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1 | SN | Makale başlığı | Referans formatı | |||||||||||||||||||||||
2 | 1 | A comparison study for control and stabilisation of inverted pendulum on inclined surface (IPIS) using PID and fuzzy controllers | Kharola, A., Patil, P., Raiwani, S., & Rajput, D. (2016). A comparison study for control and stabilisation of inverted pendulum on inclined surface (IPIS) using PID and fuzzy controllers. Perspectives in Science, 8, 187-190. | |||||||||||||||||||||||
3 | 2 | A heterogeneous coupled oscillator model for simulation of ECG signals | Ryzhii, E., & Ryzhii, M. (2014). A heterogeneous coupled oscillator model for simulation of ECG signals. Computer methods and programs in biomedicine, 117(1), 40-49. | |||||||||||||||||||||||
4 | 3 | A MATLAB-simulink-based PV module model and its application under conditions of nonuniform irradiance | Ding, K., Bian, X., Liu, H., & Peng, T. (2012). A MATLAB-simulink-based PV module model and its application under conditions of nonuniform irradiance. IEEE Transactions on energy conversion, 27(4), 864-872. | |||||||||||||||||||||||
5 | 4 | A novel objective function design and detailed analysis for the AVR-LFC system | Bora, Ç., Kerim, D., Şeymanur, B., Erdinç, Ş., & Mehmet, N. F. (2023). A novel objective function design and detailed analysis for the AVR-LFC system. Sādhanā, 48(4), 229. | |||||||||||||||||||||||
6 | 5 | An Optimized Synergetic Nonlinear Controller (OSNC) based maximum power point tracking for a standalone photovoltaic system using a boost converter | Taissala, A., Goron, D., Nisso, N., Kidmo, D. K., Ekam, P. S. N., Mbakop, F. K., & Djongyang, N. (2022). An optimized synergetic nonlinear controller (OSNC) based maximum power point tracking for a standalone photovoltaic system using a boost converter. Energy Reports, 8, 107-122. | |||||||||||||||||||||||
7 | 6 | Analysis and Optimization of DC-DC Converters Through Sensitivity to Parametric Variations | Hinov, N., Stanchev, P., & Vacheva, G. (2025). Analysis and Optimization of DC-DC Converters Through Sensitivity to Parametric Variations. Technologies, 13(2), 56. | |||||||||||||||||||||||
8 | 7 | Analysis and simulation of full-bridge boost converter using matlab | Alavi, O., & Dolatabadi, S. (2015). Analysis and simulation of full-bridge boost converter using matlab. Balkan Journal of Electrical and Computer Engineering, 3(2). | |||||||||||||||||||||||
9 | 8 | Analysis of Ride comfort and Road holding of Quarter car model by SIMULINK | Phalke, T. P., & Mitra, A. C. (2017). Analysis of Ride comfort and Road holding of Quarter car model by SIMULINK. Materials Today: Proceedings, 4(2), 2425-2430. | |||||||||||||||||||||||
10 | 9 | Closed-loop direct power control of brushless dc motor in field weakening region | Masoudi, H., Kiyoumarsi, A., Madani, S. M., & Ataei, M. (2023). Closed-loop direct power control of brushless dc motor in field weakening region. IEEE Transactions on Transportation Electrification, 10(2), 3482-3491. | |||||||||||||||||||||||
11 | 10 | Control of switched reluctance generator in wind power system application for variable speeds | Omac, Z., & Cevahir, C. (2021). Control of switched reluctance generator in wind power system application for variable speeds. Ain Shams Engineering Journal, 12(3), 2665-2672. | |||||||||||||||||||||||
12 | 11 | Detailed modelling and simulation of different DC motor types for research and educational purposes | Sami, S. S., Obaid, Z. A., Muhssin, M. T., & Hussain, A. N. (2021). Detailed modelling and simulation of different DC motor types for research and educational purposes. International Journal of Power Electronics and Drive Systems (IJPEDS), 12(2), 703-714. | |||||||||||||||||||||||
13 | 12 | Dynamic Weight Model Predictive Control for Longitudinal Adaptive Cruise Systems in Electric Vehicles | Wei, W., Li, L., Li, Q., Zhang, S., Fan, C., & Liang, L. (2025). Dynamic Weight Model Predictive Control for Longitudinal Adaptive Cruise Systems in Electric Vehicles. Applied Sciences, 15(12), 6715. | |||||||||||||||||||||||
14 | 13 | Experimental and Matlab/Simulink verification of various speed control for DC drive systems | ARIVALAHAN, R., & KUMAR, K. R. (2020). EXPERIMENTAL AND MATLAB/SIMULINK VERIFICATION OF VARIOUS SPEED CONTROL FOR DC DRIVE SYSTEMS. Journal of Electrical Engineering, 20(3), 5-5. | |||||||||||||||||||||||
15 | 14 | Fast demagnetization method for power transformers combined with residual flux measurement | Ren, Y., Liu, C., & Wang, Y. (2025). Fast demagnetization method for power transformers combined with residual flux measurement. International Journal of Electrical Power & Energy Systems, 164, 110431. | |||||||||||||||||||||||
16 | 15 | General model for representing variable speed wind turbines in power system dynamics simulations | Slootweg, J. G., De Haan, S. W. H., Polinder, H., & Kling, W. L. (2003). General model for representing variable speed wind turbines in power system dynamics simulations. IEEE Transactions on power systems, 18(1), 144-151. | |||||||||||||||||||||||
17 | 16 | Implementation of a fuzzy-based level control using SCADA | Aydogmus, Z. (2009). Implementation of a fuzzy-based level control using SCADA. Expert Systems with Applications, 36(3), 6593-6597. | |||||||||||||||||||||||
18 | 17 | Investigation of mathematical modelling of brushless dc motor (BLDC) drives by using MATLAB-SIMULINK | Poovizhi, M., Kumaran, M. S., Ragul, P., Priyadarshini, L. I., & Logambal, R. (2017, March). Investigation of mathematical modelling of brushless dc motor (BLDC) drives by using MATLAB-SIMULINK. In 2017 International Conference on Power and Embedded Drive Control (ICPEDC) (pp. 178-183). IEEE. | |||||||||||||||||||||||
19 | 18 | Kalıcı Mıknatıslı Senkron Generatörlü Rüzgâr Enerjisi Dönüşüm Sistemlerinde Maksimum Güç Kontrolünün Akıllı Yapı Tabanlı Modellemesi | Perçin, H. B., & Çalışkan, A. (2021). Kalıcı Mıknatıslı Senkron Generatörlü Rüzgâr Enerjisi Dönüşüm Sistemlerinde Maksimum Güç Kontrolünün Akıllı Yapı Tabanlı Modellemesi. Avrupa Bilim ve Teknoloji Dergisi, (24), 219-225. | |||||||||||||||||||||||
20 | 19 | MATLAB/Simulink modelling and experimental results of a PEM electrolyzer powered by a solar panel | Albarghot, M., & Rolland, L. (2016, October). MATLAB/Simulink modelling and experimental results of a PEM electrolyzer powered by a solar panel. In 2016 IEEE Electrical Power and Energy Conference (EPEC) (pp. 1-6). IEEE. | |||||||||||||||||||||||
21 | 20 | MODELING OF WIND POWER CONVERSATION SYSTEM IN MATLAB SIMULINK | Özçelik, M. A. MODELING OF WIND POWER CONVERSATION SYSTEM IN MATLAB SIMULINK. | |||||||||||||||||||||||
22 | 21 | Modeling of multi-junction photovoltaic cell using MATLAB/Simulink to improve the conversion efficiency | Das, N., Wongsodihardjo, H., & Islam, S. (2015). Modeling of multi-junction photovoltaic cell using MATLAB/Simulink to improve the conversion efficiency. Renewable Energy, 74, 917-924. | |||||||||||||||||||||||
23 | 22 | Optimal dead-time control scheme for extended ZVS range and burst-mode operation of phase-shift full-bridge (PSFB) converter at very light load | Kim, C. E. (2019). Optimal dead-time control scheme for extended ZVS range and burst-mode operation of phase-shift full-bridge (PSFB) converter at very light load. IEEE Transactions on Power Electronics, 34(11), 10823-10832. | |||||||||||||||||||||||
24 | 23 | Optimal power control in Renewable Energy sources using Intelligence algorithm | Sakthivel, S. (2023). Optimal power control in Renewable Energy sources using Intelligence algorithm. Heliyon, 9(9). | |||||||||||||||||||||||
25 | 24 | Performance comparison between variants PID controllers and unity feedback control system for the response of the angular position of the DC motor | Mhawesh, M. A. (2021). Performance comparison between variants PID controllers and unity feedback control system for the response of the angular position of the DC motor. International Journal of Electrical and Computer Engineering, 11(1), 802. | |||||||||||||||||||||||
26 | 25 | PMSM control system research based on vector control | Liu, Y., & Zhang, Z. (2015, July). PMSM control system research based on vector control. In First International Conference on Information Sciences, Machinery, Materials and Energy (pp. 393-396). Atlantis Press. | |||||||||||||||||||||||
27 | 26 | Sinüzoidal Darbe Genişlik Modülasyon Tekniği ile Beş Fazlı Asenkron Motorun Matlab/Simulink Modeli | Taşkın, E., Özdemir, M., & Sarıgül, İ. (2021). Sinüzoidal Darbe Genişlik Modülasyon Tekniği ile Beş Fazlı Asenkron Motorun Matlab/Simulink Modeli. Dicle Üniversitesi Mühendislik Fakültesi Mühendislik Dergisi, 12(4), 627-633. | |||||||||||||||||||||||
28 | 27 | Solar Energy Systems Design Using Immersive Virtual Reality: A Multi-Modal Evaluation Approach | AlQallaf, N., AlQallaf, A., & Ghannam, R. (2024). Solar Energy Systems Design Using Immersive Virtual Reality: A Multi-Modal Evaluation Approach. Solar, 4(2), 329-350. https://doi.org/10.3390/solar4020015 | |||||||||||||||||||||||
29 | 28 | The Influence of Temperature and Irradiance on Performance of the photovoltaic panel in the Middle of Iraq | Al-Ghezi, M. K., Ahmed, R. T., & Chaichan, M. T. (2022). The Influence of Temperature and Irradiance on Performance of the photovoltaic panel in the Middle of Iraq. International Journal of Renewable Energy Development, 11(2), 501. | |||||||||||||||||||||||
30 | 29 | Thévenin's battery model parameter estimation based on Simulink | Barletta, G., DiPrima, P., & Papurello, D. (2022). Thévenin’s battery model parameter estimation based on Simulink. Energies, 15(17), 6207. | |||||||||||||||||||||||
31 | 30 | Two photovoltaic cell simulation models in Matlab/Simulink | Ramos-Hernanz, J. A., Campayo, J. J., Larranaga, J., Zulueta, E., Barambones, O., Motrico, J., ... & Zamora, I. (2012). Two photovoltaic cell simulation models in Matlab/Simulink. International Journal on Technical and Physical Problems of Engineering (IJTPE), 4(1), 45-51. | |||||||||||||||||||||||
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