【高考调研】2015-2016学年高中数学2.2.1对数与对数运算(第3课时)课时作业新人教A版必修11.log49343等于()A.7B.2C.D.答案D解析log49343===.2.log29×log34=()A.B.C.2D.4答案D解析log29×log34=×=×=4.3.=()A.B.C.1D.2答案A解析原式===,故选A.4.log2353可以化简为()A.log25B.log52C.log85D.log2125答案A5.若log23·log3m=,则m=()A.2B.C.4D.1答案B解析∵log23·log3m=log2m=,∴m=2=,故选B.6.若f(ex)=x,则f(5)等于()A.log5eB.ln5C.e5D.5e答案B7.已知lg2=a,lg3=b,则log36=()A.B.C.D.答案B8.设a=log32,那么log38-2log36用a表示为()A.a-2B.5a-2C.3a-(1+a)2D.3a-a2-1答案A解析原式=3log32-2(1+log32)=a-2.9.+log3=________.答案1解析原式=+log33=+=.10.=________.答案230411.若a>0,a=,则loga=________.答案312.若4a=25b=10,则+=________.答案213.+log94=________.答案114.若logab·logbc·logc3=2,则a的值为________.答案15.计算下列各式的值.(1)(log32+log92)(log43+log83);(2)log2732·log6427+log92·log4.解析(1)原式=(log32+log32)×(log23+log23)=log32×log23=.(2)原式=log32×log23+log32×log23=+log32×log23=+=.►重点班·选做题16.已知log142=a,用a表示log7.解析方法一:∵log142=a,∴log214=.∴1+log27=.∴log27=-1.∴log27==.∴log7=2log27=2(-1)=.方法二:log142===a,∴2=a(log7+2),即log7=.方法三:log7===2log27=2(log214-log22)=2(-1)=.17.已知2x=3,log4=y,求x+2y的值.解析∵x=log23,y=(log28-log23),∴x+2y=log23+3-log23=3.1.若2.5x=1000,0.25y=1000,则-=()A.B.3C.-D.-3答案A解析∵x=log2.51000,y=log0.251000,∴=log10002.5,=log10000.25.∴-=log10002.5-log10000.25=log100010=,故选A.2.log43·log=________.答案-解析原式=log43·(-log332)=-×log432=2-×log25=-×=-.3.lg9=a,10b=5,用a,b表示log3645为________.答案解析由已知b=lg5,则log3645=====.4.已知log62=p,log65=q,则lg5=________.(用p,q表示)答案解析方法一:lg5===.方法二:⇒⇒lg5=.5.计算:(log2125+log425+log85)(log52+log254+log1258).解析方法一:原式=(log253++)(log52++)=(3log25++)(log52++)=(3+1+)log25·(3log52)=13log25·=13.方法二:原式=(++)(++)=(++)(++)=()(3)=13.6.已知lg=a,lg=b,用a,b表示lg2,lg7.解析∵lg=a,∴3lg2-lg7=a.①∵lg=b,∴2-lg2-2lg7=b.②由①②可得lg2=,lg7=.3
