One of the most basic calculations performed by any process engineer, whether in design or in the plant, is line sizing and pipeline pressure loss. Typically known are the flow rate, temperature and corresponding viscosity and specific gravity of the fluid that will flow through the pipe.
These properties are entered into a computer program or spreadsheet along with some pipe physical data (pipe schedule and roughness factor)
Calculating Pressure Drop
The
most commonly used equation for determining pressure drop in a straight
pipe is the Darcy Weisbach equation. One common form of the equation
which gives pressure drop in terms of feet of head is given below: | Eq. (1) |
is commonly referred to as the Velocity Head.Another common form of the Darcy Weisbach equation that is most often used by engineers because it gives pressure drop in units of pounds per square inch (psi) is:
 | Eq. (2) |
The total pressure drop in the pipe is typically calculated using these five steps.
- Determine the total length of all horizontal and vertical straight pipe runs.
- Determine the number of valves and fittings in the pipe. For example, there may be two gate valves, a 90o elbow and a flow thru tee.
- Determine the means of incorporating the valves and fittings into the Darcy equation. To accomplish this, most engineers use a table of equivalent lengths. This table lists the valve and fitting and an associated length of straight pipe of the same diameter, which will incur the same pressure loss as that valve or fitting. For example, if a 2" 90o elbow were to produce a pressure drop of 1 psi, the equivalent length would be a length of 2" straight pipe that would also give a pressure drop of 1 psi. The engineer then multiplies the quantity of each type of valve and fitting by its respective equivalent length and adds them together.
- The total equivalent length is usually added to the total straight pipe length obtained in step one to give a total pipe equivalent length.
- This total pipe equivalent length is then substituted for L in Equation 2 to obtain the pressure drop in the pipe.
Relationship Between K, Friction Factor, and Equivalent Length
The
following discussion is based on concepts found in reference 1, the
CRANE Technical Paper No. 410. It is the author's opinion that this
manual is the closest thing the industry has to a standard on performing
various piping calculations. If the reader currently does not own this
manual, it is highly recommended that it be obtained.As in straight pipe, velocity increases through valves and fittings at the expense of head loss. This can be expressed by another form of the Darcy equation similar to Equation 1:
 | Eq. (3) |
 | Eq. (4) |
- Pipe friction in the inlet and outlet straight portions of the valve or fitting
- Changes in direction of flow path
- Obstructions in the flow path
- Sudden or gradual changes in the cross-section and shape of the flow path
In Equation 4, f therefore varies only with valve and fitting size and is independent of Reynolds Number. This only occurs if the fluid flow is in the zone of complete turbulence (see the Moody Chart in reference 1 or in any textbook on fluid flow). Consequently, f in Equation 4 is not the same f as in the Darcy equation for straight pipe, which is a function of Reynolds Number. For valves and fittings, f is the friction factor in the zone of complete turbulence and is designated ft, and the equivalent length of the valve or fitting is designated Leq. Equation 4 should now read (with D being the diameter of the valve or fitting):
 | Eq. (5) |
Calculating Pressure Drop, The Correct Way
So
how should we use equivalent lengths to get the pressure drop
contribution of the valve or fitting? A form of Equation 1 can be used
if we substitute ft for f and Leq for L (with d being the diameter of the valve or fitting): | Eq. (6) |
Another approach would be to use the K values of the individual valves and fittings. The quantity of each type of valve and fitting is multiplied by its respective K value and added together to obtain a total K. This total K is then substituted into the following equation:
 | Eq. (7) |
How significant is the error caused by mismatching friction factors? The answer is, it depends. Below is a real world example showing the difference between the Equivalent Length method (as applied by most engineers) and the K value method to calculate pressure drop.
An Example
The fluid being pumped is 94% Sulfuric Acid through a 3", Schedule 40, Carbon Steel pipe:| Mass Flow Rate, lb/hr | 63,143 |
| Volumetric Flow Rate, gpm | 70 |
| Density, lb/ft3 | 112.47 |
| S.G. | 1.802 |
| Viscosity, cp | 10 |
| Temperature, oF | 127 |
| Pipe ID, in | 3.068 |
| Velocity, ft/s | 3.04 |
| Reynold's No | 12,998 |
| Darcy Friction Factor, (f) Pipe | 0.02985 |
| Pipe Line ?P/100 ft | 1.308 |
| Friction Factor at Full Turbulence (ft) | 0.018 |
| Straight Pipe, ft | 31.5 |
| Fittings | Leq/D1 | Leq2, 3 |
K1, 2 =
ft (L/D) | Quantity | Total Leq | Total K |
| 90o Long Radius Elbow | 20 | 5.1 | 0.36 | 2 | 10.23 | 0.72 |
| Branch Tee | 60 | 15.3 | 1.08 | 1 | 15.34 | 1.08 |
| Swing Check Valve | 50 | 12.8 | 0.90 | 1 | 12.78 | 0.90 |
| Plug Valve | 18 | 4.6 | 0.324 | 1 | 4.60 | 0.324 |
| 3" x 1" Reducer4 | None5 | 822.685 | 57.92 | 1 | 822.68 | 57.92 |
| Total | Â | Â | Â | Â | 865.63 | 60.94 |
- K values and Leq/D are obtained from Reference 1.
- K values and Leq are given in terms of the larger sized pipe.
- Leq is calculated using Equation 5 above.
- The reducer is really an expansion; the pump discharge nozzle is 1" (Schedule 80) but the connecting pipe is 3". In piping terms, there are no expanders, just reducers. It is standard to specify the reducer with the larger size shown first. The K value for the expansion is calculated as a gradual enlargement with a 30o angle.
- There is no L/D associated with an expansion or contraction. The equivalent length must be back calculated from the K value using Equation 5 above.
| Â | Typical Equivalent Length Method | K Value Method |
| Straight Pipe ?P, psi | Not Applicable | 0.412 |
| Total Pipe Equivalent Length ?P, psi | 11.734 | Not Applicable |
| Valves and Fittings ?P, psi | Not Applicable | 6.828 |
| Total Pipe ?P, psi | 11.734 | 7.240 |
One can argue that if the fluid is water or a hydrocarbon, the pipeline friction factor would be closer to the friction factor at full turbulence and the error would not be so great, if at all significant; and they would be correct. However hydraulic calculations, like all calculations, should be done in a correct and consistent manner. If the engineer gets into the habit of performing hydraulic calculations using fundamentally incorrect equations, he takes the risk of falling into the trap when confronted by a pumping situation as shown above.
Another point to consider is how the engineer treats a reducer when using the typical equivalent length method. As we saw above, the equivalent length of the reducer had to be back-calculated using equation 5. To do this, we had to use ft and K.
Final Thoughts on K Values
The 1976 edition of the Crane Technical Paper No. 410 first discussed and used the two-friction factor method for calculating the total pressure drop in a piping system (f for straight pipe and ft for valves and fittings). Since then, Hooper2 suggested a 2-K method for calculating the pressure loss contribution for valves and fittings. His argument was that the equivalent length in pipe diameters (L/D) and K was indeed a function of Reynolds Number (at flow rates less than that obtained at fully developed turbulent flow) and the exact geometries of smaller valves and fittings. K for a given valve or fitting is a
The term (1+1/D) takes into account scaling between different sizes within a given valve or fitting group. Values for K1 can be found in the reference article2 and pressure drop is then calculated using Equation 7. For flow in the fully turbulent zone and larger size valves and fittings, K becomes consistent with that given in CRANE.
Darby3 expanded on the 2-K method. He suggests adding a third K term to the mix. Darby states that the 2-K method does not accurately represent the effect of scaling the sizes of valves and fittings. The reader is encouraged to get a copy of this article.
The use of the 2-K method has been around since 1981 and does not appear to have "caught" on as of yet. Some newer commercial computer programs allow for the use of the 2-K method, but most engineers inclined to use the K method instead of the Equivalent Length method still use the procedures given in CRANE. The latest 3-K method comes from data reported in the recent CCPS Guidlines4 and appears to be destined to become the new standard; we shall see.
Conclusion
Consistency,
accuracy and correctness should be what the Process Design Engineer
strives for. We all add our "fat" or safety factors to theoretical
calculations to account for real-world situations. It would be
comforting to know that the "fat" was added to a basis using sound and
fundamentally correct methods for calculations.
Nomenclature
| D | = | Diameter, ft |
| d | = | Diameter, inches |
| f | = | Darcy friction factor |
| ft | = | Darcy friction factor in the zone of complete turbulence |
| g | = | Acceleration of gravity, ft/sec2 |
| hL | = | Head loss in feet |
| K | = | Resistance coefficient or velocity head loss |
| K1 | = | K for the fitting at NRE = 1 |
| K? | = | K value from CRANE |
| L | = | Straight pipe length, ft |
| Leq | = | Equivalent length of valve or fitting, ft |
| NRE | = | Reynolds Number |
| ?P | = | Pressure drop, psi |
| n | = | Velocity, ft/sec |
| W | = | Flow Rate, lb/hr |
| ? | = | Density, lb/ft3 |
References
- Crane Co., "Flow of Fluids through Valves, Fittings and Pipe", Crane Technical Paper No. 410, New York, 1991.
- Hooper, W. B., The Two-K Method Predicts Head Losses in Pipe Fittings, Chem. Eng., p. 97-100, August 24, 1981.
- Darby, R., Correlate Pressure Drops through Fittings, Chem. Eng., p. 101-104, July, 1999.
- AIChE Center for Chemical Process Safety, "Guidelines for Pressure Relief and Effluent Handling systems", pp. 265-268, New York, 1998.
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