Giải các pt, bất pt sau:
1> $\sqrt{2x - 2\sqrt{2x-1}}$ - 2$\sqrt{2x +3 -4\sqrt{2x-1}}$ + 3$\sqrt{2x+8-6\sqrt{2x -1}}$ = 4

2> $\frac{\sqrt{-x^{2}+ x+6}}{2x +5}$ $\geq $ $\frac{\sqrt{-x^{2} +x+6}}{x +4}$

3> $\frac{\sqrt{-2x^{2} -15x + 17}}{x+ 3}$ $\geq  0$

4> $ \frac{\sqrt{21+x} + \sqrt{21-x}}{\sqrt{21+x}- \sqrt{21-x} } =\frac{21}{x}$

5>$\sqrt[4]{47- 2x} + \sqrt[4]{35+2x} =4$ 

6> $\sqrt{\frac{\sqrt{x^{2}+ 4356}+ x}{x} - \sqrt{x\sqrt{x^{2}+4356} - x^{2}}  }$ = 5

5)Đk:$-\frac{35}{2}\leq x\leq \frac{47}{2}$
đặt: $\begin{cases}\sqrt[4]{47-2x}=u \\ \sqrt[4]{35+2x}=v \end{cases}$
ta có hệ $\begin{cases}u^4+v^4=82 \\ u+v=4 \end{cases}$
đây là hệ đối xứng nên rút thế ta dc 
$u=1 và v=3$ hoặc $u=3và v=1$
giải ra ta dc $x=23 $ hoặc $x=-17$
4) $ĐK:x\neq 0$
$\begin{cases}x\geq -21\\ x\leq 21\end{cases}$
<=>$\frac{(\sqrt{21+x}+\sqrt{21-x})(\sqrt{21+x}-\sqrt{21-x})}{(\sqrt{21+x}-\sqrt{21-x})^2}=\frac{21}{x}$
<=>$\frac{2x}{(\sqrt{21+x}-\sqrt{21-x})^2}=\frac{21}{x}$
nhân chéo lượt bỏ ta dc 
=>$21\sqrt{441-x^2}=441-x^2$
đặt t= $\sqrt{441-x^2} (t\geq 0)$
=>t=0 hoặc t=21
=>x=21 ( x=0 loại vì ktđk)
3) đk :........
Vì căn thức \geq 0 nên biểu thức trở thành
$\begin{cases}\sqrt{-2x^2-15x+17}\geq 0 \\ x+3\geq 0\end{cases}$
giải hệ ta dc $-3\leq x\leq 1$
2) đk:.....
$pt<=> \sqrt{-x^2+x+6}(\frac{1}{2x+5}-\frac{1}{x+4})\geq 0$
=>$\begin{cases}\sqrt{-x^2+x+6}\geq 0 \\ \frac{1}{2x+5}-\frac{1}{x+4}\geq 0 \end{cases}$( vì căn đã lớn hơn 0)
giải hệ đơn giản này ta sẽ dc nghiệm của bpt
1)
$dk:.....$
$Đặt t= 2\sqrt{2x-1}=>2x=\frac{t^2}{4}+1$
pt=> $\sqrt{\frac{t^2}{4}+1-t}-2\sqrt{\frac{t^2}{4}+4-2t}+3\sqrt{\frac{t^2}{4}+9-3t}=4$
<=> $\sqrt{\frac{1}{4}(t^2-4t++4)}-2\sqrt{\frac{1}{4}(t^2-8t+16)}+3\sqrt{\frac{1}{4}(t^2-12t+36)}=4$
=> $\frac{1}{2}\left| {t-2} \right|-\left| {t-4} \right|+\frac{3}{2}\left| {t-6} \right|=4$
tới đây thì =>t rồi => x là xog

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