Срочно!!! Пожалуйста! 2sin(x/2)=3sin^2(x/2) sin6xcosx+cos6xsinx=0.5 3sinx+4sin(П/2+x)=0. Created by enernastia. algebra-ru

2+x)=0...

enernastia @enernastia

June 2022 1 6 Report

Срочно!!! Пожалуйста!
2sin(x/2)=3sin^2(x/2)
sin6xcosx+cos6xsinx=0.5
3sinx+4sin(П/2+x)=0

Answers & Comments

m11m

Verified answer

1)
2sin(x/2)=3sin²(x/2)
2sin(x/2)-3sin²(x/2)=0
sin(x/2) (2-3sin(x/2))=0

a) sin(x/2)=0
x/2=πk, k∈Z
x=2πk, k∈Z

b) 2-3sin(x/2)=0
-3sin(x/2)=-2
sin(x/2)=2/3
x/2=(-1)^n * arcsin(2/3)+πk, k∈Z
x=2*(-1)^n * arcsin(2/3)+2πk, k∈Z

Ответ: 2πk, k∈Z;
2*(-1)^k*arcsin(2/3)+2πk, k∈Z.

2)
sin6xcosx+cos6xsinx=0.5
sin(6x+x)=0.5
sin7x=0.5
7x=(-1)^k*(π/6)+πk, k∈Z
x=(-1)^k*(π/42)+(π/7)*k, k∈Z

Ответ: (-1)^k*(π/42)+(π/7)*k, k∈Z.

3)
3sinx+4sin(π/2+x)=0
3sinx+4cosx=0
$3sin2*( \frac{x}{2} )+4cos2*( \frac{x}{2} )=0 \\ \\ 
3*2sin( \frac{x}{2} )cos( \frac{x}{2} )+4(cos^2( \frac{x}{2} )-sin^2( \frac{x}{2} ))=0 \\ \\ 
-4sin^2( \frac{x}{2} )+6sin( \frac{x}{2} )cos( \frac{x}{2} )+4cos^2( \frac{x}{2} )=0 \\ \\ 
2sin^2( \frac{x}{2} )-3sin( \frac{x}{2} )cos( \frac{x}{2} )+2cos^2( \frac{x}{2} )=0 \\ \\ 
 \frac{2sin^2( \frac{x}{2} )}{cos^2( \frac{x}{2} )}- \frac{3sin( \frac{x}{2} )cos( \frac{x}{2} )}{cos^2( \frac{x}{2} )}+ \frac{2cos^2( \frac{x}{2} )}{cos^2( \frac{x}{2} )}$ =0
$2tg^2( \frac{x}{2} )-3tg( \frac{x}{2} )-2=0 \\ \\ 
y=tg( \frac{x}{2} ) \\ \\ 
2y^2-3y-2=0 \\ 
D=9+4*2*2=25 \\ 
y_{1} =\frac{3-5}{4}=- \frac{2}{4}=- \frac{1}{2} \\ \\ 
y_{2}= \frac{3+5}{4}=2$

a) При у=-1/2
$tg( \frac{x}{2} )=- \frac{1}{2} \\ 
 \frac{x}{2}=-arctg \frac{1}{2} + \pi k \\ \\ 
x=-2arctg \frac{1}{2}+2 \pi k$ ,
k∈Z;

b) При у=2
$tg( \frac{x}{2} )=2 \\ 
 \frac{x}{2} =arctg2+ \pi k \\ \\ 
x=2arctg2+2 \pi k,$
k∈Z.

Ответ: $-2arctg \frac{1}{2}+2 \pi k,$ k∈Z;
$2arctg2+2 \pi k,$ k∈Z.

2 votes Thanks 2

enernastia Спасибо!!

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