已知a>0,b>0且a+b=1求证:(1)1/a+1/b≥4(2)√a+1/2+√b+1/2≤2
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aa-2ab+bb≥0==>aa+bb≥2ab
a+b=1=>aa+bb+2ab=1==>aa+bb=1-2ab
1-2ab≥2ab
1≥4ab
1/a+1/b
=(a+b)/ab=1/ab
1/a+1/b≥4
(a+1/2)(b+1/2)=ab+1/2+1/4≤1(第一问结论)
√(a+1/2)(√b+1/2)≤1
(√a+1/2+√b+1/2)^2
=a+1/2+b+1/2+2√(a+1/2)(√b+1/2)
=2+2√(a+1/2)(√b+1/2)≤4
所以√a+1/2+√b+1/2≤2
a+b=1=>aa+bb+2ab=1==>aa+bb=1-2ab
1-2ab≥2ab
1≥4ab
1/a+1/b
=(a+b)/ab=1/ab
1/a+1/b≥4
(a+1/2)(b+1/2)=ab+1/2+1/4≤1(第一问结论)
√(a+1/2)(√b+1/2)≤1
(√a+1/2+√b+1/2)^2
=a+1/2+b+1/2+2√(a+1/2)(√b+1/2)
=2+2√(a+1/2)(√b+1/2)≤4
所以√a+1/2+√b+1/2≤2
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