• Title/Summary/Keyword: Flywheel

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Operating characteristics analysis of Dynamic UPS using Flywheel Energy Storage Element (플라이휠 저장 에너지를 이용한 다이나믹 UPS 동작 특성 분석)

  • Lee, K.S.;Kim, J.W.;Byeon, W.Y.;Nho, E.C.;Kim, I.D.;Chun, T.W.;Kim, H.G.
    • Proceedings of the Korean Institute of IIIuminating and Electrical Installation Engineers Conference
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    • 2004.05a
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    • pp.518-522
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    • 2004
  • This paper describes a dynamic UPS system with flywheel energy storage element. There are three operating modes of charging, voltage compensation, and UPS. The operating principle of each mode is analyzed and simulated. The simulation results show the validity of the operation of the proposed scheme.

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Enhancement of network stability using flywheel Energy storage unit and circulating type cycloconverter (플라이휠과 순환전류형 싸이크로컨버터를 이용한 계통안정도 향상)

  • Ryu, Ho-Seon;Kim, Byung-Kweon;Whang, In-Ho;Lee, Heung-Ho;Seong, Se-Jin
    • Proceedings of the KIEE Conference
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    • 1993.07a
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    • pp.202-204
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    • 1993
  • Appropriate control of real and reactive power flowing in and out from system can lead to considerable benefits : network stabilization, load leveling, voltage regulation etc. This paper presents how to control real and reactive power flow between an flywheel energy storage system and a power three phase network. The system compensating real and reactive power consists of control system and cycloconverter operating in the four quadrant modes.

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Harmonic and Power Factor Compensation Using WRIM Based on Sliding Mode Controller (슬라이딩 모드제어기와 권선형 유도전동기를 이용한 고조파 및 역률보상)

  • Kim Seung-Mo;Kim Yoon-Ho
    • Proceedings of the KIPE Conference
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    • 2002.11a
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    • pp.7-11
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    • 2002
  • This paper proposes an APF(Active Power Filter) with WRIM(Wounded Rotor Induction Motor) controlled by sliding mode which can compensate harmonic currents generated in a power system. As non-linear loads increase gradually in industry fields, harmonic current generated In the electric power network system also increases. Harmonic current makes a power network current distorted and generates heat, vibration and noise In the power machinery, Many approaches have been applied to compensate harmonic currents generated in the power system. Among various control strategy, in this paper, a sliding mode controlled systems is designed and evaluated. This is a flywheel compensator based on secondary excitation of WRIM(wounded rotor induction motor) with SMC(sliding mode controller). The proposed system uses a flywheel as an energy storage device. The designed control scheme is verified through simulation.

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Development of a Flywheel Energy Storage System using Superconducting Magnetic Bearing (초전도 플라이휠 에너지 저장시스템 개발)

  • 정환명;연제욱;최재호;고창섭
    • The Transactions of the Korean Institute of Power Electronics
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    • v.4 no.5
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    • pp.433-441
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    • 1999
  • This paper presents a S-FES(Superconducting magnetic becuing Flywheel Energy Storage System) for the p purpose of replacing battery used to store the energy. Especially, the design elements of FES, such as the b beming, wheel mateηaI, and power converter, etc., are described. The design and manufacturing techniques of t the controllable IXlwer converter are proposed to generate the sinusoidal output current in the high speed operation and to get the const빠synchronous motor with halbach cuTay of high coesive I\d-Fe-B permanent magnet is used as the driver of F FES. The proposed S-FES system shows the stable rotation characteristics at high speed range about l 10,000[rpm]. To verify the validity of proposed system, the comparative study with the conventional ball b beming s~rstem is proceeded and it is well confirmed with the result of the lower friction losses of S-FES S system.

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Stiffness Evaluation of High Temperature Superconductor Bearing Stiffness for 10 kWh Superconductor Flywheel Energy Storage System (10 kWh급 초전도 플라이휠 베어링의 강성 평가)

  • Park, B.J.;Jung, S.Y.;Lee, J.P.;Park, B.C.;Kim, C.H.;Han, S.C.;Du, S.G.;Sung, T.H.;Han, Y.H.
    • Progress in Superconductivity
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    • v.11 no.1
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    • pp.57-61
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    • 2009
  • A superconductor flywheel energy storage(SFES) system is mainly act an electro-mechanical battery which transfers mechanical energy into electrical form and vice versa. SFES system consists of a pair of non-contacting High Temperature Superconductor (HTS) bearings with a very low frictional loss. But it is essential to design an efficient HTS bearing considering with rotor dynamic properties through correct calculation of stiffness in order to support a huge composite flywheel rotor with high energy storage density. Static properties of HTS bearings provide data to solve problems which may occur easily in a running system. Since stiffness to counter vibration is the main parameter in designing an HTS bearing system, we investigate HTS bearing magnetic force through static properties between the Permanent Magnet(PM) and HTS. We measured axial / radial stiffness and found bearing stiffness can be easily changed by activated vibration direction between PM and HTS bulk. These results are used to determine the optimal design for a 10 kWh SFES.

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Application of Superconducting Flywheel Energy Storage System to Inertia-Free Stand-Alone Microgrid

  • Bae, SunHo;Choi, DongHee;Park, Jung-Wook;Lee, Soo Hyoung
    • Journal of Electrical Engineering and Technology
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    • v.12 no.4
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    • pp.1442-1448
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    • 2017
  • Recently, electric power systems have been operating with tight margins and have reached their operational limits. Many researchers consider a microgrid as one of the best solutions to relieve that problem. The microgrid is generally powered by renewable energies that are connected through power converters. In contrast to the rotational machines in the conventional power plants, the converters do not have physical rotors, and therefore they do not have rotational inertia. Consequently, a stand-alone microgrid has no inertia when it is powered by the only converter-based-generators (CBGs). As a result, the relationship between power and frequency is not valid, and the grid frequency cannot represent the power balance between the generator and load. In this paper, a superconducting flywheel energy storage system (SFESS) is applied to an inertia-free stand-alone (IFSA) microgrid. The SFESS accelerates or decelerates its rotational speed by storing or releasing power, respectively, based on its rotational inertia. Then, power in the IFSA microgrid can be balanced by measuring the rotor speed in the SFESS. This method does not have an error accumulation problem, which must be considered for the state of charge (SOC) estimation in the battery energy storage system (BESS). The performance of the proposed method is verified by an electromagnetic transient (EMT) simulation.