Afgeleide van $$$\frac{1}{t^{2} + x^{2}}$$$ naar $$$x$$$

De functie $$$\frac{1}{t^{2} + x^{2}}$$$ is de samenstelling $$$f{\left(g{\left(x \right)} \right)}$$$ van twee functies $$$f{\left(u \right)} = \frac{1}{u}$$$ en $$$g{\left(x \right)} = t^{2} + x^{2}$$$.

Pas de kettingregel $$$\frac{d}{dx} \left(f{\left(g{\left(x \right)} \right)}\right) = \frac{d}{du} \left(f{\left(u \right)}\right) \frac{d}{dx} \left(g{\left(x \right)}\right)$$$ toe:

$${\color{red}\left(\frac{d}{dx} \left(\frac{1}{t^{2} + x^{2}}\right)\right)} = {\color{red}\left(\frac{d}{du} \left(\frac{1}{u}\right) \frac{d}{dx} \left(t^{2} + x^{2}\right)\right)}$$

Pas de machtsregel $$$\frac{d}{du} \left(u^{n}\right) = n u^{n - 1}$$$ toe met $$$n = -1$$$:

$${\color{red}\left(\frac{d}{du} \left(\frac{1}{u}\right)\right)} \frac{d}{dx} \left(t^{2} + x^{2}\right) = {\color{red}\left(- \frac{1}{u^{2}}\right)} \frac{d}{dx} \left(t^{2} + x^{2}\right)$$

Keer terug naar de oorspronkelijke variabele:

$$- \frac{\frac{d}{dx} \left(t^{2} + x^{2}\right)}{{\color{red}\left(u\right)}^{2}} = - \frac{\frac{d}{dx} \left(t^{2} + x^{2}\right)}{{\color{red}\left(t^{2} + x^{2}\right)}^{2}}$$

De afgeleide van een som/verschil is de som/het verschil van de afgeleiden:

$$- \frac{{\color{red}\left(\frac{d}{dx} \left(t^{2} + x^{2}\right)\right)}}{\left(t^{2} + x^{2}\right)^{2}} = - \frac{{\color{red}\left(\frac{d}{dx} \left(t^{2}\right) + \frac{d}{dx} \left(x^{2}\right)\right)}}{\left(t^{2} + x^{2}\right)^{2}}$$

De afgeleide van een constante is $$$0$$$:

$$- \frac{{\color{red}\left(\frac{d}{dx} \left(t^{2}\right)\right)} + \frac{d}{dx} \left(x^{2}\right)}{\left(t^{2} + x^{2}\right)^{2}} = - \frac{{\color{red}\left(0\right)} + \frac{d}{dx} \left(x^{2}\right)}{\left(t^{2} + x^{2}\right)^{2}}$$

Pas de machtsregel $$$\frac{d}{dx} \left(x^{n}\right) = n x^{n - 1}$$$ toe met $$$n = 2$$$:

$$- \frac{{\color{red}\left(\frac{d}{dx} \left(x^{2}\right)\right)}}{\left(t^{2} + x^{2}\right)^{2}} = - \frac{{\color{red}\left(2 x\right)}}{\left(t^{2} + x^{2}\right)^{2}}$$

Dus, $$$\frac{d}{dx} \left(\frac{1}{t^{2} + x^{2}}\right) = - \frac{2 x}{\left(t^{2} + x^{2}\right)^{2}}$$$.