An Application of System Dynamics to Characterize Crop Production for Autonomous Indoor Farming Platforms (AIFP)

IF 3.1 3区 农林科学 Q1 HORTICULTURE Horticulturae Pub Date : 2023-12-07 DOI:10.3390/horticulturae9121318
Jae Hyeon Ryu, Zarin Subah, Jeonghyun Baek
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Abstract

Smart farming using technology-monitored controlled environment agriculture (CEA) has recently evolved to optimize crop growth while minimizing land use and environmental impacts, especially for climate-threatened regions. This study focuses on characterizing crop production using system dynamics (SD) modeling, which is a relatively new approach in CEA settings. Using tomatoes in a hydroponic growing system, we explore an alternative food resource potentially accessible to underserved areas in rural and/or urban settings under abrupt climate variability. The designed autonomous indoor farming platforms (AIFP) are equipped with the Internet of Things (IoT) to monitor the physiological parameters, including electrical conductivity (EC), pH, and water temperature (WT) associated with plant growth. Two varieties of tomato (Solanum lycopersicum) plants were used in this study with two different nutrient inputs (N-P-K ratios of 2-1-6 and 5-5-5) to assess the nutrient application impact on yield, especially focusing on the early stages of tomato to conceptualize and parametrize SD modes. Repeated measure analysis was conducted to investigate the effects of the environmental factors (EC, pH, and WT) in response to changing plant nutrients. The results show that different nutrient compositions (N-P-K ratios) have a noticeable effect on both pH and WT (p < 0.001) as opposed to EC. The study indicates that the proposed AIFP would be a promising solution to produce other crops for indoor farming in a changing climate. We anticipate that the proposed AIFP along with SD tools will be widely adopted to promote indoor farming in changing climates, ultimately contributing to community resilience against food insecurity in disadvantaged areas for years to come.
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应用系统动力学描述自主室内耕作平台(AIFP)的作物生产特征
利用技术监测控制环境农业(CEA)的智能农业最近得到了发展,以优化作物生长,同时最大限度地减少土地利用和环境影响,特别是对气候受威胁的地区。本研究的重点是利用系统动力学(SD)建模来表征作物生产,这是一种在CEA环境下相对较新的方法。利用番茄在水培系统中生长,我们探索了在气候突变的条件下,农村和/或城市环境中服务不足地区可能获得的替代食物资源。设计的自主室内农业平台(AIFP)配备了物联网(IoT)来监测与植物生长相关的生理参数,包括电导率(EC)、pH和水温(WT)。本研究以番茄(Solanum lycopersicum) 2个品种为研究对象,在2种不同的养分投入(N-P-K比为2-1-6和5-5-5)下,评估养分施用对产量的影响,特别是以番茄早期为研究对象,对SD模式进行概念化和参数化。通过重复测量分析,探讨了环境因子(EC、pH和WT)对植物养分变化的响应。结果表明,不同营养成分(N-P-K比)对pH和WT均有显著影响(p < 0.001)。这项研究表明,拟议的AIFP将是一个有希望的解决方案,可以在不断变化的气候下为室内农业生产其他作物。我们预计,拟议的AIFP和可持续发展工具将被广泛采用,以促进气候变化下的室内农业,最终在未来几年为弱势地区的社区抵御粮食不安全做出贡献。
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来源期刊
Horticulturae
Horticulturae HORTICULTURE-
CiteScore
3.50
自引率
19.40%
发文量
998
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