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| # | Type | Title | Author | Publisher | Pub. Year | Subjects | Call Number |
|---|---|---|---|---|---|---|---|
| 1 | پایان نامه | بهبود حفاظت ریزشبکه های AC اینورتر-پایه در برابر اتصال کوتاه Improvement of Inverter-based AC Microgrids Protection Against Short Circuit | زارعی، فریبرز Zarei, Fariborz | دانشگاه صنعتی شریف | 1398 | خطای اتصال کوتاه نامتقارن Asymmetrical Short Circuit Fault / تشخیص خطا Fault Detection / گذر از خطا Fault-Ride Through / ریزشبکه مبتنی بر متناوب ساز Inverter-based Microgird / ریزشبکه جزیره ای Islanded Microgrid / حفاظت ریزشبکه Microgrid Protection / ریزشبکه Microgrid |
05-52369
|
| 2 | پایان نامه | مدیریت غیرمتمرکز توان در ریز شبکه های ترکیبی AC-DC Decentrilized Power Management in AC-DC Hybrid Microgirds | پیغامی، سعید Peyghami, Saeed | صنعتی شریف | 1396 | مدیریت توان Power Management / ریزشبکه جریان متناوب Alternative Current Microgrid / ریزشبکه جریان مستقیم Direct Current Microgrid / ریزشبکه ترکیبی جریان متناوب - جریان مستقیم Alternative Current-Direct Current Hybrid Microgrid / دروپ فرکانس Frequency Droop / دروپ فرکانس Frequency Droop |
05-49783
|
| 3 | پایان نامه | بهبود سیستم مدیریت توان در شناورهای دریایی تمام برقی Improving Power Management System in All-Electric Ships | نصیری، سامان Nasiri, Saman | صنعتی شریف | 1400 | مدیریت منابع انرژی Energy Management System / مدیریت سمت تقاضا Demand Side Mangement / مدیریت توان Power Management / مدیریت انرژی Energy Management / پیشرانش الکتریکی Electric Propulsion / شناور دریایی تمام برقی All-Electric Ships |
05-54890
|
| 4 | مقاله | Hierarchical power sharing control in DC microgrids | Peyghami, S. | Elsevier Inc, | 2016 |
Autonomous control.
DC microgrids. Droop control. Hierarchical power sharing. Primary control. Secondary control. Tertiary control. |
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| 5 | مقاله | Autonomous power management in LVDC microgrids based on a superimposed frequency droop | Peyghami, S. | 2017 |
Autonomous control.
Batteries. Control systems. DC microgrid. FCC. Frequency control. Integrated circuits. Interlinking converter. Microgrids. Power management. Voltage control. |
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| 6 | مقاله | Autonomous power management in LVDC microgrids based on a superimposed frequency droop | Peyghami, S. | Institute of Electrical and Electronics Engineers Inc, | 2018 |
Autonomous control.
Dc microgrid (MG) Control systems. Electric frequency control. Energy management. Integrated circuits. Power management. Solar cells. Voltage control. Current-sharing. Dc micro-grid. Droop characteristics. Interlinking converter. Line resistance. Micro grid. Virtual resistance. Frequency converter circuits. |
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| 7 | مقاله | Autonomous operation of a hybrid AC/DC microgrid with multiple interlinking converters | Peyghami, S. | Institute of Electrical and Electronics Engineers Inc, | 2018 |
Hybrid microgrid.
Interlinking converter. Electric load flow. Integrated circuit interconnects. Rectifying circuits. Voltage regulators. Droop method. Frequency droop. Power sharing. Electric power system interconnection. |
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| 8 | مقاله | Decentralized load sharing in a low-voltage direct current microgrid with an adaptive droop approach based on a superimposed frequency | Peyghami, S. | 2017 |
Adaptive droop control.
Frequency injection. Voltage regulators. Dc micro-grid. Droop control. Droop controllers. Droop method. Experimental test. Load sharing control. Power sharing. Reliability and stability. Controllers. |
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| 9 | مقاله | Fault detection and protection strategy for islanded inverter-based microgrids | Zarei, F. | Institute of Electrical and Electronics Engineers Inc, | 2019 |
Fault detection method.
Inverter-based microgrid. Microgrid (MG) Microgrid protection strategy. Electric fault currents. Electric inverters. Energy resources. Grading. Analytical sequence. Coordination strategy. Detection methods. Distributed Energy Resources. Islanded mode. Micro grid. Microgrid protections. Protection coordination. Fault detection. |
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| 10 | مقاله | Fault detection and protection strategy for islanded inverter-based microgrids | Zarei, S. F. | Institute of Electrical and Electronics Engineers Inc, | 2019 |
Fault detection method.
Inverter-based microgrid. Microgrid (MG) Microgrid protection strategy. Electric fault currents. Electric inverters. Energy resources. Grading. Analytical sequence. Coordination strategy. Detection methods. Distributed Energy Resources. Islanded mode. Micro grid. Microgrid protections. Protection coordination. Fault detection. |
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| 11 | مقاله | Reliability evaluation in microgrids with non-exponential failure rates of power units | Peyghami, S. | Institute of Electrical and Electronics Engineers Inc, | 2020 |
Adequacy.
Availability. Bathtub-shaped failure rate. Exponential failure rate. Microgrid. Non-exponential failure rate. Reliability. Risk. Wear-out. Decision making. Microgrids. Power converters. Time-to-failure. Constant failure rate. Failure characteristics. Failure statistics. Power electronic converters. Reliability Evaluation. Reliability prediction. Steady state probabilities. System reliability. Outages. |
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| 12 | مقاله | Active damping of torsional vibrations due to the sub-harmonic instability on a synchronous generator | Peyghami, S. | Institute of Electrical and Electronics Engineers Inc, | 2018 |
Active damping.
Active filter. Interharmonics. Microgrid. Synchronous machine. Active filters. Damping. Electric drives. Electric motors. Harmonic analysis. Liquefied natural gas. Mechanical drives. Power electronics. Synchronous generators. Turbogenerators. Active damping. Electromechanical systems. Instability problems. Inter-harmonics. Liquefied Natural Gas (LNG) Micro grid. Torsional vibration. Vibrations (mechanical) |
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| 13 | مقاله | Decentralized droop control in DC microgrids based on a frequency injection approach | Peyghami, S. | Institute of Electrical and Electronics Engineers Inc, | 2019 |
Grid forming.
Electric power transmission networks. HVDC power transmission. Voltage regulators. Control methods. DC grid. Droop control. Frequency droop. High voltage applications. Power sharing. Supervisory controllers. Voltage droop. Electric power system control. |
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| 14 | مقاله | Modeling in-and-out-of-water impact on all-electric ship power system considering propeller submergence in waves | Nasiri, S. | Institute of Electrical and Electronics Engineers Inc, | 2021 |
Electric ship equipment.
Electric utilities. Power quality. Propellers. Ship propellers. Ship propulsion. Ships. All-electric ship power systems. Comprehensive model. Electric propulsion systems. Interconnected models. Model based approach. Model- based designs. Optimal performance. Power system dynamics. Marine power plants. |
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| 15 | مقاله | An open-water efficiency based speed change strategy with propeller lifespan enhancement in all-electric ships | Nasiri, S. | Institute of Electrical and Electronics Engineers Inc, | 2021 |
Acceleration.
Marine industry. Marine power plants. Power quality. Quality control. Ship propellers. Ship propulsion. Ships. Speed. All electric ships. Control strategies. Conventional methods. Electrical propulsion. Maximum acceleration. Mechanical indexes. Operation strategy. Reliability and power qualities. Propellers. |
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| 16 | مقاله | Enhanced frequency droop method for decentralized power sharing control in DC microgrids | Jafari, M. | Institute of Electrical and Electronics Engineers Inc, | 2021 |
Voltage regulators.
Control strategies. Dominant poles. Droop characteristics. Line resistance. Load variations. Loading condition. System voltage. Voltage quality. Microgrids. |
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| 17 | مقاله | A comprehensive theoretical approach for analysing manoeuvring effects on ships by integrating hydrodynamics and power system | Nasiri, S. | John Wiley and Sons Inc, | 2022 |
Marine propulsion.
Hydrodynamics. Ships. All-electric-ship. Marine power systems. Power. Propulsion system. Ship motion. Ship power system. Ship speed. Speed change. System variations. Theoretical approach. Ship propulsion. |
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| 18 | مقاله | Power management strategies based on propellers speed control in waves for mitigating power fluctuations of ships | Nasiri, S. | Institute of Electrical and Electronics Engineers Inc, | 2022 |
All-electric ships (AESs)
Electric propulsion system. Power management strategy (PMS) Wave collisions. Differential equations. Electric ship equipment. Electric vehicles. Power management. Power quality. Ship models. Ship propellers. All-electric-ship. Electric propulsion systems. Fluctuation. Marine vehicles. Microgrid. Power. Power fluctuations. Power management strategies. Power system. Wave collision. Ship propulsion. |
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| 19 | مقاله | Analysis of all-electric ship motions impact on PV system output power in waves | Nasiri, S. | Institute of Electrical and Electronics Engineers Inc, | 2022 |
Electric vehicles.
Photovoltaic effects. Ship propulsion. Solar energy. Solar panels. Solar power generation. All-electric-ship. Extreme conditions. Output power. Photovoltaic power generation. Power. Power generation capacities. PV system. Ship motion. System output. Wave collision. Ships. |
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| 20 | مقاله | Health monitoring of output capacitor in boost converters based on dissipation factor | Ghadrdan, M. | Institute of Electrical and Electronics Engineers Inc, | 2023 |
Boost converter.
Dissipation factor (DF) Electrolytic capacitor. End-of-life criteria. Loss angle. Predictive maintenance. |
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