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建模生长动力学:考虑种植密度和光照强度影响的过程优化

Modeling Growth Dynamics of : Process Optimization Considering the Influence of Plant Density and Light Intensity.

作者信息

von Salzen Jannis, Petersen Finn, Ulbrich Andreas, Streif Stefan

机构信息

Faculty of Agricultural Sciences and Landscape Architecture, University of Applied Sciences Osnabrück, Am Krümpel 31, 49090 Osnabrück, Germany.

Automatic Control and System Dynamics Laboratory, Institute of Automation, Chemnitz University of Technology, 09126 Chemnitz, Germany.

出版信息

Plants (Basel). 2025 Jun 5;14(11):1722. doi: 10.3390/plants14111722.

Abstract

The production of duckweed (Lemnaceae) as a novel protein source could make a valuable contribution to human nutrition. The greatly reduced habitus of duckweed enables simple cultivation with extremely low space requirements, making this free-floating freshwater plant ideal for substrate-free and vertical cultivation in controlled environment agriculture. Of particular importance in the design of a plant-producing Indoor Vertical Farming process is the determination of light intensity, as artificial lighting is generally the most energy-intensive feature of daylight-independent cultivation systems. In order to make the production process both cost-effective and low emission in the future, it is, therefore, crucial to understand and mathematically describe the primary metabolism, in particular the light utilization efficiency. To achieve this, a growth model was developed that mathematically describes the combined effects of plant density and light intensity on the growth rate of L. and physiologically explains the intraspecific competition of plants for light through mutual shading. Furthermore, the growth model can be utilized to derive environmental and process parameters, including optimum harvest quantities and efficiency-optimized light intensities to improve the production process.

摘要

浮萍(浮萍科)作为一种新型蛋白质来源进行生产,可为人类营养做出重要贡献。浮萍极为简化的形态使其能够在极低的空间需求下进行简单栽培,这使得这种漂浮在淡水表面的植物成为可控环境农业中无基质和垂直栽培的理想选择。在室内垂直种植植物的生产过程设计中,光照强度的确定尤为重要,因为人工照明通常是与日光无关的栽培系统中能源消耗最大的部分。因此,为了使未来的生产过程既经济高效又低排放,理解并以数学方式描述初级代谢,特别是光利用效率至关重要。为实现这一目标,开发了一个生长模型,该模型以数学方式描述了植物密度和光照强度对浮萍生长速率的综合影响,并从生理角度解释了植物通过相互遮荫进行种内光竞争的现象。此外,该生长模型可用于推导环境和工艺参数,包括最佳收获量和效率优化的光照强度,以改进生产过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3ff1/12157068/105aa21c3943/plants-14-01722-g009.jpg

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