22. 解:(1)同意.如图.设AD与EF交于点M. 由折叠知.∠BAD=∠CAD. ∠AME=∠AMF=90O. ------------------------------1分 ∴ 根据三角形内角和定理得 ∠AEF=∠AFE. ------------------------------------2分 ∴ △AEF是等腰三角形.···················································································· 3分 (2)图⑤中的大小是22.5o.··················································································· 4分 【
查看更多】
题目列表(包括答案和解析)
