∴△ABE∽△CBF (6分)
S?ABEAB21?()?
S?CBFCB4 ∵S?ABE?4 ∴S?CBF?16 (7分) ∴S阴影部分图形?S矩形ABCD?S?ABE?S?CBF=40-4+16=52 (8)
25.:(1)当t=1秒, S=24 (3分)
(2)①如图1,当0≤t≤2时S=8t?32t?48 (6分) ②如图2,当2<t≤4时, 即S??8t?32 (8分) (3)如图1,当0≤t≤2
2EBBF12?2t4t222,即??,解得t? 又t?满足0≤t≤2,所以当t?时,△EBF∽△FCG(10分)
FCCG8?4t2t333EBBF12?2t4t333② 若即,解得t?又t?满足0≤t≤2,所以当t?时,△EBF∽△GCF(12??GCCF2t8?4t222①
若分)
图1 图2
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