Objective: Set the formula for the change of variables in triple integrals.
Planar transformation in tridimensional space
a.The change of variables in triple integrals works the same way as in double integrals. We consider a transformation from a tridimensional space (u,v.w) to a tridimensional space (x,y,z). We define the Jacobian in the (u,v,w) space. Then we establish the formula for the triple integral defined in (u,v,w).
Suppose that G i s a region in the uvww space transformed in another region D in the xyz space by a C¹ transformation by the transformation T so that T(u,v,w) = (x,y,z) where x = g(u,v,w) y = h(u,v.w) z = k(u,v,w).
Any function F(x.y,z) defined on D can be thought of another function H(u,v. w) defined G such that:
F(x.y.z) = F(g(u,v,w), h(u,v,w), k(u,v,w)) = H(u,v,w), Now let's define the Jacobian in a tridimensional space (u,v,w
Jacobian for three variables. Definition
The jacobian J(u,v,w) for three variables is defined as follows:
This is the same as:
TheoremChange of Variables for Triple Integrals
Let T(u, v, w) = (x, y, z) where
x = g(u, v, w),
y = h(u, v, w), and
z = k(u, v, w), be a one-to-one
C1 transformation, with a nonzero Jacobian, that maps the region
G in the uvw-space into the region R in the
xyz-space. As in the two-dimensional case, if F is continuous on
R, then
∫∫∫R F(x,y,z) dV
=
∫∫∫G
F(g(u,v,w), h(u,v,w), k(u,v,w))
|
∂(x,y,z)
∂(u,v,w)
|
du dv dw
=
∫∫∫G
H(u,v,w) |J(u,v,w)| du dv dw.
Example
Obtaining Formulas in Triple Integrals for Cylindrical and Spherical Coordinates
Derive the formula in triple integrals for
- cylindrical and
- spherical coordinates.
Solution
Let's apply the formula for change of variables in triple integrals:
∫∫∫R F(x,y,z) dV
=
∫∫∫G H(u,v,w) |J(u,v,w)| du dv dw
In cylindrical coordinates it becomes:
∫∫∫D f(x,y,z) dV
=
∫∫∫G
f(r cosθ, r sinθ, z)
|J(r,θ,z)|
dr dθ dz
J(
r, θ,
z) =
|
| ∂x/∂r | ∂x/∂θ | ∂x/∂z |
| ∂y/∂r | ∂y/∂θ | ∂y/∂z |
| ∂z/∂r | ∂z/∂θ | ∂z/∂z |
|
=
|
| cos θ | −r sin θ | 0 |
| sin θ | r cos θ | 0 |
| 0 | 0 | 1 |
|
= r cos
2θ + r sin
2θ
= r (cos
2θ + sin
2θ)
= r.
We know that r ≥ 0, so |J(r,θ,z)| = r.
Then the triple integral becomes by substituting the value of the jacobian:
∫∫∫D f(x,y,z) dV
=
∫∫∫G
f(r cos θ, r sin θ, z) r dr dθ dz.
b. Let's find the formula for the triple integral in spherical coordinates by applying the same process.
For spherical coordinates, the transformation is
T(ρ, θ, φ) = (x, y, z)
from the Cartesian pθφ-plane to the Cartesian
xyz-plane .
Here
x = ρ sin φ cos θ, y = ρ sin φ sin θ,
and
z = ρ cos φ. The expression of the triple integral can be written as:
∫∫∫
D f(x,y,z) dV
=
∫∫∫
G
f(ρ sinφ cosθ,
ρ sinφ sinθ,
ρ cosφ)
|J(ρ,θ,φ)|
dρ dφ dθ. Let's calculate the jacobian.
First write it as a quotient of partial derivatives:
J(ρ,θ,φ)
=
∂(x,y,z)
∂(ρ,θ,φ)
Now write it as a determinant:
J(ρ,θ,φ)
=
|
| ∂x/∂ρ |
∂x/∂θ |
∂x/∂φ |
| ∂y/∂ρ |
∂y/∂θ |
∂y/∂φ |
| ∂z/∂ρ |
∂z/∂θ |
∂z/∂φ |
|
Substitute the partial derivatives:
J(ρ,θ,φ)
=
|
| sinφ cosθ |
-ρ sinφ sinθ |
ρ cosφ cosθ |
| sinφ sinθ |
ρ sinφ cosθ |
ρ cosφ sinθ |
| cosφ |
0 |
-ρ sinφ |
|
Expand along the third row:
J
=
cosφ
|
| -ρ sinφ sinθ |
ρ cosφ cosθ |
| ρ sinφ cosθ |
ρ cosφ sinθ |
|
-
ρ sinφ
|
| sinφ cosθ |
-ρ sinφ sinθ |
| sinφ sinθ |
ρ sinφ cosθ |
|
Calculate the first determinant:
(-ρ sinφ sinθ)(ρ cosφ sinθ)
-
(ρ cosφ cosθ)(ρ sinφ cosθ)
=
-ρ2 sinφ cosφ sin2θ
-
ρ2 sinφ cosφ cos2θ
=
-ρ2 sinφ cosφ
Calculate the second determinant:
(sinφ cosθ)(ρ sinφ cosθ)
-
(-ρ sinφ sinθ)(sinφ sinθ)
=
ρ sin2φ cos2θ
+
ρ sin2φ sin2θ
=
ρ sin2φ
Therefore,
J
=
cosφ(-ρ2 sinφ cosφ)
-
ρ sinφ(ρ sin2φ)
J
=
-ρ2 sinφ cos2φ
-
ρ2 sin3φ
J
=
-ρ2 sinφ(cos2φ + sin2φ)
J(ρ,θ,φ)
=
-ρ2 sinφ
So,
|J(ρ,θ,φ)| = ρ2 sinφ
Let's substitute the jacobian in the expression of the integral. Then the triple integral becomes:
∫∫∫D f(x,y,z) dV
=
∫∫∫G
f(ρ sinφ cosθ, ρ sinφ sinθ, ρ cosφ)
ρ2 sinφ dρ dφ dθ.
. 
