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A nanosatellite task scheduling framework to improve mission value using fuzzy constraints

机译:纳米卫星任务调度框架,用于使用模糊约束改善任务价值

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摘要

Task scheduling is an effective approach to increase the value of a satellite mission, which leads to improved resource management and quality of service. This work improves the energy prediction model and a task scheduling formulation, expressed in integer programming to maximize the number of tasks performed in nanosatellite missions. A realistic battery model is introduced in the formulation to extend battery lifetime. This is achieved by a disjunctive program that makes battery charge and discharge more efficient. Furthermore, fuzzy constraints are designed to limit the current rates (for charge and discharge) and the depth of discharge for battery lifetime preservation. Each battery access is penalized in the objective function, thereby stimulating energy consumption to match energy input. For simulation purposes, the varying power input was based on twoline element data of the CubeSat FloripaSat-I, operating in an orbit with J2 perturbation and an attitude that keeps one face of the nanosatellite towards the Earth for the entire orbit, similar to a remote sensing mission. The effectiveness of the task-scheduling methodology was shown by means of simulated experiments of representative scenarios. With the improvements proposed here, a robust and realistic framework for optimal offline scheduling of nanosatellite missions is achieved.
机译:任务调度是增加卫星使命价值的有效方法,这导致资源管理和服务质量提高。该工作改善了能量预测模型和任务调度制定,以整数编程表示,以最大化纳米卫星任务中执行的任务数量。在配方中引入了一个现实的电池型号,以延长电池寿命。这是通过析出程序实现的,使电池充电和放电更有效。此外,模糊约束被设计为限制电流速率(用于充电和放电)和电池寿命保存的放电深度。每个电池访问在目标函数中受到处罚,从而激发能量消耗以匹配能量输入。对于仿真目的,不同的电源输入基于CubeSat Floripasat-i的双核元素数据,与J2扰动的轨道和姿态,使纳米卫星朝向地球的整个轨道保持一张姿势,类似于遥控器传感使命。通过代表性场景的模拟实验显示了任务调度方法的有效性。利用此处提出的改进,实现了纳米卫星任务的最佳离线调度的稳健和现实框架。

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