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Series Hydraulic Hybrid Propulsion for a Light Truck - Optimizing the Thermostatic Power Management

机译:轻型卡车系列液压混合动力推进 - 优化恒温管理

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The global energy situation, the dependence of the transportation sector on fossil fuels, and a need for rapid response to the global warming challenge, provide a strong impetus for development of fuel-efficient vehicle propulsion. The task is particularly challenging in the case of trucks due to severe weight/size constraints. Hybridization is the only approach offering significant breakthroughs in near and mid-term. In particular, the series configuration decouples the engine from the wheels and allows full flexibility in controlling the engine operation, while the hydraulic energy conversion and storage provides exceptional power density and efficiency. The challenge stems from a relatively low energy density of the hydraulic accumulator, and this provides part of the motivation for a simulation-based approach to development of the system power management. The vehicle is a 4x4 truck weighing 5112 kg and intended for both on- and off-road use. The development of the component models and system integration in SUMULINK are discussed before addressing the configuration (single propulsion motor or two) and component sizing. The power management is based on a thermostatic state-of-charge (SOC) approach, but the optimum threshold power and SOC for accumulator charging are determined based on detailed system analysis, rather than the conventional wisdom of operating the engine at the "sweet spot." The results indicate significant advantages of reduced threshold power. Relatively low target SOC led to improved ability to capture the braking energy. Engine shutdowns are considered too. The fuel economy predictions for the optimized hybrid system indicate improvements in excess of 50% under urban driving conditions, and tangible benefits in highway driving.
机译:全球能源局势,运输部门对化石燃料的依赖,以及对全球变暖挑战的快速反应需求,为燃油效率推进的发展提供了强大的推动力。由于严重的重量/尺寸约束,该任务在卡车的情况下特别具有挑战性。杂交是近期和中期提供重大突破的唯一方法。特别地,串联配置将发动机与车轮中的发动机分离并允许在控制发动机操作方面充分的灵活性,而液压能量转换和存储提供了卓越的功率密度和效率。挑战源于液压蓄能器的相对较低的能量密度,这为基于模拟的系统电力管理的发展方法提供了部分动机。该车辆是一个4x4卡车,重5112千克,旨在用于开放和越野使用。在寻址配置(单个推进电动机或两个)和组件尺寸之前,讨论了Sumulink中的组件模型和系统集成的开发。电力管理基于恒温充电状态(SOC)方法,但基于详细的系统分析,而不是在“甜点”中的传统智能作用的传统智慧来确定最佳阈值电力和用于蓄电池充电的SOC 。“结果表明阈值减少的显着优势。相对低的目标SoC导致提高捕获制动能量的能力。发动机关闭也被考虑。优化的混合系统的燃油经济性预测表明在城市驾驶条件下的50%的改善以及公路驾驶中的有形益处。

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