BÀI 1: cho $x^2+y^2+z^2=1$ và $x,y,z >0$..tìm giá trị nhỏ nhất của $p=\frac x{(y^2+z^2)}+\frac y{(x^2+z^2)}+\frac z{(x^2+y^2)}$
BÀI 2:cho $x,y,z>0$ và $x+y+z=1$.tìm GTNN của $p= \frac{(x+y)}{\sqrt{(xy+z)}}   +   \frac{( y+z)}{\sqrt{yz+x}}     +   \frac{(x+z)}{\sqrt{(zx+y)}}$
BÀI 3: cho $x,y,z>0$ và $xyz=1$. tìm GTNN của $p=\frac{\sqrt{ 1+x^2+y^2}}{xy}   +     \frac{\sqrt{1+y^2+z^2}}{yz}    +   \frac{\sqrt{1+x^2+z^2}}{xz}$
3)
$P\ge 3\sqrt[3]{\frac{\sqrt{(x^2+y^2+1)(y^2+z^2+1)(z^2+x^2+1)}}{x^2y^2z^2}}$
$\ge 3\sqrt[6]{3\sqrt[3]{x^2y^2}.3\sqrt[3]{y^2z^2}.3\sqrt[3]{x^2z^2}}= 3\sqrt 3$
2)
$\sqrt{xy+z}=\sqrt{xy+z(x+y+z)}=\sqrt{(x+z)(y+z)}$
Nên $P =\frac{x+y}{\sqrt{(x+z)(y+z)}}+\frac{y+z}{\sqrt{(y+x)(z+x)}}+\frac{z+x}{\sqrt{(z+y)(x+y)} } \ge 3$

bài này chưa làm đc để tí xem lại –  tran85295 17-04-16 07:02 PM
còn 1 bài k nỡ giải nốt đi à –  noivoi_visaothe 17-04-16 07:01 PM
cái này mà chấm điểm chắc ..... –  Confusion 17-04-16 10:51 AM
ta có:$\frac{a}{b^2+c^2}=\frac{a}{1-a^2}=\frac{a^2}{a(1-a^2)}$
ta sẽ c/m giống nam nhưng e c/m thẳng luôn $\frac{a^2}{a(1-a^2)}\geq \frac{3\sqrt{2}a^2}{2}\Leftrightarrow a(1-a^2)\leq\frac{2}{\sqrt{3}}\Leftrightarrow a^2(1-a^2)^2\leq \frac{4}{27}$
ta có:$a^2(1-a^2)^2=\frac{1}{2}.2.a^2(1-a^2)(1-a^2)\leq \frac{1}{2}(\frac{2a^2+1-a^2+1-a^2}{3})=\frac{4}{27}$
tương tự vậy:rồi c cộng vào là ra
$\frac{x}{y^2+z^2} =\frac{x}{1-x^2}$
Có $\frac{x}{1-x^2} \ge \frac{3\sqrt 2x^2}{2}\Leftrightarrow 3\sqrt 3x^4+x+x \ge 3\sqrt 3x^2$ (đúng theo cosi)
cmtt $\Rightarrow P \ge \frac{3\sqrt{2}(x^2+y^2+z^2)}{2}=\frac{3\sqrt 2}{2}$

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