$\frac{x(x^2-56)}{4-7x}-\frac{21x+22}{x^3+2}=4$.
ĐKXĐ $x \neq \frac{4}{7} ; x \neq \sqrt[3]{- 2}$
$\frac{x(x^{2} - 56)}{4 - 7x} - \frac{21x+22}{x^{3} + 2}$ $= 4$
$<=>(\frac{x(x^2 - 56)}{4 - 7x}  )- (\frac{21x+22}{x^{3} + 2} - 1) = 0$
$<=> (x^{3} - 21x -20)(\frac{1}{4 - 7x} + \frac{1}{x^{3} + 2}) = 0$ 
$<=> ( x - 5)(x+4)(x+1) (\frac{1}{4 - 7x} + \frac{1}{x^{3} + 2}) = 0$
Xét trường hợp
$\frac{1}{4 - 7x}$ + $\frac{1}{x^{3} + 2} = 0 $
$<=> x^3 - 7x + 6 = 0$
$<=> (x- 2)( x- 1)(x+3)= 0$ 
$<=>$ $x = 2$ hoặc $x= 1$ hoặc $x = - 3$
Xét trường hợp 
$( x - 5)(x+4)(x+1)$ $= 0$
$<=> x = 5$ hoặc $x = - 4$ hoặc $x = -1$
Vậy phương trình đã cho có các nghiệm là $x \in {-4 ;-3 ;-1, 1, 2, 5}$
chị ko đủ quyền để sửa, kêu tk Jin đi e –  @_@ *Mèo9119* @_@ 04-03-16 04:48 PM
e bấm ngu lắm, chị sửa hộ e vs –  Nguyễn Trâm 04-03-16 04:41 PM
cho $$ vào 2 đầu của ct –  @_@ *Mèo9119* @_@ 04-03-16 04:35 PM
 Điều Kiện 
x47 và x23
(1)⇔(x(x256)47x5)(21x+22x3+21)=0
(x321x20)(147x+1x3+2)=0
(x5)(x+4)(x+1)(147x+1x3+2)=0
Trường hợp 147x+1x3+2=0x37x+6=0(x2)(x1)(x+3)=0
Vậy phương trình đã cho có các nghiệm là x{5;4;1;2;1;3

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