Post on 01-Feb-2016
One Dimensional Steady Flow One Dimensional Steady Flow
1- Euler’s Equation (Equation of Motion)
Fluid Dynamics
θ
P
VP+dP
W= Ads
V+dV
Z
dZ
1
2
ds
Applying Newton’s law:
∑ F = mass x acceleration
PA – (P+dP)A - Ads Cos = Ads V
ds
dV
ds
dzcosθ
dsdV
PA – (P+dP)A - Ads = AdsV dsdz
Dividing by Ads we obtain:
– – =dsdz
dsdP
γ1
g
1ds
22Vd
0dzg2
2Vd
γdP
Euler's Equation
2 -Bernoulli’s Equation 2 -Bernoulli’s Equation
From Euler’s Equation: for incompressible, one-dimensional by integration and take and g as constants.
Constantdzg2
2Vd
γdP
Hzg2
V
γP 2
Where: H is constant and termed as the total head Where: H is constant and termed as the total head
• Steady flow: The Bernoulli equation can also be written between any two points on the same streamline as
DATUM
z2z1
p2/g
v22/2g
p1/g
v12/2g
21
TOTAL HEAD
2
222
1
211 z
g2
V
γ
Pz
g2
V
γ
P
Hydraulic Grade Line (HGL) and Energy Grade Line (EGL)
• Each term in this equation has the dimension of length and represents some kind of “head” of a flowing fluid as follows:
• P/ρg is the pressure head; it represents the height of a fluid column that produces the static pressure P.
• v2/2g is the velocity head; it represents the elevation needed for a fluid to reach the velocity v during frictionless free fall.
• z is the elevation head; it represents the potential energy of the fluid.
2
.2
P vz H const
g g
In an idealized Bernoulli-type flow, EGL is horizontal and its height remains constant. But this is not the case for HGL when the flow velocity varies along the flow.
Static, Dynamic, and Stagnation Pressures
• The sum of the static, dynamic, and hydrostatic pressures is called the total pressure. Therefore, the Bernoulli equation states that the total pressure along a streamline is constant.
• The sum of the static and dynamic pressures is called the stagnation pressure, and it is expressed as
2
( )2stag
vP P kPa
Measurement of static and dynamic pressure
• When static and stagnation pressures are measured at a specified location, the fluid velocity at that location can be calculated from:
2
211
2
pvp
)pp(2
v 121
Pitot- Static Tube
Bernoulli’s equation is assumed to hold along the center streamlineBernoulli’s equation is assumed to hold along the center streamline
If the tube is horizontal, z1 = z2 and we can solve for V2:
We relate the velocities from the incompressible continuity relation
Example(8-1)
Water is flowing from a hose attached to a water main at 400 kPa gage. A child places his thumb to cover most of the hose outlet, increasing the pressure upstream of his thumb, causing a thin jet of high-speed water to emerge. If the hose is held upward, what is the maximum height that the jet could achieve?
Solution
2 21
2 3 2
400 1000 / 1 . /
(1000 / )(9.81 / ) 1 1
40.8
atmP P kPa N m kg m sz
g kg m m s kPa N
m
2
222
1
211
22gz
vpmgz
vpm
oo
Z1 = 0.0, v1 = 0.0, v2 = 0.0, p2 = patm
A piezometer and a pitot tube are tapped into a horizontal water pipe, to measure static and stagnation (static + dynamic) pressures. For the indicated water column heights, determine the velocity at the center of the pipe.
Example(8-2)
Solution• P1 = ρg(h1+h2)
• P2 = ρg(h1+h2 +h3)2 2
1 1 2 21 22 2
P v P vz z
g g g g
21 2 1
2
v P P
g g
Where z1 =0.0, v2 = 0.0 and z2 =0.0
21 2 3 1 21 2 1
3
( )
2
g h h h h hv P Ph
g g g
21 32 2(9,81 / )(0.12 ) 1.53 /v gh m s m m s
Applications of Bernoulli’s Equation
1 -Flow through Orifice:
Fluid
2
H
21
1
loss2
222
1
2
1 hzg2
V
γ
Pz
g2
V
γ
P
E1 = E2 + Losses1-2 H.G.L.
1hloss
A1V1 = A2V 2
A1<< A2 V1 = 0
From Continuity Equation Neglect hloss
2
222
11 z
g2
V
γ
Pz
γ
P
H g2V2
g2
V)z(z
γ
PP 22
2121
g2
VH
22
or
or
For ideal case without losses
Q = A2V2 H g2AVAQ 222 or
H g2ACQ d actual
H g2AQ ltheoretica
Where, Cd (Coefficient of discharge can be determined from calibration
Cd about 0.6
Cd =1 Hloss= 0or
2 -Venturi meter:
Is used to measure the flow rate for Liquid and gases.
1
2
3
throat
z1z2
z3Datum
section
section
ltheoretica
actuald Q
QC
1 2 3
P
P VV
Flow
Q = A1V1 = A2V 2= A3V 3
dA
21
1
loss2
222
1
2
1 hzg2
V
γ
Pz
g2
V
γ
P
)z(h)z(hg2
VV2211
21
22
Applying Bernoulli’s equation between sections (1) and (2)
E1 = E2 + Losses1-2
L1L2
Hg2
VV 21
22
A1V1 = A2V 2 21
21 V
A
AV
Neglect hloss
Hg2A
A1V
21
222
2
Hg2AA
AV
22
21
12
Hg2AA
AAQ
22
21
12
gH2AA
AACQ
22
21
12
d
Cd can be estimated experimentally by calibration and its value is about 0.96.
Hg2VA
AV 2
2
2
1
222
Then
To measure the total head H experimentally:
1 2 3
P
P VV
Flow dA
RL
R’L’
y y
h h
By using the U tube manometer.
PL = P1 + 1h + 1y
1γ
2γ
PR = P2 + 1h + 2y
PL = PR
P1 + 1h + 1y = P2 + 1h + 2y
P1- P2 = y (2 - 1)
1 H = y (2 - 1)
1
γ
γy
γ
)γ(γyH
1
2
1
12 gH2AA
AACQ
22
21
12
d
Example:
A nozzle as shown in figure has the following data:Q = 60 liter/sec. of water, d1 = 25 Cm., d2 = 15 Cm. and P1 = 1 bar. Find P2. Neglect lossesSolution: 1
2
Applying Bernoulli’s equation between sections (1) and (2)
2
222
1
2
1 zg2
V
γ
Pz
g2
V
γ
P 1
E1 = E2
Assuming no losses(1)
Q = A1V1 = A2V 2
2
22
1
21 V
4
πdV
4
πd60 1.222
(0.25)π
10604V
2
3
1
m/sec.
398.3)15(0.π
10604V
2
3
2
m/sec.
Substituting in (1) P2 = 0.9486 bar
Example:
A nozzle as shown in figure has the following data: For water, d1 = 20 Cm., d2 = 5 Cm., z1 = 5 m, z2 = 3 m, P1 = 5 bar, V1 = 1 m/sec. Find P2 and V2.
Solution: 1
2
Applying Bernoulli’s equation between sections (1) and (2)
2
222
1
2
1 zg2
V
γ
Pz
g2
V
γ
P 1
)1(
z1
z2
P2 = 3.9 bar
and
V2 = 1600 Cm./sec.
Q = A1V1 = A2V 2
3 -Orifice meter: Is used to measure the flow rate for Liquid and gases in a pipe.
2
d d/2
d1 do
Hg2AA
ACV
22
21
12
Hg2AA
AACQ
22
21
12
1
H
Applying Bernoulli’s and Continuity equations:
Flow
γ
)Pg(P2
AA
C1
CCAVAQ 21
2
1
22c
vc222
Orifice meter
Cc : is the area coefficient.
.theo
.actc A
AC
Cv : is the velocity coefficient.
.theo
.actv V
VC
< 1
<1
vc.theo
.actd CC
Q
QC 4
1
o
d
dd
1
CC
d1 do
Vena Contracta: vcd CCC
Where:
Z
yZ1
Z2
V1If V1 = 3 m/sec.
V2 = 10 m/sec.
z1 = ?? m.
z = 2 m.
z2 = 1 m.
y = ?? m.
Find:
2
222
1
2
1 zg2
V
γ
Pz
g2
V
γ
P 1
P1 = P2 = 0 z1 =( z + y ) m.
4 -Open Channel Flow
y = 3.64 m. and
V2
x
y
H
1
1
2
2
5 -Notches and Weir:
g2
Vh)y(x
g2
Vyx
2221
g2
Vh2V
2
2
1
g
b
hδh
Area of strip = b. δh
Velocity through the strip = gh2
Discharge through the strip = δh gh2
Integrating from h = 0 to h = H
H
0
th dhbhg2Q2
1
B
b2
3
Hg2B3
2Q th
If b = B = constant
2
θ
hδh
If V- Notch
25
H2
θtang2
15
8Q th