第四部分写作第一节Dear Jack,Welcome to our school to study as an exchange studentAs for how to borrow books from the school libraryyou need to have your student ID card and present it to thelibrarian, who can register for you. Then you can go to thebookshelves to look for what you need. You can borrow 2books once and keep them for a week in order that you canhave enough time to finish reading them. If you haventread the book through, you can renew it. You' ll have topay for it if you get the book damaged or lost.hope all this can be of help to you. For morenformation, don,t hesitate to ask meLi Hua

18.解:(1)延长OG交AC于点M因为点O是直角三角形ABC的外心,所以OA=OB=OC,所以点O是AB的中点因为∠AOC=二,所以△AOC是正三角形,所以点G是△AOC的中心,所以M是AC的中点,所以OM⊥ACwG-s.因为PA⊥平面ABC,OMc平面ABC,所以PA⊥OM因为PA⊥平面ABC,OMc平面ABC,所以PA⊥OM因为PA∩AC=A,所以OM⊥平面PAC,而OMc平面OPG,所以平面OPG⊥平面PAC(2)法一:连接BM,PM,即求点B到平面OPM的距离因为 A=V所以二·S△OPMB-OPM33°△ OBM'dP-OBM因为PA⊥平面ABC,所以doBM=PA,9-0--BG所以dB-o=5△opA2SBM在等边△OAC中,OA=1,有OM=√3在△OBM中,oM=OB=1,∠MOB=x,有SM=2 OM.OB. sin∠AMOB=√6由(1)知OM⊥平面PAC,因为PMc平面PAC,所以OM⊥PM在直角△PAM中,PA=2,AM=,有PM所以SopM22√17OM·PM=,所以dB- OPM Sop/17法二:连接BG,AG因为VB-O=pOBG,所以SAOPGB-OPG因为PA⊥平面ABC,所以d=OBG=PACAOBM-_2v172S所以Sopw=OM,PM=y,所以 dg-OPM SoPM法二:连接BG,AC因为VB-O=poBG,所以S△OPdB-0P3△ OBGuP-OBG因为PA⊥平面ABC,所以dOBG=PA,所以dB-OPG=S△oPG△OBGPA 2SSM在等边△OAC中,OA=1,有3O=3.(亦可使用正弦定理C在△OBG中,OG=,OB=1,∠0B=5,有Sm=1 OG. OB. sin ZGO0=y5由(1)知OM⊥平面PAC,因为PMc平面PAC,所以OM⊥PM在直角△PAM中,PA=2,M=1,有P=所以S0%=OG·PM=31,所以am≈25m=27△OPG17

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