证明:∵AB=BC=AC∴等边△ABC∴∠BAC=∠ABC=∠ACB=60∵AE=CD∴△ABE≌△CAD (SAS)∴∠ABE=∠CAD∴∠BPD=∠ABE+∠BAD=∠CAD+∠BAD=∠BAC=60∵BQ⊥AD∴BP=2PQ
