已知x+2y=0(x≠0),求分式x²-xy分之2xy+y²的值

来源：学生作业帮助网编辑：作业帮时间：2024/11/28 00:51:45

x��)�{�}��K+��*m 4*u.0��y��iG��=�jʆ�ֺ�@��F�ڕ��Z�6�I*ҧ��;��´�5��4��j�k L�K�VhWj�GWhT�Vj��DuM*��@s4t��@&�}3(*n�od�_\��g�� |�F��v��==x|��Ӟi��5<ٱfD�b��4<��|��g��5�(1DrP��

已知x+2y=0(x≠0),求分式x²-xy分之2xy+y²的值
已知x+2y=0(x≠0),求分式x²-xy分之2xy+y²的值

已知x+2y=0(x≠0),求分式x²-xy分之2xy+y²的值
x+2y=0
x=-2y
(2xy+y²)/(x²-xy)
=y(2x+y)/[x(x-y)]
=y(-4y+y)/[-2y(-3y)]
=-3y²/6y²
=-1/2

由x+2y=0得x=-2y，x²-xy分之2xy+y²可化简为6y²分之-3y²，最终结果得-2分之1