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Integration of Logs HELP (1 Viewer)
- Thread starter sando
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SoulSearcher
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1. y = ln x
x = ey
.'. int. [ey](2->4) dy
= [ey](2->4)
= (e4 - e2) units2
2. y = ln x
x = ey
x2 = e2y
.'. pi * int. [e2y](1->3)
= pi * [e2y/2](1->3)
= pi/2 * [e2y](1->3)
= pi/2 * (e6-e2) units3
x = ey
.'. int. [ey](2->4) dy
= [ey](2->4)
= (e4 - e2) units2
2. y = ln x
x = ey
x2 = e2y
.'. pi * int. [e2y](1->3)
= pi * [e2y/2](1->3)
= pi/2 * [e2y](1->3)
= pi/2 * (e6-e2) units3
who_loves_maths
I wanna be a nebula too!!
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- Male
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- 2005
Hey sando,
Question 1:
The equation of interest is ln(x) = y ---> x = ey ,
because you will be integrating with respect to dy:
I = {4 -> 2}∫ey dy
= [ey]{4 -> 2} = e4 - e2 = e2(e2 - 1) units2
Question 2:
Once again, the equation of interest is x = ey for the same above reason:
Using the standard integral form for solids of revolutions: V = pi∫x2 dy
V = pi.{3 -> 1}∫e2y dy
= (pi/2).[e2y]{3 -> 1}
= (pi/2).(e6 - e2)
= ((pi.e2)/2)(e4 - 1) units3
Hope that helps.
EDIT: Acknowledgement re SoulSearcher.
Question 1:
The equation of interest is ln(x) = y ---> x = ey ,
because you will be integrating with respect to dy:
I = {4 -> 2}∫ey dy
= [ey]{4 -> 2} = e4 - e2 = e2(e2 - 1) units2
Question 2:
Once again, the equation of interest is x = ey for the same above reason:
Using the standard integral form for solids of revolutions: V = pi∫x2 dy
V = pi.{3 -> 1}∫e2y dy
= (pi/2).[e2y]{3 -> 1}
= (pi/2).(e6 - e2)
= ((pi.e2)/2)(e4 - 1) units3
Hope that helps.
EDIT: Acknowledgement re SoulSearcher.
1.. Find the area between the curve y= In x, the y-axis and the lines y = 2 and y = 4
1st u gotta make x the subject
x = e to power of y
A = integral b/w 4 and 2 of ey
= [ln y ] with 4 at the top and 2 at the bottom
= ln 4 - ln 2 units sq
2.. Find the exact volume of the solid formed when the curve y = log<SUB>e</SUB>x is rotated about the y-axis from y = 1 to y = 3
again make x the subject
x= e to power of y
v= pie * integral of x(sqd) (*=times)
= pie * integral of e2y with 3 at top and 2 at bottom
=pie *[1/2 e 2y] b/w 3 and 2 (thats e to power 2y)
= pie * 1/2 ( e 6 - e 4)
i hope that was helpful...its sooo hard doin maths on a comp
good luk
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1st u gotta make x the subject
x = e to power of y
A = integral b/w 4 and 2 of ey
= [ln y ] with 4 at the top and 2 at the bottom
= ln 4 - ln 2 units sq
2.. Find the exact volume of the solid formed when the curve y = log<SUB>e</SUB>x is rotated about the y-axis from y = 1 to y = 3
again make x the subject
x= e to power of y
v= pie * integral of x(sqd) (*=times)
= pie * integral of e2y with 3 at top and 2 at bottom
=pie *[1/2 e 2y] b/w 3 and 2 (thats e to power 2y)
= pie * 1/2 ( e 6 - e 4)
i hope that was helpful...its sooo hard doin maths on a comp
good luk
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SoulSearcher
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When you integrate e2y, you get e2y/2 + C. The half has simply been taken out of the integral to make the calculations easier.
P
pLuvia
Guest
When you integrate x=e2y, it equals to 1/2e2y
P
pLuvia
Guest
int.{-2 to 2}(1-e-x)dx
=[x+e-x]{-2 to 2}
=(2+e-2)-(-2+e2)
=4+e-2-e2
=[x+e-x]{-2 to 2}
=(2+e-2)-(-2+e2)
=4+e-2-e2
