Integral de $$$\sin^{2}{\left(2 x \right)}$$$
Calculadora relacionada: Calculadora de integrales definidas e impropias
Tu entrada
Halla $$$\int \sin^{2}{\left(2 x \right)}\, dx$$$.
Solución
Sea $$$u=2 x$$$.
Entonces $$$du=\left(2 x\right)^{\prime }dx = 2 dx$$$ (los pasos pueden verse »), y obtenemos que $$$dx = \frac{du}{2}$$$.
La integral puede reescribirse como
$${\color{red}{\int{\sin^{2}{\left(2 x \right)} d x}}} = {\color{red}{\int{\frac{\sin^{2}{\left(u \right)}}{2} d u}}}$$
Aplica la regla del factor constante $$$\int c f{\left(u \right)}\, du = c \int f{\left(u \right)}\, du$$$ con $$$c=\frac{1}{2}$$$ y $$$f{\left(u \right)} = \sin^{2}{\left(u \right)}$$$:
$${\color{red}{\int{\frac{\sin^{2}{\left(u \right)}}{2} d u}}} = {\color{red}{\left(\frac{\int{\sin^{2}{\left(u \right)} d u}}{2}\right)}}$$
Aplica la fórmula de reducción de potencia $$$\sin^{2}{\left(\alpha \right)} = \frac{1}{2} - \frac{\cos{\left(2 \alpha \right)}}{2}$$$ con $$$\alpha= u $$$:
$$\frac{{\color{red}{\int{\sin^{2}{\left(u \right)} d u}}}}{2} = \frac{{\color{red}{\int{\left(\frac{1}{2} - \frac{\cos{\left(2 u \right)}}{2}\right)d u}}}}{2}$$
Aplica la regla del factor constante $$$\int c f{\left(u \right)}\, du = c \int f{\left(u \right)}\, du$$$ con $$$c=\frac{1}{2}$$$ y $$$f{\left(u \right)} = 1 - \cos{\left(2 u \right)}$$$:
$$\frac{{\color{red}{\int{\left(\frac{1}{2} - \frac{\cos{\left(2 u \right)}}{2}\right)d u}}}}{2} = \frac{{\color{red}{\left(\frac{\int{\left(1 - \cos{\left(2 u \right)}\right)d u}}{2}\right)}}}{2}$$
Integra término a término:
$$\frac{{\color{red}{\int{\left(1 - \cos{\left(2 u \right)}\right)d u}}}}{4} = \frac{{\color{red}{\left(\int{1 d u} - \int{\cos{\left(2 u \right)} d u}\right)}}}{4}$$
Aplica la regla de la constante $$$\int c\, du = c u$$$ con $$$c=1$$$:
$$- \frac{\int{\cos{\left(2 u \right)} d u}}{4} + \frac{{\color{red}{\int{1 d u}}}}{4} = - \frac{\int{\cos{\left(2 u \right)} d u}}{4} + \frac{{\color{red}{u}}}{4}$$
Sea $$$v=2 u$$$.
Entonces $$$dv=\left(2 u\right)^{\prime }du = 2 du$$$ (los pasos pueden verse »), y obtenemos que $$$du = \frac{dv}{2}$$$.
Entonces,
$$\frac{u}{4} - \frac{{\color{red}{\int{\cos{\left(2 u \right)} d u}}}}{4} = \frac{u}{4} - \frac{{\color{red}{\int{\frac{\cos{\left(v \right)}}{2} d v}}}}{4}$$
Aplica la regla del factor constante $$$\int c f{\left(v \right)}\, dv = c \int f{\left(v \right)}\, dv$$$ con $$$c=\frac{1}{2}$$$ y $$$f{\left(v \right)} = \cos{\left(v \right)}$$$:
$$\frac{u}{4} - \frac{{\color{red}{\int{\frac{\cos{\left(v \right)}}{2} d v}}}}{4} = \frac{u}{4} - \frac{{\color{red}{\left(\frac{\int{\cos{\left(v \right)} d v}}{2}\right)}}}{4}$$
La integral del coseno es $$$\int{\cos{\left(v \right)} d v} = \sin{\left(v \right)}$$$:
$$\frac{u}{4} - \frac{{\color{red}{\int{\cos{\left(v \right)} d v}}}}{8} = \frac{u}{4} - \frac{{\color{red}{\sin{\left(v \right)}}}}{8}$$
Recordemos que $$$v=2 u$$$:
$$\frac{u}{4} - \frac{\sin{\left({\color{red}{v}} \right)}}{8} = \frac{u}{4} - \frac{\sin{\left({\color{red}{\left(2 u\right)}} \right)}}{8}$$
Recordemos que $$$u=2 x$$$:
$$- \frac{\sin{\left(2 {\color{red}{u}} \right)}}{8} + \frac{{\color{red}{u}}}{4} = - \frac{\sin{\left(2 {\color{red}{\left(2 x\right)}} \right)}}{8} + \frac{{\color{red}{\left(2 x\right)}}}{4}$$
Por lo tanto,
$$\int{\sin^{2}{\left(2 x \right)} d x} = \frac{x}{2} - \frac{\sin{\left(4 x \right)}}{8}$$
Añade la constante de integración:
$$\int{\sin^{2}{\left(2 x \right)} d x} = \frac{x}{2} - \frac{\sin{\left(4 x \right)}}{8}+C$$
Respuesta
$$$\int \sin^{2}{\left(2 x \right)}\, dx = \left(\frac{x}{2} - \frac{\sin{\left(4 x \right)}}{8}\right) + C$$$A