题目内容
(2008?沙坪坝区模拟)解方程:
(1)x÷
=
(2)
x+
x=
(3)12x+7×0.3=14.7.
(1)x÷
| 3 |
| 5 |
| 3 |
| 10 |
(2)
| 1 |
| 2 |
| 2 |
| 3 |
| 5 |
| 6 |
(3)12x+7×0.3=14.7.
分析:根据等式的性质,等式的两边同时加、减相同数,等式仍然成立;等式的两边同时乘或者除以相同的数(0 除外),等式仍然成立;由此求解即可.
解答:解:
(1)x÷
=
,
x÷
×
=
×
x=
;
(2)
x+
x=
,
x=
,
x×
=
×
,
x=
;
(3)12x+7×0.3=14.7,
12x+2.1=14.7,
12x+2.1-2.1=14.7-2.1,
12x=12.6,
12x÷12=12.6÷12,
x=1.05.
(1)x÷
| 3 |
| 5 |
| 3 |
| 10 |
x÷
| 3 |
| 5 |
| 3 |
| 5 |
| 3 |
| 10 |
| 3 |
| 5 |
x=
| 9 |
| 50 |
(2)
| 1 |
| 2 |
| 2 |
| 3 |
| 5 |
| 6 |
| 7 |
| 6 |
| 5 |
| 6 |
| 7 |
| 6 |
| 6 |
| 7 |
| 5 |
| 6 |
| 6 |
| 7 |
x=
| 5 |
| 7 |
(3)12x+7×0.3=14.7,
12x+2.1=14.7,
12x+2.1-2.1=14.7-2.1,
12x=12.6,
12x÷12=12.6÷12,
x=1.05.
点评:此题主要考查利用等式的性质解方程的方法,注意书写格式等号对齐.
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