Từ a < b => 3a < 3b ( vì 3 >0 ) => 3a + 1 < 3b + 1.

Từ a < b => -2a > -2b ( vì -2 <0 ) => -2a + 1 > -2b +1.

1) a³ + b³ + c³ - 3abc

=(a + b)(a² - ab + b²) + c³ - 3abc

=(a + b)(a² - ab + b²) + c(a² - ab + b²) - 2abc - ca² - cb²

=(a + b + c)(a² - ab + b²) - (abc + b²c + bc² + ac² + abc + c²a) + c³ + ac² + bc²

=(a + b = c)(a² - ab + b²) - (a + b + c)(bc + ca) + c²(a + b + c)

=(a + b + c)(a² + b² + c² - ab - bc - ca)

2) \(\left(3a+2b-1\right)\left(a+5\right)-2b\left(a-2\right)=\left(3a+5\right)\left(a-3\right)+2\left(7b-10\right)\left(1\right)\)

\(\Leftrightarrow3a^2+15a+2ab+10b-a-5-2ab+4b=3a^2+14a+15+14b-10\)

\(\Leftrightarrow3a^2+14a+14b-5=3a^2+14a+14b-5\)( đúng)

\(\Rightarrow\left(1\right)\) đúng (đpcm)

1) \(\left(a+b\right)^2\)

\(=\left(a+b\right)\left(a+b\right)\)

\(=a^2+ab+ab+b^2\)

\(=a^2+2ab+b^2\left(dpcm\right)\)

2) \(\left(a-b\right)^3\)

\(=\left(a-b\right)\left(a-b\right)\left(a-b\right)\)

\(=\left(a^2-ab-ab+b^2\right)\left(a-b\right)\)

\(=\left(a^2-2ab+b^2\right)\left(a-b\right)\)

\(=a^3-a^2b-2a^2+2ab^2+ab^2-b^3\)

\(=a^3-3a^2b+3ab^2-b^3\left(dpcm\right)\)

`a)` 

`(a+b)^2`

`=(a+b)(a+b)`

`=a^2+ab+ab+b^2`

`=a^2+2ab+b^2`

`->` ĐPCM

`b)` `(a-b)^3`

`=(a-b)(a-b)(a-b)`

`=(a^2-2ab+b^2)(a-b)`

`=a^3-3a^2b+3ab^2-b^3`

`->` ĐPCM

Đặt \(\hept{\begin{cases}3a+b-c=x\\3b+c-a=y\\3c+a-b=z\end{cases}}\)

Khi đó điều kiện đb tương ứng

\(\left(x+y+z\right)^3=24+x^3+y^3+z^3\)

\(\Leftrightarrow3.\left(x+y\right).\left(x+z\right).\left(x+z\right)=24\)

\(\Rightarrow3.\left(2a+4b\right).\left(2b+4c\right).\left(2c+4a\right)=24\)

\(\Rightarrow\left(a+2b\right).\left(b+2c\right).\left(c+2a\right)=1\)

Do đó ta có đpcm

Chúc bạn học tốt!

Ta có: BĐT phụ sau: \(\frac{1}{a}+\frac{1}{b}+\frac{1}{c}\ge\frac{9}{a+b+c}\)( CM bằng BĐT Shwars nha).Áp dụng ta có:

\(\frac{1}{a+3b+5c}+\frac{1}{b+3c+5a}+\frac{1}{3a+2b+4c}\ge\frac{9}{9a+6b+12c}=\frac{3}{3a+2b+4c}\left(1\right)\)

\(\frac{1}{b+3c+5a}+\frac{1}{c+3a+5b}+\frac{1}{3b+2c+4a}\ge\frac{9}{9b+6c+12a}=\frac{3}{3b+2c+4a}\left(2\right)\)

\(\frac{1}{c+3a+5b}+\frac{1}{a+3b+5c}+\frac{1}{3c+2a+4b}\ge\frac{9}{9c+6a+12b}=\frac{3}{3c+2a+4b}\left(3\right)\)

Cộng (1),(2) và (3) có:

\(2\left(\frac{1}{a+3b+5c}+\frac{1}{b+3c+5c}+\frac{1}{c+3a+5b}\right)+\left(\frac{1}{3a+2b+4c}+\frac{1}{3b+2c+4a}+\frac{1}{3c+2a+4b}\right)\ge3\left(\frac{1}{3a+2b+4c}+\frac{1}{3b+2c+4a}+\frac{1}{3c+2a+4b}\right)\)

\(\Rightarrow2VP\ge2VT\)

\(\RightarrowĐPCM\)