Giải các pt:
a) $6\sin x-\frac{5\sin 4x.\cos x}{2\cos 2x}=2\cos^{3} x$
b) $\cos 7x-\sin 5x=\sqrt{3}(\cos 5x-\sin 7x)$
c) $8\sin x=\frac{\sqrt{3}}{\cos x}+\frac{1}{\sin x}$
d) $\sin x+\sin^{2} x\cos x+2\sin x\cos^{2} x-2\cos x=0$
c,Đk: sin2x # 0
<=>x # kpi/2
pt<=> $cosx+(can3)sinx=8sin^2xcosx$
<=>$cosx+(can3)sinx=4sin2xsinx$
<=>$cosx+(can3)sinx=-2(cos3x-cosx)$
<=>$cosx-(can3)sinx=2cos3x$
<=>$(1/2)cosx-(can3/2)sinx=cos3x$
<=>$cos(x+pi/3)=cos3x $
b, cos7x+(√3)sin7x=(√3)cos5x+sin5x 

chia 2 vế cho 2 

(1/2)cos7x+[(√3)/2]sin7x 

[(√3)/2]cos5x+(1/2)sin5x 

sin(pi/3)=(√3)/2 
cos(pi/3)=(1/2) 

cos(pi/3)cos7x+sin(pi/3)sin7x 

sin(pi/3)cos5x+cos(pi/3)sin5x 

cos(a-b)=cosa.cosb+sina.sinb 
sin(a+b)=sina.cosb+sinb.cosa 

<=>cos(pi/3 -7x)=sin(pi/3 +5x) 
<=>sin(pi/2 - pi/3 +7x)=sin(pi/3 +5x) 
<=>sin(pi/6 +7x)=sin(pi/3 +5x)
còn lại bạn tự giải nhé!

chị là thánh lượng giác –  Băng Băng 05-07-16 09:21 PM
d,chia 2 vế pt cho cosx^{3} ta được:
1/cosx^2+tanx^{2}+2tanx-2/cos^x=0
1+tanx^{2}+tanx^{2}+2tanx-2(1+tanx^{2})=0
2tanx-1=0
.....
chúc bạn họi giỏi nhé!
a,đk: cos2x ≠ 0 ⇔ x ≠ π/4 + kπ/2 (k ∈ Z) 
pt<=>6sinx - 2cos³x = (5sin4x.cosx) / 2cos2x 
  ⇔ 6sinx - 2cos³x = (10sin2x.cos2x.cosx) / 2cos2x 
⇔ 6sinx - 2cos³x = 5sin2x.cosx 
⇔ 6sinx.(sin²x + cos²x) - 2cos³x = 10sinx.cos²x 
⇔ 3sin³x - 2sinx.cos²x - cos³x = 0 
⇔ 3sin³x - 3sinx.cos²x + sinx.cos²x - cos³x = 0 
⇔ 3sinx.(sinx - cosx).(sinx + cosx) + cos²x.(sinx - cosx) = 0 
⇔ (sinx - cosx)(3sin²x + 3sinx.cosx + cos²x) = 0 
⇔ [ sinx - cosx = 0 → tanx = 1 → x = π/4 + kπ (k ∈ Z): loại do ko t/m đk 
     [ 3sin²x + 3sinx.cosx + cos²x = 0 (1) 

(1) ⇔ 3(sin²x + sinx.cosx + 1/4.cos²x) + 1/4.cos²x = 0 
⇔ 3(sinx + 1/2.cosx)² + 1/4.cos²x = 0 : vô nghiệm 
do sinx + 1/2.cosx        và       cosx        ko thể đồng thời = 0 

Vậy pt đã cho vô nghiệm 

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