Ta có :

\(\sqrt{9x^2-6x+2}=\sqrt{\left(9x^2-6x+1\right)+1}=\sqrt{\left(3x-1\right)^2+1}\ge\sqrt{1}=1\)

\(\sqrt{45x^2-30x+9}=\sqrt{5\left(9x^2-6x+1\right)+4}=\sqrt{5\left(3x-1\right)^2+4}\ge\sqrt{4}=2\)

\(\sqrt{6x-9x^2+8}=\sqrt{-\left(9x^2-6x+1\right)+9}=\sqrt{-\left(3x-1\right)^2+9}\le3\)

\(\Rightarrow VT\ge3\ge VP\)

mÀ đề lại cho \(VT=VP\) \(\Rightarrow\hept{\begin{cases}\sqrt{\left(3x-1\right)^2+1}=1\\\sqrt{\left(3x-1\right)^2+4}=2\\\sqrt{-\left(3x-1\right)^2+9}=3\end{cases}\Rightarrow x=\frac{1}{3}}\)

Vậy \(x=\frac{1}{3}\)

x=1/3 nha

ĐKXĐ: ...

\(\Leftrightarrow\sqrt{\left(3x-1\right)^2+1}+\sqrt{5\left(3x-1\right)^2+4}=\sqrt{9-\left(3x-1\right)^2}\)

Do \(\left(3x-1\right)^2\ge0\Rightarrow\left\{{}\begin{matrix}VT\ge\sqrt{1}+\sqrt{4}=3\\VP\le\sqrt{9}=3\end{matrix}\right.\)

\(\Rightarrow VT\ge VP\)

Dấu "" xảy ra khi và chỉ khi \(3x-1=0\Leftrightarrow x=\frac{1}{3}\)

Vậy pt có nghiệm duy nhất \(x=\frac{1}{3}\)

Đặt \(9x^2-6x=a\) . Phương trình trở thành :

\(\sqrt{a+2}+\sqrt{5a+9}=\sqrt{-a+8}\)

ĐKXĐ: x∈R

Đặt \(a=9x^2-6x\)

\(\sqrt{9x^2-6x+2}+\sqrt{45x^2-30x+9}=\sqrt{6x-9x^2+8}\)

=>\(\sqrt{a+2}+\sqrt{5a+9}=\sqrt{-a+8}\)

=>\(\sqrt{a+2}-1+\sqrt{5a+9}-2=\sqrt{-a+8}-3\)

=>\(\frac{a+2-1}{\sqrt{a+2}+1}+\frac{5a+9-4}{\sqrt{5a+9}+2}=\frac{-a+8-9}{\sqrt{-a+8}+3}\)

=>\(\frac{a+1}{\sqrt{a+2}+1}+\frac{5a+5}{\sqrt{5a+9}+2}=\frac{-a-1}{\sqrt{-a+8}+3}\)

=>\(\left(a+1\right)\left(\frac{1}{\sqrt{a+2}+1}+\frac{5}{\sqrt{5a+9}+2}+\frac{1}{\sqrt{-a+8}+3}\right)=0\)

=>a+1=0

=>a=-1

=>\(9x^2-6x=-1\)

=>\(9x^2-6x+1=0\)

=>\(\left(3x-1\right)^2=0\)

=>3x-1=0

=>3x=1

=>\(x=\frac13\)