(2m+1)x + (m+1)y = 7m+4m(2x+y-7)=4-x-y2x+y-7=04-x-y=0x=3y=1即直线恒过(3,1)点而把点代入圆的左边,有(x-1)^2+(y-2)^2=(3-1)^2+(1-2)^2=4+1=5<25即该点在圆的内部,所以无论m取何实数值,直线与圆恒相交
