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Modelling and simulation of a hybrid solar heating system for greenhouse applications using Matlab/Simulink

机译:使用Matlab / Simulink对温室混合动力太阳能采暖系统进行建模和仿真

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摘要

Solar energy is a major renewable energy source and hybrid solar systems are gaining increased academic and industrial attention due to the unique advantages they offer. In this paper, a mathematical model has been developed to investigate the thermal behavior of a greenhouse heated by a hybrid solar collector system. This hybrid system contains an evacuated tube solar heat collector unit, an auxiliary fossil fuel heating unit, a hot water storage unit, control and piping units. A Matlab/Simulink based model and software has been developed to predict the storage water temperature, greenhouse indoor temperature and the amount of auxiliary fuel, as a function of various design parameters of the greenhouse such as location, dimensions, and meteorological data of the region. As a case study, a greenhouse located in Sanhurfa/Turkey has been simulated based on recent meteorological data and aforementioned hybrid system. The results of simulations performed on an annual basis indicate that revising the existing fossil fuel system with the proposed hybrid system, is economically feasible for most cases, however it requires a slightly longer payback period than expected. On the other hand, by reducing the greenhouse gas emissions significantly, it has a considerable positive environmental impact. The developed dynamic simulation method can be further used for designing heating systems for various solar greenhouses and optimizing the solar collector and thermal storage sizes.
机译:太阳能是一种主要的可再生能源,由于其独特的优势,混合太阳能系统在学术和工业上越来越受到关注。在本文中,已经开发了数学模型来研究由混合太阳能收集器系统加热的温室的热行为。该混合系统包含一个真空管太阳能集热器单元,一个辅助化石燃料加热单元,一个热水存储单元,控制和管道单元。已经开发了基于Matlab / Simulink的模型和软件来预测储水温度,温室室内温度和辅助燃料的量,这取决于温室的各种设计参数,例如区域的位置,尺寸和气象数据。作为案例研究,根据最近的气象数据和上述混合系统,对位于Sanhurfa / Turkey的温室进行了模拟。每年进行的模拟结果表明,在大多数情况下,使用建议的混合动力系统对现有的化石燃料系统进行改造在经济上是可行的,但是其投资回收期比预期的要略长。另一方面,通过显着减少温室气体排放,它具有相当大的积极环境影响。所开发的动态模拟方法可以进一步用于设计各种日光温室的加热系统,并优化太阳能收集器和储热器的尺寸。

著录项

  • 来源
    《Energy Conversion & Management》 |2013年第8期|147-155|共9页
  • 作者单位

    Department of Energy Systems Engineering, Engineering Faculty, Atilim University, Incek 06836, Ankara, Turkey;

    Department of Mechanical Engineering, Engineering Faculty, Atilim University, Incek 06836, Ankara, Turkey;

    Department of Energy Systems Engineering, Engineering Faculty, Atilim University, Incek 06836, Ankara, Turkey;

    Department of Energy Systems Engineering, Engineering Faculty, Atilim University, Incek 06836, Ankara, Turkey;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Solar energy; Greenhouse heating; Dynamic simulation; Matlab Simulink;

    机译:太阳能;温室供暖;动态仿真Matlab Simulink;

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