1) по теореме косинусов имеем: a² = b² + c² - 2bc cos a = 25 - 24 cos 135° = 25 + 12√2 a = √(25 + 12√2) по теореме синусов, a / sin a = b / sin b sin b = sin a · b / a = √2 / 2 · 3 / √(25 + 12√2) = 3 / √(50 + 24√2) ∠b = arcsin(3 / √(50 + 24√2)) ∠c = 180° - 135° - ∠b = 45° - arcsin(3 / √(50 + 24√2)) 2) ∠a = 180° - ∠b - ∠c = 65° по теореме синусов b / sin b = a / sin a b = a sin b / sin a = 24.6 · √2 / 2 / (sin 65°) = 123√2 / (10 sin 65°) по теореме синусов c / sin c = a / sin a c = a sin c / sin a = 24.6 ·sin 70° / sin 65°
x1=πn,n∈z
3π<πn<4π
3<n<4
нет решения
6cos²x-11cosx+4=0
cosx=a
6a²-11a+4=0
D=121-96=25
a1=(11-5)/12=1/2⇒cosx=1/2⇒x=11π/6+2πk,k∈z
3π<11π/6+2πk<4π
18<11+12k<24
7<12k<13
7/12<k<13/12
k=1⇒x=11π/6+2π=23π/6
a2=(11+5)/12=4/3⇒cosx=4/3>1 нетрешения
2)2сos²x+10sin2xcos2x+4sin²x+4cos²x=0/cos²x
4tg²x+10tgx+6=0
tgx=a
2a²+5a+3=0
D=25-24=1
a1=(-5-1)/4=-1,5⇒tgx=-1,5⇒x=-arctg1,5+πn
x=2π-arctg1,5
a2=(-5+1)/4=-1⇒tgx=-1⇒x=-π/4+πk,k∈z
x=3π/4
3)3cos²x+5sinxcosx+2cos²x=0
5cosx*(cosx+sinx)=0
cosx=0⇒x=π/2+πn,n∈z
x=5π/2
cosx+sinx=0/cosx
tgx+1=0
tgx=-1⇒x=-π/4+πm,m∈z
x=7π/4