Cho \(\left\{{}\begin{matrix}a,b,c>0\\\sqrt{a}+\sqrt{b}+\sqrt{c}\ge3\sqrt{2}\end{matrix}\right.\) CMR :
\(S=\sqrt[3]{a^2+\frac{1}{b^2}}+\sqrt[3]{b^2+\frac{1}{c^2}}+\sqrt[3]{c^2+\frac{1}{a^2}}\ge3.\sqrt[3]{\left(\frac{17}{4}\right)^2}\)
Đề bài có vấn đề nho nhỏ, thay điểm rơi vào thì vế phải thừa bình phương trong ngoặc
Áp dụng Holder:
\(\left(a^2+\frac{1}{b^2}\right)\left(4+\frac{1}{4}\right)\left(4+\frac{1}{4}\right)\ge\left(\sqrt[3]{16a^2}+\sqrt[3]{\frac{1}{16b^2}}\right)^3\)
\(\Rightarrow\sqrt[3]{17^2\left(a^2+\frac{1}{b^2}\right)}\ge4\sqrt[3]{4a^2}+\frac{1}{\sqrt[3]{b^2}}\)
\(\Rightarrow P=\sqrt[3]{17^2}.S\ge4\sqrt[3]{4}\left(\sqrt[3]{a^2}+\sqrt[3]{b^2}+\sqrt[3]{c^2}\right)+\frac{1}{\sqrt[3]{a^2}}+\frac{1}{\sqrt[3]{b^2}}+\frac{1}{\sqrt[3]{c^2}}\)
\(P=\frac{15}{\sqrt[3]{16}}\sum\sqrt[3]{a^2}+\sum\left(\sqrt[3]{\frac{a^2}{16}}+\frac{1}{\sqrt[3]{a^2}}\right)\)
Ta có: \(3\sqrt[3]{a^2}+\sqrt[3]{4}\ge4\sqrt[12]{4a^6}=4\sqrt[6]{2}.\sqrt{a}\)
Tương tự và cộng lại:
\(\Rightarrow\sum\sqrt[3]{a^2}\ge\frac{4\sqrt[6]{2}\sum\sqrt{a}-3\sqrt[3]{4}}{3}\ge3\sqrt[3]{4}\)
\(\sum\left(\sqrt[3]{\frac{a^2}{16}}+\frac{1}{\sqrt[3]{a^2}}\right)\ge6\sqrt[6]{\frac{1}{16}}=\frac{6}{\sqrt[3]{4}}\)
\(\Rightarrow P\ge\frac{15}{\sqrt[3]{16}}.3\sqrt[3]{4}+\frac{6}{\sqrt[3]{4}}=\frac{51}{\sqrt[3]{4}}=3.\sqrt[3]{\frac{17^3}{4}}\)
\(\Rightarrow S\ge3\sqrt[3]{\frac{17^3}{4}}:\sqrt[3]{17^2}=3\sqrt[3]{\frac{17}{4}}\)
Dấu "=" xảy ra khi \(a=b=c=2\)
Bài toán nhạt nhẽo, chẳng có gì ngoài tính trâu, lần sau xin né :(
