一道初中代数题,高手帮帮忙啊
证明:(a-b/a+b)+(b-c/b+c)+(c-a/c+a)+(a-b)(b-c)(c-a)/(a+b)(b+c)(c+a)=0过程要详细,好的加分!!!有没有人来帮...
证明:(a-b/a+b)+(b-c/b+c)+(c-a/c+a)+(a-b)(b-c)(c-a)/(a+b)(b+c)(c+a)=0
过程要详细,好的加分!!!
有没有人来帮帮我啊,急啊!!! 展开
过程要详细,好的加分!!!
有没有人来帮帮我啊,急啊!!! 展开
3个回答
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解:设:x=a+b,y=b+c,m=c+a
则a-b=m-y,b-c=x-m,c-a=y-x
(a-b)/(a+b)=(m-y)/x (b-c)/(b+c)=(x-m)/y (c-a)/(c+a)=(y-x)/m
得:原式= (m-y)/x +(x-m)/y+ (y-x)/m+(m-y)(x-m)(y-x)/(xym)
= (my-y²+x²-mx)/(xy) + (y-x)[xy+(m-y)(x-m)]/(xym)
= (x-y)(x+y-m)/(xy) - (x-y)[xy+(mx-m²-xy+my)]/(xym)
= (x-y)(mx+ym-m²)/(xym) - (x-y)(mx-m²+ym)/(xym)
= 0
如果你不想用这种方法,你就要通分消去分母计算,等式两边同时乘以(a+b)(b+c)(c+a),很麻烦。
则a-b=m-y,b-c=x-m,c-a=y-x
(a-b)/(a+b)=(m-y)/x (b-c)/(b+c)=(x-m)/y (c-a)/(c+a)=(y-x)/m
得:原式= (m-y)/x +(x-m)/y+ (y-x)/m+(m-y)(x-m)(y-x)/(xym)
= (my-y²+x²-mx)/(xy) + (y-x)[xy+(m-y)(x-m)]/(xym)
= (x-y)(x+y-m)/(xy) - (x-y)[xy+(mx-m²-xy+my)]/(xym)
= (x-y)(mx+ym-m²)/(xym) - (x-y)(mx-m²+ym)/(xym)
= 0
如果你不想用这种方法,你就要通分消去分母计算,等式两边同时乘以(a+b)(b+c)(c+a),很麻烦。
追问
(m-y)/x +(x-m)/y+ (y-x)/m+(m-y)(x-m)(y-x)/(xym)
= (my-y²+x²-mx)/(xy) + (y-x)[xy+(m-y)(x-m)]/(xym)
这一步没看明白。。。
追答
(m-y)/x +(x-m)/y+ (y-x)/m+(m-y)(x-m)(y-x)/(xym)
=(m-y)/x ×y/y+(x-m)/y×x/x+ (y-x)/m×xy/xy+(m-y)(x-m)(y-x)/(xym)
=(m-y)y/xy +(x-m)x/xy+ xy(y-x)/xym+(m-y)(x-m)(y-x)/(xym)
=(my-y²)/xy +(x²-mx)/xy+ xy(y-x)/xym+(m-y)(x-m)(y-x)/(xym)
把(my-y²)/xy +(x²-mx)/xy合并得(my-y²+x²-mx)/(xy)
把xy(y-x)/xym和(m-y)(x-m)(y-x)/(xym) 中的(y-x)提出来得(y-x)[xy/xym+(m-y)(x-m)/(xym)],之后再把xy/xym+(m-y)(x-m)/(xym)合并得: (y-x)[xy+(m-y)(x-m)]/(xym)
最后把(my-y²+x²-mx)/(xy)和 (y-x)[xy+(m-y)(x-m)]/(xym) 相加
得(my-y²+x²-mx)/(xy) + (y-x)[xy+(m-y)(x-m)]/(xym)
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