已知mn=-3,m-n=5,求代数试2m²-2mn²的值
来源:学生作业帮助网 编辑:作业帮 时间:2024/09/24 19:16:30
由于:mn/(m+n)=2则有:mn=2(m+n)则:原式=(3m+3n-5mn)/(-m-n+3mn)=[3(m+n)-5mn]/[-(m+n)+3mn]=[3(m+n)-10(m
(2mn+2m+3n)-(3mn+2n-2m)-(m+4n+mn)先去括号=2mn+2m+3n-3mn-2n+2m-m-4n-mn合并同类项=-2mn+3m-3n=-2mn+3(m-n)把m-n=2,
3m-5mn+3n/(-m)+3mn-n=【3(m+n)-5mn】/【3mn-(m+n)】=【3-5mn/(m+n)】/【3mn/(m+n)-1】=【3-5x2】/【3x2-1】=-7/5
解(-2mn+2m+3n)-(3mn+2n-2m)-(m+4n+mn)=-2mn+2m+3n-3mn-2n+2m-m-4n-mn=-2mn-3mn-mn+2m+2m-m+3n-2n-4n=-6mn+3
答:mn/(m+n)=2分子分母同除以mn得:1/(1/n+1/m)=21/m+1/n=1/2(3m-5mn+3n)/(-m+3mn-n)分子分母同除以mn得:=(3/n-5+3/m)/(-1/n+3
由于:mn/(m+n)=2则有:mn=2(m+n)则:原式=(3m+3n-5mn)/(-m-n+3mn)=[3(m+n)-5mn]/[-(m+n)+3mn]=[3(m+n)-10(m+n)]/[-(m
(4m-5n-mn)-(2m-3n+5mn)=4m-5n-mn-2m+3n-5mn=2m-2n-6mn=2(m-n)-6mn当m-n=2,mn=-1时,原式=2×2-6×(-1)=10已知A=2x^2
-MN(M^2N^5-MN^3-N)=-(-6)^3+(-6)^2-(-6)=258
-2mn+2m+3n-3mn-2n+2m-4n-m-mn=-6mn+3m-3n=-6mn+3(m-n)=6+9=15
2m^2n-2mn^2=2mn(m-n)=-6*5=-30再问:为什么这么做再答:因为有相同因式,可以提取公因式
m²+(n-mn)²+2mn-2m²n=m²+n²-2mn²+m²n²+2mn-2m²n=m²+2m
∵mn+3m+5n=70∴(m+5)(n+3)=85∵85=5X17=1X85∵m.n是正整数∴(m+5)和(n+3)只能取5和17∵m+5>5,n+3>3∴m+5=17,n+3=5∴m=12,n=2
3(m^2n+mn)-2(m^2n-mn)-m^2n=3m^2n+3mn-2m^2n+2mn-m^2n=5mn=5×1/5×(-1)=-1
1是不是题错了?2由题意有F(0)F(1)0,(-5)(a+2-5)=-5(a-3)0,解得a33分别解方程有m=0或m=3,n=0或n=3.因为MN不相等,所以有(1)M=0,N=3,此时原式=4*
原式=-2mn+2m+3n-3mn-2n+2n-m-4n-mn=-6mn+m-n=-6×2+4=-8
知m-n=7,mn=2求5n-3mn+5m+2(m+n)²=(m-n)²+4mn=49+8=57m+n=正负根号575n-3mn+5m+2=5n+5m-3mn+2=5(m+n)-3
∵原式=-3(2n-mn)+2(mn-3m)=-6(m+n)+5mn∵m+n=-3,mn=2∴原式=-6·-3+5·2=28
(-m-4n-mn)-(2mn-2m-3n)-(3mn+2n-2m)=-m-4n-mn-2mn+2m+3n-3mn-2n+2m=3m-3n-6mn=3(m-n)-6mn=3×3-6×(-3)=9+18
3(2n-mn)+2(mn+3m)=6n-3mn+2mn+6m=6(m+n)-mn=6*-3-2=-20
2(mn-3m)-3(2n-mn)=2mn-6m-6n+3mn=2mn+3mn-6(m+n)=32