神马作文网log23乘log32
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[3^(1/2)+1]^2=4+2(3)^(1/2),2+3^(1/2)=[3^(1/2)+1]^2/2,[2+3^(1/2)]^(1/2)=[3^(1/2)+1]/2^(1/2).[3^(1/2)-
log(14)56=[log3(56)]/[log3(14)]=[3log3(2)+log3(7)]/[log3(2)+log3(7)]=[(3/a)+b]/[(1/a)+b]=[ab+3]/[ab+
解题思路:考查对数式的化简解题过程:varSWOC={};SWOC.tip=false;try{SWOCX2.OpenFile("http://dayi.prcedu.com/include/read
原式=(lg9/lg8)/(lg3/lg2)=(2lg3/3lg2)/(lg3/lg2)=2/3
根据函数单调性,(lg23)^x-(lg53)^x是减函数,所以x>-y
∵log32=m,log35=n,∴lg2lg3=m,lg5lg3=1−lg2lg3=n,1-lg2=nlg3,∴lg2=mlg3,∴1-mlg3=nlg3,∴lg3=1m+n,lg5=nlg3=n×
:(log43+log83)(log32+log92)=(lg3lg4+lg3lg8)•(lg2lg3+lg2lg9)=(lg32lg2+lg33lg2)•(lg2lg3+lg22lg3)=3lg3+
(lg5)^2+2lg2+(lg2)^2+log2(3)log3(4)=(lg5+lg2)^2+log2(4)=1+2=3
a=log32
换底公式可得log3=alog2,log7=blog3,因此log7=ablog2.对log4256也运用换底公式可得log4256=log56/log42=log(2×2×2×7)/log(2×3×
a=30.5>30=1,0=log31<b=log32<log33=1,c=cos23π=-cosπ3<0,∴c<b<a.故答案为:c<b<a.
(log23+log89)(log34+log98+log32)=(log827+log89)(log916+log98+log94)=log8243•log9512=lg35lg8×lg83lg32
由log(3)7=a,log(23)=blog(3)7=log(2)7/log(2)3=a,则log(2)7=a*
(log32+log92)•(log43+log83)=(log32+12log32)•(12log23+13log23)=log3232•log2356=32×56=54故答案为:54
(log43+log83)(log32+log92)=(log23/log24+log23/log28)(log32+log32/log39)=(log23/2+log23/3)(log32+log3
P=lg9/lg32=2lg3/5lg2=2lg3/5(lg10-lg5)=2lg3/5(1-lg5)...(1)q=lg5/lg3lg5=qlg3...(2)由(1)得lg3=5p(1-lg5)/2
∵1=log33>a=log32>log31=0,b=log52<log32=a,c=log23>log22=1,∴c>a>b.故答案为:c>a>b.
因为log89=log2^33^2=2/3log23,log32*log23=1那么,log32×log89=2/3
lg3=alg2lg5=blg3lg20=xlg152lg2+lg5=x(lg3+lg5)2lg2+blg3=x(lg3+blg3)2lg2+ablg2=x(alg2+ablg2)2+ab=x(a+a