Giải:

Ta có:

\(P=\dfrac{xy}{z}+\dfrac{yz}{x}+\dfrac{zx}{y}\)

\(\Leftrightarrow P=\dfrac{1}{2}\left[\left(\dfrac{xy}{z}+\dfrac{yz}{x}\right)+\left(\dfrac{yz}{x}+\dfrac{zx}{y}\right)+\left(\dfrac{zx}{y}+\dfrac{xy}{z}\right)\right]\)

Áp dụng BĐT AM-GM, có:

\(P=\dfrac{1}{2}\left[\left(\dfrac{xy}{z}+\dfrac{yz}{x}\right)+\left(\dfrac{yz}{x}+\dfrac{zx}{y}\right)+\left(\dfrac{zx}{y}+\dfrac{xy}{z}\right)\right]\ge\dfrac{1}{2}.\left(2\sqrt{\dfrac{xy}{z}.\dfrac{yz}{x}}+2\sqrt{\dfrac{yz}{x}.\dfrac{zx}{y}}+2\sqrt{\dfrac{zx}{y}.\dfrac{xy}{z}}\right)\)

\(\Leftrightarrow P\ge\sqrt{\dfrac{xy}{z}.\dfrac{yz}{x}}+\sqrt{\dfrac{yz}{x}.\dfrac{zx}{y}}+\sqrt{\dfrac{zx}{y}.\dfrac{xy}{z}}\)

\(\Leftrightarrow P\ge x+y+z\)

\(\Leftrightarrow P\ge2019\)

\(\Leftrightarrow P_{Min}=2019\)

\("="\Leftrightarrow x=y=z=\dfrac{2019}{3}\)

Vậy ...

Bài 1:
Vì $x+y+z=1$ nên:

\(Q=\frac{x}{x+\sqrt{x(x+y+z)+yz}}+\frac{y}{y+\sqrt{y(x+y+z)+xz}}+\frac{z}{z+\sqrt{z(x+y+z)+xy}}\)

\(Q=\frac{x}{x+\sqrt{(x+y)(x+z)}}+\frac{y}{y+\sqrt{(y+z)(y+x)}}+\frac{z}{z+\sqrt{(z+x)(z+y)}}\)

Áp dụng BĐT Bunhiacopxky:

\(\sqrt{(x+y)(x+z)}=\sqrt{(x+y)(z+x)}\geq \sqrt{(\sqrt{xz}+\sqrt{xy})^2}=\sqrt{xz}+\sqrt{xy}\)

\(\Rightarrow \frac{x}{x+\sqrt{(x+y)(x+z)}}\leq \frac{x}{x+\sqrt{xy}+\sqrt{xz}}=\frac{\sqrt{x}}{\sqrt{x}+\sqrt{y}+\sqrt{z}}\)

Hoàn toàn tương tự với các phân thức còn lại và cộng theo vế suy ra:

\(Q\leq \frac{\sqrt{x}}{\sqrt{x}+\sqrt{y}+\sqrt{z}}+ \frac{\sqrt{y}}{\sqrt{x}+\sqrt{y}+\sqrt{z}}+ \frac{\sqrt{z}}{\sqrt{x}+\sqrt{y}+\sqrt{z}}=1\)

Vậy $Q$ max bằng $1$

Dấu bằng xảy ra khi $x=y=z=\frac{1}{3}$

Bài 2:
Vì $x+y+z=1$ nên:

\(\text{VT}=\frac{1-x^2}{x(x+y+z)+yz}+\frac{1-y^2}{y(x+y+z)+xz}+\frac{1-z^2}{z(x+y+z)+xy}\)

\(\text{VT}=\frac{(x+y+z)^2-x^2}{(x+y)(x+z)}+\frac{(x+y+z)^2-y^2}{(y+z)(y+x)}+\frac{(x+y+z)^2-z^2}{(z+x)(z+y)}\)

\(\text{VT}=\frac{(y+z)[(x+y)+(x+z)]}{(x+y)(x+z)}+\frac{(x+z)[(y+z)+(y+x)]}{(y+z)(y+x)}+\frac{(x+y)[(z+x)+(z+y)]}{(z+x)(z+y)}\)

Áp dụng BĐT AM-GM:
\(\text{VT}\geq \frac{2(y+z)\sqrt{(x+y)(x+z)}}{(x+y)(x+z)}+\frac{2(x+z)\sqrt{(y+z)(y+x)}}{(y+z)(y+x)}+\frac{2(x+y)\sqrt{(z+x)(z+y)}}{(z+x)(z+y)}\)

\(\Leftrightarrow \text{VT}\geq 2\underbrace{\left(\frac{y+z}{\sqrt{(x+y)(x+z)}}+\frac{x+z}{\sqrt{(y+z)(y+x)}}+\frac{x+y}{\sqrt{(z+x)(z+y)}}\right)}_{M}\)

Tiếp tục AM-GM cho 3 số trong ngoặc lớn, suy ra \(M\geq 3\)

Do đó: \(\text{VT}\geq 2.3=6\) (đpcm)

Dấu bằng xảy ra khi $3x=3y=3z=1$

Các CTV , các bn giỏi toán mau giúp mình với

bn đâu thể cho GP đc

\(P=\frac{x}{y+z}+\frac{y}{x+z}+\frac{z}{x+y}\)

\(P=\frac{x^2}{xy+xz}+\frac{y^2}{xy+yz}+\frac{z^2}{xz+yz}\)

Áp dụng bất đẳng thức Cauchy - Schwarz dạng phân thức 

\(\Rightarrow\frac{x^2}{xy+xz}+\frac{y^2}{xy+yz}+\frac{z^2}{xz+yz}\ge\frac{\left(x+y+z\right)^2}{2\left(xy+yz+xz\right)}\left(1\right)\)

Theo hệ quả của bất đẳng thức Cauchy 

\(\Rightarrow\left(x+y+z\right)^2\ge3\left(xy+yz+xz\right)\)

\(\Rightarrow\frac{\left(x+y+z\right)^2}{2\left(xy+yz+xz\right)}\ge\frac{3\left(xy+yz+xz\right)}{2\left(xy+yz+xz\right)}=\frac{3}{2}\)

Từ (1) và (2) 

\(\Rightarrow\frac{x^2}{xy+xz}+\frac{y^2}{xy+zy}+\frac{z^2}{xz+yz}\ge\frac{3}{2}\)

\(\Leftrightarrow\frac{x}{y+z}+\frac{y}{x+z}+\frac{z}{x+y}\ge\frac{3}{2}\)

\(\Leftrightarrow P\ge\frac{3}{2}\)

Vậy \(P_{min}=\frac{3}{2}\)

Dấu " = " xảy ra khi x = y= z 

Áp dụng BĐT Netbitt ta có Vì x,y,z >0 nên 

\(\frac{x}{y+z}+\frac{y}{x+z}+\frac{z}{x+y}\ge\frac{3}{2}\)

Dấu ''='' xảy ra khi x = y = z > 0

Ta có :

+) \(\dfrac{a}{x}+\dfrac{b}{y}+\dfrac{c}{z}=0\)

\(\Leftrightarrow\dfrac{ayz+bxz+cxy}{xyz}=0\)

\(\Leftrightarrow ayz+bxz+cxy=0\)

+) \(\dfrac{x}{a}+\dfrac{y}{b}+\dfrac{z}{c}=1\)

\(\Leftrightarrow\left(\dfrac{x}{a}+\dfrac{y}{b}+\dfrac{z}{c}\right)^2=1\)

\(\Leftrightarrow\dfrac{x^2}{a^2}+\dfrac{y^2}{b^2}+\dfrac{z^2}{c^2}+2\left(\dfrac{xy}{ab}+\dfrac{yz}{bc}+\dfrac{xz}{zc}\right)=1\)

\(\Leftrightarrow\dfrac{x^2}{a^2}+\dfrac{y^2}{b^2}+\dfrac{z^2}{c^2}+2\left(\dfrac{ayz+bxz+cxy}{abc}\right)=1\)

\(\Leftrightarrow\dfrac{x^2}{a^2}+\dfrac{y^2}{b^2}+\dfrac{z^2}{c^2}=1\left(đpcm\right)\)

Phần rút gọn của bn hình như sai rồi kìa

1.VT= \(\dfrac{x}{z}+\dfrac{y}{z}+\dfrac{y}{x}+\dfrac{z}{x}+\dfrac{z}{y}+\dfrac{x}{y}=\left(\dfrac{x}{y}+\dfrac{y}{x}\right)+\left(\dfrac{x}{z}+\dfrac{z}{x}\right)+\left(\dfrac{y}{z}+\dfrac{z}{y}\right)\)

Áp dụng BĐT Cô-si cho 2 số dương, ta có:

\(\dfrac{x}{y}+\dfrac{y}{x}\)≥ 2\(\sqrt{\dfrac{x}{y}.\dfrac{y}{x}}\)=2; tương tự \(\dfrac{x}{z}+\dfrac{z}{x}\)≥2; \(\dfrac{y}{z}+\dfrac{z}{y}\)≥2.

Cộng 3 BĐT trên, ta được đpcm.

2.Đặt b+c-a= x, a+c-b= y, a+b-c= z. Khi đó x,y,z>0.

2a= y+z; 2b= x+z; 2c= x+y. Khi đó bđt cần chứng minh trở thành:

\(\dfrac{x+y}{z}+\dfrac{y+z}{x}+\dfrac{z+x}{y}\)≥6.

Theo bài 1 bđt luôn đúng

1,

\(x^2+y^2+y^2=14\)

\(\Rightarrow\left(x+y+z\right)^2-2xy-2yz-2zx=14\)

\(\Rightarrow-2\left(xy+yz+zx\right)=14\)

\(\Rightarrow xy+yz+zx=-7\)

\(\Rightarrow\left(xy+yz+zx\right)^2=49\)

\(\Leftrightarrow x^2y^2+y^2z^2+z^2x^2+2x^2yz+2xy^2z+2xyz^2=49\)

\(\Leftrightarrow x^2y^2+y^2z^2+z^2x^2+2xyz\left(x+y+z\right)=49\)

\(\Leftrightarrow x^2y^2+y^2z^2+z^2x^2=49\)

Ta có: \(x^4+y^4+z^4\)

\(=\left(x^2+y^2+z^2\right)^2-2x^2y^2-2y^2z^2-2z^2x^2\)

\(=14^2-2\left(x^2y^2+y^2z^2+z^2x^2\right)\)

\(=14^2-2.49\)

\(=196-98\)

\(=98\)