1樓:玉杵搗藥
解1:7/31×
bai13+13/31×20
=7×du13/31+13×20/31
=(13/31)(7+20)
=(13/31)×27
=13×27/31
=351/31
解2:(2/11)×(11+44)+(3/5)÷zhi1/25
=(2/11)×55+(3/5)×25
=2×5+3×5
=10+15
=25解3:
(6又dao1/2-3又3/4)÷(13+11又1/5)=(13/2-15/4)÷(13+56/5)=(26/4-15/4)÷(65/5+56/5)=(11/4)÷(121/5)
=(11/4)×(5/121)
=(1/4)×(5/11)
=5/44
解4:3.3×[38+3又1/5÷(1又3/4-0.
15)]=(33/10)×[38+(16/5)÷(7/4-3/20)]=(33/10)×[38+(16/5)÷(35/20-3/20)]=(33/10)×[38+(16/5)÷(8/5)]=(33/10)×[38+(16/5)×(5/8)]=(33/10)×(38+2)
=(33/10)×40
=33×4
=132
2樓:匿名使用者
7/31×
13+13/31×bai20
=13/31×du7+13/31×20
=13/31(7+20)
=351/31
=11又zhi31分之10
2/11×(dao
回11+44)答+3/5÷1/25
=2/11×11+2/11×44+3/5×25=2+8+15
=25(6又1/2-3又3/4)÷(13+11又1/5)=(13/2-15/4)÷(13+56/5)=11/4×5/121
=5/44
3.3×[38+3又1/5÷(1又3/4-0.15)]=3.3×[38+16/5÷(1.75-0.15)]=3.3×[38+16/5×5/3]
=3.3×[38+16/3]
=3.3×130/3
=143
3樓:匿名使用者
7/31×
源13+13/31×20
13*(7/31+20/31)
=13*27/31
=351/31
=11又10/31
2/11×(11+44)+3/5÷1/25=2+8+15
=25(6又1/2-3又3/4)÷(13+11又1/5)=(26/4-15/4)/(121/5)
=11/4*5/121
=5/44
3.3×[38+3又1/5÷(1又3/4-0.15)]=3.3*(38+16/5*5/8)
=3.3*40
=132
四年級遞等式計算題要簡便要簡便要簡便要簡便要簡便要簡便要簡便要簡便要簡便要簡便要簡便
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