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Mathematical Programming Based Approach to Modular Electric Power System Design

机译:基于数学规划的模块化电力系统设计方法

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Satellite power systems can be understood as islanded dc microgrids supplied by specialized and coordinated solar cell arrays augmented by electrochemical battery systems to handle high-power loads and periods of eclipse. The periodic availability of power, the limited capacity of batteries, and the dependence of almost all mission service on power consumption create a unique situation in which temporal power and energy scarcity exist. Any satellite power system must be properly designed so the power generation and energy storage portions of the system have enough generation potential and storage capacity to reliably meet the load requirements of a given satellite mission. A multi-period model of an orbital satellite power system's performance over a mission's duration can be constructed. A modular power system architecture is used to characterize the system's constraints. The periodic and generally predictable nature of a satellite's mission environment provides a useful opportunity for these techniques. Using mathematical programming, an optimization problem can be posed such that the optimal power and energy ratings for the power system are determined for any load schedule imposed by a given mission's requirements. The optimal energy trajectory of the electrical power system over a mission's duration is also determined when the mathematical programming problem is solved. A generic set of mission requirements is identified to test this approach, but the objective function of the resulting optimization problem can be modified in order to return different results, and these differing results can provide a clear illustration of the trade-offs that designers of such power systems consider in the design process. For this paper specifically, this means that the same mission is evaluated in two ways for comparison: first by selecting the optimally-minimum mass, and then the optimally-minimum volume, of the system's generation and battery elements. The design approach is demonstrated for a typical mission involving a CubeSat platform that periodically records image data and transfers this data once per-orbit.
机译:卫星电力系统可以理解为由电化学电池系统增强的专业和协调的太阳能电池阵列提供的孤岛直流微电网,以处理高功率负载和日食的时期。电力定期可用性,电池的有限容量以及几乎所有任务服务对功耗的依赖性创造了一个独特的情况,存在时间功率和能量稀缺。任何卫星电力系统都必须适当地设计,因此系统的发电和储能部分具有足够的生成电位和存储能力,可靠地满足给定卫星任务的负载要求。可以构建在任务持续时间内的轨道卫星电力系统性能的多时期模型。模块化电源系统架构用于表征系统的约束。卫星使命环境的定期和一般可预测性质为这些技术提供了有用的机会。使用数学编程,可以提高优化问题,使得功率系统的最佳功率和能量额定值确定由给定的任务要求所施加的任何负载调度。当解决数学编程问题时,还确定了在任务的持续时间内的电力系统的最佳能量轨迹。识别一组一组一组任务要求来测试这种方法,但可以修改所产生的优化问题的目标函数以返回不同的结果,并且这些不同的结果可以提供诸如设计人员的权衡的清晰说明电力系统在设计过程中考虑。本文具体而言,这意味着以两种方式评估相同的任务以进行比较:首先通过选择最佳最小质量,然后选择系统的产生和电池元件的最佳最小体积。对典型任务进行了说明设计方法,涉及立方体平台,该特性定期记录图像数据并每次轨道传输该数据。

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