分式的加减计算题 急急急急
(2a-b分之2a)+(b-2a分之b)(x-2分之4)+(2-x分之x+2)(4a的平方分之b的平方)-(a分之c)1-(x+1分之1)r1分之1+r2分之1(x+1分...
(2a-b分之2a)+(b- 2a分之b)
(x-2分之4)+(2-x分之x+2)
(4a的平方分之b的平方)-(a分之c)
1-(x+1分之1)
r1分之1+r2分之1
(x+1分之x+2)-(x+2分之x+1)
(a+1分之a-1)-(a分之1) 展开
(x-2分之4)+(2-x分之x+2)
(4a的平方分之b的平方)-(a分之c)
1-(x+1分之1)
r1分之1+r2分之1
(x+1分之x+2)-(x+2分之x+1)
(a+1分之a-1)-(a分之1) 展开
展开全部
2a/(2a-b)+b/(b-2a)=2a/(2a-b)-b/(2a-b)=(2a-b)/(2a-b)=1
4/(x-2)+(x+2)/(2-x)=4/(x-2)-(x+2)/(x-2)=(2-x)/(x-2)=-1
b^2/4a^2-c/a=(b^2-4ac)/4a^2
1-1/(x+1)=x/(x+1)
1/r1+1/r2=(r1+r2)/r1r2
(x+2)/(x+1)-(x+1)/(x+2)=[(x-2)^2-(x+1)^2]/[(x+1)(x+2)]=(x-1)(-3)/[(x+1)(x+2)]=-3(x-1)/[(x+1)(x+2)]
(a-1)/(a+1)-1/a=(a^2-a-a-1)/[a(a+1)]=(a^2-2a-1)/[a(a+1)]
4/(x-2)+(x+2)/(2-x)=4/(x-2)-(x+2)/(x-2)=(2-x)/(x-2)=-1
b^2/4a^2-c/a=(b^2-4ac)/4a^2
1-1/(x+1)=x/(x+1)
1/r1+1/r2=(r1+r2)/r1r2
(x+2)/(x+1)-(x+1)/(x+2)=[(x-2)^2-(x+1)^2]/[(x+1)(x+2)]=(x-1)(-3)/[(x+1)(x+2)]=-3(x-1)/[(x+1)(x+2)]
(a-1)/(a+1)-1/a=(a^2-a-a-1)/[a(a+1)]=(a^2-2a-1)/[a(a+1)]
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