Cho a,b,c>0 có a+b+c=3. CMR:
 $\frac{a^3+ab^2}{a^2+b+b^2}+ \frac{b^3+bc^2}{b^2+c+c^2}+\frac{c^3+ca^2}{c^2+a+a^2}\geq2$
Ta có: $a-\frac{a^3+ab^2}{a^2+b+b^2}=\frac{ab}{a^2+b+b^2}\Rightarrow \frac{a^3+ab^2}{a^2+b+b^2}=a-\frac{ab}{a^2+b+b^2}(*)$
Ta có: $VT=\sum(a-\frac{ab}{a^2+b+b^2})\geq \sum(a-\frac{ab}{b+2ab})=\sum(a-\frac{a}{2a+1})$
$VT\geq \sum\frac{2a^2}{2a+1}$
Áp dụng bất đẳng thức $Cauchy-Schawrt$ ta có: $VT\geq \frac{2(a+b+c)^2}{2(a+b+c)+3}=2$
Vậy Bất đẳng thức được chứng minh. 
Dấu bằng xảy ra khi a=b=c=1
từ $(*)$ trên cách kia:
Ta có $:\frac{ab}{a^2+b+b^2}\geq \frac{ab}{3\sqrt[3]{a^2b^3}}=\frac{1}{3}\sqrt[3]{a}b$
lại có:$\frac{1}{3}\sqrt[3]{a}b\leq \frac{1}{3}\frac{(a+2)b}{3}\Rightarrow P\geq a+b+c-\frac{ab+bc+ca+2(a+b+c)}{9}(1)$
$(1)\geq a+b+c-\frac{\frac{(a+b+c)^2}{3}+2(a+b+c)}{9}=2$

hehe khôn đó cu!!! –  ★·.·´¯`·.·★Poseidon★·.·´¯`·.·★ 03-08-16 07:23 PM

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