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Predictive Hybrid Powertrain Energy Management with Asynchronous Cloud Update

机译:预测混合动力驱动器能量管理与异步云更新

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The optimal energy management of a hybrid powertrain has the task to provide the required traction power combining both power sources in the best way. This can be achieved well if the future drive cycle is known/precomputed. However, both speed and traction power requirement may deviate from the expected ones due to many factors, like traffic, weather etc. Against this background, it might be sensible to recompute them whenever needed to keep using the latest future information. Unfortunately, this computation is typically too slow for real time use. In this paper we propose a control structure in which the real time task is solved by a predictive controller which tracks the optimal reference from the cloud, and requests an update of the reference regularly. The update can integrate new information from V2X. This asynchronous operation allows recovering most of the performance of the perfect prediction, while removing tight constraints on the offline computation and copes better with interruptions in communications to the cloud.
机译:混合动力系的最佳能量管理具有以最佳方式提供所需的牵引力组合电源的牵引力。如果未来的驱动周期是已知/预先计算的,则可以很好地实现这一点。然而,由于许多因素,例如交通,天气等对此背景,速度和牵引力的功率要求可能偏离预期的电源要求,每当需要继续使用最新的未来信息时,可能会明智地重新计算它们。不幸的是,这种计算通常太慢而无法实时使用。在本文中,我们提出了一种控制结构,其中通过跟踪来自云的最佳参考的预测控制器来解决实时任务,并定期请求参考的更新。更新可以从V2X集成新信息。这种异步操作允许恢复完美预测的大部分性能,同时删除离线计算上的紧密约束,并更好地应对云的通信中断。

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