海洋环境下太阳能电池I-V特性的理论模型研究

Yuwei Sun, Xin-ping Yan, C. Yuan
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引用次数: 1

摘要

太阳能电池是光伏发电系统将太阳辐射转化为电能的关键部件。太阳辐照、温度、湿度、粉尘等环境因素会直接影响应用于不同区域的太阳能电池的功率输出特性。与陆地环境相比,海洋环境更为严峻,太阳能电池在这种环境下的功率输出特性还没有考虑到所有环境因素进行研究。本研究旨在从经典方程、环境因素和理论模型三个方面对这一问题建立合适的研究思路。首先,介绍了太阳能电池I-V特性的经典方程,并在考虑实际环境的情况下,阐述了其计算边界条件的局限性;其次,环境因素分析主要集中在陆地环境与海洋环境的差异,特别是能够改变太阳能电池I-V特性的影响因素。第三,分别建立了两个理论模型(能量守恒模型和参数关联模型)来表示I-V方程与湿度、风速、液体浸没、颗粒物和船舶运动等5个特征参数之间的相互关系。在能量守恒模型中,引入一个控制面来解释典型太阳能电池组件内部的热对流、热传导和热辐射过程。基于因果关系的普适性,在参数关联模型中引入解耦函数,表示光伏转换过程中多个环境因素与电池温度之间的关系。这两个模型完全可以用于研究太阳能电池在其他恶劣环境下的效率和可靠性问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theoretical model research on I-V characteristics of solar cell under the marine environment
Solar cell is the key component of photovoltaic system on converting the solar radiation to electrical energy. The environmental factors such as solar irradiation, temperature, humidity and dust can directly affect the power output characteristics of solar cells that applied in the different area. Compared with the terrestrial environment, the marine environment is more severe, and the power output characteristics of solar cell in this environment have not been studied with all environmental factors considered. This study aims to establish an appropriate approach on this issue from three aspects, including classical equation, environmental factors and theoretical model. Firstly, the classical equation of I-V characteristics of solar cell is introduced and the limitation of its computational boundary condition is expressed by taking the real environment into consideration. Then, the environmental factors analysis is mainly focused on the difference between terrestrial environment and marine environment, especially the effect factors that can change I-V characteristic of solar cell. Thirdly, two theoretical models (Energy Conservation Model and Parameter Correlation Model) are respectively established to represent the interrelationship between I-V equation and five feature parameters, such as humidity, wind velocity, liquid immersion, particulate matters and ship movement. In the energy conservation model, a control surface is introduced to explain the heat convection, heat conduction and heat radiation process within a typical solar cell module. Based on the universality of cause-effect connection, a decoupling function is introduced in the parameter correlation model for representing the relationship between multiply environmental factors and cell temperature during the photovoltaic conversion process. These two models can be definitely used to study the efficiency and reliability problem of solar cell that applied in other severe environments.
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