Integral von $$$\csc^{3}{\left(x \right)}$$$
Verwandter Rechner: Rechner für bestimmte und uneigentliche Integrale
Ihre Eingabe
Bestimme $$$\int \csc^{3}{\left(x \right)}\, dx$$$.
Lösung
Für das Integral $$$\int{\csc^{3}{\left(x \right)} d x}$$$ verwenden Sie die partielle Integration $$$\int \operatorname{u} \operatorname{dv} = \operatorname{u}\operatorname{v} - \int \operatorname{v} \operatorname{du}$$$.
Seien $$$\operatorname{u}=\csc{\left(x \right)}$$$ und $$$\operatorname{dv}=\csc^{2}{\left(x \right)} dx$$$.
Dann gilt $$$\operatorname{du}=\left(\csc{\left(x \right)}\right)^{\prime }dx=- \cot{\left(x \right)} \csc{\left(x \right)} dx$$$ (Rechenschritte siehe ») und $$$\operatorname{v}=\int{\csc^{2}{\left(x \right)} d x}=- \cot{\left(x \right)}$$$ (Rechenschritte siehe »).
Somit,
$$\int{\csc^{3}{\left(x \right)} d x}=\csc{\left(x \right)} \cdot \left(- \cot{\left(x \right)}\right)-\int{\left(- \cot{\left(x \right)}\right) \cdot \left(- \cot{\left(x \right)} \csc{\left(x \right)}\right) d x}=- \cot{\left(x \right)} \csc{\left(x \right)} - \int{\cot^{2}{\left(x \right)} \csc{\left(x \right)} d x}$$
Wenden Sie die Formel $$$\cot^{2}{\left(x \right)} = \csc^{2}{\left(x \right)} - 1$$$ an:
$$- \cot{\left(x \right)} \csc{\left(x \right)} - \int{\cot^{2}{\left(x \right)} \csc{\left(x \right)} d x}=- \cot{\left(x \right)} \csc{\left(x \right)} - \int{\left(\csc^{2}{\left(x \right)} - 1\right) \csc{\left(x \right)} d x}$$
Ausmultiplizieren:
$$- \cot{\left(x \right)} \csc{\left(x \right)} - \int{\left(\csc^{2}{\left(x \right)} - 1\right) \csc{\left(x \right)} d x}=- \cot{\left(x \right)} \csc{\left(x \right)} - \int{\left(\csc^{3}{\left(x \right)} - \csc{\left(x \right)}\right)d x}$$
Das Integral einer Differenz ist die Differenz der Integrale:
$$- \cot{\left(x \right)} \csc{\left(x \right)} - \int{\left(\csc^{3}{\left(x \right)} - \csc{\left(x \right)}\right)d x}=- \cot{\left(x \right)} \csc{\left(x \right)} + \int{\csc{\left(x \right)} d x} - \int{\csc^{3}{\left(x \right)} d x}$$
Somit erhalten wir die folgende einfache lineare Gleichung für das Integral:
$${\color{red}{\int{\csc^{3}{\left(x \right)} d x}}}=- \cot{\left(x \right)} \csc{\left(x \right)} + \int{\csc{\left(x \right)} d x} - {\color{red}{\int{\csc^{3}{\left(x \right)} d x}}}$$
Löst man es, erhält man, dass
$$\int{\csc^{3}{\left(x \right)} d x}=- \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{\int{\csc{\left(x \right)} d x}}{2}$$
Schreibe die Kosekans als $$$\csc\left(x\right)=\frac{1}{\sin\left(x\right)}$$$ um:
$$- \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{{\color{red}{\int{\csc{\left(x \right)} d x}}}}{2} = - \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{{\color{red}{\int{\frac{1}{\sin{\left(x \right)}} d x}}}}{2}$$
Schreibe den Sinus mithilfe der Doppelwinkel-Formel um $$$\sin\left(x\right)=2\sin\left(\frac{x}{2}\right)\cos\left(\frac{x}{2}\right)$$$:
$$- \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{{\color{red}{\int{\frac{1}{\sin{\left(x \right)}} d x}}}}{2} = - \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{{\color{red}{\int{\frac{1}{2 \sin{\left(\frac{x}{2} \right)} \cos{\left(\frac{x}{2} \right)}} d x}}}}{2}$$
Multipliziere Zähler und Nenner mit $$$\sec^2\left(\frac{x}{2} \right)$$$:
$$- \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{{\color{red}{\int{\frac{1}{2 \sin{\left(\frac{x}{2} \right)} \cos{\left(\frac{x}{2} \right)}} d x}}}}{2} = - \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{{\color{red}{\int{\frac{\sec^{2}{\left(\frac{x}{2} \right)}}{2 \tan{\left(\frac{x}{2} \right)}} d x}}}}{2}$$
Sei $$$u=\tan{\left(\frac{x}{2} \right)}$$$.
Dann $$$du=\left(\tan{\left(\frac{x}{2} \right)}\right)^{\prime }dx = \frac{\sec^{2}{\left(\frac{x}{2} \right)}}{2} dx$$$ (die Schritte sind » zu sehen), und es gilt $$$\sec^{2}{\left(\frac{x}{2} \right)} dx = 2 du$$$.
Daher,
$$- \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{{\color{red}{\int{\frac{\sec^{2}{\left(\frac{x}{2} \right)}}{2 \tan{\left(\frac{x}{2} \right)}} d x}}}}{2} = - \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{{\color{red}{\int{\frac{1}{u} d u}}}}{2}$$
Das Integral von $$$\frac{1}{u}$$$ ist $$$\int{\frac{1}{u} d u} = \ln{\left(\left|{u}\right| \right)}$$$:
$$- \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{{\color{red}{\int{\frac{1}{u} d u}}}}{2} = - \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} + \frac{{\color{red}{\ln{\left(\left|{u}\right| \right)}}}}{2}$$
Zur Erinnerung: $$$u=\tan{\left(\frac{x}{2} \right)}$$$:
$$\frac{\ln{\left(\left|{{\color{red}{u}}}\right| \right)}}{2} - \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2} = \frac{\ln{\left(\left|{{\color{red}{\tan{\left(\frac{x}{2} \right)}}}}\right| \right)}}{2} - \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2}$$
Daher,
$$\int{\csc^{3}{\left(x \right)} d x} = \frac{\ln{\left(\left|{\tan{\left(\frac{x}{2} \right)}}\right| \right)}}{2} - \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2}$$
Fügen Sie die Integrationskonstante hinzu:
$$\int{\csc^{3}{\left(x \right)} d x} = \frac{\ln{\left(\left|{\tan{\left(\frac{x}{2} \right)}}\right| \right)}}{2} - \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2}+C$$
Antwort
$$$\int \csc^{3}{\left(x \right)}\, dx = \left(\frac{\ln\left(\left|{\tan{\left(\frac{x}{2} \right)}}\right|\right)}{2} - \frac{\cot{\left(x \right)} \csc{\left(x \right)}}{2}\right) + C$$$A