The Manning equation can be written for a rectangular open channel as Q = S ( B H ) 5 / 3 n ( B + 2 H ) 2 / 3 where Q = flow [ m 3 / s ] , S = slope [ m / m ] , H = depth [ m ] , and n = the Manning roughness coefficient. Develop a fixed-point iteration scheme to solve this equation for H given Q = 5 , S = 0.0002 , B = 20 , and n = 0.03 . Prove that your scheme converges for all initial guesses greater than or equal to zero.
The Manning equation can be written for a rectangular open channel as Q = S ( B H ) 5 / 3 n ( B + 2 H ) 2 / 3 where Q = flow [ m 3 / s ] , S = slope [ m / m ] , H = depth [ m ] , and n = the Manning roughness coefficient. Develop a fixed-point iteration scheme to solve this equation for H given Q = 5 , S = 0.0002 , B = 20 , and n = 0.03 . Prove that your scheme converges for all initial guesses greater than or equal to zero.
The Manning equation can be written for a rectangular open channel as
Q
=
S
(
B
H
)
5
/
3
n
(
B
+
2
H
)
2
/
3
where
Q
=
flow
[
m
3
/
s
]
,
S
=
slope
[
m
/
m
]
,
H
=
depth
[
m
]
,
and
n
=
the Manning roughness coefficient. Develop a fixed-point iteration scheme to solve this equation for
H
given
Q
=
5
,
S
=
0.0002
,
B
=
20
,
and
n
=
0.03
. Prove that your scheme converges for all initial guesses greater than or equal to zero.
In Problems 1-16 the indicated function y₁(x) is a solution of the
given differential equation. Use reduction of order or formula (5), as
instructed, to find a second solution y2(x).
1. y" - 4y' + 4y = 0; yı
=
e2x
-
Problem 3: For a short time, the 300-kg roller-coaster car with passengers is traveling along
the spiral track at a constant speed of v = 8 m/s with r = 15 m. If the track descends d =
6 m for every full revolution, 0 = 2π rad, determine the magnitudes of the components of
force which the track exerts on the car in the r, 0, and z directions. Neglect the size of the car.
Bonus: Develop a MATLAB program to solve for this problem.
Elementary Statistics: Picturing the World (7th Edition)
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