满足:3ab-2ac=bc
设2^6a=3^3b=6^2c=k则6a=log(2,k)=1/log(k,2).
3b=log(3,k)=1/log(k,3)
2c=log(6,k)=1/log(k,6)=1/[log(k,2)+log(k,3)]=1/[1/6a+1/3b]
即1/2c=1/6a+1/3b得3ab-2ac-bc=0
解此题的关键在于设 ,然后进行指对互化,再进行对数运算变形即可.
满足:3ab-2ac=bc
设2^6a=3^3b=6^2c=k则6a=log(2,k)=1/log(k,2).
3b=log(3,k)=1/log(k,3)
2c=log(6,k)=1/log(k,6)=1/[log(k,2)+log(k,3)]=1/[1/6a+1/3b]
即1/2c=1/6a+1/3b得3ab-2ac-bc=0
解此题的关键在于设 ,然后进行指对互化,再进行对数运算变形即可.