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In [[calculus]], solids are formed by rotating a curve around an axis and integrating to find the volume.  Typically the [[integration]] is of slices cut vertically to the axis of the rotation that formed the solid.  Those slices are then integrated from one end of the solid to the other.
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In [[calculus]], '''solids''' are formed by rotating a curve around an axis and integrating to find the volume.  Typically the [[integration]] is of slices cut vertically to the axis of the rotation that formed the solid.  Those slices are then integrated from one end of the solid to the other.
    
== Example ==
 
== Example ==
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Consider the region in the first quadrant that has an upper bound of <math>y = \sqrt 2</math> and a lower bound of <big><math>y = (\sec{x})(\tan{x})</math></big>, and bounded on the left side by the ''y-axis''.  Find the volume of the solid formed by rotating the region about the line <math>y = \sqrt 2</math>.
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Consider the region in the first quadrant that has an upper bound of <math>y = \sqrt 2</math> and a lower bound of <big><math>y = (\sec{x})\,(\tan{x})</math></big>, and bounded on the left side by the ''y-axis''.  Find the volume of the solid formed by rotating the region about the line <math>y = \sqrt 2</math>.
    
[[Calculus]] provides an elegant way to determine the volume of this solid.  First, find where the curves intersect in order to ascertain the end-point of the integration.  The boundaries intersect where
 
[[Calculus]] provides an elegant way to determine the volume of this solid.  First, find where the curves intersect in order to ascertain the end-point of the integration.  The boundaries intersect where
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on the other side.
 
on the other side.
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We are not ready to find the volume.  Note first that:
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We are now ready to find the volume.  Note first that:
    
:<math> dV = {\pi}r^2dx</math>
 
:<math> dV = {\pi}r^2dx</math>
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:<math>V = \int_0^\frac{\pi}{4} {\pi}r^2\,dx</math>
 
:<math>V = \int_0^\frac{\pi}{4} {\pi}r^2\,dx</math>
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[[category:mathematics]]
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The next insight is to express ''r'' in terms of ''x''.  The variable ''r'' is the distance of the boundary from the axis about which it is rotated:
[[category:calculus]]
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:<math>r = \sqrt 2 - \sec{x}\,\tan{x}</math>
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The volume then becomes:
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:<math>V = \int_0^\frac{\pi}{4} {\pi}(\sqrt 2 - \sec{x}\,\tan{x})^2\,dx</math>
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:<math>V = \int_0^\frac{\pi}{4} {\pi}(2 - 2\sqrt2\sec{x}\,\tan{x} + (\sec{x}\,\tan{x})^2\,dx</math>
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The only challenging part of this [[integral]] is the last term, which must be [[integrated by parts]]:
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:<math>\int_0^\frac{\pi}{4}(\sec{x}\,\tan{x})^2\,dx</math>
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:<math> = \int_0^\frac{\pi}{4}\sin{x}\,(\frac{\sin{x}}{\cos^4{x}})\,dx</math>
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:<math> = \frac{\sin{x}}{3\cos^3{x}} - \int_0^\frac{\pi}{4}\frac{\sec^2{x}}{3},\,dx</math>
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Recall that:
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:<big><math>\int\sec^2{x}\,dx = \tan{x}</math></big>
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and the solution to the overall integral is easy to obtain.
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[[Category:Mathematics]]
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[[Category:Calculus]]
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