The area of the region in the first quadrant between the graph of y = k*sin(x) and x-axis (where k > 0 ) on the closed interval [0, \pi] is?

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asked Jun 5, 2018 219k views

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Gaurav Sehgal · Answer 1 · 2018-06-11T02:02:13+0000

Note that
$0\le k\sin x\le k$ in the given closed interval, so the area is exactly given by the definite integral

$\displaystyle\int_0^\pi k\sin x\,\mathrm dx$

(no absolute values needed!)

Integrating gives

$-k\cos x\bigg|_(x=0)^(x=\pi)=-k(\cos\pi-\cos0)=-k(-1-1)=2k$

The area of the region in the first quadrant between the graph of y = k*sin(x) and x-axis (where k > 0 ) on the closed interval [0, \pi] is?

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