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Thermal management strategies for integrated hybrid vehicle subsystems

机译:集成混合动力车辆子系统的热管理策略

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Intelligent thermal management is a key area of interest for delivering ever more efficient vehicles. The ability to redistribute and reroute thermal energy around the vehicle, it's subsystems and environment enables for example, quicker component conditioning to optimal operating conditions. This in turn can yield reduction in on-board energy source utilisation for things other than vehicle propulsion. On BEVs (Battery Electric Vehicles) a particular area of interest is the thermal management of the battery and cabin, without requiring significant use of power from the battery itself. The interest in this area is to minimise the impact of subsystem conditioning on vehicle range. Heat pumps are becoming more popular for transferring thermal energy throughout vehicle systems. Heat pump systems vary from simple ones which take heat out of the outside air, transferring it to vehicle subsystems which require heating up. Conversely the same heat pump system could be used for chilling the cabin air or other vehicle components that require cooling. The coupling of vehicle subsystems to the heat pump heat exchangers requires careful design and evaluation of fluids routing throughout the vehicle. Conventional vehicle architectures may require substantial re-engineering to accommodate the heat pump fluid circuitry layout, particularly for heat pump systems which interact with multiple vehicle subsystems. This paper applies systems engineering to the evaluation and selection of an integrated heat pump for BEV applications capable of transferring heat between several vehicle subsystems. Benefits of several control scenarios are evaluated to narrow down the feasible solutions prior to hardware development and demonstrator assembly. The scenarios cover both warm-up and pull-down situations with a particular focus on warm-up (predicted to be the worst case for BEV range reduction). The work identifies ways to minimise the use of PTC (Positive Thermal Coefficient) devices where electrical energy is used to heat up a fluid (cabin ventilation air, for example), such energy typically being drawn from the traction battery. Benefits of the investigated heat pump configurations are given in terms of reduced heating power drawn from the traction battery but also improvement on vehicle range as a result of optimised thermal energy transfer across the vehicle systems.
机译:智能热管理是交付更高效的车辆的关键领域。它可以在车辆周围重新分配和重新排出热能,其子系统和环境可以更快地提高到最佳操作条件。这反过来可以屈服于车载能源利用的车载能源推进的东西。在BEV(电池电动车)上,一个特定的感兴趣领域是电池和舱室的热管理,无需从电池本身大量使用电力。对该领域的兴趣是最大限度地减少子系统调理对车辆范围的影响。热泵在整个车辆系统中转移热能变得越来越受欢迎。热泵系统从简单的方式变化,从外部空气中取出,将其转移到需要加热的车辆子系统。相反,相同的热泵系统可用于冷却需要冷却的机舱空气或其他车辆部件。车辆子系统到热泵热交换器的耦合需要仔细的设计和评估整个车辆的流体。传统的车辆架构可能需要大量的重新工程来容纳热泵流体电路布局,特别是对于与多个车辆子系统相互作用的热泵系统。本文将系统工程应用于评估和选择能够在多个车辆子系统之间传递热量的BEV应用的集成热泵。在硬件开发和演示组件之前,评估多个控制方案的优势以缩小可行的解决方案。这种情况涵盖了热身和下拉的情况,特别关注预热(预测为BEV范围减少的最坏情况)。该工作确定了最小化PTC(正热系数)装置的方法,其中电能用于加热流体(例如机舱通风空气),这种能量通常从牵引电池中抽出。根据从牵引电池汲取的加热功率降低,而且还通过从车辆系统的优化热能传输的优化热能转移而改善了从牵引电池汲取的加热功率而对调查热泵配置的益处。

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