光伏温室统一自动化体系结构构想

A. Tomar
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引用次数: 2

摘要

温室内部环境参数如温度、湿度、通风、灌溉、施肥和光合作用是非线性的,具有高度的相互依赖性。低成本而高效的自动化架构对于GH应用来说是非常理想的,以减少农业对外部大气条件和降雨的依赖。提出的集成自动化光伏温室(PV-GH)工作分为四个部分:(1)自动化架构的概念化;(二)设计论证;(3)电能性能分析;(4)通过作物产量分析进行验证。本文提出了一个综合考虑温度、湿度、通风、灌溉、施肥和光合作用控制与监测的PV -GH统一自动化体系结构。为独立PV -GH提出的自动化架构概念化(建议工作的第一部分)在性质和执行上都很简单,但是,它是有效和低成本的。除了在PV -GH内部环境中维持所需的环境条件外,所提出的自动化架构还减少了灌溉所需的水量,并将每天的有效光合作用持续时间增加了4小时。开发了基于微控制器ATmega 2560硬件的协调,统一控制和监控架构,以在定义的边界条件下管理PV-GH内部参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Conceptualization of Unified Automation Architecture for Photovoltaic based Greenhouse
Greenhouse (GH) internal environmental parameters like temperature, humidity, ventilation, irrigation, fertigation, and photosynthesis are non-linear and have high interdependencies. A low cost yet efficient automation architecture is highly desirable for GH applications to reduce the farming dependencies on external atmospheric conditions and rain. The proposed integrated automated photovoltaic greenhouse (PV-GH) work is divided into four parts: (1) conceptualization of the automation architecture; (2) design and demonstration; (3) electrical energy performance analysis; (4) validation through crop yield analysis. In this paper, a unified automation architecture for PV -GH is proposed considering temperature, humidity, ventilation, irrigation, fertigation, and photosynthesis control and monitoring in an integrated manner. The presented conceptualization of automation architecture (the first part of the proposed work) for a standalone PV -GH is simple in nature and execution, however, it is effective and low cost. Besides maintaining the required environmental conditions within PV -GH internal environment, the proposed automation architecture also reduces the amount of water required for irrigation and increases the effective photosynthesis duration by four hours per day. Microcontroller ATmega 2560 hardware-based coordinated, unified control and monitoring architecture is developed to manage the PV-GH internal parameters within defined boundary conditions.
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