已知0<a<1,求证1/a+4/(1-a)大于等于9
热心网友
证明:设1-a=b>0,则:a+b=1∴1/a+4/(1-a)=1/a+4/b=(a+b)(1/a+4/b)=1+(b/a)+4+(4a/b)=5+[(b/a)+(4a/b)]≥5+2√[(b/a)(4a/b)]=9∴1/a+4/(1-a)≥9
热心网友
也就是求1/a+4/(1-a)-9=00
热心网友
(1+3a)/a(1-a)令y=(1+3a)/a(1-a)=f(a)ya(1-a)=1+3a-ya^+(y-3)a-1=0判别式(y-3)^-4y=0f(0)=9∴1/a+4/(1-a)≥9
热心网友
令a=(sinα)^2,则1-a=(cosα)^2 (设0<α<π/2)原式=1/(sinα)^2 + 4/(cosα)^2=(cotα)^2+1+4[(tanα)^2+1] =5+[(cotα)^2+4(tanα)^2]≥5+2√[(cotα)^2*4(tanα)^2]=9命题成立,当(cotα)^2=4(tanα)^2,即a=1/3时,取等号注:(cotα)^2+1=1/(sinα)^2 (tanα)^2+1=1/(cosα)^2