Chứng minh rằng giá trị của biểu thức sau không phụ thuộc vào giá trị của góc nhọn \(\alpha\) 

a) A = \(\frac{\cot^2\alpha-\cos^2\alpha}{\cot^2\alpha}-\frac{\sin\alpha.\cos\alpha}{\cot\alpha}\)

b) B = \(\left(\cos\alpha-\sin\alpha\right)^2+\left(\cos\alpha+\sin\alpha\right)^2+\cos^4\alpha-\sin^4\alpha-2\cos^2\alpha\)

c) C = \(\sin^6x+\cos^6x+3\sin^2x.\cos^2x\)

\(M^2=\left(\sqrt{x}+\sqrt{2y}\right)^2=\left(\frac{1}{_{\sqrt{\alpha}}}.\sqrt{\alpha x}+\sqrt{2y}\right)^2< =\left(\frac{1}{\alpha}+1\right)\left(\alpha x+2y\right)\)

\(\Rightarrow M^4\le\left(\frac{1}{\alpha}+1\right)^2\left(\alpha x+2y\right)^2\le\left(\frac{1}{\alpha}+1\right)^2\left(\alpha^2+4\right)\left(x^2+y^2\right)=\left(\frac{1}{\alpha}+1\right)^2\left(\alpha^2+4\right)\)

Dấu bằng xảy ra => \(\hept{\begin{cases}\frac{\alpha x}{\frac{1}{\alpha}}=\frac{2y}{1}\\\frac{\alpha}{x}=\frac{2}{y}\end{cases}}\Rightarrow\hept{\begin{cases}\alpha^2x=2y\\\alpha=\frac{2x}{y}\end{cases}\Rightarrow\hept{\begin{cases}\frac{\alpha^2}{2}=\frac{y}{x}\\\frac{\alpha}{2}=\frac{x}{y}\end{cases}}}\Rightarrow\frac{\alpha^2}{2}=\frac{1}{\frac{\alpha}{2}}\Rightarrow\alpha=\sqrt[3]{4}\)  

Suy ra max = \(\sqrt[4]{\left(\frac{1}{\alpha}+1\right)^2\left(\alpha^2+4\right)}\) với \(\alpha=\sqrt[3]{4}\)

Ta có: \(\sin^2\alpha+\cos^2\alpha=1\). lại có : \(\sin\alpha=\frac{2}{3}\)

=> \(\frac{4}{9}+\cos^2\alpha=1\)

=> \(\cos^2\alpha=\frac{5}{9}\Rightarrow\cos\alpha=\frac{\sqrt{5}}{3}\)

Mà \(\tan\alpha=\frac{\sin\alpha}{\cos\alpha}=\frac{2}{3}:\frac{\sqrt{5}}{3}=\frac{2}{\sqrt{5}}\)

mặt khác: \(\tan\alpha.\cot\alpha=1\Rightarrow\cot\alpha=\frac{\sqrt{5}}{2}\)

Câu 50^**: Cho góc nhọn  tuỳ ý giá trị biểu thức \(\dfrac{tan\alpha}{cot\alpha}+\dfrac{cot\alpha}{tan\alpha}-\dfrac{sin^2\alpha}{cos^2\alpha}\)  bằng              

          A. \(tan^2\alpha\)      ;                   B . \(cot^2\alpha\)   ;         C . 0             ;         D. 1 .