Respostas
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Ola Vitor
sen(α) = cos(π/2 - α)
a)
sen(α/2) = cos(α)
cos(π/2 - α/2) = cos(α)
π/2 - α/2 = α
π/2 = 3α/2
α = π/3
α = 2π -/π/3 = 5π/3
π/2 - α/2 = -2α/2
π - α = -2α
α = -π
soluções
α1 = π/3
α2 = 5π/3
α3 = -π
sen(α) = cos(π/2 - α)
b)
cos(2α) = sen(π/5)
sen(π/5) = cos(π/2 - π/5) = cos(3π/10)
cos(2α) = cos(3π/10)
α1 = 3π/20
α2 = -3π/20
c)
sen(α) = cos(π/2 - α)
sen(α) - cos(α/3) = 0
cos(π/2 - α) - cos(α/3) = 0
cos(π/2 - α) = cos(α/3)
π/2 - α = α/3
4α/3 = π/2
4α = 3π/2
α = 3π/8
.
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sen(α) = cos(π/2 - α)
a)
sen(α/2) = cos(α)
cos(π/2 - α/2) = cos(α)
π/2 - α/2 = α
π/2 = 3α/2
α = π/3
α = 2π -/π/3 = 5π/3
π/2 - α/2 = -2α/2
π - α = -2α
α = -π
soluções
α1 = π/3
α2 = 5π/3
α3 = -π
sen(α) = cos(π/2 - α)
b)
cos(2α) = sen(π/5)
sen(π/5) = cos(π/2 - π/5) = cos(3π/10)
cos(2α) = cos(3π/10)
α1 = 3π/20
α2 = -3π/20
c)
sen(α) = cos(π/2 - α)
sen(α) - cos(α/3) = 0
cos(π/2 - α) - cos(α/3) = 0
cos(π/2 - α) = cos(α/3)
π/2 - α = α/3
4α/3 = π/2
4α = 3π/2
α = 3π/8
.
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VitorDiasz:
Olá! Desculpa se estou a incomodar, mas porque razão passou o sin para o cos?
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