设长方形为ABCD
过A做一条与AD所在直线不重合的,在其上连续取AA'=A'A''=A''A'''
连接A'''D
过A‘做A'''D的平行线交AD于E
梯形AECB与三角形CDE即是所求.
证明:
∵ABCD是矩形
∴AB=CD,AD=BC
∵AA'=1/3AA''',A'E∥A'''D
∴AE=1/3AD,ED=2/3AD
SAECB = 1/2(AE+BC)*AB = 1/2(1/3AD+BC)*AB = 1/2(1/3AD+AD)*AB = 2/3AD*AB
S△CDE = 1/2*DE*CD = 1/2*2/3AD*AB = 1/3AD*AB
∴SAECB:S△CDE = (2/3AD*AB):(1/3AD*AB) = 2:1