A-A+
(1)已知x2-6x+9+|y+1|=0 求(x+2y)2(x-2y)2-(x-2y)(x2
问题详情
(1)已知x2-6x+9+|y+1|=0,求(x+2y)2(x-2y)2-(x-2y)(x2+4y2)(x+2y)的值.
(2)若△ABC的三边长分别为a,b,c,且满足等式3(a2+b2+c2)=(a+b+c)2,试确定该三角形的形状.
参考答案
(1)∵x2-6x+9+|y+1|=(x-3)2+|y+1|=0,
∴x-3=0且y+1=0,即x=3,y=-1,
则(x+2y)2(x-2y)2-(x-2y)(x2+4y2)(x+2y)=(x2-4y2)2-(x2-4y2)(x2+4y2)=x4-8x2y2+16y4-x4+16y4=8x2y2+32y4=-8×9×1+32=-40;
(2)3(a2+b2+c2)=(a+b+c)2变形得:3a2+3b2+3c2=a2+b2+c2+2ab+2ac+2bc,
3a2+3b2+3c2-a2+b2+c2+2ab+2ac+2bc=0,
整理得:(a-b)2+(a-c)2+(b-c)2=0,
∴a=b=c,
则△ABC为等边三角形.
