42分之1+2又56分之1+3又72分之1+4又90分之1
解,得:
(1/42)+(113/56)+(217/72)+(361/90)
==[(1/6)-(1/7)]+[2+(1/56)]+[3+(1/72)]+[4+(1/90)]
==[(1/6)-(1/7)]+2+[(1/7)-(1/8)]+3+[(1/8)-(1/9)]+4+[(1/9)-(1/10)]
==(1/6)-(1/10)+9
==(1/15)+9
==9又15份之1
1/42+2又1/56+3又1/72+4又1/90
=﹙4/168+2又3/168 ﹚+﹙3又5/360+4又4/360﹚
=2又1/24+7又1/40
=2又5/120+7又3/120
=9又1/15,
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