Matemática, perguntado por talita1046, 1 ano atrás

calcule o sen ≈ e tg ≈ , sabendo que o cos = ≈ = 12/13

Soluções para a tarefa

Respondido por Usuário anônimo
1
\text{sen}^2~x+\text{cos}^2~x=1

\text{sen}^2~x+\left(\dfrac{12}{13}\right)^2=1~~\Rightarrow~~\text{sen}^2~x+\dfrac{144}{169}=1~~\Rightarrow~~\text{sen}^2~x=1-\dfrac{144}{169}

\text{sen}^2~x=\dfrac{25}{169}~~\Rightarrow~~\text{sen}~x=\sqrt{\dfrac{25}{169}}~~\Rightarrow~~\boxed{\text{sen}~x=\dfrac{5}{13}}

\text{tg}~x=\dfrac{\text{sen}~x}{\text{cos}~x}

\text{tg}~x=\dfrac{\dfrac{5}{13}}{\dfrac{12}{13}}~~\Rightarrow~~\text{tg}~x=\dfrac{5}{13}\cdot\dfrac{13}{12}~~\Rightarrow~~\boxed{\text{tg}~x=\dfrac{5}{12}}
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