• Matéria: Matemática
  • Autor: ygor23032006
  • Perguntado 3 anos atrás

preciso de ajuda nessa questões.


 9  {}^{x + 1} =   \sqrt[3]{3}

Respostas

respondido por: CyberKirito
1

\large\boxed{\begin{array}{l}\rm 9^{x+1}=\sqrt[\rm3]{\rm 3}\\\rm (3^2)^{x+1}=3^{\frac{1}{3}}\\\\\rm 3^{2x+2}=3^{\frac{1}{3}}\\\rm 2x+2=\dfrac{1}{3}\\\rm 3\cdot(2x+2)=1\\\rm 6x+6=1\\\rm 6x=1-6\\\rm 6x=-5\\\rm x=-\dfrac{5}{6}\end{array}}

respondido por: Leticia1618
0

Explicação passo-a-passo:

9 {}^{x + 1}  =  \sqrt[3]{3}

3 {}^{2x + 2}  = 3 {}^{ \frac{1}{3} }

2x + 2 =  \dfrac{1}{3}

2x =  \dfrac{1}{3}  - 2

2x =  \dfrac{1 - 6}{3}

2x =  -  \dfrac{5}{3}

2x \div 2 =  -  \dfrac{5}{3}  \div 2

x =  -  \dfrac{5}{3}  \times  \dfrac{1}{2}

x =  -  \dfrac{5}{6}

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