$$$- \frac{i a l m \mu^{a l m} n t}{2}$$$ 對 $$$t$$$ 的積分
您的輸入
求$$$\int \left(- \frac{i a l m \mu^{a l m} n t}{2}\right)\, dt$$$。
解答
套用常數倍法則 $$$\int c f{\left(t \right)}\, dt = c \int f{\left(t \right)}\, dt$$$,使用 $$$c=- \frac{i a l m \mu^{a l m} n}{2}$$$ 與 $$$f{\left(t \right)} = t$$$:
$${\color{red}{\int{\left(- \frac{i a l m \mu^{a l m} n t}{2}\right)d t}}} = {\color{red}{\left(- \frac{i a l m \mu^{a l m} n \int{t d t}}{2}\right)}}$$
套用冪次法則 $$$\int t^{n}\, dt = \frac{t^{n + 1}}{n + 1}$$$ $$$\left(n \neq -1 \right)$$$,以 $$$n=1$$$:
$$- \frac{i a l m \mu^{a l m} n {\color{red}{\int{t d t}}}}{2}=- \frac{i a l m \mu^{a l m} n {\color{red}{\frac{t^{1 + 1}}{1 + 1}}}}{2}=- \frac{i a l m \mu^{a l m} n {\color{red}{\left(\frac{t^{2}}{2}\right)}}}{2}$$
因此,
$$\int{\left(- \frac{i a l m \mu^{a l m} n t}{2}\right)d t} = - \frac{i a l m \mu^{a l m} n t^{2}}{4}$$
加上積分常數:
$$\int{\left(- \frac{i a l m \mu^{a l m} n t}{2}\right)d t} = - \frac{i a l m \mu^{a l m} n t^{2}}{4}+C$$
答案
$$$\int \left(- \frac{i a l m \mu^{a l m} n t}{2}\right)\, dt = - \frac{i a l m \mu^{a l m} n t^{2}}{4} + C$$$A