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如图,△ABC中,点O是边AC上一个动点,过O作直线MN∥BC.设MN交∠ACB的平分线于点E,交∠ACB的外角平分线于点F.(1)求证:OE=OF;(2)若CE=8,CF=6,求OC的长;(3)当点O在边AC上运动到什么
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如图,△ABC中,点O是边AC上一个动点,过O作直线MN∥BC.设MN交∠ACB的平分线于点E,交∠ACB的外角平分线于点F.(1)求证:OE=OF;
(2)若CE=8,CF=6,求OC的长;
(3)当点O在边AC上运动到什么位置时,四边形AECF是矩形?并说明理由.
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答案和解析
:
(1)证明:∵MN交∠ACB的平分线于点E,交∠ACB的外角平分线于点F,
∴∠2=∠5,∠4=∠6,
∵MN∥BC,
∴∠1=∠5,∠3=∠6,
∴∠1=∠2,∠3=∠4,
∴EO=CO,FO=CO,
∴OE=OF;
(2)∵∠2=∠5,∠4=∠6,
∴∠2+∠4=∠5+∠6=90°,
∵CE=8,CF=6,
∴EF=
=10,
∴OC=
EF=5;
(3)答:当点O在边AC上运动到AC中点时,四边形AECF是矩形.
证明:当O为AC的中点时,AO=CO,
∵EO=FO,
∴四边形AECF是平行四边形,
∵∠ECF=90°,
∴平行四边形AECF是矩形.
(1)证明:∵MN交∠ACB的平分线于点E,交∠ACB的外角平分线于点F,∴∠2=∠5,∠4=∠6,
∵MN∥BC,
∴∠1=∠5,∠3=∠6,
∴∠1=∠2,∠3=∠4,
∴EO=CO,FO=CO,
∴OE=OF;
(2)∵∠2=∠5,∠4=∠6,
∴∠2+∠4=∠5+∠6=90°,
∵CE=8,CF=6,
∴EF=
| 82+62 |
∴OC=
| 1 |
| 2 |
(3)答:当点O在边AC上运动到AC中点时,四边形AECF是矩形.
证明:当O为AC的中点时,AO=CO,
∵EO=FO,
∴四边形AECF是平行四边形,
∵∠ECF=90°,
∴平行四边形AECF是矩形.
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