Sun Xiaojun, Xin Fengmei, Gao Kun
School of Automobile and Traffic Engineering, Liaoning University of Technology, Jinzhou 121000, China.
College of Science, Liaoning University of Technology, Jinzhou 121000, China.
Heliyon. 2024 Jul 23;10(15):e35085. doi: 10.1016/j.heliyon.2024.e35085. eCollection 2024 Aug 15.
The series-parallel hybrid system has attracted much attention from scholars for its effective integration of the power advantages and operating characteristics of different power sources, which is influenced by international emission regulations, energy-saving and emission reduction policies. As such, a series-parallel hybrid powertrain is introduced to the amphibious vehicle, and an innovative powertrain topology architecture is proposed. Meanwhile, the operation mode and energy efficiency characteristics are investigated during the working process. Firstly, the energy flow simulation model of a series-parallel gas-electric hybrid propulsion system is constructed using a modular modeling approach. Secondly, four operating modes, namely mechanical propulsion, electric propulsion, hybrid propulsion and charging mode, were formulated due to the fact that the propulsion system has multiple forms of power sources in the form of natural gas engine and reversible motor. Meanwhile, the energy flow states were investigated under different operating modes. Meanwhile, a comprehensive investigation of the energy efficiency associated with propulsion, storage and start-up energy was conducted for each specific mode. The results of the research indicated that the energy efficiency of the electric propulsion mode can reach up to 35.15 %, which is the gain from the wide operating range of the motor's high efficiency. The hybrid propulsion mode can obtain the highest energy efficiency of 35.88 %, which fully demonstrates the advantages of coordinating and complementing the two power sources, the natural gas engine and the reversible electric motor. This investigation also provides theoretical and empirical support for optimizing energy matching and formulating energy management strategies.
串并联混合动力系统因其有效整合了不同动力源的功率优势和运行特性而备受学者关注,这受到国际排放法规、节能减排政策的影响。因此,将串并联混合动力总成引入两栖车辆,并提出了一种创新的动力总成拓扑架构。同时,对其工作过程中的运行模式和能量效率特性进行了研究。首先,采用模块化建模方法构建了串并联气电混合动力推进系统的能量流仿真模型。其次,由于推进系统具有天然气发动机和可逆电机形式的多种动力源,制定了机械推进、电力推进、混合动力推进和充电模式四种运行模式。同时,研究了不同运行模式下的能量流状态。此外,针对每种特定模式,对与推进、存储和启动能量相关的能量效率进行了全面研究。研究结果表明,电力推进模式的能量效率可达35.15%,这得益于电机高效率的宽运行范围。混合动力推进模式可获得最高35.88%的能量效率,充分展示了天然气发动机和可逆电机这两种动力源协调互补的优势。该研究也为优化能量匹配和制定能量管理策略提供了理论和经验支持。