^2+2y+1=0\\y^2+2z+1=0\\z^2+2x+1=0\end{matrix}\right.\)

\(\Rightarrow x^2+2y+1+y^2+2z+1+z^2+2x+1=0\)

\(\Rightarrow\left(x+1\right)^2+\left(y+1\right)^2+\left(z+1\right)^2=0\)

\(\Rightarrow x=y=z=-1\)(do \(\left(x+1\right)^2,\left(y+1\right)^2,\left(z+1\right)^2\ge0\forall x,y,z\))

a) \(A=x^{2020}+y^{2020}+z^{2020}=\left(-1\right)^{2020}+\left(-1\right)^{2020}+\left(-1\right)^{2020}=1+1+1=3\)

b) \(B=\dfrac{1}{x^{2020}}+\dfrac{1}{y^{2020}}+\dfrac{1}{z^{2020}}=\dfrac{1}{\left(-1\right)^{2020}}+\dfrac{1}{\left(-1\right)^{2020}}+\dfrac{1}{\left(-1\right)^{2020}}=\dfrac{1}{1}+\dfrac{1}{1}+\dfrac{1}{1}=3\)

\(\Leftrightarrow\frac{x}{5}+\frac{y}{6}+\frac{z}{4}\le1\)

Đặt \(\left(\frac{x}{5};\frac{y}{6};\frac{z}{4}\right)=\left(a;b;c\right)\Rightarrow0\le a;b;c\le1\) và \(a+b+c\le1\)

\(T=25a^2+36b^2+16c^2-20a-24b-4c\)

\(25a\left(a-\frac{32}{25}\right)\le0\Rightarrow25a^2\le32a\)

\(36b\left(b-1\right)\le0\Rightarrow36b^2\le36b\)

\(16c\left(c-1\right)\le0\Rightarrow16c^2\le16c\)

\(\Rightarrow T\le32a+36b+16c-20a-24b-4c=12\left(a+b+c\right)\le12\)

\(T_{max}=12\) khi \(\left\{{}\begin{matrix}a=0\\b=0\\c=1\end{matrix}\right.\) hoặc \(\left\{{}\begin{matrix}a=0\\b=1\\c=0\end{matrix}\right.\)