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Conceptual design of high-density plant cultivation system with on-line extraction.

机译:在线提取高密度植物栽培系统的概念设计。

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Industry needs to examine alternative approaches to its traditional chemical manufacturing processes to promote pollution prevention and cleaner production. We have been investigating the feasibility of producing valuable plant-derived chemicals through high-density plant cultivation on mobile platforms in an automated greenhouse and through optimizing light delivery and thus enhancing the photosynthetic efficiency via engineering means. Based on a simple mathematical model to describe light attenuation in a high-density plant cultivation system, we propose that a more efficient way of delivering light can be achieved by supplying light from both the top and through the bottom of the plant. Based on this model, we designed a mobile platform for plant cultivation in which light illuminates from both the top and the bottom and found that for the same total light energy, the specific growth rate was 30% higher for these illuminated plants than for plants grown with a conventional lighting source from the top. Furthermore, a three-dimensional (3-D) plant cultivation system using multiple layers of these cultivation platforms is proposed. Analyses show a further increase in the efficiency of light utilization by the plants based on their optimal photoperiodic schedule. Using peppermint plants as the model plants, we have found that the 3-D cultivation system can nearly triple the plant productivity over the conventional 2-D cultivation method using the same area under a constant light source or with a natural solar radiation cycle.; We have also investigated the feasibility of using on-line ultrasonic extraction to release desired plant metabolites intermittently while leaving the plants in a viable and productive state. The ultrasonic effects of plant metabolite release were found to be both of a thermal and a non-thermal nature because a stable source of ultrasound was not used in our experiments. The amount of the product released and the degree of damage varies directly with the duration of transient nature of ultrasonic treatment. But, we have demonstrated that the plants can be extracted repeatedly without losing their viability even though the optimal treatment for plant metabolite release has not been achieved.
机译:工业界需要研究其传统化学制造工艺的替代方法,以促进污染预防和清洁生产。我们一直在研究通过在自动化温室中的移动平台上进行高密度植物种植并通过优化光传输从而通过工程手段提高光合作用效率来生产有价值的植物源性化学品的可行性。基于描述高密度植物栽培系统中光衰减的简单数学模型,我们建议通过从植物的顶部和底部提供光,可以实现更有效的光传输方式。基于此模型,我们设计了一个用于植物栽培的移动平台,该平台从顶部和底部照射光,发现对于相同的总光能,这些被照亮植物的比生长速率比生长的植物高30%顶部带有常规光源。此外,提出了使用这些栽培平台的多层的三维(3-D)植物栽培系统。分析表明,根据植物的最佳光周期计划,植物的光利用效率会进一步提高。使用薄荷植物作为模型植物,我们发现3-D栽培系统可以在恒定光源或自然太阳辐射周期下,使用相同面积的传统2-D栽培方法,使植物生产力几乎翻三倍。我们还研究了使用在线超声提取间歇性释放所需植物代谢物,同时使植物保持生存和生产状态的可行性。由于我们的实验中未使用稳定的超声源,因此发现植物代谢产物释放的超声作用具有热性质和非热性质。释放的产品量和损坏程度随超声处理的瞬态性质的持续时间直接变化。但是,我们已经证明,即使尚未实现植物代谢物释放的最佳处理方法,也可以重复提取植物而不丧失其生存能力。

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