Cho $x,y,z>0$. CMR: $\sum \frac{2x^2+xy}{(y+\sqrt{zx}+z)^2}\geq1 $
Áp dụng Bất đẳng thức Bunhiacopxki ta có :
 
$(y+\sqrt{yz}+z)^2=(\sqrt{y}.\sqrt{y}+\sqrt{yz}+\sqrt{z}\sqrt{z})^2\leq (x+y+z)(y+2z)$
 Do đó ta có $\frac{2x^2+xy}{y+z+\sqrt{yz}}\geq \frac{2x^2+xy}{(x+y+z)(y+2z)}=\frac{1}{x+y+z}(\frac{2x^2+xy}{y+2z}+x-x)=\frac{1}{x+y+z}.(\frac{2x^2+2xy+2xz}{y+2z}-x)=\frac{2x}{y+2z}-\frac{x}{x+y+z}$

 Chứng minh tương tự cho các phân thức còn lại ta có 

VT $\geq \frac{2x}{y+2z}+\frac{2y}{z+2x}+\frac{2z}{x+2y}-1$

Áp dụng dồn mẫu ta có $\frac{2x^2}{xy+2xz}+\frac{2y^2}{yz+2xy}+\frac{2z^2}{xz+2yz} \geq \frac{2(x+y+z)^2}{3(xz+xz+yz)} \geq 2$

Do đó VT $\geq (2-1)=1$
Vote giúp nha –  ★·.·´¯`·.·★Poseidon★·.·´¯`·.·★ 26-03-16 04:53 PM

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