△ABC的三边a,b,c满足a²-10a+c²-26c+194+√(2/3b-8)=0,试求a,b,c的值,

问题描述:

△ABC的三边a,b,c满足a²-10a+c²-26c+194+√(2/3b-8)=0,试求a,b,c的值,
并判断△ABC的形状.急!快快快!在线等!

a²-10a+c²-26c+194+√(2/3b-8)=0(a-5)²+(c-13)²+√(2b/3-8)=0;∴a-5=0;a=5;c-13=0;c=13;2b/3=8;b=12;所以a²+b²=c²;所以是直角三角形很高兴为您解答,skyhunter002为您答...