作业帮1.已知 x/a-b=y/b-c=z/c-a,若a不等于b不等于c,求x+y+z.2.已知a+b+c=0,求a(1/b+1/c)+b(1/c+1/a)+c(1/a+1/b)的值.3.化简:[(x+2)/(x^2+2x)-(x-1)/(x^2--4x+4)]/(x-4/x)*(2-x)^24.化简;(1/2x+6)+(1/3-x)+[x/2(x^2-9)3.[(x+2)/(x
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![1.已知 x/a-b=y/b-c=z/c-a,若a不等于b不等于c,求x+y+z.2.已知a+b+c=0,求a(1/b+1/c)+b(1/c+1/a)+c(1/a+1/b)的值.3.化简:[(x+2)/(x^2+2x)-(x-1)/(x^2--4x+4)]/(x-4/x)*(2-x)^24.化简;(1/2x+6)+(1/3-x)+[x/2(x^2-9)3.[(x+2)/(x](/uploads/image/z/7630719-15-9.jpg?t=1.%E5%B7%B2%E7%9F%A5+x%2Fa-b%3Dy%2Fb-c%3Dz%2Fc-a%2C%E8%8B%A5a%E4%B8%8D%E7%AD%89%E4%BA%8Eb%E4%B8%8D%E7%AD%89%E4%BA%8Ec%2C%E6%B1%82x%2By%2Bz.2.%E5%B7%B2%E7%9F%A5a%2Bb%2Bc%3D0%2C%E6%B1%82a%EF%BC%881%2Fb%2B1%2Fc%EF%BC%89%2Bb%EF%BC%881%2Fc%2B1%2Fa%29%2Bc%281%2Fa%2B1%2Fb%29%E7%9A%84%E5%80%BC.3.%E5%8C%96%E7%AE%80%EF%BC%9A%5B%EF%BC%88x%2B2%EF%BC%89%2F%EF%BC%88x%5E2%2B2x%EF%BC%89-%EF%BC%88x-1%29%2F%28x%5E2--4x%2B4%29%5D%2F%28x-4%2Fx%29%2A%282-x%29%5E24.%E5%8C%96%E7%AE%80%3B%281%2F2x%2B6%29%2B%281%2F3-x%29%2B%5Bx%2F2%28x%5E2-9%293.%5B%EF%BC%88x%2B2%EF%BC%89%2F%EF%BC%88x)
1.已知 x/a-b=y/b-c=z/c-a,若a不等于b不等于c,求x+y+z.2.已知a+b+c=0,求a(1/b+1/c)+b(1/c+1/a)+c(1/a+1/b)的值.3.化简:[(x+2)/(x^2+2x)-(x-1)/(x^2--4x+4)]/(x-4/x)*(2-x)^24.化简;(1/2x+6)+(1/3-x)+[x/2(x^2-9)3.[(x+2)/(x
1.已知 x/a-b=y/b-c=z/c-a,若a不等于b不等于c,求x+y+z.
2.已知a+b+c=0,求a(1/b+1/c)+b(1/c+1/a)+c(1/a+1/b)的值.
3.化简:[(x+2)/(x^2+2x)-(x-1)/(x^2--4x+4)]/(x-4/x)*(2-x)^2
4.化简;(1/2x+6)+(1/3-x)+[x/2(x^2-9)
3.[(x+2)/(x^2+2x) - (x-1)/(x^2--4x+4)] /(x-4/x) *(2-x)^2
全隔开啦
1.已知 x/a-b=y/b-c=z/c-a,若a不等于b不等于c,求x+y+z.2.已知a+b+c=0,求a(1/b+1/c)+b(1/c+1/a)+c(1/a+1/b)的值.3.化简:[(x+2)/(x^2+2x)-(x-1)/(x^2--4x+4)]/(x-4/x)*(2-x)^24.化简;(1/2x+6)+(1/3-x)+[x/2(x^2-9)3.[(x+2)/(x
1.设 x/a-b=y/b-c=z/c-a=k,
x=ka-kb,
y=kb-kc,
z=kc-ka,
三式相加,
x+y+z=ka-kb+kc-ka+kc-ka=0,
x+y+z=0
2,
a(1/b+1/c)+b(1/c+1/a)+c(1/a+1/b)
=a/b+a/c+b/c+b/a+c/a+c/b
=(a+c)/b+(a+b)/c+(b+c)/a
=-1-1-1=-3
3,?
4.
(1/2x+6)+(1/3-x)+[x/2(x^2-9)]
=1/2(x+3)-1/(x-3)+x/2(x^2-9)
=[(x-3)-(x+3)]/(x^2-9)+x/2(x^2-9)
=(x-12)/2(x^2-9)
我也是初一的,呵呵,交个朋友吧!
1.设 x/a-b=y/b-c=z/c-a=k,
x=ka-kb,
y=kb-kc,
z=kc-ka,
三式相加,
x+y+z=ka-kb+kc-ka+kc-ka=0,
x+y+z=0
2,
a(1/b+1/c)+b(1/c+1/a)+c(1/a+1/b)
=a/b+a/c+b/c+b...
全部展开
我也是初一的,呵呵,交个朋友吧!
1.设 x/a-b=y/b-c=z/c-a=k,
x=ka-kb,
y=kb-kc,
z=kc-ka,
三式相加,
x+y+z=ka-kb+kc-ka+kc-ka=0,
x+y+z=0
2,
a(1/b+1/c)+b(1/c+1/a)+c(1/a+1/b)
=a/b+a/c+b/c+b/a+c/a+c/b
=(a+c)/b+(a+b)/c+(b+c)/a
=-1-1-1=-3
3,?
4.
(1/2x+6)+(1/3-x)+[x/2(x^2-9)]
=1/2(x+3)-1/(x-3)+x/2(x^2-9)
=[(x-3)-(x+3)]/(x^2-9)+x/2(x^2-9)
=(x-12)/2(x^2-9)
收起
1.设x/(a-b)=y/(b-c)=z/(c-a)=k
x=(a-b)k,y=(b-c)k,z=(c-a)k
x+y+z=ak-bk+bk-ck+ck-ak=0
2.原式=(b+c)/a+(a+b)/b+(b+c)/a
=(a+b+c)/a+(a+b+c)/b+(a+b+c)/a-1-1-1
∵a+b+c=0
...
全部展开
1.设x/(a-b)=y/(b-c)=z/(c-a)=k
x=(a-b)k,y=(b-c)k,z=(c-a)k
x+y+z=ak-bk+bk-ck+ck-ak=0
2.原式=(b+c)/a+(a+b)/b+(b+c)/a
=(a+b+c)/a+(a+b+c)/b+(a+b+c)/a-1-1-1
∵a+b+c=0
∴原式=-3
3原式=[(x+2)/(x+2)x-(x-1)/(x-2)²]/[(x²-4)/x]×(2-x)²
余下自己化简(第三题中--)是加还是减
4((1/2x+6)+(1/3-x)+[x/2(x^2-9)]
=1/2(x+3)-1/(x-3)+x/2(x^2-9)
=[(x-3)-(x+3)]/(x^2-9)+x/2(x^2-9)
=(x-12)/2(x^2-9)
(x^2-9) 是分母还是分子,用括号。
收起
我高二了,为虾米我一点也看不懂???