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氢能与燃料电池
★ 4.0
用于大功率燃料电池重型卡车动力系统的可调花瓣形阀芯喷射器的设计与性能研究
Design and performance investigation on adjustable ejector with petal spindle valve for high-power fuel cell adapted heavy-duty truck powertrain
| 作者 | Rongkang Liua1 · Xinning Zhua1 · Xi Wang · Ruiheng Xiang · Liang Su · Xuyang Chu · Wei Zhou |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 390 卷 |
| 技术分类 | 氢能与燃料电池 |
| 相关度评分 | ★★★★ 4.0 / 5.0 |
| 关键词 | Heavy-duty trucks model is developed to determine the parameters of the ejector. |
语言:
中文摘要
喷嘴形状及运行工况对喷射器的引射性能具有显著影响。基于AVL Cruise-M平台,建立了氢燃料电池重型车辆仿真框架及110 kW氢燃料电池发动机模型。结合CHTC-TT行驶循环工况进行仿真,获取了燃料电池阳极端氢气质量流量与压力的数据。基于上述数据,开展了一种可调节花瓣形阀芯喷射器的设计与研究工作。研究分析了喷射器阀芯结构及供气位置对引射性能和稳定性的具体影响。结果表明,所设计的花瓣形阀芯喷射器有效增强了主流与次流之间的射流湍流程度以及物质与能量交换效果,在SP12定位条件下,其引射比相较于锥形阀芯喷射器提高了2.24%。该可调喷射器在输出功率为10至110 kW范围内,引射比介于1.65至3.02之间,能够满足燃料电池在不同功率水平下的氢气回流需求。此外,该喷射器表现出良好的动态响应能力,在混合流出口处具有相对稳定的背压。与传统商用喷射器相比,该可调喷射器整体性能更优,且运行范围更广。
English Abstract
Abstract The shape of the nozzle and operating conditions significantly influence the entrainment performance of ejectors . Utilizing the AVL Cruise-M platform, a simulation framework for hydrogen fuel cell heavy-duty vehicles and a 110 kW hydrogen fuel cell engine was established. Combined with CHTC-TT driving cycle simulations, data on hydrogen gas mass flow rate and pressure at the anode end of the fuel cell were obtained. Based on this data, a study was conducted to design and investigate an adjustable petal-shaped spindle valve ejector. The study examined the impact of ejector spindle valve structure and feed position on entrainment performance and stability. The results indicate that the designed petal-shaped spindle valve ejector effectively enhanced jet turbulence and material and energy exchange between primary and secondary flows and the entrainment ratio of petal spindle ejectors is 2.24 % higher than that of taper spindle ejectors in SP12 positioning. The entrainment ratio of the adjustable ejector ranges from 1.65 to 3.02 at output powers of 10 to 110 kW, meeting the hydrogen recirculation requirements for fuel cells across various power levels. Moreover, the ejector demonstrates rapid dynamic response capabilities, with relatively stable backpressure at the mixed flow outlet. Comparison with conventional commercial ejectors indicated superior overall performance and a larger operating range for the adjustable ejector.
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SunView 深度解读
该可调引射器技术对阳光电源氢能业务拓展具有重要参考价值。研究中的花瓣形主轴阀设计通过增强湍流提升氢气循环效率,其动态响应能力和宽工况适应性(10-110kW)与我司充电桩及电驱系统的功率调节需求高度契合。引射器的背压稳定控制理念可借鉴至ST储能系统的热管理优化,特别是氢燃料电池与储能耦合场景。建议将其流体控制算法融入iSolarCloud平台,为未来氢储一体化解决方案的智能运维提供技术储备,助力重卡电动化市场布局。