Объяснение:
given, cosA + cosB + cosC = 3/2
=> 2(2cos(A + B)/2 . cos(A - B)/2) + 2cosC = 3
=> 2(2cos(pi/2 -c/2) .cos(A - B)/2 + 2(1 - 2sin^2(A/2)) = 3
=> 4sin(c/2) .cos(A - B)/2 + 2 - 4sin^2(A/2)) = 3
=> 4sin^2(A/2) - 4sin(c/2) .cos(A - B)/2 + 1 = 0
This is a quadratic equation in sinc/2, and it has real roots
Therefore , Descriminant >= 0
=> (-4cos(A - B)/2)^2 - 4*4*1 >= 0
=> (cos(A - B))^2 >= 1
=> cos(A - B) = 1, since cosine of any angle can't be > 1
=> A - B = 0
=> A = B
Similarily we can prove that B = C
Thus A = B = C, triangle is equilateral
BC:AC:AB=2:6:7 ВС=2х, АС=6х, АВ=7х
AB=BC+25 (см) Так как: АВ=ВС+25
7х = 2х+25
Найти: Р=? 5х = 25
х = 5
ВС=2х=10 (см), АС=6х=30(см), АВ=7х=35 (см)
Р = 10+30+35 = 75 (см)
ответ: 75 см
Объяснение:
given, cosA + cosB + cosC = 3/2
=> 2(2cos(A + B)/2 . cos(A - B)/2) + 2cosC = 3
=> 2(2cos(pi/2 -c/2) .cos(A - B)/2 + 2(1 - 2sin^2(A/2)) = 3
=> 4sin(c/2) .cos(A - B)/2 + 2 - 4sin^2(A/2)) = 3
=> 4sin^2(A/2) - 4sin(c/2) .cos(A - B)/2 + 1 = 0
This is a quadratic equation in sinc/2, and it has real roots
Therefore , Descriminant >= 0
=> (-4cos(A - B)/2)^2 - 4*4*1 >= 0
=> (cos(A - B))^2 >= 1
=> cos(A - B) = 1, since cosine of any angle can't be > 1
=> A - B = 0
=> A = B
Similarily we can prove that B = C
Thus A = B = C, triangle is equilateral