题目内容
递等式计算
(1)102×14-4250-3050
(2)56×102+1125÷75
(3)327-840÷6×47
(4)2184+105×3÷21
(5)
+
+
(6)1-
-
(7)
-
+
.
(1)102×14-4250-3050
(2)56×102+1125÷75
(3)327-840÷6×47
(4)2184+105×3÷21
(5)
| 12 |
| 20 |
| 1 |
| 20 |
| 2 |
| 20 |
(6)1-
| 7 |
| 8 |
| 1 |
| 8 |
(7)
| 12 | ||||
|
| 2 |
| 15 |
| 4 |
| 15 |
分析:(1)先算乘法,再算减法;
(2)(4)先算乘除,再算加法;
(3)先算除法和乘法,再算减法;
(5)(6)(7)属于同分母分数的加减运算,只把分子相加减,分母不变.
(2)(4)先算乘除,再算加法;
(3)先算除法和乘法,再算减法;
(5)(6)(7)属于同分母分数的加减运算,只把分子相加减,分母不变.
解答:解:(1)102×14-4250-3050,
=1428-(4250+3050),
=1428-7300,
=-5872;
(2)56×102+1125÷75,
=5712+15,
=5727;
(3)327-840÷6×47,
=327-140×47,
=327-6580,
=-6253;
(4)2184+105×3÷21,
=2184+315÷21,
=2184+15,
=2199;
(5)
+
+
,
=
,
=
;
(6)1-
-
,
=
,
=0;
(7)
-
+
,
=
,
=
.
=1428-(4250+3050),
=1428-7300,
=-5872;
(2)56×102+1125÷75,
=5712+15,
=5727;
(3)327-840÷6×47,
=327-140×47,
=327-6580,
=-6253;
(4)2184+105×3÷21,
=2184+315÷21,
=2184+15,
=2199;
(5)
| 12 |
| 20 |
| 1 |
| 20 |
| 2 |
| 20 |
=
| 12+1+2 |
| 20 |
=
| 3 |
| 4 |
(6)1-
| 7 |
| 8 |
| 1 |
| 8 |
=
| 8-7-1 |
| 8 |
=0;
(7)
| 12 | ||||
|
| 2 |
| 15 |
| 4 |
| 15 |
=
| 12-2+4 |
| 15 |
=
| 14 |
| 15 |
点评:此题主要考查整数四则混合运算的运算顺序,以及同分母分数的加减法计算.
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