đặt \(\sin\alpha=a;\cos\alpha=b\)

khi đó:

\(a+b=\frac{7}{5}\Leftrightarrow a^2+b^2+2ab=\frac{49}{25}\)

\(\Leftrightarrow1+2ab=\frac{49}{25}\Leftrightarrow2ab=\frac{24}{25}\Leftrightarrow ab=\frac{12}{25}\)

ta có

\(\left\{{}\begin{matrix}a+b=\frac{7}{5}\\ab=\frac{12}{25}\end{matrix}\right.\Leftrightarrow\left\{{}\begin{matrix}a=\frac{7}{5}-b\\\left(\frac{7}{5}-b\right)b=\frac{12}{25}\end{matrix}\right.\)\(\Leftrightarrow\left\{{}\begin{matrix}a=\frac{7}{5}-b\\b^2-\frac{7}{5}b+\frac{12}{25}=0\end{matrix}\right.\)

\(\Leftrightarrow\left\{{}\begin{matrix}a=\frac{7}{5}-b\\\left(b-\frac{3}{5}\right)\left(b-\frac{4}{5}\right)=0\end{matrix}\right.\)\(\Leftrightarrow\left\{{}\begin{matrix}a=\frac{7}{5}-b\\\left[{}\begin{matrix}b=\frac{3}{5}\\b=\frac{4}{5}\end{matrix}\right.\end{matrix}\right.\)

\(\Leftrightarrow\left[{}\begin{matrix}\left\{{}\begin{matrix}a=\frac{3}{5}\\b=\frac{4}{5}\end{matrix}\right.\\\left\{{}\begin{matrix}a=\frac{4}{5}\\b=\frac{3}{5}\end{matrix}\right.\end{matrix}\right.\Leftrightarrow\left[{}\begin{matrix}\frac{a}{b}=\frac{3}{4}\\\frac{a}{b}=\frac{4}{3}\end{matrix}\right.\)\(\)

hay tan \(\alpha\approx37^o\)hoặc tan\(\alpha\approx53^o\)

a: Sửa đề: \(A=sin^2a+sin^2a\cdot tan^2a\)

\(=sin^2a\left(1+tan^2a\right)=sin^2a\cdot\dfrac{1}{cos^2a}=tan^2a\)

b: \(=\dfrac{\left(sina+cosa\right)^2}{sina+cosa}-cosa=sina+cosa-cosa=sina\)

c: \(=\dfrac{cosa+cos^2a+sina}{1+cosa}\)

\(1+tan^2a=1+\frac{sin^2a}{cos^2a}=\frac{cos^2a+sin^2a}{cos^2a}=\frac{1}{cos^2a}\)

\(1+cot^2a=1+\frac{cos^2a}{sin^2a}=\frac{sin^2a+cos^2a}{sin^2a}=\frac{1}{sin^2a}\)

\(cot^2a-cos^2a=\frac{cos^2a}{sin^2a}-cos^2a=cos^2a\left(\frac{1}{sin^2a}-1\right)=cos^2a\left(\frac{1-sin^2a}{sin^2a}\right)\)

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

Câu cuối đề bài sai

Lời giải:

a) \(\cot ^2a+1=\left(\frac{\cos a}{\sin a}\right)^2+1=\frac{\cos ^2a+\sin ^2a}{\sin ^2a}=\frac{1}{\sin ^2a}\)

b)

\(\tan ^2a+1=\left(\frac{\sin a}{\cos a}\right)^2+1=\frac{\sin ^2a+\cos ^2a}{\cos ^2a}=\frac{1}{\cos ^2a}\)

c) Đề bài sai.

\(\sin ^4a+\cos ^2a=\sin ^2a.\sin ^2a+\cos ^2a\)

\(=\sin ^2a(1-\cos ^2a)+\cos ^2a\)

\(\sin ^2a+\cos ^2a-\sin ^2a\cos ^2a=1-\sin ^2a\cos ^2a\)

d)

\(\frac{1-4\sin ^2a\cos ^2a}{(\sin a+\cos a)^2}=\frac{1-(2\sin a\cos a)^2}{\sin ^2a+2\sin a\cos a+\cos ^2a}=\frac{(1-2\sin a\cos a)(1+2\sin a\cos a)}{1+2\sin a\cos a}\)

\(=1-2\sin a\cos a\)

e) ĐK tồn tại tan là $\cos x\neq 0$

Vì \(\tan a=\frac{\sin a}{\cos a}\Rightarrow \sin a=\tan a\cos a\)

Ta có:

\(\frac{2\sin a\cos a-1}{\cos ^2a-\sin ^2a}=\frac{1-2\sin a\cos a}{\sin ^2a-\cos ^2a}=\frac{\cos ^2a+\sin ^2a-2\sin a\cos a}{(\sin a-\cos a)(\sin a+\cos a)}\)

\(=\frac{(\sin a-\cos a)^2}{(\sin a-\cos a)(\sin a+\cos a)}=\frac{\sin a-\cos a}{\sin a+\cos a}\)

\(=\frac{\tan a\cos a-\cos a}{\tan a\cos a+\cos a}=\frac{\cos a(\tan a-1)}{\cos a(\tan a+1)}\)\(=\frac{\tan a-1}{\tan a+1}\) (đpcm)

a/ \(\left(1-cos\alpha\right)\left(1+cos\alpha\right)=1-cos^2\alpha=\left(sin^2\alpha+cos^2\alpha\right)-cos^2\alpha=sin^2\alpha\)

b/ \(1+sin^2\alpha+cos^2\alpha=1+1=2\)

c/ \(sin\alpha-sin\alpha.cos^2\alpha=sin\alpha\left(1-cos^2\alpha\right)=sin\alpha.sin^2\alpha=sin^3\alpha\)