3x/7+3*(x-2/7)+11=-7/2x+3(x+1) решите уравнения.

-3х/7+3х-6/7+11=7/2х+3х+3

(-3х-6)/7+3х+11-3х-3=7/2х

-(3х+6)/7+11-7/2х=0

-(3х+6)/7-7/2х=-11

(-6х-12х-49)/14х=-11

(-18х-49)/14х=-11

-18х-49=-154х

-18х+154х=49

136х=49

х=49/136

1. y=x2+x−25D(y):x2+x−2=0(x+2)(x−1)=0x=−2;   x=1;D(y)=(−∞;−2)∪(−2;1)∪(1;+∞)

\begin{gathered}2)~\boldsymbol{y=\dfrac5{x^2+x}-2}D(y):x^2+x\neq 0\\x(x+1)\neq 0\\x\neq 0;~~~x\neq -1;boldsymbol{D(y)=(-\infty;-1)\cup(-1;0)\cup(0;+\infty)}\end{gathered}2) y=x2+x5−2D(y):x2+x=0x(x+1)=0x=0;   x=−1;D(y)=(−∞;−1)∪(−1;0)∪(0;+∞)

\begin{gathered}3)~\boldsymbol{y=\dfrac5{x^2}+x-2}D(y):x^2\neq 0;~~~x\neq 0;boldsymbol{D(y)=(-\infty;0)\cup(0;+\infty)}\end{gathered}3) y=x25+x−2D(y):x2=0;   x=0;D(y)=(−∞;0)∪(0;+∞)

tga=2  ,  tg(a+β)=4tg(a+β)=1−tga⋅tgβtga+tgβ  ,  1−2tgβ2+tgβ=4   ,  2+tgβ=4−8tgβ  ,9tgβ=2  ,   tgβ=92

\begin{gathered}2)\ \ tg(\dfrac{3\pi}{2}-x)=\dfrac{tg\frac{3\pi}{2}-tgx}{1-tg\frac{3\pi}{2}\cdot tgx}y=tgx\ \ \to \ \ \ OOF:\ \ x\ne \dfrac{\pi}{2}+\pi n\ ,\ n\in Z\ \ \Rightarrow \ \ tg\dfrac{3\pi}{2}\ ne\ syshestvyet\end{gathered}2)  tg(23π−x)=1−tg23π⋅tgxtg23π−tgxy=tgx  →   OOF:  x=2π+πn , n∈Z  ⇒  tg23π ne syshestvyet

По формулам приведения:  tg(\dfrac{3\pi}{2}-x)=tgxtg(23π−x)=tgx

\begin{gathered}3)\ \ cosx=\dfrac{11}{13}x\in (\dfrac{3\pi}{2}\, ;\, 2\pi \, )\ \ \ \to \ \ \ 2x\in (\, 3\pi \ ;\ 4\pi \ )cos2x-4,8=(2cos^2x-1)-4,8=2\cdot \dfrac{121}{169}-4,8=\dfrac{-569,2}{169}=-3,368\end{gathered}3)  cosx=1311x∈(23π;2π)   →   2x∈(3π ; 4π )cos2x−4,8=(2cos2x−1)−4,8=2⋅169121−4,8=169−569,2=−3,368