6xy-3[3y²-(x²-2xy)+1],其中x=-2,y=-1/3化简求值要过程明天交卷麻烦各位帮帮忙

问题描述:

6xy-3[3y²-(x²-2xy)+1],其中x=-2,y=-1/3化简求值要过程
明天交卷麻烦各位帮帮忙

原式=6xy-3[3y^2-x^2+2xy+1]
=6xy-9y^2+3x^2-6xy-3
=3x^2-9y^2-3
当x=-2,y=-1/3时,
3x^2-9y^2-3=12-1-3=8
希望采纳~~!

6xy-3[3y²-(x²-2xy)+1]
=6xy-9y²+3x²-6xy-3
=-9y²+3x²-3
=-9(-1/3)²+3(-2)²-3
=-1+12-3
=8