Cách 5:.(Sử dụng BĐT trung gian)Trước hêt, ta c/m BĐT đại diện: $\frac{a}{\sqrt{a^2+8bc}}\geq \frac{a^{\frac{4}{3}}}{\sum_{}^{}a^{\frac{4}{3}} }$ $\Leftrightarrow (\sum_{}^{}a^{\frac{4}{3}})^2\geq a^{\frac{2}{3}}(a^2+8bc).$Thật vậy, ta có: $(\sum_{}^{}a^{\frac{4}{3}})^2-(a^{\frac{4}{3}})^2=(b^{\frac{4}{3}}+c^{\frac{4}{3}}).(2a^{\frac{4}{3}}+b^{\frac{4}{3}}+c^{\frac{4}{3}})\geq (2b^{\frac{2}{3}}c^{\frac{4}{3}})(4a^{\frac{2}{3}}b^{\frac{1}{3}}c^{\frac{1}{3}})=8a^{\frac{2}{3}}bc.$Suy ra:: $(\sum_{}^{}a^{\frac{4}{3}})^2\geq (a^{\frac{4}{3}})^2+8a^{\frac{2}{3}}bc=a^{\frac{2}{3}}(a^2+8bc).$Vậy: $\frac{a}{\sqrt{a^2+8bc}}\geq \frac{a^{\frac{4}{3}}}{a^{\frac{4}{3}}+b^{\frac{4}{3}}+c^{\frac{4}{3}}};...............$Từ đó, cộng 2 vế 3 bđt cùng chiều suy ra đpcm
Cách 5:.(Sử dụng BĐT trung gian)Trước hêt, ta c/m BĐT đại diện: $\frac{a}{\sqrt{a^2+8bc}}\geq \frac{a^{\frac{4}{3}}}{\sum_{sym}^{}a^{\frac{4}{3}} }$ $\Leftrightarrow (\sum_{sym}^{}a^{\frac{4}{3}})^2\geq a^{\frac{2}{3}}(a^2+8bc).$Thật vậy, ta có: $(\sum_{sym}^{}a^{\frac{4}{3}})^2-(a^{\frac{4}{3}})^2=(b^{\frac{4}{3}}+c^{\frac{4}{3}}).(2a^{\frac{4}{3}}+b^{\frac{4}{3}}+c^{\frac{4}{3}})\geq (2b^{\frac{2}{3}}c^{\frac{4}{3}})(4a^{\frac{2}{3}}b^{\frac{1}{3}}c^{\frac{1}{3}})=8a^{\frac{2}{3}}bc.$Suy ra:: $(\sum_{sym}^{}a^{\frac{4}{3}})^2\geq (a^{\frac{4}{3}})^2+8a^{\frac{2}{3}}bc=a^{\frac{2}{3}}(a^2+8bc).$Vậy: $\frac{a}{\sqrt{a^2+8bc}}\geq \frac{a^{\frac{4}{3}}}{a^{\frac{4}{3}}+b^{\frac{4}{3}}+c^{\frac{4}{3}}};...............$Từ đó, cộng 2 vế 3 bđt cùng chiều suy ra đpcm
Cách 5:.(Sử dụng BĐT trung gian)Trước hêt, ta c/m BĐT đại diện: $\frac{a}{\sqrt{a^2+8bc}}\geq \frac{a^{\frac{4}{3}}}{\sum_{}^{}a^{\frac{4}{3}} }$ $\Leftrightarrow (\sum_{}^{}a^{\frac{4}{3}})^2\geq a^{\frac{2}{3}}(a^2+8bc).$Thật vậy, ta có: $(\sum_{}^{}a^{\frac{4}{3}})^2-(a^{\frac{4}{3}})^2=(b^{\frac{4}{3}}+c^{\frac{4}{3}}).(2a^{\frac{4}{3}}+b^{\frac{4}{3}}+c^{\frac{4}{3}})\geq (2b^{\frac{2}{3}}c^{\frac{4}{3}})(4a^{\frac{2}{3}}b^{\frac{1}{3}}c^{\frac{1}{3}})=8a^{\frac{2}{3}}bc.$Suy ra:: $(\sum_{}^{}a^{\frac{4}{3}})^2\geq (a^{\frac{4}{3}})^2+8a^{\frac{2}{3}}bc=a^{\frac{2}{3}}(a^2+8bc).$Vậy: $\frac{a}{\sqrt{a^2+8bc}}\geq \frac{a^{\frac{4}{3}}}{a^{\frac{4}{3}}+b^{\frac{4}{3}}+c^{\frac{4}{3}}};...............$Từ đó, cộng 2 vế 3 bđt cùng chiều suy ra đpcm