flow measurement in closed conduit closed ......flow measurement in closed conduit closed conduit...
TRANSCRIPT
FLOW MEASUREMENT IN CLOSED CONDUIT
Closed conduit flow:
It is a flow with boundaries and runs full. As in the case of open channel flow, the surface is not
exposed to atmosphere. Since it runs full it is also called as pressure flow and the conduit in
which it flows as pressure conduit. The examples are water mains, blood flow in arteries, etc.
The measurement of fluid flow is important in applications ranging from measurements of
blood-flow rates in human artery to the measurement of liquid oxygen in a rocket.
The selection of the proper instrument for a particular application is governed by many variables,
including cost. Flow-rate-measurement devices frequently require accurate pressure and
temperature measurements in order to calculate the output of the instrument.
The most widely used flow metering principle involves placing a fixed area flow restriction of
some type in the pipe or duct carrying the fluid. This flow restriction causes a pressure drop that
varies with the flow rate.
Thus, measurement of the pressure drop by means of a suitable differential-pressure pick up
allows flow rate measurement. These types meters are termed as obstruction flow meters.
Each of the flow measurement devices inherently has its own advantages and disadvantages.
Some of those instruments are:
Venturi Meter
1797 - Venturi presented his work on the Venturi tube
1887 - first commercial Venturi tube produced by Clemens Herschel
Three important portions
• Converging cone
• Throat
• Diverging cone
Fig. 1 Different segments of Venturi meter
In the venturi meter, the fluid is accelerated through a converging cone of angle 15-20° and the
pressure difference between the upstream side of the cone and the throat is measured and
provides the signal for the rate of flow.
Fig. 2 Alignments of Venturimeter
The fluid slows down in a cone with smaller angle (5-7°) where most of the kinetic energy is
converted back to pressure energy. Because of the cone and the gradual reduction in the area
there is no "vena contracta". The flow area is at minimum at the throat.
High pressure and energy recovery makes the venturi meter suitable where only small pressure
heads are available.
Some important points:
Throat to diameter ratio 0.25 to 0.75
Discharge co-efficient – 0.9 to 1.0
Made of cast iron, gun metal, stainless steel
May be circular, square or rectangular
A discharge coefficient Cv- of 0.975 may be taken as standard, but the value varies noticeably at
low values of the Reynolds' number.
� The pressure recovery is much better for the venturi meter than for the orifice plate.
� The venturi tube is suitable for clean, dirty and viscous liquid and some slurry services.
� Pressure loss is low.
� Typical accuracy percent is ±i of full range.
� Required upstream pipe length 5 to 20 diameters.
� Viscosity effect is high
� Relative cost is medium
Most commonly used for liquids, especially water.
Discharge Equation
Fig. 3 Determination of Discharge
Applying Bernoulli’s equation between the points 1 and 2 for inclined manometer,
----------------------------------(1)
Where,
P/γ represents pressure head, V2/2g velocity head and z is the datum head and hL head loss
between the sections 1 and 2.
Ignoring energy or head loss between the sections, the net peizometric head (P/γ +z) is given by
-----------------------------------(2)
For horizontal alignment, z1 = z2.
Consider a venturi meter as shown
in figure. A liquid having a specific
weight of � is flowing through it.
The rate of flow of the liquid is
determined by measuring the
difference in pressure between the
two points 1 and 2 as shown in
figure. Point 1 is just at the
beginning of convergence section
and point 2 is at the throat section of
the venture meter.
The discharge through veturimeter
is determined by applying
conservation of energy and mass as
discussed below.
Lhzg
Vpz
g
Vp+++=++ 2
2
221
2
11
22 γγLhz
g
Vpz
g
Vp+++=++ 2
2
221
2
11
22 γγ
Applying continuity equation, the product of cross sectional area and velocity at any section is
constant, i.e,
A1V1= A2V2 or V1 (D1)2 = V
2 (D2)
2 -----------------------------------(3)
Where A , V and D are the c/s area , mean velocity of flow and diameter at their respective
sections
Writing V1 in terms of V2, i.e., V1= (A2/A1)V2 And replacing V1 in Eq. 2 solving for V2
-------------------------------------(3)
------------------------------------------------(4)
OR
-------------------------------(5)
For horizontzl zlignment,
--------------------------(6)
After obtaining velocity at any section the discharge is determined by applying the continuity
equation, Q= AxV. In this analysis since the energy losses are neglected, the discharge
calculated using the continuity equation is known as theretical discharge (Qth). The theoretical
discharge flowing through the pipe in this case is equal to Q= A2 x V2.
I.e.,
---------------------------------(7)
( )[ ]4
12
212
1
)(2
DD
ppgV
−
−=
γ ( )[ ]4
12
212
1
)(2
DD
ppgV
−
−=
γ
For horizontal alignment,
--------------------------(8)
Considering the energy losses in to consideration, the treoretical discharge equation is to be
multiplied by a coefficient known aas coefficient of discharge (Cd) to get actual discharge
flowing through the venturimeter.
Coefficient of discharge, Cd = Qact / QTh
Therefore, Qact = Cd QTh
Therefore,
OR ---------(9)
Where Δh is the difference in pressure between the section 1 & 2
For horizontal alignment,
OR -- (10)
DETERMINATION OF DIFFERENTIAL PRESSURE, Δh OR (P1 – P2)/γ or h
The differential pressure between the sections can be determined by appluing the manometric
principle.
Applying monometric equation to equate the pressure along A-A in terms of flowing liquid (Fig.
4),
Let flowing liquid RD (specific gravity) be ‘s’ and the manometric liquid with RD ‘sm’.
Fig. 4 Determination of Differential Pressure
P1/γ + sz1 = P2/γ + s(z2-y)+ sm y
P1/γ - P2/γ +s(z1- z2) = sm y-sy
P1/γ - P2/γ +s(z1- z2) = y(sm -s)
P1/γ - P2/γ +(z1- z2) = h = y((sm/s) -1) -------------------------(11)
For horizontal alignment, z1= z2
P1/γ - P2/γ = h = y((sm/s) -1) ---------------------- (12)
Hence, the peizometric head difference, h, depends on the gauge reading ‘y’, the
respective relative densities of flowing fluid and mamometric liquid and
regardless of orientation of venturimeter (horizontal, inclined, vertical).
i.e, h = y((sm/s) -1)
The general discharge equation can be represented as,
-------------------(13)
Where, A1 = Area of c/s at inlet and A2 = Area of c/s at throat
Since friction cannot be eliminated in the venturi meter a permanent loss in pressure occurs
Because of the small angle of divergence in the recovery cone, the permanent pressure loss is
relatively small (about 10% of the venturi differential pa–pb).
Fig. 5 Pressure loss in Venturimeter
Fluid slows down in a cone with smaller angle (5-7°) where most of the kinetic energy is
converted back to pressure energy.
Because of the cone and the gradual reduction in the area there is no "vena contracta".
The flow area is at minimum at the throat
.
High pressure and energy recovery makes the venturi meter suitable where only small pressure
heads are available
A discharge coefficient of 0.975 may be taken as standard, but the value varies noticeably at low
values of the Reynolds' number.
PROBLEM:
An oil of relative density 0.9 flows through a vertical pipie of diameter 10 cm. The flow is
measured by a 20 cm x 10 cm venturimeter. The throat is 10 cm above the inlet section. A
differential U-tube manometer containing mercury is connected to the throat and the inlet. If Cd
is 0.99 what is (a) flow for a manometer reading of 9 cm and (b) the manometer reading for a
flow of 50 l/s ?
Solution:
Given;
Inlet (pipe diameter) = 20 cm
Throat diameter = 10 cm.
Oil specific gravity = 0.9
Cd = 0.99
Discharge Equation,
For,
Oil specific gravity, s = 0.9,
sm = 13.6 (mercury)
h = y((sm/s) -1) = y((13.6/0.9) -1) = 14.11 y A1 = Area of c/s at inlet; A1 = ((π/4)(0.2)
2 = 0.0314 m
2
A2 = Area of c/s at throat A2 = ((π/4)(0.1)2 = 0.007854 m
2
Case (a) y=0.09 m, Q = ?
Substitute in discharge equation,
Qact = 0.99(0.0314)(.007854)((2x9.81x14.11x0.09)/(0.0314
2 -0.007854
2))
0.5
Q = 0.040 m3/s
Q = 40 l/s
Case(b) Q= 50l/s = 0.050 m
3/s ; y= ?
Substituting in the equation,
0.05 = 0.99(0.0314)(.007854)((2x9.81x14.11xy)/(0.0314
2 -0.007854
2))
0.5
Solving for y,
y = 0.14 m = 14 cm.
ORIFICE METER
It consists of a flat orifice plate with a circular hole drilled in it.
The construction is very simple and so cost is low compared to other obstruction meters..
Fig. 6a Salient Features of Orifice Meter
Fig. 6b Salient Features of Orifice Meter
Usually pressure tapping is at a distance D & D/2 for up stream & down stream
Fig. 7 Flow Through Orifice Meter
Reduction of pressure between taps is measured using a differential manometer and it gives a
measure of the discharge.
The pressure recovery is poor compared to the Venturi meter
Types of Orifice Meter
Depending upon the position shape of opening, generally, there are three types orifice meter.
Fig. 8 Types of Orifice Meter
A) Concentric Orifice meter : The centers of the orifice plate and circular opening coincide with
each other . Concentric bore design Used for most clean fluids May clog if fluid contains solids
(B) Eccentric Orifice meter: The centers of the orifice plate and circular opening not coincide
with each other .Eccentric bore design Hole is off-center Used for liquids that contain some
solids
(C) Segmental Orifice meter: The opening is in the form of a segment, like semi circle.
Segmental plate Used for thin slurries but less accurate
Discharge Equation
Expression for discharge through any obstruction flow meter can be theoretically obtained using
the continuity and Bernoulli’s equations together.
Derivation for discharge is same as that of Venturi meter.
Fig. 9 Flow Through Orifice Meter
Applying Benoulli’s equation between the sections, 1 and 2
Consider an orifice meter as shown in figure.
Consider two sections one to upstream and
another to downstream of orifice plate as shown.
As in the case of venture meter, the discharge
through orifice meter is determined using
Bernoulli and continuity equations applied at two
sections considered for the analysis.
Lhzg
Vpz
g
Vp+++=++ 2
2
221
2
11
22 γγLhz
g
Vpz
g
Vp+++=++ 2
2
221
2
11
22 γγ
---------------(14)
Ignoring the energy losses, hL, the equation takes the form as,
----(15)
Now, applying continuity equation, A1V1= A2V2
Where A , V and D are the c/s area , mean velocity of flow and diameter at their respective
sections. Writing V1 in terms of V2, i.e., V1= (A2/A1)V2 And replacing V1 in Eq. 15 solving for
V2
----------------(16)
----------------(17)
Applying Continuity equation at section 2, Q= A2V2 , the theoretical discharge is given by,
----------------(18)
The coefficient of discharge, Cd = Qact / QTh
Therefore, Qact = Cd QTh
OR
----------------(19)
g
V
g
Vpp
22
2
1
2
221 −=−γγ g
V
g
Vpp
22
2
1
2
221 −=−γγ
−=−
4
1
2
2
221 12 D
D
g
Vpp
γγ
−=−
4
1
2
2
221 12 D
D
g
Vpp
γγ
( )[ ]4
12
212
1
)(2
DD
ppgV
−
−=
γ ( )[ ]4
12
212
1
)(2
DD
ppgV
−
−=
γ
Applying manometric equation to equate the pressure along A-A in terms of flowing liquid,
Let the flowing liquid RD be ‘s’ and manometric liquid RD be ‘sm’.
Fig. 10 Determination of h or Δh
P1/γ + sz1 = P2/γ + s(z2-y)+ sm y
P1/γ - P2/γ +s(z1- z2) = sm y-sy
P1/γ - P2/γ +s(z1- z2) = y(sm -s)
P1/γ - P2/γ +(z1- z2) = h = y((sm/s) -1)
For horizontal alignment, z1 = z2
P1/γ - P2/γ = h = y((sm/s) -1)
The general discharge equation can be written as,
----------------(19)
Where, A1 = Area of c/s at inlet and A2 = Area of c/s of orifice opening
Pressure Variation in Orifice Meter
Orifice plate- inserted to pipe to create a partial restriction to flow.
Pressure before orifice plate rises and pressure after it reduces but velocity increases. Position
where velocity is maximum & static pressure is min is known as vena contracta.
There is a large pressure drop much of which is not recoverable. This can be a severe limitation
when considering use of an orifice meter.
Discharge coefficient - Cd - of 0.60 may be taken as standard, but the value varies noticeably at
low values of the Reynolds number.
Fig. 11 Pressure variation along Orifice Meter
Advantages and Disadvantages of Orifice meter
The orifice meter has several practical advantages when compared to venturi meters.
• Lower cost
• Smaller physical size
• Flexibility to change throat to pipe diameter ratio to measure a larger range of flow rates
Disadvantage:
• Large power consumption in the form of irrecoverable pressure loss
The orifice meter is recommended for clean and dirty liquids and some slurry services.
Comparison between Venture meter and Orifice Meter.
PROBLEM:
An orifice meter is used to measure the air flow passing through a pipe of 8 cm diameter. The
diameter of orifice meter is 2 cm. The pipe is horizontal. The head causing flow is measured by
using a manometer containing water. The measured head is 5.6 m of water. The density of air
1.193 kg/ m3.. Take Cd = 0.65
Solution:
Given;
Pipe diameter = 8 cm = 0.08 m
Orifice diameter = 2 cm = 0.02 m
Manometric liquid = water, RD = 1.0,
Manometric difference (differential pressure ) = 5.6 m of water
Mass density of air = 1.193 kg/ m3..
Cd = 0.65
A1 = Area of c/s at inlet;
A1 = ((π/4)(0.08)2 = 0.005026 m
2
A2 = Area of c/s of orifice opening
A2 = ((π/4)(0.02)2 = 0.0003141 m
2
Y = 5.6 m
h = y((sm/s) -1) = h = y((ρm/ ρw) / (ρair/ ρw) -1)
ρm = density of monometric liquid
ρw = density of water
ρair = density of air
ρm/ ρw = 1 as manometric liquid is water
ρair/ ρw = 1.193/1000 = .001193
h = 5.6 x ((1/0.001193) -1) = 4688.4 m of air
Discharge Equation:
Qact = 0.65x 0.005026x 0.0003141((2x9.81x 4688.4) /((0.005026)
2 – (0.0003141)
2)0.5
Qact = 0.06204 m3/s = 62.04 l/s
ROTAMETER
These meters fall into the category of flow measurement devices called variable area meters.
These devices have nearly constant pressure and depend on changing cross sectional area to
indicate flow rate. These are extremely simple, robust devices that can measure flow rates of
both liquids and gasses.
Fig. 12 Rotatmeter
The figure shows the pictorial representation of rotameter. Fluid
flows up through the tapered tube, typically made of glass with
suspended ‘float’ in the column of fluid. The area of tube
increases in the direction of flow and hence the name variable
area meter.
A 'float', actually a shaped weight, inside that is pushed up by
the drag force of the flow and pulled down by gravity.
Drag force for a given fluid and float cross section is a function of
square of speed only
A higher volumetric flow rate through a given area results in
increase in flow speed and drag force, so the float will be pushed
upwards.
However, as the inside of the rotameter is cone shaped (widens),
the area around the float through which the medium flows
increases, the flow speed and drag force decrease until there is
mechanical equilibrium with the float's weight.
Floats are made in many different shapes, with spheres and
ellipsoids being the most common.
The float may be diagonally grooved and partially colored so that
it rotates axially as the fluid passes.
This shows if the float is stuck since it will only rotate if it is free.
•
Fig. 13 different Forces in the System
Fig. 14 Measurement of Discharge
Readings are usually taken at the top of the widest part of the float;
the center for an ellipsoid,
or the top for a cylinder.
Some manufacturers use a different standard.
Discharge Equation
The discharge through the rotametr can also be determined from the relation
Q = Cd A (2gh)0.5
Where Cd = Coefficient of discharge, lies between 0.7 and 0.75
A = Annular area between the tapering pipe and top of the float
h = Effective across the float given by,
h = (volume of float/Area of float) x (s-1)
s = specific gravity of the float material
(s-1) represents the effective specific gravity of the float.
Three types of forces must be accounted for when
analyzing rotameter performance namely:
• Flow
• Gravity
• Buoyancy
Weight and shape of the float are designed to match the
fluid properties
As the flow increases the area between the float and
tube increase
The float finds a height where the pressure of the fluid
and weight of the float are equal.
The position of the float indicates the flow rate on a
marked scale.
Advantages Requires no external power or fuel
Uses only the inherent properties of the fluid, along with gravity, to measure flow rate.
Relatively simple device that can be mass manufactured out of cheap materials, allowing for its
widespread use.
Disadvantages
Due to its use of gravity, a rotameter must always be vertically oriented and right way up, with
the fluid flowing upward
Graduations on a given rotameter will only be accurate for a given substance at a given
temperature.
Rotameters normally require the use of glass (or other transparent material), otherwise the user
cannot see the float.
This limits their use in many industris
Rotameters are not easily adapted for reading by machine; although magnetic floats that drive a
follower outside the tube are available.
PROBLEM A rotameter has a 300 mm long tube which has an internal diameter of 25 mm at top and 18 mm
at bottom. The diameter of the float is 18 mm. its effective relative density is 4.8 and its volume
60 cc. If the coefficient of discharge is 0.72, at what height will the float be when metering
water at 0.1 l/s
Effective head across the float = h = (Vol of float/area of float) x (s-1)
h= (60/2.5447)x 4.8 = 113.18 cm
Discharge, Q = Cd A (2gh)0.5
0.1x1000 = 0.72 A (2x9.81x113.18)0.5
Given
Length of rotameter = 300 mm
Float diameter = 18mm,
A= area = ((π/4)(1.8)2 )= 2.5447 cm
2
= 2.545 cm
2
Volume of float = 60 cc
Effective relative density = (s-1) = 4.8
Cd = 0.72
Q = 0.1 l/s = 0.1 x 1000 cc
Solving for, A
A = 0.295 cm2
A is the annular area between the tube and float.
Sectional area of tube = Area of float + 0.295
Arae of float = 2.5447 cm2
Sectional area of tube = 2.545+ 0.295 = 2.84 cm2
Let D be the diameter of the tube at the level of the float.
i.e., ((π/4)(D)2 )= 2.84
D = 1.90 cm
Diameter of tube at bottom = 1.8 cm
Diameter of tube at top = 2.5 cm
Height of the float , using the concept of similar triangle is given by
Height of float = ((1.9-1.8) /(2.5-1.8)) x 30
= 4.28 cm
Flow Through Orifices
It an opening of any cross section, at the bottom or on the side walls of a container or vessel,
through which the fluid is discharged.
If the geometric characteristics of the orifice plus the properties of the fluid are known, then the
orifice can be used to measure the flow rates.
FLOW THROUGH SMALL ORIFICE
Figure shows a sharp edged small orifice in one side of a reservoir containing liquid.
Liquid will emerge from the orifice as a free jet, that is, a jet discharged in the atmosphere
Will therefore be under the influence of gravity only.
Equation 1 is known as Torricelli's theorem and represents theoretical velocity of the jet.
Actual velocity
actual velocity of jet at vena contracta
where Cv =coefficient of velocity =
theoretical velocity of the jet
By Bernoulli's equation between the points 1 and 2,
P1=P2 = atmospheric pressure
Neglecting losses, velocity through orifice
……………1
The jet area is much less than the area of the orifice due to contraction and the
corresponding coefficient of contraction, is defined as Cc
area of jet at vena contracta
Cc =
area of orifice
At the section very close to the orifice, known as vena contracta, the velocity is normal to the
cross section of the jet and hence the discharge is
Actual Q = Area of jet x velocity of jet at vena contracta
PROBLEM
A reservoir discharges through a sluice 0.915m wide by 1.22 m deep. The top of the opening is
0.61m below the water level in the reservoir and the downstream water level
is below the bottom of the opening. Calculate the discharge through the opening if Cd = 0.6. The
opening is treated as a small orifice.
Solution:
For a small orifice
a = 1.22x0.915 = 1.116 m2
h – is the distance of center of opening from the water surface.
= 0.61+(1.22/2) = 1.22 m
Therefore, Q,
Q= 0.6x1.116x(2x9.81x1.22)0.5
= 3.276 m3/s
Cd = Cv Cc