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Smart Management of Multiple Energy Systems in Automotive Painting Shop

机译:汽车喷漆车间中多种能源系统的智能管理

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Automotive painting shops consume electricity and natural gas to provide the required temperature and humidity for painting processes. The painting shop is not only responsible for a significant portion of energy consumption with automobile manufacturers, but also affects the quality of the product. Various storage devices play a crucial role in the management of multiple energy systems. It is thus of great practical interest to manage the storage devices together with other energy systems to provide the required environment with minimal cost. In this paper, we formulate the scheduling problem of these multiple energy systems as a Markov decision process (MDP) and then provide two approximate solution methods. Method 1 is dynamic programming with value function approximation. Method 2 is mixed integer programming with mean value approximation. The performance of the two methods is demonstrated on numerical examples. The results show that method 2 provides good solutions fast and with little performance degradation comparing with method 1. Then, we apply method 2 to optimize the capacity and to select the combination of the storage devices, and demonstrate the performance by numerical examples.
机译:汽车喷漆车间消耗电力和天然气,以提供喷漆过程所需的温度和湿度。喷漆车间不仅负责汽车制造商的能源消耗,而且还影响产品的质量。各种存储设备在多能源系统的管理中起着至关重要的作用。因此,与其他能源系统一起管理存储设备以最小的成本提供所需的环境具有重大的实际意义。在本文中,我们将这些多能源系统的调度问题表述为马尔可夫决策过程(MDP),然后提供两种近似求解方法。方法1是具有值函数逼近的动态编程。方法2是采用均值逼近的混合整数编程。数值示例证明了这两种方法的性能。结果表明,与方法1相比,方法2提供了快速,良好的解决方案,并且性能下降不多。然后,我们通过方法2来优化容量并选择存储设备的组合,并通过数值示例验证了性能。

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