Advanced Laboratory Testing Methods Using Real-Time Simulation and Hardware-in-the-Loop Techniques: A Survey of Smart Grid International Research Facility Network Activities
Abstract
:1. Introduction
- RTS is a simulation, which is solely digitally executed in a real-time way on an RTSM.
- Co-simulation is a test setup that combines at least two different software tools executed on one or more computational systems.
- HIL is a test setup that combines a real-time simulated system with a physical hardware component or system, where interfaces with physical and simulated systems enabling closed loop interactions.
- Controller HIL or CHIL is a HIL technique where the sensors and actuators of a physical controller are interfaced with a real-time simulation.
- Power HIL or PHIL is a HIL setup, where at least one of the bi-directional interfaces of a setup exchanges power with real, physical power hardware through a Power Amplifier.
- Power System in-the-Loop or PSIL is a novel HIL concept where more than two domains interface each other in order to perform holistic experiments, e.g., a connection between a virtual simulated system (where RTS and co-simulation occur), a controller component (where CHIL occurs), and physical power system (where PHIL occurs).
1.1. Motivation of the Review
1.2. Review Structure
- Interfacing methods of PHIL, CHIL, and PSIL simulation;
- HIL testing of power system protection and control;
- HIL testing of smart grid/microgrid controllers, energy management systems, and power electronic converters;
- Co-simulation and RTS integration;
- Geographically distributed HIL and RTS;
- Industrial experiences and HIL in standardized testing.
2. Interfacing Methods of PHIL, CHIL, and PSIL Simulation
2.1. Introduction
- 1
- Interface Algorithms for Fast Dynamics: Nowadays, the accuracy and stability of several IAs have been analyzed in detail [1,2,7,8,9,10,11,12], including: the ideal transformer model (ITM), partial circuit duplication (PCD), transmission line model (TLM), damping impedance method (DIM), time variant first-order approximation (TFA), and advanced ideal transformer model (AITM); being the ITM and DIM are the most widely used techniques for connecting power equipment to a PHIL RTS.
- 2
- PHIL Integration at Slow Time Scales: For application areas where the concerned dynamics are slow (RMS values calculated using tens to hundreds of cycles), the technical requirements of the HIL integration can be simplified, that reduces hardware cost and improves scalability. Examples of system behaviors and relevant functions in these time scales are: power and energy management, active and reactive power balancing, demand side management, voltage control strategies, and determination of the proximity to operating limits. By the use of the PSIL concept, this review present two methods: (a) quasi-dynamic PHIL in Section 2.2.3 and (b) quasi-static PHIL in Section 2.2.4.
2.2. Reported Experiences and Activities from SIRFN ALTM Members
2.2.1. Power Amplifier Characterization for RTS
2.2.2. Stability and Accuracy Comparison for Different Interfacing Methods
2.2.3. Quasi-Dynamic PHIL
2.2.4. Quasi-Static PHIL
- a RTSM to simulate the relevant high and/or medium voltage simulation elements, and an interfacing component;
- a physical interfacing device such as a controllable grid-forming converter which can set frequency and voltage;
- a sufficiently fast RMS measurement at the interface device or its local bus.
- the RTSM system sends voltage and frequency RMS setpoints;
- the Interface device (grid-forming component of the lab) realizes these setpoint with some dynamic delay;
- the RMS P and Q values (or I, ) are measured at the interface component, and transmitted to the RTSM component.
3. HIL Testing of Power System Protection and Control
3.1. Introduction
3.2. Reported Experiences and Activities from SIRFN ALTM Members
3.2.1. HIL Validation of Fault Locator Accuracy without Line Reactor Current in Distance Protection Scheme
3.2.2. Distance Protection Relay Type Testing Framework
3.2.3. Adaptive Protection with HIL
3.2.4. Fault Modeling and Validation Between Simulation Tools
3.2.5. Wide Area Controller HIL Testing for Power Systems Oscillation Damping
4. HIL Testing of Smart Grid/Microgrid Controllers, Energy Management Systems, and Power Electronic Converters
4.1. Introduction
- Microgrid prototyping and validation: Testing AC, DC, and Hybrid MGs requires a wide variety of techniques and methodologies including: benchmarks and prototyping platforms [32,33,34,35], testing chains and procedures for centralized and decentralized controllers [36,37,38,39,40,41], and rapid control prototyping (RCP) for a quick development of new control strategies in a real hardware environments [42,43,44].
- Microgrid control strategies: Advanced testing methods are helpful in the establishment of the control strategies for loads and generators, reconfiguration equipment, and isolation and re-synchronization actions [28].
- Development of inverter and power electronics functions: DER functions and device interoperability support large, traditional power systems and microgrids alike. These technologies can be evaluated prior to implementation using CHIL and RT simulation techniques [45,46,47,48,49,50,51,52]. The same testing approach can be used for large-scale power electronics integration studies [53,54].
4.2. Reported Experiences and Activities from SIRFN ALTM Members
4.2.1. Integrated PHIL and Laboratory Testing for Microgrid Controller
4.2.2. Development of a Droop Frequency Control of Stand-Alone Multi-Microgrid System with HIL
4.2.3. Microgrid Re-Synchronization with PMU Measurements
4.2.4. Distributed Coordination Control in Hybrid AC/DC Microgrid with RCP
4.2.5. Design and Validation of a Rule-Based Microgrid Controller
4.2.6. Decentralized Microgrid Control Systems
4.2.7. Microgrid Controller Development with an Advanced Testing Chain Methodology
4.2.8. Generic Microgrid Controller Development, Testing, and Validation
4.2.9. CHIL for Grid-Support Functions of Inverters
4.2.10. PHIL Smart Inverter Testing with Megawatt Scale Grid Simulator
4.2.11. CHIL for Validation of Unintentional Islanding
5. Co-Simulation and RTS Integration
5.1. Introduction
5.2. Reported Experiences and Activities from SIRFN ALTM Members
5.2.1. Asynchronous Integration of RTSM with Co-Simulation Platforms
- Lablink: Simulation Message Bus (SMB) based Implementation
- OpSim: Representational State Transfer (REST) based Implementation
5.2.2. Co-Simulation of Cyber–Physical Systems
5.2.3. SCEPTRE: Suite of Tools Providing an ICS Co-Simulation Environment
5.2.4. Electrical Vehicle/Charging Station Integration Testing
6. Geographically Distributed HIL and RTS
6.1. Introduction
- Geographically distributed RTS: in this group only RTSMs at both ends are coupled together. Typically, this is used to overcome large simulation complexity that would require large RT resources that might not be available in a single test site. This has been the most common type of GD simulations reported in the literature [67,68,69,70,71].
- Geographically distributed HIL experiments: this group involves configurations where hardware is coupled remotely to a RTS. By using this configuration, the testing of hardware equipment (controllers or power components) in a system environment when no RTS is available at the premises is made possible. The involvement of hardware in this group requires careful consideration based on the interfacing method and communications [72,73,74,75,76], as discussed in Section 2.
6.1.1. Interfacing GD Simulations
6.1.2. Communications
6.2. Reported Experiences and Activities from SIRFN ALTM Members
6.2.1. Geographically Distributed CHIL for Advanced Validation of a Distributed Control Algorithm
6.2.2. Delay Assessment for Geographically Distributed CHIL Experiment
6.2.3. Geographically Distributed PHIL for Testing of a Voltage Controller
6.2.4. Global RT Super Lab Demonstration
6.3. Future Outlook
- With a number of different interface algorithms, signal transformations, and communication protocols being reported, there is a lack of formalization or guidance available for selection in regards to application. A set of combinations need to be appraised for applications such as transient studies, dynamic studies and steady state evaluations.
- Recognizing that the communications delays are dominated by the non-deterministic characteristic of the Internet, options such as use of dedicated bandwidth should be explored.
- In distinction to a monolithic PHIL simulation where a DuT is connected to a RTSM, the GD simulation presents a significant challenge in determining system partitioning. The optimal approach to split a system for simulation over the GD simulation requires further assessment.
- With the number of subsystems within one GD simulation expected to increase, where more than two research infrastructures are expected to be interconnected, a streamlined facilitation of initialization is required. A lot of work for co-simulation setups has been reported and their applicability for GD simulation needs to be explored.
7. Industrial Experiences and HIL in Standardized Testing
7.1. Introduction
7.2. Reported Experiences and Activities from SIRFN ALTM Members
7.2.1. Compliance Testing of a Hybrid UPS According to JEC2433-2016
7.2.2. Development of a PMU Pre-Certification Platform
7.2.3. Factory Acceptance Tests Based on HIL Testing
7.2.4. System Validation Platform HIL Based Grid Code Testing Aspects of DER Inverter
7.2.5. HIL for Marine Electrical Power Systems (MEPS)
8. Summary of Testing Methods and Configurations
9. Conclusions and Future Outlook
Author Contributions
Funding
Acknowledgments
- Fraunhofer IEE contributions are supported by the European Community’s Horizon 2020 Program (H2020/2014–2020) under the project “ERIGrid” (Grant Agreement No.654113), and by the German Ministry for Economic Affairs and Energy (BMWi) and the Projekträger Jülich (PTJ) within the project “Netzregelung 2.0 - Regelung und Stabilität im stromrichter-dominierten Verbundnetz” (FKZ0350023A).
- Sandia National Laboratories is a multimission laboratory managed and operated by National Technology and Engineering Solutions of Sandia, LLC, a wholly owned subsidiary of Honeywell International, Inc., for the U.S. Department of Energy’s National Nuclear Security Administration under contract DE-NA0003525. Its contributions to this work are supported by the U.S. Department of Energy Office of International Affairs.
- National Institute of Advanced Industrial Science and Technology (AIST) contributions to this work are supported by the Ministry of Economy, Trade and Industry (METI).
- CanmetENERGY is a federal research laboratory in Canada; financial support for this research work was provided by Natural Resources Canada (NRCan) through the Program on Energy Research and Development (PERD) in the framework of REN-2 Smart Grid and Microgrid Control for Resilient Power Systems Project.
- Korea Electrotechnology Research Institute (KERI) participation was supported by the Korea Institute of Energy Technology Evaluation and Planning (KETEP) and the Ministry of Trade, Industry & Energy (MOTIE) of Republic of Korea (No.20178530000210).
- University of Strathclyde and Technical University of Denmark (DTU) contributions are supported by the European Community’s Horizon 2020 Program (H2020/2014–2020) under the project “ERIGrid” (Grant Agreement No. 654113).
- Zurich University of Applied Science (ZHAW), Institute of Energy Systems and Fluid Engineering (IEFE) contributions are supported by the Swiss Federal Office of Energy (SFOE) and activities of the Swiss Centre for Competence in Energy Research on the Future Swiss Electrical Infrastructure (SCCER-FURIES), which is financially supported by the Swiss Innovation Agency (Innosuisse - SCCER program).
- The participation of AIT within ISGAN-SIRFN is funded in the frame of the IEA Research Cooperation program by the Austrian Federal Ministry for Climate Action, Environment, Energy, Mobility, Innovation and Technology (FFG no. 870646). The development of the AIT SGC was supported by the Austrian Ministry for Transport, Innovation and Technology (bmvit) and the Austrian Research Promotion Agency (FFG) under the “Energy Research Program 2015” in the SPONGE project (FFG no.848915).
- Contributions from Power Grid Corporation of India Limited are the part of research work carried out at POWERGRID Advanced Research & Technology Centre (PARTeC) located at Manesar. PARTeC is the R&D establishment of Power Grid Corporation of India Ltd.
Conflicts of Interest
Abbreviations
AC | Alternate Current |
ALTM | Advanced Laboratory Testing Methods |
CHIL | Controller Hardware-in-the-Loop |
DAS | Data Acquisition System |
DC | Direct Current |
DER | Distributed Energy Resources |
DIM | Damping Impedance Method |
DuT | Device Under Test |
EMT | Electro-magnetic transients |
GD | Geographically Distributed |
HIL | Hardware-in-the-Loop |
IA | Interface Algorithm |
ITM | Ideal Transformer Method |
MG | Microgrid |
MGC | Microgrid Controller |
PA | Power Amplifier |
PDC | Phasor Data Concentrator |
PHIL | Power Hardware-in-the-Loop |
PMU | Phasor Measurement Unit |
PSIL | Power System-in-the-Loop |
RCP | Rapid Control Prototyping |
RMS | Root Mean Square |
RT | Real-time |
RTS | Real-Time Simulation |
RTSM | Real-Time Simulation Machine |
WAC | Wide Area Control |
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Method | Average Error (%) | Execution Cycle (%) | Major Computation Time (%) |
---|---|---|---|
DIM LPF | 27.755 | 62.21 | 49.19 |
DIM LPF LD | 3.303 | 65.99 | 52.16 |
ITM LPF | 14.940 | 49.20 | 42.71 |
ITM LPF LD | 4.507 | 49.46 | 42.99 |
Fault Position | Case 1—Bus Side CT | Case 2—Line Side CT | |||
---|---|---|---|---|---|
% ength | km | Fault Locator | % error | Fault Locator | % error |
Reading (km) | Reading (km) | ||||
5 | 15 | 14.90 | 0.67 | 14.92 | 0.53 |
15 | 45 | 44.62 | 0.84 | 44.64 | 0.80 |
25 | 75 | 74.17 | 1.11 | 74.68 | 0.43 |
35 | 105 | 104.03 | 0.92 | 104.82 | 0.17 |
45 | 135 | 133.61 | 1.03 | 135.05 | 0.04 |
55 | 165 | 163.06 | 1.18 | 165.64 | 0.39 |
65 | 195 | 193.77 | 0.63 | 196.90 | 0.97 |
75 | 225 | 223.78 | 0.54 | 228.32 | 1.48 |
85 | 255 | 254.02 | 0.38 | 259.89 | 1.92 |
95 | 285 | 285.04 | 0.01 | 292.46 | 2.62 |
Section | Topic | RTS/HIL Type | Interfaces and Protocols | Hardware and Equipment |
---|---|---|---|---|
Section 2.2.1 | Power amplifier characterization for RTS | PHIL | Analog I/O | RTSM: OPAL OP5700 PA: AMETEK |
Section 2.2.2 | Stability and accuracy comparison for different interfacing methods | PHIL [12] | Analog I/O | RTSM: OPAL OP5600 PA: AMETEK RS90 |
Section 2.2.3 | Quasi-dynamic PHIL | PHIL/ PSIL * | IA: ITM Digital/Soft I/O | RTSM: Workstation PA: Studer XTM 4000, Electroinvent ELDI |
Section 2.2.4 | Quasi-static PHIL | PHIL/ PSIL * [16] | IA: ITM Digital/Soft I/O | RTSM: RTDS PA: ABB PCS100 SFC |
Section 3.2.1 | HIL validation of fault locator accuracy in distance protection scheme | CHIL | Analog I/O IEC 61850 9-2 SV | RTSM: RTDS Signal Amp: Omicron |
Section 3.2.2 | Distance protection relay type testing framework | CHIL [26] | Analog I/O Digital I/O IEC 61850 /60255-121 | RTSM: OPAL OP5600 |
Section 3.2.3 | Adaptive protection with HIL | PHIL [20,21] | Analog I/O IEC 61850 SV C37.118 GOOSE | RTSM: OPAL OP5600 PA: AMETEK RS90 |
Section 3.2.4 | Fault modeling and validation between simulation tools | PHIL [25] | IA: ITM, DIM Analog I/O OpenDSS | RTSM: OPAL OP5600 PA: AMETEK RS90 |
Section 3.2.5 | Wide Area Controller HIL testing for Power Systems Oscillation Damping | CHIL [30] | C37.118 GPS Analog I/O | WAC: Raspberry Pi PMU: NI cRIO Open PMU, NI9467 PDC: SEL-5073 PDC |
Section 4.2.1 | Integrated PHIL and laboratory testing for microgrid controller | PHIL [33,34] | IA: ITM Analog I/O | RTSM: RTDS NovaCore PA: SanRex 500kVA DAS: Yokogawa WT3000E/WT1800 DuT: NK-EMS Load: SanRex RLC bank |
Section 4.2.2 | Droop frequency control of stand-alone multi-microgrid system with HIL | CHIL [43] | Analog I/O Digital I/O | RTSM: OPAL OP5600 Control Unit: OP8665 |
Section 4.2.3 | Microgrid re-synch with PMU measurements | CHIL | C37.118 GPS | RTSM: RTDS/GTNET |
Section 4.2.4 | Distributed coordination control in hybrid AC/DC MG with RCP | PHIL [44] | Analog I/O Digital I/O Modbus TCP/IP | RTSM: OPAL OP4510 |
Section 4.2.5 | Design and validation of a rule-based microgrid controller | CHIL [37] | IEC 61850 | RTSM: OPAL OP4510 MGC: SEL 3360 |
Section 4.2.6 | Decentralized microgrid control systems | CHIL [38] | IEC 61850 GOOSE | RTSM: OPAL OP5600 Raspberry PI |
CHIL [39,40] | MODBUS C37-118 | RTSM: OPAL OP031 + OPAL OP5607 TI F28377S, Beaglebone Black Boards | ||
Section 4.2.7 | Microgrid controller development with an Advanced Testing Chain methodology | CHIL/ PHIL/ PSIL * [55] | Analog I/O Modbus TCP/IP IA: DIM | RTSM: OPAL OP5600 PA: AMETEK RS90 DAS: DEWETRON 800 Current Source Inverter: SMA SCS500 |
Section 4.2.8 | Generic microgrid controller development, testing, and validation | CHIL [41] | IEC 61850 GOOSE DNP3 | RTSM: OPAL OP5600 Load control: SEL 3505 RTAC MGC: ETAP |
Section 4.2.9 | CHIL for Grid-support functions of inverters | CHIL [45,48,49] | Analog I/O Modbus TCP/IP | RTSM: Typhoon HIL602 DuT: AIT SGC |
Section 4.2.10 | PHIL smart inverter testing with megawatt scale grid simulator | PHIL | IA: ITM Analog I/O | RTSM: RTDS NovaCore PA: SanRex 5MVA DAS: HIOKI PW6001, MR8827 |
Section 4.2.11 | CHIL for validation of unintentional islanding | CHIL [50,51] | Analog I/O Modbus TCP/IP | RTSM: Typhoon HIL602 DuT: AIT SGC |
Section 5.2.1 | Asynchronous integration of RTSM with co-simulation platforms | CHIL [59] | Co-Sim: Lablink UDP | RTSM: OPAL OP5600 Gateway: Raspberry Pi |
CHIL [60] | Co-Sim: OpSim Async. TCP/IP | RTSM: OPAL OP5600 | ||
Section 5.2.2 | Co-simulation of cyber-physical systems | CHIL [61] | IEC 61850 Co-Sim: TCP/IP Virtual Link with Exata CPS | RTSM: OPAL OP4510 |
CHIL [62,63] | IEC 61850 Co-Sim: Ethernet with Opnet | RTSM: OPAL OP4510 | ||
Section 5.2.3 | SCEPTRE: suite of tools providing an ICS co-simulation environment | CHIL/ PHIL [64,65] | Real TCP/IP packets running over simulated network. Physical interfaces to the network can be presented to users/equipment | RTSM: Custom Power Simulation runing in PowerWorld Dynamics Studio PA: AMETEK RS180 |
Section 5.2.4 | Electrical vehicle/ charging station integration testing | CHIL [66] | Co-Sim: MATLAB and IEC61850 SV Sender (Commercial software) | RTSM: RTDS/GTNET |
Section 6.2.1 | GD-CHIL for advanced validation of a distributed control algorithm | GD-CHIL [72] | UDP TCP/IP | RTSM: OPAL OP5600 Controller: Raspberry Pi |
Section 6.2.2 | Delay assessment for geographically distributed CHIL experiment | GD-CHIL [75] | Co-Sim: OpSim Message Bus architecture TCP/IP | RTSM: OPAL OP5600 Controller: Coordinated Voltage Control in Matlab |
Section 6.2.3 | GD-PHIL for testing of a voltage controller | GD-PHIL PSIL * [80] | IA: ITM UDP | RTSM: RTDS DuT: Lead-Acid Battery |
Section 6.2.4 | Global RT SuperLab | GD-PHIL / GD-CHIL/ PSIL * [76] | IA: Multiple Comm. protocol: VILLASnode | RTSM: OPAL OP5600, Typhoon HIL, RTDS RS: Multiple |
Section 7.2.1 | Compliance testing of a hybrid UPS according to JEC2433-2016 | CHIL [85] | Analog I/O Digital I/O JEC2433-2016 | RTSM: OPAL OP5600 RCP: Custom |
Section 7.2.2 | Development of a PMU pre- certification platform | CHIL [82] | Analog I/O Digital I/O | PMU: Vizimax PMU Signal Amp: Omicron |
Section 7.2.3 | Factory Acceptance Tests based on HIL testing | CHIL [86,87] | Analog I/O Digital I/O | RTSM: SGI Altix UV300s Parallel Computers Controller: ABB HVDC Controller |
CHIL [88] | Analog I/O Digital I/O | RTSM: SGI UV100 Parallel Computers Controller: Static Var Compensator Controllers | ||
CHIL [89] | Analog I/O Digital I/O | RTSM: OPAL OP5600 + OP7020 Controller: HVDC MMC controller | ||
Section 7.2.4 | System Validation Platform HIL Based Grid Code Testing Aspects of DER Inverter | PHIL [47] | IA: ITM, DIM Analog I/O | RTSM: OPAL OP5700 PA: Ametek |
CHIL [47] | Analog I/O Digital I/O | RTSM: Typhoon HIL602 DuT: AIT SGC | ||
Section 7.2.5 | HIL for marine electrical power systems (MEPS) | PHIL [90] | IA: ITM, DIM Analog I/O | RTSM: RTDS PA: Triphase PM90 |
Section | Topic | Reports in Literature |
---|---|---|
Section 2 | Interfacing methods of PHIL, CHIL, and PSIL simulation | [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15] |
Section 3 | HIL testing of power system protection and control | [17,18,19,20,21,22,23,24,25,26,27,28,29,30,31] |
Section 4 | HIL testing of smart grid/microgrid controllers, energy management systems, and power electronic converters | [28,32,33,34,35,36,37,38,39,40,41,42,43,44,45,46,47,48,49,50,51,52,53,54,55,56,95] |
Section 5 | HIL co-simulation and CPES | [58,59,60,61,62,63,64,65,66] |
Section 6 | Geographically distributed HIL and RTS | [14,59,67,68,69,70,71,72,73,74,75,76,77,78,79,80] |
Section 7 | Industrial experiences and HIL in standardized testing | [14,47,56,81,82,83,84,85,86,87,88,89,90,91,92,93,94] |
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Montoya, J.; Brandl, R.; Vishwanath, K.; Johnson, J.; Darbali-Zamora, R.; Summers, A.; Hashimoto, J.; Kikusato, H.; Ustun, T.S.; Ninad, N.; et al. Advanced Laboratory Testing Methods Using Real-Time Simulation and Hardware-in-the-Loop Techniques: A Survey of Smart Grid International Research Facility Network Activities. Energies 2020, 13, 3267. https://doi.org/10.3390/en13123267
Montoya J, Brandl R, Vishwanath K, Johnson J, Darbali-Zamora R, Summers A, Hashimoto J, Kikusato H, Ustun TS, Ninad N, et al. Advanced Laboratory Testing Methods Using Real-Time Simulation and Hardware-in-the-Loop Techniques: A Survey of Smart Grid International Research Facility Network Activities. Energies. 2020; 13(12):3267. https://doi.org/10.3390/en13123267
Chicago/Turabian StyleMontoya, Juan, Ron Brandl, Keerthi Vishwanath, Jay Johnson, Rachid Darbali-Zamora, Adam Summers, Jun Hashimoto, Hiroshi Kikusato, Taha Selim Ustun, Nayeem Ninad, and et al. 2020. "Advanced Laboratory Testing Methods Using Real-Time Simulation and Hardware-in-the-Loop Techniques: A Survey of Smart Grid International Research Facility Network Activities" Energies 13, no. 12: 3267. https://doi.org/10.3390/en13123267
APA StyleMontoya, J., Brandl, R., Vishwanath, K., Johnson, J., Darbali-Zamora, R., Summers, A., Hashimoto, J., Kikusato, H., Ustun, T. S., Ninad, N., Apablaza-Arancibia, E., Bérard, J. -P., Rivard, M., Ali, S. Q., Obushevs, A., Heussen, K., Stanev, R., Guillo-Sansano, E., Syed, M. H., ... Bründlinger, R. (2020). Advanced Laboratory Testing Methods Using Real-Time Simulation and Hardware-in-the-Loop Techniques: A Survey of Smart Grid International Research Facility Network Activities. Energies, 13(12), 3267. https://doi.org/10.3390/en13123267