\(\dfrac{sina+sin5a+sin3a}{cosa+cos5a+cos3a}=\dfrac{2sin3a.cos2a+sin3a}{2cos3a.cos2a+cos3a}=\dfrac{sin3a\left(2cos2a+1\right)}{cos3a\left(2cos2a+1\right)}=\dfrac{sin3a}{cos3a}=tan3a\)

\(\dfrac{1+sin4a-cos4a}{1+sin4a+cos4a}=\dfrac{1+2sin2a.cos2a-\left(1-2sin^22a\right)}{1+2sin2a.cos2a+2cos^22a-1}=\dfrac{2sin2a\left(sin2a+cos2a\right)}{2cos2a\left(sin2a+cos2a\right)}=\dfrac{sin2a}{cos2a}=tan2a\)

\(96\sqrt{3}sin\left(\dfrac{\pi}{48}\right)cos\left(\dfrac{\pi}{48}\right)cos\left(\dfrac{\pi}{24}\right)cos\left(\dfrac{\pi}{12}\right)cos\left(\dfrac{\pi}{6}\right)=48\sqrt{3}sin\left(\dfrac{\pi}{24}\right)cos\left(\dfrac{\pi}{24}\right)cos\left(\dfrac{\pi}{12}\right)cos\left(\dfrac{\pi}{6}\right)\)

\(=24\sqrt{3}sin\left(\dfrac{\pi}{12}\right)cos\left(\dfrac{\pi}{12}\right)cos\left(\dfrac{\pi}{6}\right)=12\sqrt{3}sin\left(\dfrac{\pi}{6}\right)cos\left(\dfrac{\pi}{6}\right)\)

\(=6\sqrt{3}sin\left(\dfrac{\pi}{3}\right)=6\sqrt{3}.\dfrac{\sqrt{3}}{2}=9\)

\(A+B+C=\pi\Rightarrow A+B=\pi-C\Rightarrow tan\left(A+B\right)=tan\left(\pi-C\right)\)

\(\Rightarrow\dfrac{tanA+tanB}{1-tanA.tanB}=-tanC\Rightarrow tanA+tanB=-tanC+tanA.tanB.tanC\)

\(\Rightarrow tanA+tanB+tanC=tanA.tanB.tanC\)

a) \(A = \cos {0^o} + \cos {40^o} + \cos {120^o} + \cos {140^o}\)

Tra bảng giá trị lượng giác của một số góc đặc biệt, ta có:

 \(\cos {0^o} = 1;\;\cos {120^o} =  - \frac{1}{2}\)

Lại có: \(\cos {140^o} =  - \cos \left( {{{180}^o} - {{40}^o}} \right) =  - \cos {40^o}\)  

\(\begin{array}{l} \Rightarrow A = 1 + \cos {40^o} + \left( { - \frac{1}{2}} \right) - \cos {40^o}\\ \Leftrightarrow A = \frac{1}{2}.\end{array}\)

b) \(B = \sin {5^o} + \sin {150^o} - \sin {175^o} + \sin {180^o}\)

Tra bảng giá trị lượng giác của một số góc đặc biệt, ta có:

 \(\sin {150^o} = \frac{1}{2};\;\sin {180^o} = 0\)

Lại có: \(\sin {175^o} = \sin \left( {{{180}^o} - {{175}^o}} \right) = \sin {5^o}\)  

\(\begin{array}{l} \Rightarrow B = \sin {5^o} + \frac{1}{2} - \sin {5^o} + 0\\ \Leftrightarrow B = \frac{1}{2}.\end{array}\)

c) \(C = \cos {15^o} + \cos {35^o} - \sin {75^o} - \sin {55^o}\)

Ta có: \(\sin {75^o} = \cos\left( {{{90}^o} - {{75}^o}} \right) = \cos {15^o}\); \(\sin {55^o} = \cos\left( {{{90}^o} - {{55}^o}} \right) = \cos {35^o}\)

\(\begin{array}{l} \Rightarrow C = \cos {15^o} + \cos {35^o} - \cos {15^o} - \cos {35^o}\\ \Leftrightarrow C = 0.\end{array}\)

d) \(D = \tan {25^o}.\tan {45^o}.\tan {115^o}\)

Ta có: \(\tan {115^o} =  - \tan \left( {{{180}^o} - {{115}^o}} \right) =  - \tan {65^o}\)

Mà: \(\tan {65^o} = \cot \left( {{{90}^o} - {{65}^o}} \right) = \cot {25^o}\)

\(\begin{array}{l} \Rightarrow D = \tan {25^o}.\tan {45^o}.(-\cot {25^o})\\ \Leftrightarrow D =- \tan {45^o} = -1\end{array}\)

e) \(E = \cot {10^o}.\cot {30^o}.\cot {100^o}\)

Ta có: \(\cot {100^o} =  - \cot \left( {{{180}^o} - {{100}^o}} \right) =  - \cot {80^o}\)

Mà: \(\cot {80^o} = \tan \left( {{{90}^o} - {{80}^o}} \right) = \tan {10^o}\Rightarrow \cot {100^o}  =- \tan {10^o}\)

\(\begin{array}{l} \Rightarrow E = \cot {10^o}.\cot {30^o}.(-\tan {10^o})\\ \Leftrightarrow E = -\cot {30^o} =- \sqrt 3 .\end{array}\)

Ta có: \(\sin {70^o} = \cos {20^o};\;\cos {110^o} =  - \cos {70^o} =  - \sin {20^o}\)

\(\begin{array}{l} \Rightarrow A = {(\sin {20^o} + \cos {20^o})^2} + {(\cos {20^o} - \sin {20^o})^2}\\ = ({\sin ^2}{20^o} + {\cos ^2}{20^o} + 2\sin {20^o}\cos {20^o}) + ({\cos ^2}{20^o} + {\sin ^2}{20^o} - 2\sin {20^o}\cos {20^o})\\ = 2({\sin ^2}{20^o} + {\cos ^2}{20^o})\\ = 2\end{array}\)

Ta có: \(\tan {110^o} =  - \tan {70^o} =  - \cot {20^o};\;\cot {110^o} =  - \cot {70^o} =  - \tan {20^o}.\)

\( \Rightarrow B = \tan {20^o} + \cot {20^o} + ( - \cot {20^o}) + ( - \tan {20^o}) = 0\)

Bạn kiểm tra lại đề, có vẻ như trong 2 cái \(sin^2\) kia phải có 1 cái là \(cos^2\) mới hợp lý

à, cái đầu là cos

\(A=sinx+cosx=\sqrt{2}sin\left(x+\frac{\pi}{4}\right)\)

Mà \(-1\le sin\left(x+\frac{\pi}{4}\right)\le1\Rightarrow-\sqrt{2}\le sinx+cosx\le\sqrt{2}\)

\(A_{max}=\sqrt{2}\) khi \(sin\left(x+\frac{\pi}{4}\right)=1\Leftrightarrow x+\frac{\pi}{4}=\frac{\pi}{2}+k2\pi\Rightarrow x=\frac{\pi}{4}+k2\pi\)

\(A_{min}=-\sqrt{2}\) khi \(x+\frac{\pi}{4}=-\frac{\pi}{2}+k2\pi\Rightarrow x=-\frac{3\pi}{4}+k2\pi\)

2 câu sau y hệt câu đầu:

\(B=sinx-cosx=\sqrt{2}sin\left(x-\frac{\pi}{4}\right)\Rightarrow-\sqrt{2}\le B\le\sqrt{2}\)

\(C=sin4x+cos4x=\sqrt{2}sin\left(4x+\frac{\pi}{4}\right)\Rightarrow-\sqrt{2}\le C\le\sqrt{2}\)

Chọn B.

Ta có: góc A tù nên  cos A < 0 ; sinA > 0 ; tan A < 0 ; cot A < 0

Do góc A tù nên góc B và C là các góc nhọn có các giá trị lượng giác đều dương

Do đó: M > 0 ; N > 0 ; P > 0 và Q < 0.

\(sinx+cosx=m\Leftrightarrow\left(sinx+cosx\right)^2=m^2\)

\(\Leftrightarrow1+2sinx.cosx=m^2\Rightarrow sinx.cosx=\dfrac{m^2-1}{2}\)

\(A=sin^2x+cos^2x=1\)

\(B=sin^3x+cos^3x=\left(sinx+cosx\right)^3-3sinx.cosx\left(sinx+cosx\right)\)

\(=m^3-\dfrac{3m\left(m^2-1\right)}{2}=\dfrac{2m^3-3m^3+3m}{2}=\dfrac{3m-m^3}{2}\)

\(C=\left(sin^2+cos^2x\right)^2-2\left(sinx.cosx\right)^2=1-2\left(\dfrac{m^2-1}{2}\right)^2\)

\(D=\left(sin^2x\right)^3+\left(cos^2x\right)^3=\left(sin^2x+cos^2x\right)^3-3\left(sin^2x+cos^2x\right)\left(sinx.cosx\right)^2\)

\(=1-3\left(\dfrac{m^2-1}{2}\right)^2\)

a: 

b: \(B=3-sin^290^0+2\cdot cos^260^0-3\cdot tan^245^0\)

\(=3-1+2\cdot\left(\dfrac{1}{2}\right)^2-3\cdot1^2\)

\(=2-3+2\cdot\dfrac{1}{4}=-1+\dfrac{1}{2}=-\dfrac{1}{2}\)

c: \(C=sin^245^0-2\cdot sin^250^0+3\cdot cos^245^0-2\cdot sin^240^0+4\cdot tan55\cdot tan35\)

\(=\left(\dfrac{\sqrt{2}}{2}\right)^2+3\cdot\left(\dfrac{\sqrt{2}}{2}\right)^2-2\cdot\left(sin^250^0+sin^240^0\right)+4\)

\(=\dfrac{1}{2}+3\cdot\dfrac{1}{2}-2+4\)

\(=2-2+4=4\)