(本小題滿分12分)
已知四棱錐的三視圖如圖所示,為正三角形.
(Ⅰ)在平面中作一條與底面平行的直線,并說明理由;
(Ⅱ)求證:平面;
(Ⅲ)求三棱錐的高.
(Ⅰ)分別取中點,連結(jié),則即為所求,下證之:·········· 1分
∵ 分別為中點,
∴ .················································ 2分
∵ 平面,平面,··· 3分
∴ 平面.··································· 4分
(作法不唯一)
(Ⅱ)見解析;(Ⅲ) .
【解析】(I)在平面PCD內(nèi)作一條與CD平行的直線即可.可以考慮作三角形PCD的中位線.
(II)由于PA垂直AC,所以只須證AC垂直AB即可.可以利用勾股定理進行證明.
(III)求三棱錐的高可以考慮其特殊性,采用換底的方法利用體積法求解是一條比較好的求解方法.本小題可以考慮利用進行求解.
(Ⅰ)分別取中點,連結(jié),則即為所求,下證之:·········· 1分
∵ 分別為中點,
∴ .················································ 2分
∵ 平面,平面,··· 3分
∴ 平面.··································· 4分
(作法不唯一)
(Ⅱ)由三視圖可知,平面,,四邊形為直角梯形.
過點作于,則,.
∴ ,,
∴ ,故.······························································· 6分
∵ 平面,平面,
∴ .···································································································· 7分
∵ ,
∴ 平面.······················································································· 8分
(Ⅲ)∵ 為正三角形,
∴ .
在中,.
∴ ,··································· 10分
(其中為三棱錐的高).
························································································································ 11分
∵ ,
∴ . 12分
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