necesito resolver este ejercico de matematicas 5 elevado 2x-1=3 elevado 4x+2

Respuestas

Respuesta dada por: marceg3
0
\ln \left(5^{2x-1}\right)=\ln \left(3^{4x+2}\right)

\left(2x-1\right)\ln \left(5\right)=\left(4x+2\right)\ln \left(3\right)

\left(2x-1\right)\ln \left(5\right)  =\ln \left(5\right)\cdot \:2x+\ln \left(5\right)\left(-1\right)
=\ln \left(5\right)\cdot \:2x-\ln \left(5\right)\cdot \:1

2x\ln \left(5\right)-\ln \left(5\right)=4x\ln \left(3\right)+2\ln \left(3\right)

2x\ln \left(5\right)-\ln \left(5\right)+\ln \left(5\right)=4x\ln \left(3\right)+2\ln \left(3\right)+\ln \left(5\right)

2x\ln \left(5\right)=4x\ln \left(3\right)+\ln \left(45\right)

2x\ln \left(5\right)-4x\ln \left(3\right)=4x\ln \left(3\right)+\ln \left(45\right)-4x\ln \left(3\right)

2x\ln \left(5\right)-4x\ln \left(3\right)=4x\ln \left(3\right)+\ln \left(45\right)-4x\ln \left(3\right)2x\ln \left(5\right)-4x\ln \left(3\right)
=2x\left(\ln \left(5\right)-2\ln \left(3\right)\right)=2x\ln \left(\frac{5}{9}\right)

2x\ln \left(\frac{5}{9}\right)=\ln \left(45\right)\frac{2x\ln \left(\frac{5}{9}\right)}{2\ln \left(\frac{5}{9}\right)}=\frac{\ln \left(45\right)}{2\ln \left(\frac{5}{9}\right)}

x=\frac{\ln \left(45\right)}{2\ln \left(\frac{5}{9}\right)}
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