Effect of high biaxial solar trackers on crop yield, application to different design simulations

IF 2 3区 农林科学 Q2 AGRONOMY
Clémentine Inghels, Paul-Emile Noirot-Cosson, Tanguy Riou, Thomas Kichey, Annie Guiller
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Abstract

The growing need in both producing renewable energy and food has led to the development of new systems such as agrivoltaic systems. Agrivoltaic systems, akin to agroforestry, integrate crop production in the understory with a photovoltaic overstory layer, casting spatial–temporal varying shades that can affect the yield of the understory crop by either improving or reducing crop growth underneath, depending on type of crop, pedoclimatic context, photovoltaic (PV) structure and its implementation design. Current studies on agrivoltaic arrays mainly evaluate global yield in areas under panels and in between panel and compare it to a control (ie. in full sun condition), and sometimes for various panels densities, but don’t consider shade gradients. The aim of this study was to assess field crops yields around high biaxial tracked PV installations, and correlate them with the spatial variations of shade, microclimate and soil parameters. This pattern was then used to simulate the crop yields under different designs. Two species of crops (wheat and maize) were monitored in 2022, 2023 and 2024, with a total of 44 trackers over 18 sites located in Western France. Received radiation (RR) appeared as the most impacting variable for both yield and biomass. Yields and biomass linearly decreased with decreasing RR, up to 45% and 40% respectively with a 50% RR decrease. However, relative maize biomass did not decrease much in 2022, probably due to an exceptionally hot summer. The simulated designs had Ground Coverage Ratios between 5 and 12% and induced limited global losses for both crops. Only the highest panel density with a Ground Coverage Ratio of 12% led to losses slightly greater than 10%.

Abstract Image

高双轴太阳能跟踪器对作物产量的影响及其在不同设计模拟中的应用
生产可再生能源和粮食的需求日益增长,导致了农业光伏系统等新系统的发展。农业光伏系统类似于农林复合系统,将林下作物生产与光伏林下层结合起来,投射出时空变化的阴影,根据作物类型、土壤气候背景、光伏(PV)结构及其实施设计,通过改善或减少林下作物生长来影响林下作物的产量。目前对农业光伏阵列的研究主要是评估面板下和面板之间区域的全球产量,并将其与对照(即太阳能电池板)进行比较。在阳光充足的情况下),有时也适用于不同的面板密度,但不要考虑阴影梯度。本研究的目的是评估高双轴履带式光伏装置周围的大田作物产量,并将其与阴影、小气候和土壤参数的空间变化联系起来。然后用这个模式来模拟不同设计下的作物产量。在2022年、2023年和2024年对两种作物(小麦和玉米)进行了监测,在法国西部的18个地点共有44个跟踪器。接收辐射(RR)对产量和生物量的影响最大。产量和生物量随RR降低呈线性下降,当RR降低50%时,产量和生物量分别下降45%和40%。然而,2022年玉米相对生物量没有减少太多,可能是由于夏季异常炎热。模拟设计的地面覆盖率在5%到12%之间,对这两种作物造成了有限的全球损失。只有当面板密度最高,地面覆盖率为12%时,损失略大于10%。
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来源期刊
Agroforestry Systems
Agroforestry Systems 农林科学-林学
CiteScore
5.30
自引率
9.10%
发文量
78
审稿时长
4.5 months
期刊介绍: Agroforestry Systems is an international scientific journal that publishes results of novel, high impact original research, critical reviews and short communications on any aspect of agroforestry. The journal particularly encourages contributions that demonstrate the role of agroforestry in providing commodity as well non-commodity benefits such as ecosystem services. Papers dealing with both biophysical and socioeconomic aspects are welcome. These include results of investigations of a fundamental or applied nature dealing with integrated systems involving trees and crops and/or livestock. Manuscripts that are purely descriptive in nature or confirmatory in nature of well-established findings, and with limited international scope are discouraged. To be acceptable for publication, the information presented must be relevant to a context wider than the specific location where the study was undertaken, and provide new insight or make a significant contribution to the agroforestry knowledge base
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