問題提出

如圖①,已知直線l與線段AB平行,試只用直尺作出AB的中點(diǎn).

初步探索

如圖②,在直線l的上方取一個(gè)點(diǎn)E,連接EA、EB,分別與l交于點(diǎn)MN,連接MB、NA,交于點(diǎn)D,再連接ED并延長交AB于點(diǎn)C,則C就是線段AB 的中點(diǎn).

推理驗(yàn)證

利用圖形相似的知識(shí),我們可以推理驗(yàn)證ACCB

(1)若線段a、bc、d長度均不為0,則由下列比例式中,一定可以得出bd的是()

A.

B.

C.

D.

(2)由MNAB,可以推出△EFN∽△ECB,△EMN∽△EAB,△MND∽△BAD

FND∽△CAD

     所以,有,

         所以,ACCB

拓展研究

如圖③,△ABC中,DBC的中點(diǎn),點(diǎn)PAB上.

(3)在圖③中只用直尺作直線lBC

(4)求證:lBC

 



解:(1)B;········································································································· 1分

(2),;·························································································· 3分

(3)如圖①,畫圖正確;················································································· 6分

(4)如圖②,過點(diǎn)QMNBC,交AB、AC分別于點(diǎn)M、N

MNBC,

∴△AMQ∽△ABD,△AQN∽△ADC,

,

.···················································································· 7分

∵點(diǎn)DBC的中點(diǎn),

BDCD,

MQNQ

MNBC,

∴△PMQ∽△PBC,△EQN∽△EBC

,,     ∴,

,······················································································· 8分

又∵∠PQE=∠CQB,

∴△PQE∽△CQB,················································································· 9分

∴∠EPQ=∠BCQ,

PEBC,

lBC.······························································································ 10分

 


                                                     

                                                                                                                   


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