$解:(1)(2x-3)m+2m^2-3x$
$=2mx-3m+2m^2-3x$
$=(2m-3)x+2m^2-3m$
$∵多項(xiàng)式的值與x的取值無(wú)關(guān)$
$∴2m-3=0$
$解得m=\frac{3}{2}$
$(2)∵A=(2x+1)(x-1)-x(1-3y)�,$
$B=-x^2+xy-1$
$∴3A+6B$
$=3[(2x+1)(x-1)-x(1-3y)]+6(-x^2+xy-1) $
$=3(2x^2-2x+x-1-x+3xy)-6x^2+6xy-6 $
$=6x^2-6x+3x-3-3x+9xy-6x^2+6xy-6 $
$=15xy-6x-9 $
$=(15y-6)x-9 $
$∵3A+6B的值與x無(wú)關(guān) $
$∴15y-6=0��,即y=\frac{2}{5} $
