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kuing
发表于 2022-10-22 15:40
主要是我还没想出绝妙的证法。
那就先上个难看的 SOS 证法吧:承接 2# 的
\[\sum\sqrt{xy(x+y)}\geqslant\lambda\sqrt{x+y+z}\sum\sqrt{xy},\]
当 `x=y=z` 时有 `\lambda\leqslant\sqrt{2/3}`,下面证明当 `\lambda=\sqrt{2/3}` 时不等式成立,此时不等式等价于以下的
\begin{gather*}
\sum\sqrt{xy}\bigl(\sqrt{3(x+y)}-\sqrt{2(x+y+z)}\bigr)\geqslant0,\\
\sum\sqrt{xy}\frac{x+y-2z}{\sqrt{3(x+y)}+\sqrt{2(x+y+z)}}\geqslant0,\\
\sum\left(\sqrt{yz}\frac{y-x}{\sqrt{3(y+z)}+\sqrt{2(x+y+z)}}+\sqrt{zx}\frac{x-y}{\sqrt{3(z+x)}+\sqrt{2(x+y+z)}}\right)\geqslant0,\\
\sum\sqrt z(x-y)\left(\frac{\sqrt x}{\sqrt{3(z+x)}+\sqrt{2(x+y+z)}}-\frac{\sqrt y}{\sqrt{3(y+z)}+\sqrt{2(x+y+z)}}\right)\geqslant0,\\
\sum\sqrt z(x-y)\frac{\bigl(\sqrt x-\sqrt y\bigr)\sqrt{2(x+y+z)}+\sqrt{3x(y+z)}-\sqrt{3y(z+x)}}{\bigl(\sqrt{3(z+x)}+\sqrt{2(x+y+z)}\bigr)\bigl(\sqrt{3(y+z)}+\sqrt{2(x+y+z)}\bigr)}\geqslant0,\\
\sum\sqrt z(x-y)\frac{\bigl(\sqrt x-\sqrt y\bigr)\sqrt{2(x+y+z)}+\frac{\sqrt3(x-y)z}{\sqrt{x(y+z)}+\sqrt{y(z+x)}}}{\bigl(\sqrt{3(z+x)}+\sqrt{2(x+y+z)}\bigr)\bigl(\sqrt{3(y+z)}+\sqrt{2(x+y+z)}\bigr)}\geqslant0,
\end{gather*}
最后一式显然成立,即得证。 |
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