day nhe ban

Ta có:\(\frac{1}{\left(k +1\right)\sqrt{k}}=\frac{\left(k+1\right)-k}{\left(k+1\right)\sqrt{k}}=\frac{\left(\sqrt{k+1}+\sqrt{k}\right)\left(\sqrt{k+1}-\sqrt{k}\right)}{\left(k+1\right)\sqrt{k}}\)

\(< \frac{2\sqrt{k+1}\left(\sqrt{k+1}-\sqrt{k}\right)}{\left(k+1\right)\sqrt{k}}=\frac{2\left(\sqrt{k+1}-\sqrt{k}\right)}{\sqrt{k+1}\sqrt{k}}=\frac{2}{\sqrt{k}}-\frac{2}{\sqrt{k+1}}\)

Cho k=1,2,,,,n rồi cộng vế với vế ta có;

\(\frac{1}{2}+\frac{1}{3\sqrt{2}}+\frac{1}{4\sqrt{3}}+...+\frac{1}{\left(n+1\right)\sqrt{n}}< \left(\frac{2}{\sqrt{1}}-\frac{2}{\sqrt{2}}\right)+\left(\frac{2}{\sqrt{2}}-\frac{2}{\sqrt{3}}\right)+...\)

\(+\left(\frac{2}{\sqrt{n}}-\frac{2}{\sqrt{n+1}}\right)=2-\frac{2}{\sqrt{n+1}}< 2\)

              Vậy bất đẳng thức được chứng minh

Đặt A =\(\frac{3}{5}.\left(\frac{5}{9.14}+\frac{5}{14.19}+...+\frac{5}{\left(5n-1\right).\left(5n+4\right)}\right)\)
= \(\frac{3}{5}.\left(\frac{1}{9}-\frac{1}{14}+\frac{1}{14}-\frac{1}{19}+...+\frac{1}{5n-1}-\frac{1}{5n+4}\right)\)
= \(\frac{3}{5}.\left(\frac{1}{9}-\frac{1}{5n+4}\right)\)
= \(\frac{3}{5}.\frac{1}{9}-\frac{3}{5}.\frac{1}{5n+4}=\frac{1}{15}-\frac{3}{5.\left(5n+4\right)}< \frac{1}{15}\)( ĐPCM )

\(\frac{3}{9.14}+\frac{3}{14.19}+\frac{3}{19.24}+....+\frac{3}{\left(5n+1\right)\left(5n+4\right)}\)

\(=\frac{3}{5}\left(\frac{5}{9.14}+\frac{5}{14.19}+\frac{5}{19.24}+....+\frac{5}{\left(5n+1\right)\left(5n+4\right)}\right)\)

\(=\frac{3}{5}\left(\frac{1}{9}-\frac{1}{14}+\frac{1}{14}-\frac{1}{19}+....+\frac{1}{5n+1}-\frac{1}{5n+4}\right)\)

\(=\frac{3}{5}\left(\frac{1}{9}-\frac{1}{5n+4}\right)\)

\(=\frac{1}{15}-\frac{3}{5\left(5n+4\right)}< \frac{1}{15}\) (đpcm)

Ta có: \(a_n=1+\frac{2^n\left[1.3.5...\left(2n-1\right)\right]}{\left(n+5\right)\left(n+6\right)...\left(2n\right)}\)

\(=1+\frac{2^n\left(2n\right)!}{\left[2.4.6..\left(2n\right)\right]\left[\left(n+5\right)\left(n+6\right)..\left(2n\right)\right]}\)

\(=1+\frac{\left(2n\right)!}{n!\left(n+5\right)\left(n+6\right)...\left(2n\right)}\)

\(=1+\left(n+1\right)\left(n+2\right)\left(n+3\right)\left(n+4\right)\)

mặt khác \(1+\left(n+1\right)\left(n+2\right)\left(n+3\right)\left(n+4\right)=\left(n^2+5n+5\right)^2\)

do đó a_n luôn là SCP

Ta có  : \(\frac{1+x}{2}\ge\sqrt{x}\Rightarrow\left(\frac{1+x}{2}\right)^n\ge\sqrt{x^n}\) (1)

            \(\frac{1+y}{2}\ge\sqrt{y}\Rightarrow\left(\frac{1+y}{2}\right)^n\ge\sqrt{y^n}\)(2)

            \(\frac{1+z}{2}\ge\sqrt{z}\Rightarrow\left(\frac{1+z}{2}\right)^n\ge\sqrt{z^n}\)(3) 

Từ 1,2,3 \(\Rightarrow\left(\frac{1+x}{2}\right)^n+\left(\frac{1+y}{2}\right)^n+\left(\frac{1+z}{2}\right)^n\ge\sqrt{x^n}+\sqrt{y^n}+\sqrt{z^n}\)

Áp dụng BĐT Cauchy cho 3 số ta có : 

\(\sqrt{x^n}+\sqrt{y^n}+\sqrt{z^n}\ge3^3\sqrt{\sqrt{x^n}.\sqrt{y^n}.\sqrt{z^n}}=3\)

\(\Rightarrow\left(\frac{1+x}{2}\right)^n+\left(\frac{1+y}{2}\right)^n+\left(\frac{1+z}{2}\right)^n\ge3\)

Đẳng thức xảy ra <=> x = y = z = 1