RISS 학술연구정보서비스

검색

인기 검색어

    다국어 입력

    http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.

    변환된 중국어를 복사하여 사용하시면 됩니다.

    예시)
    • 中文 을 입력하시려면 zhongwen을 입력하시고 space를누르시면됩니다.
    • 北京 을 입력하시려면 beijing을 입력하시고 space를 누르시면 됩니다.
    닫기
    KCI우수등재

    한국형 영농형 태양광 스마트팜 시스템의 종합설계 및구조해석을 통한 안전성 검토 = Integral Design and Structural Analysis for Safety Assessment of Domestic Specialized Agrivoltaic Smart Farm System

    한글로보기

    https://www.riss.kr/link?id=A108204719

    • 0

      상세조회
    • 0

      다운로드
    서지정보 열기
    • 내보내기
    • 내책장담기
    • 공유하기
    • 오류접수

    부가정보

    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Renewable energy systems aim to achieve carbon neutrality and replace fossil fuels. Photovoltaic technologies are the most widely used renewableenergy. However, they require a large operating area, thereby decreasing available farmland. Accordingly, agrivoltaic systems (AVSs)—innovative smartfarm technologies that utilize solar energy for crop growth and electricity production—are attracting attention. Although several empirical studies on thesesystems have been conducted, comprehensive research on their design is lacking, and no standard model suitable for South Korea has been developed.
    Therefore, this study created an integral design of AVS reflecting domestic crop cultivation conditions and conducted a structural analysis for safetyassessment. The shading ratio, planting distance, and agricultural machinery work of the system were determined. In addition, national constructionstandards were applied to evaluate their structural safety using a finite element analysis. Through this, the safety of this system was ensured, andstructural considerations were put forward. It is expected that the AVS model will allow for a stable utilization of renewable energy and smart farmtechnologies in rural areas.
    번역하기

    Renewable energy systems aim to achieve carbon neutrality and replace fossil fuels. Photovoltaic technologies are the most widely used renewableenergy. However, they require a large operating area, thereby decreasing available farmland. Accordingly, a...

    Renewable energy systems aim to achieve carbon neutrality and replace fossil fuels. Photovoltaic technologies are the most widely used renewableenergy. However, they require a large operating area, thereby decreasing available farmland. Accordingly, agrivoltaic systems (AVSs)—innovative smartfarm technologies that utilize solar energy for crop growth and electricity production—are attracting attention. Although several empirical studies on thesesystems have been conducted, comprehensive research on their design is lacking, and no standard model suitable for South Korea has been developed.
    Therefore, this study created an integral design of AVS reflecting domestic crop cultivation conditions and conducted a structural analysis for safetyassessment. The shading ratio, planting distance, and agricultural machinery work of the system were determined. In addition, national constructionstandards were applied to evaluate their structural safety using a finite element analysis. Through this, the safety of this system was ensured, andstructural considerations were put forward. It is expected that the AVS model will allow for a stable utilization of renewable energy and smart farmtechnologies in rural areas.

    더보기

    참고문헌 (Reference)

    1 이여진 ; 한세경 ; 김성열, "태양광발전시스템의 안정성을 고려한 최적 각도 설정에 관한 연구" 대한전기학회 67 (67): 498-504, 2018

    2 강민석 ; 손승원 ; 박주한 ; 김종호 ; 최성원 ; 조성식, "영농형 태양광 시설 하부 논에서의 농업환경 관측 및 시설 외부 환경과의 비교" 한국농림기상학회 23 (23): 141-148, 2021

    3 이상익 ; 최진용 ; 성승준 ; 이승재 ; 이지민 ; 최원, "영농형 태양광 발전 솔라쉐어링에 따른 하부 일사량 변화의 해석 및 분석" 한국농공학회 62 (62): 63-72, 2020

    4 Y. Elamri, "Water budget and crop modelling for agrivoltaic systems: Application to irrigated lettuces" Elsevier BV 208 : 440-453, 2018

    5 Eric O'Shaughnessy, "Too much of a good thing? Global trends in the curtailment of solar PV" Elsevier BV 208 : 1068-1077, 2020

    6 Dolf Gielen, "The role of renewable energy in the global energy transformation" Elsevier BV 24 : 38-50, 2019

    7 MOTIE(Ministry of Trade, Industry and Energy), "The 8th Basic Plan for Long-Term Electricity Supply and Demand" Ministry of Trade, Industry and Energy 2017

    8 Rebecca R. Hernandez, "Techno–ecological synergies of solar energy for global sustainability" Springer Science and Business Media LLC 2 (2): 560-568, 2019

    9 MOLIT(Ministry of Land, Infrastructure and Transport), "Steel Structure Design Code(Allowable Stress Design Method)KDS 14 30"

    10 Takashi Sekiyama, "Solar Sharing for Both Food and Clean Energy Production: Performance of Agrivoltaic Systems for Corn, A Typical Shade-Intolerant Crop" MDPI AG 6 (6): 65-, 2019

    1 이여진 ; 한세경 ; 김성열, "태양광발전시스템의 안정성을 고려한 최적 각도 설정에 관한 연구" 대한전기학회 67 (67): 498-504, 2018

    2 강민석 ; 손승원 ; 박주한 ; 김종호 ; 최성원 ; 조성식, "영농형 태양광 시설 하부 논에서의 농업환경 관측 및 시설 외부 환경과의 비교" 한국농림기상학회 23 (23): 141-148, 2021

    3 이상익 ; 최진용 ; 성승준 ; 이승재 ; 이지민 ; 최원, "영농형 태양광 발전 솔라쉐어링에 따른 하부 일사량 변화의 해석 및 분석" 한국농공학회 62 (62): 63-72, 2020

    4 Y. Elamri, "Water budget and crop modelling for agrivoltaic systems: Application to irrigated lettuces" Elsevier BV 208 : 440-453, 2018

    5 Eric O'Shaughnessy, "Too much of a good thing? Global trends in the curtailment of solar PV" Elsevier BV 208 : 1068-1077, 2020

    6 Dolf Gielen, "The role of renewable energy in the global energy transformation" Elsevier BV 24 : 38-50, 2019

    7 MOTIE(Ministry of Trade, Industry and Energy), "The 8th Basic Plan for Long-Term Electricity Supply and Demand" Ministry of Trade, Industry and Energy 2017

    8 Rebecca R. Hernandez, "Techno–ecological synergies of solar energy for global sustainability" Springer Science and Business Media LLC 2 (2): 560-568, 2019

    9 MOLIT(Ministry of Land, Infrastructure and Transport), "Steel Structure Design Code(Allowable Stress Design Method)KDS 14 30"

    10 Takashi Sekiyama, "Solar Sharing for Both Food and Clean Energy Production: Performance of Agrivoltaic Systems for Corn, A Typical Shade-Intolerant Crop" MDPI AG 6 (6): 65-, 2019

    11 Mohd Ashraf Zainol Abidin, "Solar Photovoltaic Architecture and Agronomic Management in Agrivoltaic System: A Review" MDPI AG 13 (13): 7846-, 2021

    12 Jian Chen, "Research on Coupling Coordination Development for Photovoltaic Agriculture System in China" MDPI AG 11 (11): 1065-, 2019

    13 A.G. Olabi, "Renewable energy and climate change" Elsevier BV 158 : 112111-, 2022

    14 A. GOETZBERGER, "On the Coexistence of Solar-Energy Conversion and Plant Cultivation" Informa UK Limited 1 (1): 55-69, 1982

    15 Luís Dias, "Interplay between the potential of photovoltaic systems and agricultural land use" Elsevier BV 81 : 725-735, 2019

    16 Turlough F. Guerin, "Impacts and opportunities from large-scale solar photovoltaic (PV) electricity generation on agricultural production" Wiley 2019

    17 H. Marrou, "How does a shelter of solar panels influence water flows in a soil–crop system?" Elsevier BV 50 : 38-51, 2013

    18 Kim, G. H., "Development of domestic agrophotovoltaic system and analysis of crop growth characteristics" 6 (6): 15-24, 2020

    19 Jeong, J. H., "Current status and prospect of agrophotovoltaic system" 6 (6): 25-33, 2020

    20 Janiak, T., "Crops and solar farms - Solar sharing"

    21 C. Dupraz, "Combining solar photovoltaic panels and food crops for optimising land use: Towards new agrivoltaic schemes" Elsevier BV 36 (36): 2725-2732, 2011

    22 Max Trommsdorff, "Combining food and energy production: Design of an agrivoltaic system applied in arable and vegetable farming in Germany" Elsevier BV 140 : 110694-, 2021

    23 Nagashima, A., "Change Japan, Change the World!Advise of “Solar Sharing”" Rick 2015

    24 MOLIT (Ministry of Land, Infrastructure and Transport), "Building Structure Standard Design Load KDS 4110 15"

    25 Lee, S. I., "Basic design and safety assessment for domestic agrivoltaic system status and standard model development" 64 (64): 54-63, 2022

    26 Axel Weselek, "Agrophotovoltaic systems: applications, challenges, and opportunities. A review" Springer Science and Business Media LLC 39 (39): 2019

    27 Greg A. Barron-Gafford, "Agrivoltaics provide mutual benefits across the food–energy–water nexus in drylands" Springer Science and Business Media LLC 2 (2): 848-855, 2019

    28 Stefano Amaducci, "Agrivoltaic systems to optimise land use for electric energy production" Elsevier BV 220 : 545-561, 2018

    29 Prannay R. Malu, "Agrivoltaic potential on grape farms in India" Elsevier BV 23 : 104-110, 2017

    30 Lee, S. I., "Agricultural solar power generation for sharing solar energy, solar sharing" 61 (61): 2-11, 2019

    31 J. Jurasz, "A review on the complementarity of renewable energy sources: Concept, metrics, application and future research directions" Elsevier BV 195 : 703-724, 2020

    32 Mohammad Abdullah Al Mamun, "A review of research on agrivoltaic systems" Elsevier BV 161 : 112351-, 2022

    더보기

    분석정보

    View

    상세정보조회

    0

    Usage

    원문다운로드

    0

    대출신청

    0

    복사신청

    0

    EDDS신청

    0

    동일 주제 내 활용도 TOP

    더보기

    주제

    연도별 연구동향

    연도별 활용동향

    연관논문

    연구자 네트워크맵

    공동연구자 (7)

    유사연구자 (20) 활용도상위20명

    인용정보 인용지수 설명보기

    학술지 이력

    학술지 이력
    연월일 이력구분 이력상세 등재구분
    2022 평가 계속평가 신청대상 (등재유지)
    2017-01-01 등재 우수등재학술지 선정 (계속평가)
    2015-12-02 학술지명변경 외국어명 : 미등록 -> Journal of the Korean Society of Agricultural Engineers KCI등재
    2013-01-01 등재 등재 1차 FAIL (등재유지) KCI등재
    2010-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2008-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2006-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2005-06-07 학술지명변경 한글명 : 한국농공학회지 -> 한국농공학회논문집 KCI등재
    2004-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2001-07-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    1999-01-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
    더보기

    학술지 인용정보

    학술지 인용정보
    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.53 0.53 0.45
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.41 0.41 0.525 0.08
    더보기

    이 자료와 함께 이용한 RISS 자료

    나만을 위한 추천자료

    해외이동버튼