Review of Methods Used for Selecting Pumps as Turbines (PATs) and Predicting Their Characteristic Curves
Abstract
:1. Introduction
2. PAT Modeling Approaches
- Empirical models
- 1D models that recreate the unknown geometry of the machine
- 1D models that use a known geometry
- 2D models
- 3D-CFD (Computational Fluid Dynamics) models
3. Basic Models
4. Models that Predict the Characteristic Curves of a PAT
4.1. Empirical Models
4.1.1. Derakhshan and Nourbakhsh Model
4.2. 1D Models That Recreate the Geometry of the Machine
4.2.1. Barbarelli et al. Model
- Pump head at BEP
- Pump flow rate at BEP
- Maximum power
- Head at zero flow
- Impeller diameter
- Size of the pump
- Design mode
- Known geometry mode
- Mixed mode
4.2.2. Manservigi et al. Model
- Head coefficient ψ
- Power coefficient π
- Efficiency η
4.3. 1D Models That Use a Known Geometry
4.4. 3D-CFD Models
5. Applicability of the Various Methods
5.1. Basic Models
5.2. Models That Predict the Characteristic Curves of a PAT
6. Discussion
- Prediction error
- Simplicity of application
- Number of parameters involved
7. Conclusions
Author Contributions
Funding
Conflicts of Interest
Nomenclature
Best Efficiency Point | |
Absolute velocity | |
Circumferential component of absolute velocity in PAT impeller outlet section | |
Circumferential component of absolute velocity in PAT impeller inlet section | |
Computational Fluid Dynamics | |
Head conversion factor | |
Flow rate conversion factor | |
Impeller diameter | |
Hydraulic diameter | |
Gravitational acceleration | |
Ratio between PAT head and PAT head at BEP | |
Head | |
Head at BEP | |
Pump head at BEP | |
PAT head at BEP | |
Site head | |
PAT head | |
Theoretical head | |
Index of the summation | |
Turbulent kinetic energy | |
Parameter necessary at Zlowflow calculation | |
Length | |
Power loss | |
Rotational speed | |
Number of data | |
Pump rotational speed | |
PAT specific speed | |
PAT rotational speed | |
Ratio between PAT power and PAT power at BEP | |
Power | |
Pump As Turbine | |
Power at BEP | |
PAT power at BEP | |
Pumped-Hydro Energy Storage | |
Pressure Reducing Valve | |
PAT power | |
Ratio between PAT flow rate and PAT flow rate at BEP | |
Flow rate | |
Flow rate at BEP | |
Pump flow rate at BEP | |
PAT flow rate at BEP | |
Leakage flow rate | |
Site flow rate | |
PAT flow rate | |
PAT flow rate – initial value at the i-th iteration | |
Root Mean Square Relative Error | |
Source term | |
Tangential velocity in PAT impeller outlet section | |
Tangential velocity in PAT impeller inlet section | |
Fluid velocity in the xi direction | |
Water Distribution Network | |
Generic axis direction | |
Experimental value of a quantity | |
Simulated value of a quantity | |
Hydraulic loss | |
Dynamic loss | |
Friction loss | |
Hydraulic loss at low flow rate | |
Runner hydraulic loss | |
Volute hydraulic loss | |
, β | Dimensionless specific speed |
, | Dimensionless pump specific speed |
, | Dimensionless PAT specific speed |
Dimensionless parameter necessary to calculate CH | |
Rate of dissipation of turbulent kinetic energy | |
Efficiency | |
Efficiency at BEP | |
Disc efficiency | |
Hydraulic efficiency | |
Hydraulic efficiency at BEP (pump mode) | |
PAT efficiency | |
PAT total efficiency | |
Volumetric efficiency | |
Pump efficiency at BEP | |
PAT efficiency at BEP | |
Pump efficiency | |
λ | Friction coefficient |
μ | Dynamic viscosity |
μt | Turbulent viscosity |
ξ | Dynamic loss coefficient |
Power coefficient | |
Density | |
Adjustable constant | |
PAT slip factor | |
Head coefficient |
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Model | ||
---|---|---|
Alatorre–Frenk | ||
Algieri et al. | ||
Barbarelli et al. | ||
Childs | ||
Grover | ||
Hancock | ||
Hergt | ||
Schmiedl | ||
Sharma | ||
Stefanizzi | - | |
Stepanoff | ||
Yang et al. |
Model | Use of Site Data | Output | Based on | |||
---|---|---|---|---|---|---|
CQ | CH | ηt | Theoretical Considerations | Experimental Data | ||
Alatorre–Frenk [17] | - | ✘ | ✘ | ✘ | - | ✘ |
Algieri et al. [9] | ✘ | ✘ | ✘ | - | - | ✘ |
Barbarelli et al. [11] | ✘ | ✘ | ✘ | ✘ | - | ✘ |
Childs [18] | - | ✘ | ✘ | - | ✘ | - |
Derakhshan and Nourbakhsh [19] | ✘ | - | ✘ | - | - | ✘ |
Grover [20] | ✘ | ✘ | ✘ | - | - | ✘ |
Hancock [21] | - | ✘ | ✘ | - | ✘ | - |
Hergt [20] | ✘ | ✘ | ✘ | - | - | - |
Schmiedl [20] | - | ✘ | ✘ | - | - | - |
Sharma [20] | - | ✘ | ✘ | - | ✘ | - |
Stefanizzi [22] | ✘ | - | ✘ | - | - | ✘ |
Stepanoff [20] | - | ✘ | ✘ | - | ✘ | - |
Yang et al. [23] | - | ✘ | ✘ | - | ✘ | ✘ |
Model | Input | Output | Based on | |||||
---|---|---|---|---|---|---|---|---|
Pump BEP | Catalogue Information | Machine Geometry | Characteristic Curves | Flux Lines | Experimental Data | Theoretical Considerations | CFD | |
Derakhshan and Nourbakhsh [19] | ✘ | - | - | ✘ | - | ✘ | - | - |
Barbarelli et al. [27] | ✘ | ✘ | - | ✘ | - | - | ✘ | - |
Manservigi et al. [28] | ✘ | ✘ | - | ✘ | - | - | ✘ | - |
Stefanizzi [30] | - | - | ✘ | ✘ | - | - | ✘ | - |
Frosina et al. [32] | - | - | ✘ | ✘ | ✘ | - | - | ✘ |
Perez–Sanchez et al. [33] | - | - | ✘ | ✘ | ✘ | - | - | ✘ |
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Amelio, M.; Barbarelli, S.; Schinello, D. Review of Methods Used for Selecting Pumps as Turbines (PATs) and Predicting Their Characteristic Curves. Energies 2020, 13, 6341. https://doi.org/10.3390/en13236341
Amelio M, Barbarelli S, Schinello D. Review of Methods Used for Selecting Pumps as Turbines (PATs) and Predicting Their Characteristic Curves. Energies. 2020; 13(23):6341. https://doi.org/10.3390/en13236341
Chicago/Turabian StyleAmelio, Mario, Silvio Barbarelli, and Domenico Schinello. 2020. "Review of Methods Used for Selecting Pumps as Turbines (PATs) and Predicting Their Characteristic Curves" Energies 13, no. 23: 6341. https://doi.org/10.3390/en13236341
APA StyleAmelio, M., Barbarelli, S., & Schinello, D. (2020). Review of Methods Used for Selecting Pumps as Turbines (PATs) and Predicting Their Characteristic Curves. Energies, 13(23), 6341. https://doi.org/10.3390/en13236341