如图,在平面直角坐标系中,点B坐标为(x,y),且x,y满足|x+y-6|+(x-y)2=0

1个回答

  • (1)∵ |x+y-6|+(x-y)²=0

    ∴ |x+y-6|=0, (x-y)²=0

    x+y-6=0, x-y=0

    解得:x=3, y=3

    ∴点B的坐标是(3,3)

    (2)如图示:

    过B作BE⊥Y轴,垂足为E,过B作BF⊥X轴,垂足为F,

    则∠EBF=90°=∠ABF+∠ABE

    ∵BC⊥AB

    ∴∠ABC=90°=∠CBE+∠ABE

    ∴∠CBE=∠ABF(同角的余角相等)

    由(1)知BE=BF=3

    又∵∠CEB=∠AFB=90°

    ∴△CEB≌△AFB(ASA)

    ∴CB=AB(全等三角形的对应边相等)

    即:AB=BC