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A metaheuristic for energy adaptive production scheduling with multiple energy carriers and its implementation in a real production system

机译:具有多种能量载体的能量自适应生产调度的元启发式方法及其在实际生产系统中的实现

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Due to climate change and the resulting introduction of sustainability goals by the UN and federal governments, there is growing pressure on manufacturers to increase the sustainability of production systems. In this paper a new, sustainable production scheduling model for job-shop scheduling is developed. The model is optimized using an adjusted genetic algorithm (GA) to minimize energy-related cost (ERC). The proposed model includes multiple energy sources and incorporates a time-of-use (TOU) demand response (DR) scheme for all energy sources. Furthermore, it considers five machine operating modes to reflect different energy states of machines. This means that underutilized machines can be powered down to use less energy, thus reducing ERC. The model and algorithm are evaluated within the Energy-Technology and Application (ETA) research factory environment using a Python application that interfaces with other components to get information about the production system.
机译:由于气候变化以及联合国和联邦政府随之引入的可持续发展目标,制造商面临越来越大的压力来提高生产系统的可持续性。在本文中,开发了一种用于作业车间调度的可持续生产调度新模型。该模型使用调整后的遗传算法(GA)进行了优化,以最大程度地减少能源相关成本(ERC)。提议的模型包括多个能源,并为所有能源合并了使用时间(TOU)需求响应(DR)方案。此外,它考虑了五种机器操作模式以反映机器的不同能量状态。这意味着未充分利用的机器可以关闭以减少能耗,从而减少了ERC。使用与其他组件连接以获取有关生产系统信息的Python应用程序,在能源技术与应用(ETA)研究工厂环境中对模型和算法进行了评估。

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