24 double integral over polar coordinate

Double Integrals Over Polar Equations

Given a domain D defined by r1(θ) and r2(θ) where r1
< r2 and A < θ < B as shown in the figure,
D = {(r, θ)| r1 < r < r2, A < θ < B}.
Y
Z
A
B
X
D
r2(θ)
r1(θ)

Y
Z
A
B
X
Partition the xy-plane
with Δr and Δθ.
D
r2(θ)
r1(θ)
< r2 and A < θ < B as shown in the figure,
D = {(r, θ)| r1 < r < r2, A < θ < B}.

< r2 and A < θ < B as shown in the figure.
…
Y
Z
A
B
X
with Δr and Δθ.
D
r2(θ)
r1(θ)

…
Δr
Y
Z
A
B
X
with Δr and Δθ.
D
r2(θ)
r1(θ)

…
Δθ
Δr
Y
Z
A
B
X
with Δr and Δθ.
D
r2(θ)
r1(θ)

arbitrary ΔrΔθ–tile as shown and let (r*
, θ*
) be an
arbitrary point in the tile and Δ A be area of the tile,
then ΔA ≈ r*
ΔrΔθ.
…
Δθ
Δr
(r*, θ*)
r*
Y
Z
A
B
X
with Δr and Δθ. Select an
D
r2(θ)
r1(θ)

arbitrary ΔrΔθ–tile as shown and let (r*
, θ*
) be an
arbitrary point in the tile and Δ A be area of the tile,
then ΔA ≈ r*
ΔrΔθ.
(HW. Why? In fact ΔA = r*
ΔrΔθ if r*
is the center.)
…
Δθ
Δr
(r*, θ*)
r*
Y
Z
A
B
X
with Δr and Δθ. Select an
D
r2(θ)
r1(θ)

Let z = f(r, θ) ≥ 0 be a function over D.
Y
Z
A
B
X
z = f(r, θ)
D
r2(θ)
r1(θ)

The volume of the column over
one tile having z as the cover is
ΔV ≈ f(r*
, θ*
) r*
ΔrΔθ.
Y
A
B
X
D
Z
z = f(r, θ)
r2(θ)
r1(θ)

ΔV ≈ f(r*
, θ*
) r*
ΔrΔθ.
lim Σ(ΔV)
Δr,Δθ0
Y
A
B
X
D
Z
Hence the volume V over D is
the sum of all
z = f(r, θ)
r2(θ)
r1(θ)

ΔV ≈ f(r*
, θ*
) r*
ΔrΔθ.
lim Σ(ΔV) = lim Σf(r*
, θ*
)r*
ΔrΔθ
= ∫∫f(r, θ)dA.
Δr,Δθ0 Δr,Δθ0
ΔA
Y
A
B
X
D
D
Z
the sum of all
z = f(r, θ)
r2(θ)
r1(θ)

ΔV ≈ f(r*
, θ*
) r*
ΔrΔθ.
, θ*
)r*
ΔrΔθ
= ∫∫f(r, θ)dA.
∫ ∫ f(r, θ) rdrdθ, which is V,
r=r1(θ)
r2(θ)
θ=A
B
ΔA
Y
A
B
X
D
D
Z
the sum of all
z = f(r, θ)
in term of drdθ, we have
r2(θ)
r1(θ)
∫∫f(r, θ)dA =
D

ΔV ≈ f(r*
, θ*
) r*
ΔrΔθ.
, θ*
)r*
ΔrΔθ
= ∫∫f(r, θ)dA.
∫ ∫ f(r, θ) rdrdθ, which is V,
r=r1(θ)
r2(θ)
θ=A
B
ΔA
Y
A
B
X
D
D
Z
the sum of all
z = f(r, θ)
in term of drdθ, we have
= volume of the solid with D = {r1 < r < r2, A < θ <B}.
r2(θ)
r1(θ)
∫∫f(r, θ)dA =
D

Cylindrical Coordinates
The cylindrical coordinate system is the combination
of using polar coordinates for points in the xy–plane
with z as the 3rd
coordinate.

Example A. a. Plot the point (3,120o
, 4)
in cylindrical coordinate. Convert it to
rectangular coordinate.
with z as the 3rd
coordinate.

, 4)
3
120o
x
y
z
with z as the 3rd
coordinate.

, 4)
3
120o
4
x
y
z
(3, 120o
, 4)
with z as the 3rd
coordinate.

, 4)
3
120o
4
x
y
z
(3, 120o
, 4)
x = 3cos(120o
) = –3/2
y = 3sin(120o
) = √3
Hence the point is (–3/2, √3, 4)
with z as the 3rd
coordinate.

, 4)
3
120o
4
x
y
z
(3, 120o
, 4)
x = 3cos(120o
) = –3/2
y = 3sin(120o
) = √3
b. Convert (3, –3, 1) into to
cylindrical coordinate.
with z as the 3rd
coordinate.

, 4)
3
120o
4
x
y
z
(3, 120o
, 4)
x = 3cos(120o
) = –3/2
y = 3sin(120o
) = √3
θ = 315o
, r = √9 + 9 = √18
Hence the point is (√18, 315o
,
1) the cylindrical coordinate.
with z as the 3rd
coordinate.

, 4)
3
120o
4
x
y
z
(3, 120o
, 4)
x = 3cos(120o
) = –3/2
y = 3sin(120o
) = √3
(√18, 315o
, 0)
θ = 315o
, r = √9 + 9 = √18
,
1) the cylindrical coordinate. x
y
z
with z as the 3rd
coordinate.

, 4)
3
120o
4
x
y
z
(3, 120o
, 4)
x = 3cos(120o
) = –3/2
y = 3sin(120o
) = √3
(√18, 315o
, 0)
θ = 315o
, r = √9 + 9 = √18
,
1) the cylindrical coordinate. x
y
z
(√18, 315o
, 1) = (3, –3, 1)
1
with z as the 3rd
coordinate.

The constant equations
r = k describes cylinders
of radius k, thus the name
"cylindrical coordinate".

Example B. a. Sketch r = 2
2
x
y
z

x
y
Example B. a. Sketch r = 2
2
θ = k describes the
vertical plane through the
origin, at the angle k with
x-axis.
b. Sketch θ = 3π/4
3π/4
z
x
y
z

Graphs may be given in the cylindrical coordinate using
polar coordinates for points in the domain in the xy–
plane and z = f(r, θ). Here are some examples of
cylindrical graphs.

cylindrical graphs.
Example C. a. z = sin(r),
D = {0 ≤ r ≤ π, 0 ≤ θ ≤ 2π}
→ 0 ≤ z ≤ 1

cylindrical graphs.
D = {0 ≤ r ≤ π, 0 ≤ θ ≤ 2π}
→ 0 ≤ z ≤ 2 π
x
y
z = sin(r)

cylindrical graphs.
D = {0 ≤ r ≤ π, 0 ≤ θ ≤ 2π}
→ 0 ≤ z ≤ 2 π
x
y
z = sin(r)
b. z = θ sin(r),
D = {0 ≤ r ≤ π, 0 ≤ θ ≤ 2π}
→ 0 ≤ z ≤ 2 π

cylindrical graphs.
D = {0 ≤ r ≤ π, 0 ≤ θ ≤ 2π}
→ 0 ≤ z ≤ 2 π
x
y
z = sin(r)
x y
z = θsin(r)
b. z = θ sin(r),
D = {0 ≤ r ≤ π, 0 ≤ θ ≤ 2π}
→ 0 ≤ z ≤ 2 π

D D
Let’s set up the volume calculation for both solids.
I II

The base D
D D
r = π
We note that D = {0 ≤ r ≤ π, 0 ≤ θ ≤ 2π}.
I II

∫ ∫ f(r, θ) rdrdθ
r=r1(θ)
r2(θ)
θ=A
B
Vol(I) =
The base D
D D
r = π
We note that D = {0 ≤ r ≤ π, 0 ≤ θ ≤ 2π}. Using the
formula
I II
V =
Vol(II) =
, their volumes are

r=r1(θ)
r2(θ)
θ=A
B
Vol(I) =
The base D
D D
r = π
formula
I II
V =
∫ ∫ sin(r) r drdθ,
r=0
π
θ=0
2π
Vol(II) =
, their volumes are

r=r1(θ)
r2(θ)
θ=A
B
Vol(I) =
The base D
D D
r = π
formula
I II
V =
∫ ∫ sin(r) r drdθ,
r=0
π
θ=0
2π
Vol(II) =∫ ∫ θ sin(r) r drdθ. (HW: Finish the problems.)
r=0
π
θ=0
2π
, their volumes are

Example D. Let z = f(r, θ) = cos(θ) over the domain
D = {(r, θ)| r = sin(θ) where 0 ≤ θ ≤ π/2}.
Find the volume of the solid defined by z over D.

x
1
D :
r=sin(θ)
x

= ∫ ∫ cos(θ)r drdθ
r=0θ=0
Convert the integral to
iterated integral, we get
∫∫cos(θ)dA
D
r=sin(θ)π/2
x
1
D :
r=sin(θ)

r=0θ=0
∫∫cos(θ)dA
D
r=sin(θ)π/2
= ∫ cos(θ)r2
/2 | dθ
r=0θ=0
π/2 sin(θ)
x
1
x
D :
r=sin(θ)

r=0θ=0
∫∫cos(θ)dA
D
r=sin(θ)π/2
= ∫ cos(θ)r2
/2 | dθ
r=0θ=0
π/2 sin(θ)
= ½ ∫ cos(θ)sin2
(θ)dθ
θ=0
π/2
Change variable
Set u = sin(θ):
= sin3
(θ)/6 | =1/6
θ=0
π/2
x
1
x
D :
r=sin(θ)

Example E. Evaluate
by converting it into polar integral
∫ ∫ (x2
+ y2
)3/2
dydx
y= -√4 – x2
-2
2 y= √4 – x2

Example E. Evaluate
The domain D is:
r=2
∫ ∫ (x2
+ y2
)3/2
dydx
y= -√4 – x2
-2
2 y= √4 – x2

Example E. Evaluate
The domain D is:
r=2
Its defined by the polar
equation r = 2 & r=0
∫ ∫ (x2
+ y2
)3/2
dydx
y= -√4 – x2
-2
2 y= √4 – x2

Example E. Evaluate
The domain D is: (x2
+ y2
)3/2
= (r2
)3/2
= r3
in polar
form.
r=2
∫ ∫ (x2
+ y2
)3/2
dydx
y= -√4 – x2
-2
2 y= √4 – x2

Example E. Evaluate
+ y2
)3/2
= (r2
)3/2
= r3
in polar
form. Hence the integral is
r=2
∫ ∫ r3
* rdrdθ
r= 00
2π r= 2
∫ ∫ (x2
+ y2
)3/2
dydx
y= -√4 – x2
-2
2 y= √4 – x2

Example E. Evaluate
+ y2
)3/2
= (r2
)3/2
= r3
in polar
r=2
∫ ∫ r3
* rdrdθ
r= 00
2π r= 2
∫ r5
/5 | dθ
r= 00
2π
r= 2
=
∫ ∫ (x2
+ y2
)3/2
dydx
y= -√4 – x2
-2
2 y= √4 – x2

Example E. Evaluate
+ y2
)3/2
= (r2
)3/2
= r3
in polar
r=2
∫ ∫ r3
* rdrdθ
r= 00
2π r= 2
∫ r5
/5 | dθ
r= 00
2π
r= 2
=
∫ 32/5 dθ
0
2π
=
∫ ∫ (x2
+ y2
)3/2
dydx
y= -√4 – x2
-2
2 y= √4 – x2

Example E. Evaluate
+ y2
)3/2
= (r2
)3/2
= r3
in polar
∫ ∫ (x2
+ y2
)3/2
dydx
y= -√4 – x2
-2
2 y= √4 – x2
r=2
∫ ∫ r3
* rdrdθ
r= 00
2π r= 2
∫ r5
/5 | dθ
r= 00
2π
r= 2
=
∫ 32/5 dθ
0
2π
=
= 64π/5

For more integration examples of changing from
dxdy form to the polar rdrdθr –form may be found at
the following link:
http://ltcconline.net/greenl/courses/202/multipleIntegration/d
oublePolarIntegration.htm

24 double integral over polar coordinate

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