Ta có:

 \(\begin{array}{l}2a = \left( {a + b} \right) + \left( {a - b} \right) \Rightarrow \tan 2a = \tan \left[ {\left( {a + b} \right) + \left( {a - b} \right)} \right]\\2b = \left( {a + b} \right) - \left( {a - b} \right) \Rightarrow \tan 2b = \tan \left[ {\left( {a + b} \right) - \left( {a - b} \right)} \right]\end{array}\)

\(\begin{array}{l}\tan \left[ {\left( {a + b} \right) + \left( {a - b} \right)} \right] = \frac{{\tan \left( {a + b} \right) + \tan \left( {a - b} \right)}}{{1 - \tan \left( {a + b} \right).\tan \left( {a - b} \right)}} = \frac{{3 + 2}}{{1 - 3.2}} =  - 1\\\tan \left[ {\left( {a + b} \right) - \left( {a - b} \right)} \right] = \frac{{\tan \left( {a + b} \right) - \tan \left( {a - b} \right)}}{{1 + \tan \left( {a + b} \right).\tan \left( {a - b} \right)}} = \frac{{3 - 2}}{{1 + 3.2}} = \frac{1}{7}\end{array}\)

Vậy \(\tan 2a =  - 1,\,\,\,\tan 2b = \frac{1}{7}\)

Ta có :

\(\begin{array}{l}\tan \left( {a + b} \right) = 3\\ \Rightarrow \frac{{tana + \tan b}}{{1 - \tan a.\tan b}} = 3\\ \Rightarrow tana + \tan b = 3(1 - \tan a.\tan b)\,\,\,\,\,\,(1)\\\tan \left( {a - b} \right) =  - 3\\ \Rightarrow \frac{{tana - \tan b}}{{1 + \tan a.\tan b}} = 3\\ \Rightarrow tana - \tan b = 3(1 + \tan a.\tan b)\,\,\,\,\,\,(2)\end{array}\)

Cộng theo vế của (1) và (2) ta có

\(\tan a = 3\)

Ta có

\(\tan 2a = \frac{{2\tan a}}{{1 - {{\tan }^2}a}} = \frac{{2.3}}{{1 - {3^2}}} = \frac{{ - 3}}{4}\)

Chọn D

Câu a)

Ta sử dụng 2 công thức:

\(\bullet \tan (180-\alpha)=-\tan \alpha\)

\(\bullet \tan (\alpha+\beta)=\frac{\tan \alpha+\tan \beta}{1-\tan \alpha.\tan \beta}\)

Áp dụng vào bài toán:

\(\text{VT}=\tan A+\tan B+\tan C=\tan A+\tan B+\tan (180-A-B)\)

\(=\tan A+\tan B-\tan (A+B)=\tan A+\tan B-\frac{\tan A+\tan B}{1-\tan A.\tan B}\)

\(=(\tan A+\tan B)\left(1+\frac{1}{1-\tan A.\tan B}\right)=(\tan A+\tan B).\frac{-\tan A.\tan B}{1-\tan A.\tan B}\)

\(=-\tan A.\tan B.\frac{\tan A+\tan B}{1-\tan A.\tan B}=-\tan A.\tan B.\tan (A+B)\)

\(=\tan A.\tan B.\tan (180-A-B)\)

\(=\tan A.\tan B.\tan C=\text{VP}\)

Do đó ta có đpcm

Tam giác $ABC$ có ba góc nhọn nên \(\tan A, \tan B, \tan C>0\)

Áp dụng BĐT Cauchy ta có:

\(P=\tan A+\tan B+\tan C\geq 3\sqrt[3]{\tan A.\tan B.\tan C}\)

\(\Leftrightarrow P=\tan A+\tan B+\tan C\geq 3\sqrt[3]{\tan A+\tan B+\tan C}\)

\(\Rightarrow P\geq 3\sqrt[3]{P}\)

\(\Rightarrow P^3\geq 27P\Leftrightarrow P(P^2-27)\geq 0\)

\(\Rightarrow P^2-27\geq 0\Rightarrow P\geq 3\sqrt{3}\)

Vậy \(P_{\min}=3\sqrt{3}\). Dấu bằng xảy ra khi \(\angle A=\angle B=\angle C=60^0\)

Câu b)

Ta sử dụng 2 công thức chính:

\(\bullet \tan (\alpha+\beta)=\frac{\tan \alpha+\tan \beta}{1-\tan \alpha.\tan \beta}\)

\(\bullet \tan (90-\alpha)=\frac{1}{\tan \alpha}\)

Áp dụng vào bài toán:

\(\text{VT}=\tan \frac{A}{2}.\tan \frac{B}{2}+\tan \frac{B}{2}.\tan \frac{C}{2}+\tan \frac{C}{2}.\tan \frac{A}{2}\)

\(=\tan \frac{A}{2}.\tan \frac{B}{2}+\tan \frac{C}{2}(\tan \frac{A}{2}+\tan \frac{B}{2})\)

\(=\tan \frac{A}{2}.\tan \frac{B}{2}+\tan (90-\frac{A+B}{2})(\tan \frac{A}{2}+\tan \frac{B}{2})\)

\(=\tan \frac{A}{2}.\tan \frac{B}{2}+\frac{\tan \frac{A}{2}+\tan \frac{B}{2}}{\tan (\frac{A+B}{2})}\)

\(=\tan \frac{A}{2}.\tan \frac{B}{2}+\frac{\tan \frac{A}{2}+\tan \frac{B}{2}}{\frac{\tan \frac{A}{2}+\tan \frac{B}{2}}{1-\tan \frac{A}{2}.\tan \frac{B}{2}}}\)

\(=\tan \frac{A}{2}.\tan \frac{B}{2}+1-\tan \frac{A}{2}.\tan \frac{B}{2}=1=\text{VP}\)

Ta có đpcm.

Cũng giống phần a, ta biết do ABC là tam giác nhọn nên

\(\tan A, \tan B, \tan C>0\)

Đặt \(\tan A=x, \tan B=y, \tan C=z\). Ta có: \(xy+yz+xz=1\)

Và \(T=x+y+z\)

\(\Rightarrow T^2=x^2+y^2+z^2+2(xy+yz+xz)\)

Theo hệ quả quen thuộc của BĐT Cauchy:

\(x^2+y^2+z^2\geq xy+yz+xz\)

\(\Rightarrow T^2\geq 3(xy+yz+xz)=3\)

\(\Rightarrow T\geq \sqrt{3}\Leftrightarrow T_{\min}=\sqrt{3}\)

Dấu bằng xảy ra khi \(x=y=z=\frac{1}{\sqrt{3}}\Leftrightarrow \angle A=\angle B=\angle C=60^0\)

a)     \(\tan \left( {a + b} \right) = \frac{{\sin \left( {a + b} \right)}}{{\cos \left( {a + b} \right)}} = \frac{{\sin a.\cos b + \cos a.\sin b}}{{\cos a.\cos b - \sin a.\sin b}}\)

\(\begin{array}{l} = \frac{{\sin a.\cos b + \cos a.\cos b}}{{\cos a.\cos b - \sin a.\sin b}} = \frac{{\sin a.\cos b}}{{\cos a.\cos b - \sin a.\sin b}} + \frac{{\cos a.\sin b}}{{\cos a.\cos b - \sin a.\sin b}}\\ = \frac{{\frac{{\sin a.\cos b}}{{\cos a.\cos b}}}}{{\frac{{\cos a.\cos b - \sin a.\sin b}}{{\cos a.\cos b}}}} + \frac{{\frac{{\cos a.\sin b}}{{\cos a.\cos b}}}}{{\frac{{\cos a.\cos b - \sin a.\sin b}}{{\cos a.\cos b}}}} = \frac{{\tan a}}{{1 - \tan a.\tan b}} + \frac{{\tan b}}{{1 - \tan a.\tan b}}\\ = \frac{{\tan a + \tan b}}{{1 - \tan a.\tan b}}\end{array}\)

\( \Rightarrow \tan \left( {a + b} \right) = \frac{{\tan a + \tan b}}{{1 - \tan a.\tan b}}\)

b)      

\(\tan \left( {a - b} \right) = \tan \left( {a + \left( { - b} \right)} \right) = \frac{{\tan a + \tan \left( { - b} \right)}}{{1 - \tan a.\tan \left( { - b} \right)}} = \frac{{\tan a - \tan b}}{{1 + \tan a.\tan b}}\)

\(B\sqrt{2}=\sqrt{6+2\sqrt{5}}-\sqrt{6-2\sqrt{5}}-2\)\(=\sqrt{\left(\sqrt{5}+1\right)^2}-\sqrt{\left(\sqrt{5}-1\right)^2}-2\)\(=\left|\sqrt{5}+1\right|-\left|\sqrt{5}-1\right|-2=\sqrt{5}+1-\sqrt{5}+1-2=0\Rightarrow B=0\)

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

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

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

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

B 

  Bạn dùng theo công thức này  

\(\sqrt{m+n\sqrt{p}};\sqrt{m-n\sqrt{p}}\)   

Dùng pt bậc 2 

\(a=1;b=-m;c=\frac{\left(n\sqrt{p}\right)^2}{4}\) 

Nghiệm x1 ; x2 

\(\sqrt{\left(\sqrt{x1}+\sqrt{x2}\right)^2};\sqrt{\left(\sqrt{x1}-\sqrt{x2}\right)^2}\) 

\(B=\sqrt{\left(\sqrt{\frac{5}{2}}+\sqrt{\frac{1}{2}}\right)^2}-\sqrt{\left(\sqrt{\frac{5}{2}}-\sqrt{\frac{1}{2}}\right)^2}-\sqrt{2}\) 

\(=|\sqrt{\frac{5}{2}}+\sqrt{\frac{1}{2}}|-|\sqrt{\frac{5}{2}}-\sqrt{\frac{1}{2}}|-\sqrt{2}\) 

\(=\sqrt{\frac{5}{2}}+\sqrt{\frac{1}{2}}-\left(\sqrt{\frac{5}{2}}-\sqrt{\frac{1}{2}}\right)-\sqrt{2}\) 

\(=2\cdot\sqrt{\frac{1}{2}}-\sqrt{2}\) 

\(=\sqrt{2}-\sqrt{2}=0\)

C. 

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

\(=1+1=2\)

pi/2<a,b<pi

=>cos a<0; cos b<0; sin a>0; sin b>0

\(cosa=-\sqrt{1-\left(\dfrac{3}{5}\right)^2}=-\dfrac{4}{5};sina=\sqrt{1-\left(-\dfrac{5}{13}\right)^2}=\dfrac{12}{13}\)

tan a=-3/5:4/5=-3/4; tan b=12/13:(-5/13)=-12/5

\(tan\left(a+b\right)=\dfrac{tana+tanb}{1-tana\cdot tanb}\)

\(=\dfrac{-\dfrac{3}{4}+\dfrac{-12}{5}}{1-\dfrac{-3}{4}\cdot\dfrac{-12}{5}}=\dfrac{63}{16}\)

sin(a-b)=sina*cosb-sinb*cosa

\(=\dfrac{3}{5}\cdot\dfrac{-5}{13}-\dfrac{-4}{5}\cdot\dfrac{12}{13}=\dfrac{-15+48}{65}=\dfrac{33}{65}\)

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