lm giúp e vs ạ

Áp dụng BĐT AM-GM ta có:

\(\dfrac{a^2}{a+2b^2}+\dfrac{a+2b^2}{9}\ge2\sqrt{\dfrac{a^2}{a+2b^2}\cdot\dfrac{a+2b^2}{9}}=\dfrac{2a}{3}\)

Tương tự cho 2 BĐT còn lại rồi cộng theo vế:

\(VT+\dfrac{a+b+c+2\left(a^2+b^2+c^2\right)}{9}\ge\dfrac{2}{3}\left(a+b+c\right)\)

\(\Leftrightarrow VT+\dfrac{3+2\cdot\dfrac{\left(a+b+c\right)^2}{3}}{9}\ge\dfrac{2}{3}\cdot3\)

\(\Leftrightarrow VT+1\ge2\Leftrightarrow VT\ge1\)

\("="\Leftrightarrow a=b=c=1\)

WLOG \(a\ge b \ge c\)

Chebyshev: \(\left(a+b+c\right)\left(a^3+b^3+c^3\right)\le3\left(a^4+b^4+c^4\right)\)

\(\Rightarrow a^3+b^3+c^3\le a^4+b^4+c^4\)

Cauchy-Schwarz: \(VT=\dfrac{a^4}{a^3+2a^2b^2}+\dfrac{b^4}{b^3+2b^2c^2}+\dfrac{c^4}{c^3+2a^2c^2}\)

\(\ge\dfrac{\left(a^2+b^2+c^2\right)^2}{a^3+b^3+c^3+2\left(a^2b^2+b^2c^2+c^2a^2\right)}\)

\(\ge\dfrac{\left(a^2+b^2+c^2\right)^2}{a^4+b^4+c^4+2\left(a^2b^2+b^2c^2+c^2a^2\right)}\)

\(=\dfrac{\left(a^2+b^2+c^2\right)^2}{\left(a^2+b^2+c^2\right)^2}=1=VP\)

Lời giải:

Áp dụng BĐT Cauchy-Schwarz:

\(\text{VT}=\frac{\left ( \frac{a}{bc} \right )^2}{\frac{1}{c}}+\frac{\left ( \frac{b}{ca} \right )^2}{\frac{1}{a}}+\frac{\left ( \frac{c}{ab} \right )^2}{\frac{1}{b}}\geq \frac{\left ( \frac{a}{bc}+\frac{b}{ac}+\frac{c}{ab} \right )^2}{\frac{1}{a}+\frac{1}{b}+\frac{1}{c}}\)

\(\Leftrightarrow \text{VT}\geq \frac{\left ( \frac{a^2+b^2+c^2}{abc} \right )^2}{\frac{1}{a}+\frac{1}{b}+\frac{1}{c}}\)

Theo hệ quả của BĐT AM-GM thì:

\(a^2+b^2+c^2\geq ab+bc+ac\)

\(\Rightarrow \text{VT}\geq \frac{\left ( \frac{ab+bc+ac}{abc} \right )^2}{\frac{1}{a}+\frac{1}{b}+\frac{1}{c}}=\frac{\left ( \frac{1}{a}+\frac{1}{b}+\frac{1}{c} \right )^2}{\frac{1}{a}+\frac{1}{b}+\frac{1}{c}}=\frac{1}{a}+\frac{1}{b}+\frac{1}{c}\)

Ta có đpcm.

Dấu bằng xảy ra khi \(a=b=c\)

Do \(a+b+c=1\) nên Bất đẳng thức trên tương đương:
\(\dfrac{a}{1+a}+\dfrac{b}{1+b}+\dfrac{c}{1+c}\le\dfrac{3}{4}\)

\(\Leftrightarrow\left(1-\dfrac{1}{1+a}\right)+\left(1-\dfrac{1}{1+b}\right)+\left(1-\dfrac{1}{1+c}\right)\le\dfrac{3}{4}\)

\(\Leftrightarrow3-\left(\dfrac{1}{1+a}+\dfrac{1}{1+b}+\dfrac{1}{1+c}\right)\le\dfrac{3}{4}\)

Áp dụng BĐT cauchy-schwarz engel với a;b;c>0 ta có:

\(3-\left(\dfrac{1}{1+a}+\dfrac{1}{1+b}+\dfrac{1}{1+c}\right)\le3-\dfrac{\left(1+1+1\right)^2}{1+a+1+b+1+c}=3-\dfrac{9}{4}=\dfrac{3}{4}\)

Ta có:

\(\dfrac{a}{2a+b+c}+\dfrac{b}{a+2b+c}+\dfrac{c}{a+b+2c}=\dfrac{a}{\left(a+b\right)+\left(a+c\right)}+\dfrac{b}{\left(a+b\right)+\left(b+c\right)}+\dfrac{c}{\left(a+c\right)+\left(b+c\right)}=\dfrac{a}{4}.\dfrac{4}{\left(a+b\right)+\left(a+c\right)}+\dfrac{b}{4}.\dfrac{4}{\left(a+b\right)+\left(b+c\right)}+\dfrac{c}{4}.\dfrac{4}{\left(a+c\right)+\left(b+c\right)}=\dfrac{a}{4}.\dfrac{\left(1+1\right)^2}{\left(a+b\right)+\left(a+c\right)}+\dfrac{b}{4}.\dfrac{\left(1+1\right)^2}{\left(a+b\right)+\left(b+c\right)}+\dfrac{c}{4}.\dfrac{\left(1+1\right)^2}{\left(a+c\right)+\left(b+c\right)}\)Áp dụng BĐT Cauchy - Schwarz:

\(VT\le\dfrac{a}{4}.\left(\dfrac{1}{a+b}+\dfrac{1}{a+c}\right)+\dfrac{b}{4}\left(\dfrac{1}{a+b}+\dfrac{1}{b+c}\right)+\dfrac{c}{4}\left(\dfrac{1}{a+c}+\dfrac{1}{b+c}\right)=\dfrac{1}{4}\left(\dfrac{a}{a+b}+\dfrac{a}{a+c}+\dfrac{b}{a+b}+\dfrac{b}{b+c}+\dfrac{c}{a+c}+\dfrac{c}{b+c}\right)=\dfrac{1}{4}.3=\dfrac{3}{4}\)\("="\Leftrightarrow a=b=c=\dfrac{1}{3}\)

Áp dụngk BĐt cô-si, ta có 

\(\frac{a^2}{b^2c}+\frac{b^2}{c^2a}+\frac{1}{a}\ge3.\frac{1}{c}\)

Tương tự , rồi cộng vào, ta có 

\(2A+\frac{1}{a}+\frac{1}{b}+\frac{1}{c}\ge3\left(\frac{1}{a}+\frac{1}{b}+\frac{1}{c}\right)\Rightarrow A\ge\frac{1}{a}+\frac{1}{b}+\frac{1}{c}\left(ĐPCM\right)\)

^_^ 

\(P=\dfrac{bc}{\dfrac{a^2bc}{c}+\dfrac{a^2bc}{b}}+\dfrac{ca}{\dfrac{b^2ac}{a}+\dfrac{b^2ac}{c}}+\dfrac{ab}{\dfrac{c^2ab}{b}+\dfrac{c^2ab}{a}}=\dfrac{\left(bc\right)^2}{a^2b^2c+a^2bc^2}+\dfrac{\left(ca\right)^2}{b^2a^2c+b^2ac^2}+\dfrac{\left(ab\right)^2}{c^2a^2b+c^2ab^2}=\dfrac{\left(bc\right)^2}{ab+ac}+\dfrac{\left(ca\right)^2}{ba+bc}+\dfrac{\left(ab\right)^2}{ca+cb}\ge\dfrac{\left(ab+bc+ca\right)^2}{2\left(ab+bc+ca\right)}=\dfrac{ab+bc+ca}{2}\ge\dfrac{3\sqrt[3]{\left(abc\right)^2}}{2}=\dfrac{3}{2}\)

Dấu "=" xảy ra <=> a = b = c = 1

3 phân số bé hơn hoặc bằng có thể giait hích ko

Nhức nhối mãi bài này vì nó làm lag hết máy

Giải

Đặt \(x=\dfrac{b+c}{a};y=\dfrac{c+a}{b};z=\dfrac{a+b}{c}\)

Ta phải chứng minh \(Σ\dfrac{\left(x+2\right)^2}{x^2+2}\le8\)

\(\LeftrightarrowΣ\dfrac{2x+1}{x^2+2}\le\dfrac{5}{2}\LeftrightarrowΣ\dfrac{\left(x-1\right)^2}{x^2+2}\ge\dfrac{1}{2}\)

Lại theo BĐT Cauchy-Schwarz ta có:

\(Σ\dfrac{\left(x-1\right)^2}{x^2+2}\ge\dfrac{\left(x+y+z-3\right)^2}{x^2+y^2+z^2+6}\)

Ta còn phải chứng minh

\(2\left(x^2+y^2+z^2+2xy+2yz+2xz-6x-6y-6z+9\right)\)\(\ge x^2+y^2+z^2+6\)

\(\Leftrightarrow x^2+y^2+z^2+4\left(xy+yz+xz\right)-12\left(x+y+z\right)+12\ge0\)

Bây giờ có \(xy+yz+xz\ge3\sqrt[3]{x^2y^2z^2}\ge12\left(xyz\ge8\right)\)

Còn phải chứng minh \(\left(x+y+z\right)^2+24-12\left(x+y+z\right)+12\ge0\)

\(\Leftrightarrow\left(x+y+z-6\right)^2\ge0\) (luôn đúng)

Bởi vì BĐT là thuần nhất, ta có thể chuẩn hóa \(a+b+c=3\). Khi đó

\(\dfrac{\left(2a+b+c\right)^2}{2a^2+\left(b+c\right)^2}=\dfrac{a^2+6a+9}{3a^2-6a+9}=\dfrac{1}{3}\left(1+2\cdot\dfrac{4a+3}{2+\left(a-1\right)^2}\right)\)

\(\le\dfrac{1}{3}\left(1+2\cdot\dfrac{4a+3}{2}\right)=\dfrac{4a+4}{3}\)

Tương tự ta cho 2 BĐT còn lại ta cũng có:

\(\dfrac{\left(2b+c+a\right)^2}{2b^2+\left(a+c\right)^2}\ge\dfrac{4b+4}{3};\dfrac{\left(2c+b+a\right)^2}{2c^2+\left(a+b\right)^2}\ge\dfrac{4c+4}{3}\)

Cộng theo vế 3 BĐT trên ta có:

\(Σ\dfrac{\left(2a+b+c\right)^2}{2a^2+\left(b+c\right)^2}\geΣ\left(4a+4\right)=8\)