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Integration (1 Viewer)

Susu123

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I think this is the easiest way. In the second line, I multiplied it by 2 cuz I only used the top half of the area.
I tried subtracting one line from the other and integrating in terms of the y axis, but it's too long and complicated. Hope this makes sense
 

Luukas.2

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Since the area is symmetric about the x-axis, its area can be found by doubling the integral of the function above the x-axis:


Alternatively, integrating against the y-axis:


You could also consider that the rectangle formed by the new expressway and the y-axis is 1 km by 6 km, so 6 km2 in area, and the region inside that rectangle that is not part of the property - that is, the part between the parabolic arc and the y-axis - is given by


Hence, the property has area of 6 km2 - 2 km2 = 4 km2, as expected.
 
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moderntortoisecat

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thank you!
Another question im completely lost on seeing as theres only one Point of intersection
1710452478035.png
 

moderntortoisecat

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this q is from baulkham hills 2023 trials, why do we subtract the integral by 2?

I got 1710566669213.png which i would absolute
Help
 

Average Boreduser

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this q is from baulkham hills 2023 trials, why do we subtract the integral by 2?

I got View attachment 42723 which i would absolute
Help
well you have to -2 because you integrated on the y-axis so there is still the square that remains in the integral that does not satisfy the exact area BOUNDED by the curve and x-axis and x=. so u minus it. also im unsure as to why you have negative in the front of the integral.
 

moderntortoisecat

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wouldn't you manipulate the integral so that the derivative of the power -1 is in front of the e and then to balance it, place another (-) outside of the integral?
 

Average Boreduser

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wouldn't you manipulate the integral so that the derivative of the power -1 is in front of the e and then to balance it, place another (-) outside of the integral?
I started confusing myself mb. just use u-sub for this qn. adding that negative makes logic of the working look iffy.
 

Luukas.2

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this q is from baulkham hills 2023 trials, why do we subtract the integral by 2?

I got View attachment 42723 which i would absolute
Help
The problem can be approached as an area between two curves, just relative to the y-axis.

The curves that bound the region are , which is the "top" curve, and , which is the "bottom" curve. The area, against the y-axis, is then

 

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