初二下册数学计算题。
(1)计算:(-a/b)²÷(2a²/5b)²×a/5b;(2)计算:(x²+1)/(x²-1)-(x-2)/(x-1)...
(1)计算:(-a/b)²÷(2a²/5b)²×a/5b;
(2)计算:(x²+1)/(x²-1)-(x-2)/(x-1)÷(x-2)/x.
(3)解方程:2/(x²-4)-1/(x+2)=0. 展开
(2)计算:(x²+1)/(x²-1)-(x-2)/(x-1)÷(x-2)/x.
(3)解方程:2/(x²-4)-1/(x+2)=0. 展开
8个回答
展开全部
本回答由提问者推荐
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
展开全部
(1)解:
原式=a²/b²÷4a⁴/25b²×a/5b
=a²/b²×25b²/4a⁴×a/5b
=5/4ab
(2)解:
原式=(x²+1)/(x²-1)-(x-2)/(x-1)×[x/(x-2)]
=(x²+1)/(x²-1)-x/(x-1)
=(x²+1)/(x-1)(x+1)-x(x+1)/(x-1)(x+1)
=-1/(x+1)
(3)解: 2/(x²-4)-1/(x+2)=0
2/(x+2)(x-2)-1/(x+2)=0
2-(x-2)=0
x=4
经检验得,x=4是原方程的解.
原式=a²/b²÷4a⁴/25b²×a/5b
=a²/b²×25b²/4a⁴×a/5b
=5/4ab
(2)解:
原式=(x²+1)/(x²-1)-(x-2)/(x-1)×[x/(x-2)]
=(x²+1)/(x²-1)-x/(x-1)
=(x²+1)/(x-1)(x+1)-x(x+1)/(x-1)(x+1)
=-1/(x+1)
(3)解: 2/(x²-4)-1/(x+2)=0
2/(x+2)(x-2)-1/(x+2)=0
2-(x-2)=0
x=4
经检验得,x=4是原方程的解.
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
2013-05-18 · 知道合伙人教育行家
wangpanyong110
知道合伙人教育行家
采纳数:35719
获赞数:363481
毕业于河南大学地理专业,学士学位;从教23年,读过地理专著和教育学专著,现任中学教师。
向TA提问 私信TA
关注
![]()
展开全部
解:(1)(-a/b)²÷(2a²/5b)²×a/5b
=a2/b2÷4a4/25b2×a/5b
=a2/b2×25b2/4a4×a/5b
=5/4ab
(2)(x²+1)/(x²-1)-(x-2)/(x-1)÷(x-2)/x
=(x²+1)/(x²-1)-(x-2)/(x-1)×[x/(x-2)]
=(x²+1)/(x²-1)-x/(x-1)
=(x²+1)/(x-1)(x+1)-x(x+1)/(x-1)(x+1)
=-1/(x+1)
(3)2/(x²-4)-1/(x+2)=0.
2/(x²-4)=1/(x+2)
方程两边同乘以(x²-4)得:
x-2=2
所以x=4
检验:x=4是原方程的解
=a2/b2÷4a4/25b2×a/5b
=a2/b2×25b2/4a4×a/5b
=5/4ab
(2)(x²+1)/(x²-1)-(x-2)/(x-1)÷(x-2)/x
=(x²+1)/(x²-1)-(x-2)/(x-1)×[x/(x-2)]
=(x²+1)/(x²-1)-x/(x-1)
=(x²+1)/(x-1)(x+1)-x(x+1)/(x-1)(x+1)
=-1/(x+1)
(3)2/(x²-4)-1/(x+2)=0.
2/(x²-4)=1/(x+2)
方程两边同乘以(x²-4)得:
x-2=2
所以x=4
检验:x=4是原方程的解
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
展开全部
(1):(-a/b)²÷(2a²/5b)²×a/5b=5/4ab
(2):(x²+1)/(x²-1)-(x-2)/(x-1)÷(x-2)/x=-1/x+1
(3):2/(x²-4)-1/(x+2)=0 x=4
(2):(x²+1)/(x²-1)-(x-2)/(x-1)÷(x-2)/x=-1/x+1
(3):2/(x²-4)-1/(x+2)=0 x=4
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
展开全部
(1)5/4ab
(2) 0
(3)x=4
(2) 0
(3)x=4
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
展开全部
(1)5/4ab
(2)-1/x+1
(3)x=4
(2)-1/x+1
(3)x=4
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
更多回答(6)
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
