• Title/Summary/Keyword: 태양광발전모듈

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A Study on the Integrated Prefab Building Materials Depending on the Cooling Type of PV Module Backside (태양전지모듈 후면의 냉각조건에 따른 조립식 건축자재와 일체화에 관한 연구)

  • Yi, So-Mi;Lee, Yong-Ho
    • 한국신재생에너지학회:학술대회논문집
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    • 2006.06a
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    • pp.138-141
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    • 2006
  • The application of photovoltaics into building as integrated building components has been paid more attention worldwide. Photovoltaics or solar electric modules are solid state devices, directly converting solar radiation into electricity; the process does not require fuel and any moving parts, and produce no pollutants. And the prefab building method is very effective because the pre-manufactured building components is simply assembled to making up buildings in the construction fields especially the sandwich panel. So, the purpose of this research is to integrated prefab building materials depending on the cooling type of PV modules. It is concluded that the prediction of BIPV system's performance should be based on the more accurate PV module temperature. From the basis of these results on the correlation of temperature and irradiation were obtained.

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The Comparative analysis of Power Losses for 3-Level NPC Inverter and 3-Level T-type Inverter Module used in 10kW Photovoltaic system (10KW 급 태양광 발전용 3-Level NPC 인버터와 T-type 인버터 모듈의 손실 비교 분석)

  • Lee, Kwanghee;Jang, Seungyong;Choi, Jaeho
    • Proceedings of the KIPE Conference
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    • 2014.11a
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    • pp.143-144
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    • 2014
  • 본 논문에서는 NPC(Neutral Point Clamped) 및 T-type IGBT 모듈을 이용하여 3상 3-레벨 인버터를 구성하고, 인버터에서 발생되어지는 도통손실과 스위칭 손실을 PSIM의 Thermal Module을 사용하여 확인한다. 또한 토폴로지 상의 차이에 의해 발생되어지는 스위치 손실을 비교 하며, 시뮬레이션에 적용한 파라미터 값들을 수식에 직접 적용하여 손실에 영향을 미치는 파라미터를 확인하고, 각 파라미터의 값의 변화가 주어진 조건에서 전체 손실에 미치는 영향을 확인한다.

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Outdoor Performance Evaluation of Multi-Crystalline Silicon Photovoltaic Module (다결정 실리콘 태양광 모듈의 옥외 성능 평가)

  • Lee, Yuri;Kim, Woo Kyoung;Jung, Jae Hak
    • Current Photovoltaic Research
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    • v.7 no.3
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    • pp.71-75
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    • 2019
  • Solar energy is one of the renewable energy sources. It can respond to expanding energy demand. A solar cell module is designed to have a durability that can be developed over a long period of 25 years to be installed outdoors and perform like a stable power supply. We need Standard Test Condition (STC)-based power output data before and after testing to measure the power output of existing modules. The modules are shown to reduce power output by comparing data before and after outdoor experiments regardless of whether they are indoor or outdoor. It is easy to compare the power output quantities through the module simulator in the indoor. However, it takes a lot of testing time and costs to compare the power output on outdoor in the case of a high number of modules and distance from the module simulator. It can save time and costs if we can check the power output using the data in outdoor. We have used the long-term outdoor test to find the elements out that corresponds to the reductions in power output quantities. We have conducted research that matched the actual and the tests.

Fabrication of Perforated Strings for Transparent Silicon Shingled Photovoltaic Modules (투광형 실리콘 슁글드 태양광 모듈을 위한 타공형 스트링 제작)

  • Kim, Han Jun;Park, Min-Joon;Song, Jinho;Jeong, Taewung;Moon, Daehan;Jeong, Chaehwan
    • Current Photovoltaic Research
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    • v.8 no.4
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    • pp.120-123
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    • 2020
  • Transparent photovoltaics (PV) are used in various applications such as building-integrated photovoltaics (BIPV). However, crystalline silicon (c-Si) is not used for developing transparent PV due to its opaque nature. Here. we fabficate the three holes in 6-inch c-Si solar cells using laser scribing process with an opening area ratio of about 6.8% for transparent c-Si solar modules. Moreover, we make the shingled strings using the perforated cells. Our 7 interconnected shingled string PV cells with 21 holes show a solar to power conversion of 5.721 W. In next work, we will fabricate a transparent c-Si PV module with perforated strings.

Fabrication of Lightweight Flexible c-Si Shingled Photovoltaic Modules for Building-Applied Photovoltaics (건물 부착형 고경량 유연성 슁글드 태양광 모듈)

  • Minseob, Kim;Min-Joon, Park;Jinho, Shin;Eunbi, Lee;Chaehwan, Jeong
    • Current Photovoltaic Research
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    • v.10 no.4
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    • pp.107-110
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    • 2022
  • Lightweight and flexible photovoltaic (PV) modules are attractive for building-integrated photovoltaic (BIPV) applications because of their easy construction and applicability. In this study, we fabricated lightweight and flexible c-Si PV modules using ethylene tetrafluoroethylene (ETFE) front cover and shingled design string cells. The ETFE front cover instead of glass made the PV modules lighter in weight, and the shingled design string cells increased the flexibility. Finally, we fabricated a PV module with a conversion power of 240.08 W at an area of 1.25 m2 and weighed only 2 kg/m2. Moreover, to check the PV module's flexibility, we conducted a bending test. The difference of conversion power between the modules before and after bending shown was only 1.7 W, which showed a power reduction rate of about 0.7%.

A Study on the Mechanical Reliability of Large-area Bi-facial Glass-to-glass Photovoltaic Modules (대면적 양면 태양광 모듈의 기계적 신뢰성 연구)

  • Yohan, Noh;Jangwon, Yoo;Jaehyeong, Lee
    • Current Photovoltaic Research
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    • v.10 no.4
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    • pp.111-115
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    • 2022
  • For the high efficiency of the photovoltaic module, a high-output solar cell, which is the basis of photovoltaic power generation, is required. As the light receiving area of the solar cell increases, the light receiving area of the photovoltaic module also increases. Accordingly, recent trend is to use large-area solar cells such as M6 and M8 instead of M2-based solar cells for manufacturing the photovoltaic module and a study on the mechanical stiffness of the module with increased size is required. In this study, a mechanical load test corresponding to IEC-61215 was performed among the reliability tests of large-area photovoltaic modules. In order to confirm the degree to which the mechanical load test affects the photovoltaic module, the output and EL images were checked by sequentially increasing the pressure by 600 Pa at a pressure of 2400 Pa. Also, factors such as output and efficiency of large-area photovoltaic modules were verified through mechanical load testing of actual large-area photovoltaic modules and the rate of change was very small at 1%.

Analysis of Power Characteristics of High-Power Shingled Photovoltaic Module with Color Application (고출력 슁글드 태양광 모듈 컬러 적용에 따른 출력 특성 분석)

  • Kim, Juhwi;Lee, Jaehyeong
    • Current Photovoltaic Research
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    • v.10 no.3
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    • pp.73-76
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    • 2022
  • BIPV (Building Integrated Photovoltaic) supplemented the minimum area problem required when installing existing solar modules. However, in order to apply it to buildings, research was needed to increase the aesthetics of solar modules and use them as a design. Accordingly, modules with color applied to the entire surface of the photovoltaic module were being developed, but there was a disadvantage of low power. Therefore, by dividing and bonding the cell strips, it was possible to improve the output power by applying a shingled technology in which other divided cells overlap in a busbar region where light couldn't be received. Shingled technology was advantageous for color modules because the front busbar part that degrades aesthetics was removed. In this research, four color shingled solar modules (Green, Yellow, Blue, Gray) were manufactured and power degradation was analyzed by measuring transmittance and reflectance. Gray color had 80.83% transmittance, which was 31.31% higher than Yellow, resulting in a power difference of 4.45 W.

Fabrication of Shingled Design Solar Module with Controllable Horizontal and Vertical Width (가로세로 폭의 제어가 가능한 슁글드 디자인 태양광 모듈 제조)

  • Min-Joon Park;Minseob Kim;Eunbi Lee;Yu-Jin Kim;Chaehwan Jeong
    • Current Photovoltaic Research
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    • v.11 no.3
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    • pp.75-78
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    • 2023
  • Recently, the installation of photovoltaic modules in urban areas has been increasing. In particular, the demand for solar modules installed in a limited space is increasing. However, since the crystalline silicon solar module's size is proportional to the solar cell's size, it is difficult to manufacture a module that can be installed in a limited area. In this study, we fabricated a solar module with a shingled design that can control horizontal and vertical width using a bi-directional laser scribing method. We fabricated a string cell with a width of 1/5 compared to the existing shingled design string cells using a bi-directional laser scribing method, and we fabricated a solar module by connecting three strings in parallel. Finally, we achieved a conversion power of 5.521 W at a 103 mm × 320 mm area.

Fabrication of Shingled Design Bifacial c-Si Photovoltaic Modules (슁글드 디자인 고출력 양면수광형 단결정 실리콘 태양광 모듈 제작)

  • Park, Min-Joon;Kim, Minseob;Shin, Jinho;Byeon, Su-Bin;Jeong, Chaehwan
    • Current Photovoltaic Research
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    • v.10 no.1
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    • pp.1-5
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    • 2022
  • Bifacial photovoltaic (PV) technology has received considerable attention in recent years due to the potential to achieve a higher annual energy yield compared to its monofacial PV systems. In this study, we fabricated the bifacial c-Si PV module with a shingled design using the conventional patterned bifacial solar cells. The shingled design PV module has recently attracted attention as a high-power module. Compared to the conventional module, it can have a much more active area due to the busbar-free structure. We employed the transparent backsheet for a light reception at the rear side of the PV module. Finally, we achieved a conversion power of 453.9 W for a 1300 mm × 2000 mm area. Moreover, we perform reliability tests to verify the durability of our Shingled Design Bifacial c-Si Photovoltaic module.

Fabrication of High-power Shingled PV Modules Integrated with Bent Steel Plates for the Roof (절곡 강판 일체형 고출력 슁글드 태양광 모듈 제조)

  • Eunbi Lee;Min-Joon Park;Minseob Kim;Jinho Shin;Sungmin Youn
    • Current Photovoltaic Research
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    • v.11 no.2
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    • pp.54-57
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    • 2023
  • Recently, requirements for improving the convenience of constructing BIPV (Building Integrated Photo Voltaic) modules had increased. To solve this problem, we fabricated shingled PV modules integrated with bent steel plates for building integrated photovoltaics. These PV modules could be constructed directly on the roof without the installation structure. We found optimal lamination conditions with supporting structures to fabricate a module on a bent steel plate. Moreover, we applied a shingled design to PV modules integrated with bent steel plates to achieve a high electrical output power. The shingled module with bent steel plates shows 142.80 W of solar-to-power conversion in 0.785 m2 area.