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Exact area (1 Viewer)
- Thread starter atakach99
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tommykins
i am number -e^i*pi
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This one was a huge bitch to do.
I suggest you draw a diagram, find points of intersection and split up the integral into separate parts.
ie. int 0 -> pi/4 cosx - sinx would be your first part (as the cosx graph is above the sin x graph)
I suggest you draw a diagram, find points of intersection and split up the integral into separate parts.
ie. int 0 -> pi/4 cosx - sinx would be your first part (as the cosx graph is above the sin x graph)
tommykins
i am number -e^i*pi
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In which domains?
Find points of intersection, split up the integral into 4 different integrals (judging from my graph and the domains 0 < x < 2pi) and add them all together.
Answer should be approximately 3.18 units²
Find points of intersection, split up the integral into 4 different integrals (judging from my graph and the domains 0 < x < 2pi) and add them all together.
Answer should be approximately 3.18 units²
tommykins
i am number -e^i*pi
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I reckon this is a stupid question, it only takes into account the area when sin x is above the line y = 1/2
anyways, the integral is -
5pi/6
int sin x - pi/3
pi/6
This is because sin x is at the top of the line y = 1/2 in this domain. The area of the rectangle in this domain is given by [5pi/6 - pi/6]*1/2
anyways, the integral is -
5pi/6
int sin x - pi/3
pi/6
This is because sin x is at the top of the line y = 1/2 in this domain. The area of the rectangle in this domain is given by [5pi/6 - pi/6]*1/2