warreneelroy
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- Sep 14, 2005
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the problem is 9x=(y)^(2)+18, 2<x<6.
Find the area of a surface of Revolution
- Thread starter warreneelroy
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warreneelroy
New member
- Joined
- Sep 14, 2005
- Messages
- 2
find the area of a surface of Revolution
you are supposed to find the area of the surface obtained by rotating the curve about the x-axis.
using the formula S= (intergral){a<=x<=b)*(2pi*y)*(sqrt(1+(f '(x))^2)dx
starting with the given, rearrange to: y=3sqrt(x-2), differentiate to get:
f '(x)= 3/(2sqrt(x-2))
so S=integral(2 to 6) (2pi*3sqrt(x-2))*(sqrt(1+9/4(x-2)))dx
The correct answer to this problem is 49pi.
I cannot get this.
thanks for your help!
you are supposed to find the area of the surface obtained by rotating the curve about the x-axis.
using the formula S= (intergral){a<=x<=b)*(2pi*y)*(sqrt(1+(f '(x))^2)dx
starting with the given, rearrange to: y=3sqrt(x-2), differentiate to get:
f '(x)= 3/(2sqrt(x-2))
so S=integral(2 to 6) (2pi*3sqrt(x-2))*(sqrt(1+9/4(x-2)))dx
The correct answer to this problem is 49pi.
I cannot get this.
thanks for your help!