• 제목/요약/키워드: PV-Module

검색결과 600건 처리시간 0.03초

결정질 태양전지모듈의 외부 응력에 따른 장기적 내구성 예측 (The Durability Estimation of Crystalline PV Module according to Mechanical Stress)

  • 김경수;강기환;유권종
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2008년도 하계학술대회 논문집 Vol.9
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    • pp.35-36
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    • 2008
  • In this paper, we studied the long term durability estimation for crystalline photovoltaic module while exposing to mechanical stress. Solar cell and PV module have many different kinds of stresses from cell to module fabrication. For this reason, some solar cell shows micro crack that decrease crystallization. In here, we expose artificial mechanical load on surface of PV module. Through this, the periodic external force on PV module might give an negative effect. The further analysis is described in the following paper.

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PV모듈에서 후면Sheet의 광학적 특성에 따른 전기적 출력 특성 (Electrical Characteristics of PV Module According to Optical Characteristics of Back-sheet)

  • 이진섭;강기환;박지홍;유권종;안형근;한득영
    • 한국태양에너지학회:학술대회논문집
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    • 한국태양에너지학회 2008년도 추계학술발표대회 논문집
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    • pp.42-47
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    • 2008
  • In this paper, we analyze the electrical characteristics of PV depending on distance among solar cells before and after lamination process. From the result, the PV module's maximum power increases about 3.37% when solar cells's distance is 10mm. And the maximum power increases up to 8.42% when solar cells's maximum distance is 50mm. It is assumed that PV module's surface temperature decreases because of increasing distance between solar cells that would give high power generation. Also, short distance between solar cell and frame result in contamination on glass. When considering reduced maximum power caused by contaminant, from that. we can fabricated PV module of lower cost with high performance.

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태양광 모듈 표면 온도 제어에 따른 백시트 박리 거동 (Peeling Behavior of Backsheet according to Surface Temperature of Photovoltaic Module)

  • 김정훈;이준규;안영수;여정구;이진석;강기환;조철희
    • 한국재료학회지
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    • 제29권11호
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    • pp.703-708
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    • 2019
  • In this study, we investigate the relationship between the peeling behavior of the backsheet of a photovoltaic(PV) module and its surface temperature in order facilitate removal of the backsheet from the PV module. At low temperatures, the backsheet does not peel off whereas, at high temperatures, part of the backsheet remains on the surface of the PV module after the peeling process. The backsheet material remaining on the surface of the PV module is confirmed by X-ray diffraction(XRD) analysis to be poly-ethylene(PE). Differential scanning calorimetry(DSC) is also performed to investigate the interfacial characteristics of the layers of the PV module. In particular, DSC provides the melting temperature($T_m$) of laminated ethylene vinyl acetate(EVA) and of the backsheet on the PV module. It is found that the backsheet does not peel off below the $T_m$ of ethylene of EVA, while the PE layer of the backsheet remains on the surface of the PV module above the $T_m$ of the PE. Thus, the backsheet is best removed at a temperature between the $T_m$ of ethylene and that of PE layer.

결정계 PV 모듈에 대한 고장 메커니즘 검토 (A Review on the Failure Mechanism for Crystalline Silicon PV Module)

  • 김정연;김주희;천성일;임동건;김양섭
    • 한국전기전자재료학회논문지
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    • 제27권6호
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    • pp.343-349
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    • 2014
  • It is summarized that potential causes of performance degradations and failure mechanisms of crystalline silicon photovoltaic (PV) modules installed in Middle East area. In addition, we also reviewed current PV module qualification test (IEC 61215) and the methods for detection of wear-out fault. The failure of PV modules in the extreme environmental conditions such as deserts is mainly due to high temperature, humidity, and dust storms. In particular, cementation phenomenon caused by combination of sand and moisture leads to rapid degradation in the performance of PV modules. In order to evaluate and guarantee the long term reliability of PV modules, specific qualification tests such as sand dust test, salt mist test and potential induce degradation test considering operating environment of PV module should be carried out.

액체식 PV/Thermal 복합모듈의 성능실험연구 (An Experimental Study of a Water Type PV/Thermal Combined Collector Unit)

  • 이현주;김진희;김준태
    • 한국태양에너지학회 논문집
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    • 제27권4호
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    • pp.105-111
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    • 2007
  • Hybrid PV/Thermal systems consisting of photovoltaic module and thermal collector can produce the electricity and thermal energy. The solar radiation increases the temperature of PV modules, resulting in the decrease of their electrical efficiency. Accordingly hot air can be extracted from the space between the PV panel and roof, so the efficiency of the PV module increases. The extracted thermal energy can be used in several ways, increasing the total energy output of the system. This study describes a basic type of PV/T collector using water. In order to analyze the performance of the collector, the experiment was conducted. The result showed that the thermal efficiency was 17% average and the electrical efficiency of the PV module was about $10.2%{\sim}11.5%$, both depending on solar radiation, inlet water temperature and ambient temperature.

PV moudule의 출력손실 저감요인 분석 (A Study for reduction of the power loss of PV modules)

  • 이상훈;강기환;유권종;안형근;한득영
    • 한국태양에너지학회:학술대회논문집
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    • 한국태양에너지학회 2011년도 추계학술발표대회 논문집
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    • pp.45-50
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    • 2011
  • The efficiency of solar cell was about 4[%] in initial stage of photovoltaic industry, but it has quite a lot of efficiency through technology advances. Today, the efficiency of c-Si solar cells is about 17 to 19[%] and the efficiency of PV modules is about 14 to 15 [%]. We called that electrical losses occurred in the Conversion of solar cells to PV modules are CTM loss(Cell To Module loss), the CTM loss typically has a value of about3~5[%]. The more efficiency of solar cell increase, differences are larger because the efficiency decrease owing to physical or technical problems occurred in the Conversion of solar cells to PV modules. In this study, the power loss factors occurred in the Conversion of solar cells to PV modules are analyzed and it is proposed that how to reduce losses of the PV module. The types of power loss factor are (1)losses of front glass and encapsulant(generally EVA sheet), (2)losses by sorting miss, (3)losses by interconnection, (4)losses by the field aging of PV modules. In further study, experimental and evaluation will be conducted to make demonstrate for proposed solutions.

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부분 음영에 따른 a-Si Thin Film Photovoltaic(PV) Module의 직렬저항변화 (Series Resistance Change by Partial Shading in a-Si Thin Film Photovoltaic(PV) Module)

  • 신준오;정태희;김태범;우성철;윤나리;강기환;한득영;안형근
    • 한국전기전자재료학회논문지
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    • 제23권11호
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    • pp.901-905
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    • 2010
  • PV module has many power loss factors, and series resistance is the most important elements of them. It is therefore easy to expect the partial shading decrease the lifetime of the semiconductor depletion layer in thin film PV module. Different shading losses could be related with the hot spot which is critical in expecting the reliability issue. In this paper we have modelled the series resistance of the PV module with both different direction of the cell line and shading area of the panel. From the results, thin film a-Si PV module has shown different properties by shading direction.

PVT 시스템의 PV 모듈 및 태양열 집열기 대비 성능 및 효율 비교분석 (The Performance and Efficiency Analysis of a PVT System Compared with a PV module and a Solar collector)

  • 어승희;이정빈;최윤성;김대현
    • 한국태양에너지학회 논문집
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    • 제32권2호
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    • pp.1-10
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    • 2012
  • A photovoltaic/thermal (PVT)solar system is the solar technology that allows for simultaneous conversion of solar energy into both electricity and heat. This paper compared the performance of PVT system with a conventional PV module and solar collector and analyzed electrical and thermal efficiency of PVT system in terms of solar irradiance and inlet temperature of the working fluid. Based on the experimental data, thermal and electrical efficiencies of he glazed PVT system were57.9% and14.27% under zero reduced temperature condition which were lower by 13.6% than the solar thermal absorber plate and by 0.08% than the PV module respectively. For the unglazed PVT system it had lower thermal efficiency than the solar thermal absorber plate but higher electrical performance than the PV module due to the cooling effect by the working fluid. However, total efficiency of the glazed PVT system was72.2% which was higher than combined efficiencies of the solar collector and PV module. Besides, total efficiency of the PVT system would be much higher if calculated based on unit area.

PVT 시스템의 PV 모듈 및 태양열 집열기 대비 성능 및 효율 비교분석 (The Performance and Efficiency Analysis of a PVT System Compared with a PV module and a Solar collector)

  • 어승희;이정빈;최윤성;김대현
    • 한국태양에너지학회:학술대회논문집
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    • 한국태양에너지학회 2011년도 추계학술발표대회 논문집
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    • pp.60-67
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    • 2011
  • A photovoltaic/thermal(PVT)solar system is the solar technology that allows for simultaneous conversion of solar energy into both electricity and heat. This paper compared the performance of PVT system with a conventional PV module and solar collector and analyzed electrical and thermal efficiency of PVT system in terms of solar irradiance and inlet temperature of the working fluid. Based on the experimental data, thermal and electrical efficiencies of the glazed PVT system were 57.9% and 14.27% under zero reduced temperature condition which were lower by 13.6% than the solar thermal absorber plate and by 0.08% than the PV module respectively. For the unglazed PVT system, it had lower thermal efficiency than the solar thermal absorber plate but higher electrical performance than the PV module due to the cooling effect by the working fluid. However, total efficiency of the glazed PVT system was 72.2% which was higher than combined efficiencies of the solar collector and PV module. Besides, total efficiency of the PVT system would be much higher if calculated based on unit area.

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Master-Slave 방식을 적용한 가정용 PV Charging Module 개발에 관한 연구 (A Study on Development of PV Charging Module for Home Using Master-Slave Method)

  • 정도영;차인수;정경환;김성민;김락준;강병복
    • 에너지공학
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    • 제29권1호
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    • pp.44-51
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    • 2020
  • ESS의 중요성은 네트워크 신뢰성 저하 및 재생 가능 에너지원의 확장으로 인한 전력 수요의 안정화로 인해 강조되었다. ESS (Energy Storage System)는 남은 전력을 저장하고 전력 수요를 충족시키기 위해 필요할 때 이를 사용하며 주로 태양 광 및 풍력과 연계하여 ESS 시스템을 구축한다. 본 논문에서는 낮은 일사량에 효과적인 Master-Slave 방법을 이용한 가정용 PV 충전 모듈을 제안한다. 모듈을 설계 한 후 고속 MPPT 알고리즘이 적용되어 PV 모듈의 비선형 출력 특성에서 최대 출력을 생성한다. PV 충전 모듈의 입력에 대한 평균 전력 값은 296.90 W, 출력 전력은 289.60 W로 평균 97.54 %의 전력변환 효율을 보인다.