• 제목/요약/키워드: 건물일체형 태양광시스템

검색결과 58건 처리시간 0.02초

발코니 일체형 태양광발전시스템의 발전성능 분석 (Analysis of Performance of Balcony Integrated PV System)

  • 김현일;강기환;박경은;소정훈;유권종;서승직
    • 한국태양에너지학회 논문집
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    • 제29권1호
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    • pp.32-37
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    • 2009
  • Photovoltaic(PV) permits the on-site production of electricity without concern for fuel supply or environmental adverse effects. The electrical power is produced without noise and little depletion of resources. So BIPV(Building-Integrated Photovoltaic) system have been increased around the world. Hereby the relative installation costs of the system will be relatively low compared to traditional installations of PV in high-rise buildings. This paper examined possibility of building integrated balcony PV system and analyzed both performance and problems of this system. The system is influenced by conditions such as irradiation, module temperature, shade and architectural component etc. If this BIPV system of 1.1kW is possible the natural ventilation in the summer case, the temperature of PV module decrease and then the efficiency of PV system increase generally. By the results, the annual averaged PR of BIPV system of cold facade type is about 74.7%.

12kW급 건물일체형 태양광발전시스템 사례분석 (Case Study on 12kW Building Integrated Photovoltaic System)

  • 박경은;강기환;김현일;소정훈;유권종;김준태;이길송
    • 한국태양에너지학회 논문집
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    • 제29권1호
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    • pp.18-23
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    • 2009
  • We intend to describe a 12kW building-integrated photovoltaic system which was applied into the south wall of a new building. This study showed the results that were appeared from describing the PV module manufacture and installation process, and performing generation performance analysis of BIPV system. From the result we confirmed that the generation performance of the BIPV system was changed by season. The performance ratio(PR) was about 83.6% in winter and it means that performance of this BIPV system was so good in that season. On the other hand, the PR in summer was about 75.0% dropped about 8%. It was believed that the change was influenced by the reduction of solar radiation irradiated into the PV modules by installation position and rainy spell in summer. And we also confirmed that low irradiation condition is cause of the additional loss in the total PV system. In this case, the efficiency ratio of PCS drops significantly at low input loads and the average conversion efficiency of PCS in summer was 76.4% decreased about 10% from 86% in winter.

실증 목업의 구축 및 데이터의 통계적 분석을 통한 건물일체형 태양광 발전시스템의 전력발전 향상 설계 (BIPV System Design to Enhance Electric Power Generation by Building up a Demonstration Mock-up and Analyzing Statistical Data)

  • 이승준;이재천
    • 한국산학기술학회논문지
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    • 제19권6호
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    • pp.587-599
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    • 2018
  • 건물일체형 태양광 발전(BIPV) 시스템은 태양광 모듈을 건축부자재와 결합하여 설치함으로써 주거, 보관, 경제성 요소 등의 건축물 기능을 만족시키면서도 태양광 발전기능을 동시에 수행하기 위한 통합시스템이다. 시스템 통합으로 인해 얻게 되는 장점이 있지만, 태양광 발전기능을 극대화할 수 있는 설계가 필요하다. 선행연구로서 컴퓨터 시뮬레이션과 실증으로 여러 가지 설계요소들이 발전성능에 미치는 영향분석 결과들이 발표되었지만, 발전성능 분석의 부정확성, 설계요소 간의 관계분석의 미흡, 제한된 실증 범위 등이 문제점으로 남아 있다. 이 문제를 해결하기 위해 본 논문에서는 먼저 발전성능을 실증으로 평가할 수 있도록 목업 시험동을 설계 및 구축하고, 실증시스템 운영에서 획득한 데이터의 통계분석을 수행한 결과를 바탕으로 설계 방안을 연구한다. 구체적으로 주요 설계요소로서 모듈의 종류(c-Si, a-Si), 설치각도($90^{\circ}$, $75^{\circ}$, $30^{\circ}$, $15^{\circ}$, $3^{\circ}$), 설치방향(서향, 남서향, 남향, 남동향, 동향) 등을 선택하였다. 선택된 설계요소들의 발전성능에 대한 영향을 분석하기 위해, 1년간의 운영 데이터를 획득하여 통계적인 기법으로 데이터의 유효성을 검증하였으며, 또한 다양한 설계요소들 사이의 관계분석을 통하여 발전성능이 최적화되는 설계안을 제시하였다. 이 연구결과는 향후 BIPV 시스템의 적용성 여부에 대해 판단할 때, 그리고 BIPV 시스템을 설계할 때 설계요소들의 최적 선택에 대한 자료가 될 수 있다.

주택 지붕일체형 PV시스템 후면환기에 따른 발전성능 변화 실험연구 (Experimental Study on the Combined Effect of Power and Heat according to the Ventilation of Back Side in Roof Integrated PV System)

  • 윤종호;한규복;안영섭
    • 한국태양에너지학회 논문집
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    • 제27권3호
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    • pp.169-174
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    • 2007
  • Building integrated photovoltaic(BIPV) system operates as a multi-functional building construction material. They not only produce electricity, but also are building integral components such as facade, roof, window and shading device. As PV modules function like building envelope in BIPV, combined thermal and PV performance should be simultaneously evaluated. This study is to establish basic Information for designing effective BIPV by discovering relations between temperature and generation capability through experiment when the PV module is used as roof material for houses. To do so, we established 3kW full scale mock-up model with real size house and attached an PV array by cutting in half. This is to assess temperature influence depending on whether there is a ventilation on the rear side of PV module or not.

건물일체형 태양광발전 시스템의 발전성능 분석 (A Study on generation characteristics of building integrated Photovoltaic system)

  • 박재완;신우철;김대곤;윤종호
    • 한국태양에너지학회 논문집
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    • 제33권3호
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    • pp.75-81
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    • 2013
  • In this study, we analyze the performance characteristics of Building Integrated Photovoltaic (BIPV) system of K Research Building which was designed with the aim of zero carbon building. In addition, BIPV system, which is consist of three modules; G to G(Glass to Glass), G to T(Glass to Tedlar/Crystal) and Amorphous, has 116.2kWp of total capacity, and is applied to wall, window, atrium and pagora on roof. Therefore, in this paper, our research team analyzed BIPV yield and generation characteristic. BIPV yield was 112,589kWh a year from January 2012 to December 2012. And after applying PV panels on the building, the power from the best setting angle, $30^{\circ}$, of panel was compared. In addition, when the PV was attached practically on the building, the generation power was analyzed. BIPV modules in this study the relationship between module setting angle, type of modules ect. and power characteristics plans to identify.

태양광발전 도시 프로젝트의 개발현황과 발전방향 고찰 (A Study on The development status and future of Photovoltaic Urban Project)

  • 김현일;서승직;박경은;강기환;유권종
    • 한국태양에너지학회 논문집
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    • 제28권6호
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    • pp.87-92
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    • 2008
  • Buildings are responsible for approximately 50% of current carbon dioxide emissions. Energy planning at a town and city scale needs a strategic approach, supported by strong planning policies. The purpose of this study was to investigate the urban scale grid-connected photovoltaic(PV) system for urban residential and commercial sector applications. The integration of PV technology into roof of houses is an approach that is being championed in Germany, Japan and United states etc. In the Korea, PV roofing systems already are given the large number of houses which are projected to be built by 2012. However unlike germany and Japan, urban scale grid-connected PV system is not yet installed. The solar city which is installed building-integrated photovoltaic system is available to use of renewable energy sources such as solar to meet demand, instead of fossil fuels, with the goal of realizing an ecologically oriented energy supply.

실험을 통한 건물통합형 태양광·열(BIPVT) 시스템의 난방성능 평가 (The Heating Performance Evaluation of Heating System with Building-Integrated Photovoltaic/Thermal Collectors)

  • 정선옥;김진희;김지성;박세현;김준태
    • 한국태양에너지학회 논문집
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    • 제32권6호
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    • pp.113-119
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    • 2012
  • The heat from PV modules should be removed for better electrical performance, and can be converted into useful thermal energy. A photovoltaic-thermal(PVT) module is a combination of PV module with a solar thermal collector which forms one device that produce thermal energy as well as electricity. In many studies various water type PVT collectors have been proposed in effort to increase their electrical and thermal efficiency. The aim of this study is to evaluate the heating performance of heating system combined with PVT collectors that on integrated building roof. For this study, the BIPVT system of 1.5kWp was installed at the experimental house, and it was incorporated with its heating system. From the experimental results, the solar fraction of the heating system with BIPVT was 15%. It was also found that was analyzed that the heating energy for the house can be reduced by 47%, as the heat gained from BIPVT system pre-heated the water used for heating system.

건물일체형 태양광 시스템의 전력발전부 설계를 위한 SysML기반 시스템 모델링 (SysML-Based System Modeling for Design of BIPV Electric Power Generation)

  • 이승준;이재천
    • 한국산학기술학회논문지
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    • 제19권10호
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    • pp.578-589
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    • 2018
  • 건물일체형 태양광 발전(BIPV) 시스템은 건축물에 태양광 발전시스템이 통합되어 건축물 기능과 태양광 발전 기능을 동시에 수행하는 대표적인 통합시스템이다. BIPV 시스템은 건축물 외피의 기능을 수행하면서 동시에 태양광 발전기능을 수행할 수 있다는 장점이 있지만, 건축물 설계 프로세스의 개념설계 단계에서부터 태양광 발전기능이 통합되어야 하고, 동시에 전력발전을 극대화할 수 있는 태양광 발전시스템의 설계가 필요하다. 이러한 요구사항에 대한 선행연구로서, 건축설계모델기반 BIPV 설계 프로세스에 관한 연구와 태양광 전력발전 성능 향상을 위한 모델기반 컴퓨터 시뮬레이션 결과들이 발표되었다. 그러나, BIPV 시스템의 요구사항이 명확하게 식별되어 체계적으로 반영되지 못하였고, 또한 시스템의 전력발전설계가 개념설계 단계에서부터 반영될 수 있도록 요구사항에 대한 시스템 아키텍쳐, 구조 및 거동이 정의되지 못하였으며, 그리고 BIPV 시스템의 전력발전 설계를 검증할 수 있는 모델이 제시되지 못하였다. 이러한 문제 들을 해결하기 위하여 본 연구에서는 BIPV 시스템의 요구사항을 체계적으로 모델링 하고 이를 기반으로 체계적인 전력발전 설계 방법을 연구하기 위하여 시스템 모델링 표준 언어인 SysML을 사용하여 전체시스템 관점에서 통합적이고 일관적인 설계 방법을 제시하였다. 구체적으로, 먼저 대상시스템(BIPV)에 대한 관련 표준, 사용자 및 설계자 등을 포함하는 이해당사자 들로부터의 요구사항을 식별하였다. 그리고 나서 domain model을 기반으로 BIPV 시스템 수준의 설계요구사항을 도출하였으며, 시스템 요구사항을 바탕으로 대상시스템의 SysML기반 기능 및 물리 아키텍쳐를 생성하였다. 또한 SysML 구조 모델과 거동 모델에 대한 설계를 구체화 하여 시스템의 구성 요소들 사이의 역할과 관계를 정의하였다. 마지막으로, 시뮬레이션이 가능한 SysML 모델(Parametric diagram)을 통하여 BIPV 시스템의 전력발전 성능을 평가하였다. 본 연구에서의 SysML 시스템 모델에 향후 건축물에 적용해야 하는 조건들을 반영하여 시스템 모델을 보강한다면 BIPV 시스템에서 전력발전을 통합적으로 연구할 수 있는 기회가 될 것이다.

주거용 건물 태양광발전시스템의 설치유형에 따른 발전성능 평가 (Evaluation of Electricity Generation According to Installation Type of Photovoltaic System in Residential Buildings)

  • 김덕성;김법전;신우철
    • 한국태양에너지학회 논문집
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    • 제37권2호
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    • pp.35-45
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    • 2017
  • The types of installation of the photovoltaic system applied to domestic residential buildings are classified as follows: Mounted modules with air circulation, semi-integrated modules with air duct behind, integrated modules with fully insulated back. In order to study generation characteristics of PV system, we verified the validity of interpretation program based on long-term measurement data of demonstration house installed in BAPV form and also analyzed the generation characteristics and performance of each installation type. The results are as follows. First, the RMSE of amount of generation and simulation according to annual daily insolation of demonstration system located in Daejeon was 0.98kWh and the range of relative error of monthly power generation was -5.8 to 3.1. Second, the average annual PR of mounted modules was 82%, semi-integrated modules 76.1% and integrated modules 71.9%. This differences were attributed to temperature loss. Third, the range of operating temperature of annual hourly photovoltaic modules was -6.5 to $61.0^{\circ}C$ for mounted modules, $-6.0{\sim}73.9^{\circ}C$ for semi-integrated modules and -5.5 to $88.9^{\circ}C$ for integrated modules. The temperature loss of each installation type was -14.0 to 16.1%, -13.8 to 21.9%, and -13.6 to 28.5%, respectively.

지붕 설치형 결정질 실리콘 태양전지모듈의 온도 특성 (Roof-attached Crystalline Silicon Photovoltaic Module's Thermal Characteristics)

  • 김경수;강기환;유권종;윤순길
    • 한국태양에너지학회 논문집
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    • 제32권3호
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    • pp.11-18
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    • 2012
  • To expect accurately the maximum power of solar cell module under various installation conditions, it is required to know the performance characteristics like temperature dependence. Today, the PV (photovoltaic) market in Korea has been growing. Also BIPV (building integrated photovoltaic) systems are diversified and become popular. But thermal dependence of PV module is little known to customers and system installers. In IEC 61215,a regulation for testing the crystalline silicon solar cell module, the testing method is specified for modules. However there is limitation for testing the module with diverse application examples. In extreme installation method, there is no air flow between rear side of module and ambient, and it can induce temperature increase. In this paper, we studied the roof type installation of PV module on the surface of one-axis tracker system. We measured temperature on every component of PV module and compared to open-rack structure. As a result, we provide the foundation that explains temperature characteristics and NOCT (nominal operation cell temperature) difference. The detail description will be specified as the following paper.