Câu hỏi của Người Vô Danh

Question

1. cho a,b,c dương thỏa mãn abc=1chứng minh $\dfrac{b+c}{\sqrt{a}}+\dfrac{a+c}{\sqrt{b}}+\dfrac{a+b}{\sqrt{c}}\ge\sqrt{a}+\sqrt{b}+\sqrt{c}+3$

FLT24 · Accepted Answer

Đặt $x=\sqrt{a};y=\sqrt{b};z=\sqrt{c}$ $\Rightarrow xyz=1$  (x;y;z > 0 do a;b;c>0)Cần c/m : $VT=\dfrac{y^2+z^2}{x}+\dfrac{x^2+z^2}{y}+\dfrac{x^2+y^2}{z}\ge x+y+z+3=VP$ Dễ dàng c/m : VT $\ge2\left(\dfrac{yz}{x}+\dfrac{xz}{y}+\dfrac{xy}{z}\right)$   (1)Thấy : $\dfrac{xy}{z}+\dfrac{xz}{y}\ge2x$  . CMTT : $\dfrac{xz}{y}+\dfrac{yz}{x}\ge2z;\dfrac{yz}{x}+\dfrac{xy}{z}\ge2y$Suy ra : $\dfrac{xy}{z}+\dfrac{xz}{y}+\dfrac{yz}{x}\ge x+y+z$Có : $\dfrac{xy}{z}+\dfrac{xz}{y}+\dfrac{yz}{x}\ge3\sqrt[3]{xyz}=3$Suy ra : $2\left(\dfrac{xy}{z}+\dfrac{yz}{x}+\dfrac{xz}{y}\right)\ge x+y+z+3\left(2\right)$Từ (1) ; (2) suy ra : $VT\ge VP$" = " $\Leftrightarrow x=y=z=1\Leftrightarrow a=b=c=1$ Câu trả lời: Đặt $x=\sqrt{a};y=\sqrt{b};z=\sqrt{c}$ $\Rightarrow xyz=1$  (x;y;z > 0 do a;b;c>0)Cần c/m : $VT=\dfrac{y^2+z^2}{x}+\dfrac{x^2+z^2}{y}+\dfrac{x^2+y^2}{z}\ge x+y+z+3=VP$ Dễ dàng c/m : VT $\ge2\left(\dfrac{yz}{x}+\dfrac{xz}{y}+\dfrac{xy}{z}\right)$   (1)Thấy : $\dfrac{xy}{z}+\dfrac{xz}{y}\ge2x$  . CMTT : $\dfrac{xz}{y}+\dfrac{yz}{x}\ge2z;\dfrac{yz}{x}+\dfrac{xy}{z}\ge2y$Suy ra : $\dfrac{xy}{z}+\dfrac{xz}{y}+\dfrac{yz}{x}\ge x+y+z$Có : $\dfrac{xy}{z}+\dfrac{xz}{y}+\dfrac{yz}{x}\ge3\sqrt[3]{xyz}=3$Suy ra : $2\left(\dfrac{xy}{z}+\dfrac{yz}{x}+\dfrac{xz}{y}\right)\ge x+y+z+3\left(2\right)$Từ (1) ; (2) suy ra : $VT\ge VP$" = " $\Leftrightarrow x=y=z=1\Leftrightarrow a=b=c=1$

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