Có: \(1=\sin^2x+\cos^2x\ge2\sin x.\cos x\)\(\Leftrightarrow\)\(\sin x.\cos x\le\frac{1}{2}\)

\(M=\frac{1}{3\left(\frac{1}{\sin x}+\frac{1}{\cos x}\right)+\frac{2}{\sin x.\cos x}}\le\frac{1}{\frac{6}{\sqrt{\sin x.\cos x}}+\frac{2}{\sin x.\cos x}}\le\frac{1}{\frac{6}{\sqrt{\frac{1}{2}}}+\frac{2}{\frac{1}{2}}}=\frac{1}{6\sqrt{2}+4}\)

Dấu "=" xảy ra \(\Leftrightarrow\)\(\hept{\begin{cases}\frac{1}{\sin x}=\frac{1}{\cos x}\\\sin^2x+\cos^2x=1\end{cases}}\Leftrightarrow\sin x=\cos x=\frac{1}{\sqrt{2}}\)\(\Rightarrow\)\(x=45^0\)

Đặt \(t=sinx\). 

Do \(x\in\left(0,\frac{\pi}{2}\right)\)nên \(t\in\left(0,1\right)\).

\(P=\frac{2}{1-t}+\frac{1}{t}\ge\frac{\left(\sqrt{2}+1\right)^2}{1-t+t}=3+2\sqrt{2}\)

Dấu \(=\)khi \(\frac{\sqrt{2}}{1-t}=\frac{1}{t}\Leftrightarrow t=\sqrt{2}-1\)

\(\frac{2cos^2x-\left(cos^2x+sin^2x\right)}{cosx+sinx}=\frac{cos^2x-sin^2x}{cosx+sinx}=\frac{\left(cosx-sinx\right)\left(cosx+sinx\right)}{\left(cosx+sinx\right)}\)

\(=cosx-sinx\)

\(VT=\frac{2\cos^2x-1}{\cos x+\sin x}=\frac{2\cos^2x-\cos^2x-\sin^2x}{\cos x+\sin x}\)\(=\frac{\cos^2x-\sin^2x}{\cos x+\sin x}=\frac{\left(\cos x+\sin x\right)\left(\cos x-\sin x\right)}{\cos x+\sin x}\)

\(=\cos x-\sin x=VP\)

=> đpcm

a) \(cos^4x-sin^4x=\left(cos^2x+sin^2x\right)\left(cos^2x-sin^2x\right)=cos^2x-sin^2x\)

b) \(\frac{1}{1+tanx}+\frac{1}{1+cotx}=\frac{1}{1+tanx}+\frac{tanxcotx}{tanxcotx+cotx}=\frac{1}{1+tanx}+\frac{tanx}{tanx+1}\)

\(=\frac{1+tanx}{1+tanx}=1\)

c) Ta có: \(1+tan^2x=1+\frac{sin^2x}{cos^2x}=\frac{cos^2x+sin^2x}{cos^2x}=\frac{1}{cos^2x}\)

\(\Rightarrow\frac{1}{1+tan^2x}=cos^2x\)

Tương tự \(\frac{1}{1+tan^2y}=cos^2y\)

\(\Rightarrow cos^2x-cos^2y=\frac{1}{1+tan^2x}-\frac{1}{1+tan^2y}\)

\(cos^2x-cos^2y=\left(1-sin^2x\right)-\left(1-sin^2y\right)=sin^2y-sin^2x\)

d) \(\frac{1+sin^2x}{1-sin^2x}=\frac{cos^2x+sin^2x+sin^2x}{cos^2x+sin^2x-sin^2x}=\frac{cos^2x+2sin^2x}{cos^2x}=1+2\left(\frac{sinx}{cosx}\right)^2=1+2tan^2x\)

đặt AB=c, BC=a, AC=c.
để chứng minh bđt trên ta sẽ áp dụng công thức: \(S_{\Delta ABC}=\frac{1}{2}.a.b.sinC=\frac{1}{2}.b.c.sinA=\frac{1}{2}.a.c.sinB\)
ta có: \(\frac{sinA}{sinB+sinC}+\frac{sinB}{sinA+sinC}+\frac{sinC}{sinA+sinB}\)
       \(=\frac{a.b.c.sinA}{a.b.c.sinB+a.b.c.sinC}+\frac{a.b.c.sinB}{a.b.c.sinA+a.b.c.sinC}+\frac{a.b.c.sinC}{a.b.c.sinA+a.b.c.sinB}\)
        ;\(=\frac{2S_{\Delta ABC}.a}{2S_{\Delta ABC}.b+2S_{\Delta ABC}.c}+\frac{2S_{\Delta ABC}.b}{2.S_{\Delta ABC}.c+2.S_{\Delta ABC}.b}+\frac{2S_{\Delta ABC}.c}{2S_{\Delta ABC}.b+2S_{\Delta ABC}.a}\)
         \(=\frac{a}{b+c}+\frac{b}{a+c}+\frac{c}{a+b}\).
Ta có: \(\frac{a}{b+c}>\frac{a}{a+b+c};\frac{b}{a+c}>\frac{b}{a+b+c};\frac{c}{a+b}>\frac{c}{a+b+c}\)
nên \(\frac{a}{b+c}+\frac{b}{a+c}+\frac{c}{a+b}>\frac{a}{a+b+c}+\frac{b}{a+b+c}+\frac{c}{a+b+c}=1.\)
Ta sẽ chứng minh bđt phụ: \(\frac{a}{b+c}< \frac{2a}{a+b+c}\left(1\right)\)
Thật vậy: \(\left(1\right)\Leftrightarrow a^2< a\left(b+c\right)\Leftrightarrow a< b+c\)(đúng vì a,b,c là độ dài 3 cạnh của tam giác).
tương tự: \(\frac{b}{a+c}< \frac{2b}{a+b+c};\frac{c}{a+b}< \frac{2c}{a+b+c}\).
suy ra: \(\frac{a}{b+c}+\frac{b}{a+c}+\frac{c}{a+b}< \frac{2a}{b+c}+\frac{2b}{a+c}+\frac{2c}{a+b}=\frac{2\left(a+b+c\right)}{a+b+c}=2\).
vậy bất đẳng thức đã được chứng minh.
 

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