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OPTIMIZATION METHODS FOR ALTERNATIVE ENERGY SYSTEM DESIGN

机译:替代能源系统设计的优化方法

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Although in reality most decision variables in the designs of alternative energy systems are generally discrete (e.g., numbers of photovoltaic modules, solar thermal panels, layers of glazing in windows), an extensive review of the literature shows that historically the optimization methods used for design utilize continuous decision variables. The design optimization tools of linear programming and integer programming were compared using an electric vehicle heating system case study. Linear programming and integer programming were each applied to find the optimal investment in conservation and passive solar design measures as a function of the heating system life cycle cost. The results demonstrate the importance of accounting for the discrete nature of design variables. It was also shown that passive solar design methods similar to those used in buildings, reduced the overall UA of a 22 ft. electric shuttle bus from 488 to 202 (Btu/hr-F), eliminating the need for fossil fuel heating when operating in the northeast United States. In general, optimization methods that treat decision variables as discrete, such as integer programming, seem more appropriate for alternative energy system design than methods used historically. Integer programming software is widely available and is not difficult to use.
机译:尽管在现实中,替代能源系统的设计中的大多数决策变量通常是离散的(例如,光伏模块的数量,太阳能热面板,窗户中玻璃层),对文献进行了广泛的回顾,历史上用于设计的优化方法利用连续决策变量。使用电动车加热系统案例研究进行比较线性编程和整数编程的设计优化工具。每种线性编程和整数编程都适用于寻找保护和被动太阳能设计措施的最佳投资,作为加热系统生命周期成本的函数。结果表明了对设计变量的离散性质的核算的重要性。还显示出类似于建筑物中使用的无源太阳能设计方法,减少了22英尺的整体UA。电动班车从488到202(BTU / HR-F),消除了在操作时进行化石燃料加热的需求美国东北部。通常,将决策变量视为离散的优化方法,例如整数编程,似乎更适合替代能源系统设计而不是历史上使用的方法。整数编程软件广泛可用,并且不难使用。

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