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Surface Area, Surface Integral Examples
Written by Victoria Kala
vtkala@math.ucsb.edu
SH 6432u Office Hours: R 12:30 − 1:30pm
Last updated 6/1/2016
The first example demonstrates how to find the surface area of a given surface. The second example demon-
strates how to find the surface integral of a given vector field over a surface.
1. Find the surface area of the portion of the sphere of radius 4 that lies inside the cylinder x2 +y2 = 12
and above the xy-plane.
Solution. We need to evaluate ZZ
A= D||ru×rv||dA.
We are asked to find the surface area of a portion of the sphere, this is the surface we need to
parametrize. The parametrization vector is given by
r(x,y,z) = hx,y,zi.
In spherical coordinates, x = ρcosθsinφ,y = ρsinθsinφ,z = ρcosφ. Plug these into our parametriza-
tion vector:
r(ρ,θ,φ) = hρcosθsinφ,ρsinθsinφ,ρcosφi.
Right now our parametrization is a function of three variables, we need to narrow it down to two
variables. We are given one more piece of information about the sphere: it has radius 4. This means
ρ = 4. Plug this in:
r(θ,φ) = h4cosθsinφ,4sinθsinφ,4cosφi.
Now we need to find the range of θ and φ. Since we are going all the way around the cylinder and
sphere, 0 ≤ θ ≤ 2π. To find the range of φ, we need to find where the cylinder and sphere intersect.
The equation of the sphere is
x2 +y2 +z2 = 16.
2 2
The equation of the cylinder is x +y = 12. Plug this into the equation of the sphere:
12+z2 =16 ⇒ z2=4 ⇒ z=2.
In spherical coordinates, z = ρcosφ, but we know that ρ = 4, so z = 4cosφ. Therefore
z = 2 ⇒ 4cosφ=2 ⇒ cosφ=1 ⇒ φ=π,
2 3
and we have that 0 ≤ φ ≤ π. Therefore
3
A=Z 2πZ π/3||r ×r ||dφdθ.
θ φ
0 0
Now find rθ ×rφ:
rθ = h−4sinθsinφ,4cosθsinφ,0i
rφ = h4cosθcosφ,4sinθcosφ,−4sinφi
i j k
2 2
rθ ×rφ =
−4sinθsinφ 4cosθsinφ 0
= h−16cosθsin φ,−16sinθsin φ,−16sinφcosφi
4cosθcosφ 4sinθcosφ −4sinφ
1
Find ||rθ × rφ||:
q 2 2 2 2 2
||r ×r || = (−16cosθsin φ) +(−16sinθsin φ) +(−16sinφcosφ) =... = 16sinφ
θ φ
Therefore
Z 2π Z π/3 Z 2π Z π/3
π/3
A= ||r ×r ||dφdθ = 16sinφdφdθ = 2π(−16cosφ)
=16π.
θ φ
0 0 0 0 0
RR 2 2
2. Set up the integral S F·dS where F = yj−zk and S is the surface given by the paraboloid y = x +z
between y = 0 and y = 1. Assume S has positive orientation.
Solution. We need to evaluate ZZ ZZ
S F·dS= DF·ndA
where D the range of the parameters in dA.
Weneed to parametrize the surface. The parametrization vector is given by
r(x,y,z) = hx,y,zi.
We need to narrow this down to dependence on two variables. We are given that the surface is
2 2
y = x +z . Plug this into the paramterization vector:
2 2
r(x,z) = hx,x +z ,zi.
Find r ×r :
x z
rx = h1,2x,0i
rz = h0,2z,1i
i j k
rx ×rz = 1 2x 0 =h2x,−1,2xi.
0 2z 1
Then
ZZ F·ndA=ZZ h0,y,−zi·h2x,−1,2zidA=ZZ (−y−2z2)dA=ZZ (−(x2+z2)−2z2)dA
D D D D
Note that we have to plug in y into the integral since we will be integrating over x and z.
Wecancertainly find bounds for this integral in Cartesian coordinates, but it will be simpler to switch
our integral into cylindrical coordinates. In cylindrical coordinates
x=rcosθ,z =rsinθ, 0 ≤ r ≤ 1,0 ≤ θ ≤ 2π.
2 2
To get the bounds for r, use y = x +z and y = 1. Therefore
ZZ ZZ 2 2 2 Z 2π Z 1 2 2 2
DF·ndA= D(−(x +z )−2z )dA= 0 0 (−r −2r sin θ)drdθ.
2
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