设函数f(x)=x^2-ax+2lnx,其中a>0
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f(x)=ax-a/x-2lnx,x>0,
f'(x)=a+a/x^2-2/x,
f'(2)=5a/4-1=0,a=4/5.
∴f'(x)=[(4/5)x^2-2x+(4/5)]/x^2=(4/5)(x-2)(x-1/2)/x^2,
1/2
2时f'(x)>0,f(x)是增函数。
(2)f(x)在定义域上是增函数,
∴f'(x)≥0,a+a/x^2≥2/x,
a≥2x/(x^2+1)=2/(x+1/x),
x+1/x≥2,当x=1时取等号,
∴2x/(x^2+1)<=1,
∴a≥1,为所求.
f'(x)=a+a/x^2-2/x,
f'(2)=5a/4-1=0,a=4/5.
∴f'(x)=[(4/5)x^2-2x+(4/5)]/x^2=(4/5)(x-2)(x-1/2)/x^2,
1/2
2时f'(x)>0,f(x)是增函数。
(2)f(x)在定义域上是增函数,
∴f'(x)≥0,a+a/x^2≥2/x,
a≥2x/(x^2+1)=2/(x+1/x),
x+1/x≥2,当x=1时取等号,
∴2x/(x^2+1)<=1,
∴a≥1,为所求.
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