• Title/Summary/Keyword: Solar inverter

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DC Offset Current Compensation Method of Transformeless Fuel Cell/PV PCS (무변압기형 연료전지/태양광용 PCS의 직류분 보상기법)

  • Park, Bong-Hee;Kim, Seung-Min;Choi, Ju-Yeop;Choy, Ick;Lee, Sang-Chul;Lee, Dong-Ha;Lee, Young-Kwon
    • Journal of the Korean Solar Energy Society
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    • v.33 no.6
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    • pp.92-97
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    • 2013
  • This paper proposes DC offset current compensation method of transformerless fuel cell/PV PCS. DC offset current is generated by the unbalanced internal resistance of the switching devices in full bridge topology. The other cause is the sensitivity of the current sensor, which is lower than DSP in resolution. If power converter system has these causes, the AC output current in the inverter will generate the DC offset. In case of transformerless grid-connected inverter system, DC offset current is fatal to grid-side, which results in saturating grid side transformer. Several simulation results show the difficulties of detecting DC offset current. Detecting DC offset current method consists of the differential amplifiers and PWM is compensated by the output of the Op amp circuit with integrator controller. PSIM simulation verifies that the proposed method is simpler and more effective than using low resolution current sensor alone.

A Study on Photovoltaic Generation System for Utility Interact (계통연계를 위한 태양광 발전시스템에 관한 연구)

  • Huh, Hwan;Park, Choon-Woo;Sung, Nark-Kuy;Lee, Seung-Hwan;Lee, Hoon-Goo;Han, Kyung-Hee
    • Proceedings of the KIEE Conference
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    • 1996.07a
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    • pp.361-363
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    • 1996
  • The output of solar cell should be operated in the maximum power point, since it is greatly fluctuated by insolation and temperature. Also, since the output of solar cell is a DC power, it needs the inverter to interact with utility line. In this paper, we made composed of PV system with a chopper that control the maximum power point and the inverter that drive to the high power factor and low harmonic by use of defected and compensated utility line voltage for synchronous phase with utility line.

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Design of 1500V solar inverter stack beyond megawatt in NPC1 topology

  • Hao, Xin;Ma, Kwok-Wai;Zhao, Jia;Sun, Xin-Yu
    • Proceedings of the KIPE Conference
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    • 2017.07a
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    • pp.7-11
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    • 2017
  • This paper describes a design concept of NPC1 power stack for 1500VDC megawatt level solar inverter. This stack uses three latest half-bridge IGBT modules with highest power density and operation junction temperature, which enable realization of power level beyond 1MW without paralleling. Critical design concept on loop inductance is explained. Dynamic characteristics are verified by double-pulse test. Thermal characteristics and output power limits are verified by thermal test. Temperature-sensitive component on PCB as output power constraint is identified. Different PCB repositioning solutions are tested to give the overall output power thermal derating curves, which enable output power of 1.15MW at $T_A=55^{\circ}C$ with $15^{\circ}C$ thermal margin. The power stack characteristic and performance change under different thermal environment is further analyzed.

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The Output Characteristics of 3kW BIPV System (건물일체형 태양광발전시스템의 실증분석)

  • Kim, Ji-Hoon;Jie, Bian Wen;Lee, Kang-Yeon;Kim, Pyoung-Ho;Oh, Geum-Gon;Baek, Hyung-Lae
    • Proceedings of the KIEE Conference
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    • 2006.04b
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    • pp.386-389
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    • 2006
  • BIPV(Building Integrated PV) system can expect dual effects that reduce expenses for establishment of PV system by adding new function as outer covering material of building expect producing the electricity. In case of PV(photovoltaic system) there are many generation differences according to the exterior environmental facts(solar cell array, design and installation condition of interactive inverter system). In this paper, we compared constitute factors of 3kW BIPV(solar cell module, inverter), operating characteristic and total system characteristic(utilization, generation efficiency, loss fact) and found out long time operating data using a watch instrumentations. By use of long time operating result, compare a totally operating characteristics, and we proposed a next building application of BIPV. BIPV system that is proposed in this paper, was established in Solar Energy research center of Chosun University, composed with system. The objective of this paper, is to provide a efficient BIPV design method through the considerations for the integration of PV system.

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Grid-Connected Photovoltaic Inverter with Zero-Current-Switching (영전류 스위칭 계통 연계형 태양광 발전 인버터)

  • Choi, Hang-Seok;Kim, J.D.;Cho, B.H.
    • Proceedings of the KIEE Conference
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    • 2001.07b
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    • pp.953-955
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    • 2001
  • This paper presents a new zero current switching (ZCS) inverter for grid-connected photovoltaic single phase inverter system. The auxiliaey circuit for the soft-switching consists of two resonant inductors and two resonant capacitors as well as two auxiliary switches rated at lower power. The proposed circuit provides zero current switching condition for all the switches, which reduces switching losses significantly. It is controlled to extract maximum power from the solar array and to provide sinusoidal current into the mains. The validity of the proposed system is verified by experimental results from the 1.2kW prototype inverter operating at 40kHz.

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A Study on Synchronized AC Source Voltage Regulator of Voltage Fed Inverter using a Photovoltatic Effect

  • Hwang, Lak-Hoon;Lee, Chun-Sang;Kim, Jong-Lae;Jang, Byong-Gon
    • Proceedings of the KIPE Conference
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    • 1998.10a
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    • pp.547-553
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    • 1998
  • In this paper, we composed of utility interactive pv generation system of voltage source inverter, and represented uninterrutible power supply (UPS) equipment maintaining constant voltage, using a pulse width modulation(PWM) voltage fed inverter, as power source disconnection, voltage variation and output current variation with load variation. This system is driven by being synchronized voltage fed inverter and AC source, and in the steady state of power source charge battery connected to dc side with solar cell using a photovoltaic (PV) that it was so called constant voltage charge. In addition, better output waveform was generated because of PWM method, and it was proved to test by experiment maintained constant output voltage regardless of AC source disconnection, load variation, and voltage variation of AC power source.

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Utility Interactive Photovoltaic Generation System using PWM Current Source Inverter (PWM 전류형인버터를 이용한 계통연계형 태양광 발전시스템)

  • 박춘우;성낙규;이승환;강승욱;이훈구;한경희
    • Proceedings of the KIPE Conference
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    • 1996.06a
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    • pp.109-112
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    • 1996
  • In this paper, we composed utility interactive photovoltaic generation system of current source inverter, and controlled that low harmonic and high power factor are hold by supposing control and compensation method which is concerned with synchronous signal distortion and modulation delay. And we put parallel resonant circuit into dc link, so, magnitude of direct reactance was reduce by restraining direct current pulsation which had accumulation of pulsating power in alternating electrolytic condenser. Also we controlled that modulation factor is operated around maximum output of solar cell.

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Soft-switching Current Source Inverter for Interconnection of Solar Cell with Power System (태양전지의 개통연계를 위한 소프트스위칭 전류원 인버터)

  • Choy, Young-Do;Park, Sang-Ho;Kim, Hee-Joong;Han, Byung-Moon
    • Proceedings of the KIEE Conference
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    • 2000.11b
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    • pp.345-347
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    • 2000
  • This paper proses a soft-switching current-source inverter with a switched-capacitor module. The system operation was analyzed by a theoretical approach with equivalent circuits and verified by a computer simulation and experiment. The proposed system could be effectively applied for the power converter of photovoltaic power generation interconnected with the power system.

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Design of Automatic Fire Prevention and Suppression System for Photovoltaic Connection Module (태양광 접속반의 자동 화재 예방 및 진압 시스템 설계)

  • Lee, Kang Won;Yang, Oh
    • Journal of the Semiconductor & Display Technology
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    • v.21 no.3
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    • pp.33-38
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    • 2022
  • A solar power generation system uses a solar module that collects solar radiation energy, a connecting board that collects DC power generated from the solar module, and a diode to prevent reverse current from flowing from an inverter to the solar module. The existing photovoltaic connection module consists of only fuses and diodes for reverse polarity and overcurrent blocking, and does not have fire diagnosis, prevention, and suppression functions in the event of a fire. To solve this problem, this paper presents a method to monitor the internal state of the photovoltaic connection module using several sensors and to prevent and extinguish a fire using solenoid valves and fire extinguishing agents when a fire is detected. Through the experiment, it was confirmed that the proposed method normally suppresses the fire in event of a fire.

Improvement of Power Generation through Energy Harvesting Technology in Low Sunlight Section (낮은 일조량 구간에서 에너지 하베스팅 기술을 통한 발전량 향상)

  • Yoon, Yongho
    • The Journal of the Institute of Internet, Broadcasting and Communication
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    • v.22 no.3
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    • pp.201-206
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    • 2022
  • Energy harvesting is a concept introduced in 1954 by Bell Labs in the US while conducting research on solar cells that convert sunlight into energy. Such energy harvesting technology is a technology that collects wasted or unused energy in daily life and recycles it as electric power. In particular In the case of a photovoltaic power generation system, energy harvesting can be applied by storing electricity generated by using a battery to reduce power consumption generated by the inverter in the form of loss of power generation in cloudy weather compared to sunny days. Therefore, in this paper, energy harvesting technology is applied in the low sunlight section such as sunrise, sunset, and cloudy weather to improve the amount of power generation by recovering the power that is below the minimum operating voltage of the inverter and dissipated. Accordingly, the research contents were verified through the development of systems and algorithms according to the amount of solar power generation and the development of systems and algorithms using low power generated in sunset, sunrise, and other environments.