Modelling and Design Methodology of an Improved Performance Photovoltaic Pumping System Employing Ferrite Magnet Synchronous Reluctance Motors
Abstract
:1. Introduction
2. Description of the Suggested PVWPS
2.1. Centrifugal Pump Design
2.2. Motor Design
2.3. Inverter Design
2.4. Solar Array Design
3. Modelling of the Suggested PVWPS
3.1. Solar Array
3.2. Voltage Source Inverter Model
3.3. FMSynRM Model
3.4. Centrifugal Pump Model
4. Proposed Control Unit
- Step 1: Measuring the PV voltage and PV current;
- Step 2: Using the perturbation and observation (P&O) tracking method illustrated in Figure 9, the reference speed is increased until the maximum available power of the solar array is reached. At the MPP, there is always an increase and a decrease in the reference speed (ωr*) by Δωr*;
- Step 3: To ensure the FMSynRM operates at the maximum power per ampere, two reference signals are necessary: the speed (ωr*) and the d-axis current (id*). The d-axis current (id*) should be set based on the required power (Pe*) to maximize the maximum power, see Figure 3a. To do so, a lookup table (LUT) between the motor power and the d-axis current is built using FEM (which is validated later on using measurements) and used as in Figure 8.
5. Performance of the Suggested PVPWS
6. Benchmarking of the Proposed System
7. Experimental Verification
8. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Parameter | Value | Parameter | Value |
---|---|---|---|
Number of slots | 36 | Stack length | 140 mm |
Outer diameter | 180 mm | Stator steel | M330-50A |
Inner diameter | 110 mm | Cooling | Forced air |
Power @ Maximum power point (MPP) | 135 W |
Current @ MPP | 7.63 A |
Voltage @ MPP | 17.7 V |
Open circuit voltage | 22.1 V |
Short circuit current | 8.37 A |
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Ibrahim, M.N.; Rezk, H.; Al-Dhaifallah, M.; Sergeant, P. Modelling and Design Methodology of an Improved Performance Photovoltaic Pumping System Employing Ferrite Magnet Synchronous Reluctance Motors. Mathematics 2020, 8, 1429. https://doi.org/10.3390/math8091429
Ibrahim MN, Rezk H, Al-Dhaifallah M, Sergeant P. Modelling and Design Methodology of an Improved Performance Photovoltaic Pumping System Employing Ferrite Magnet Synchronous Reluctance Motors. Mathematics. 2020; 8(9):1429. https://doi.org/10.3390/math8091429
Chicago/Turabian StyleIbrahim, Mohamed N., Hegazy Rezk, Mujahed Al-Dhaifallah, and Peter Sergeant. 2020. "Modelling and Design Methodology of an Improved Performance Photovoltaic Pumping System Employing Ferrite Magnet Synchronous Reluctance Motors" Mathematics 8, no. 9: 1429. https://doi.org/10.3390/math8091429
APA StyleIbrahim, M. N., Rezk, H., Al-Dhaifallah, M., & Sergeant, P. (2020). Modelling and Design Methodology of an Improved Performance Photovoltaic Pumping System Employing Ferrite Magnet Synchronous Reluctance Motors. Mathematics, 8(9), 1429. https://doi.org/10.3390/math8091429