期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
含缓存池的立体车库并行存车方案设计与分析
1
作者 宁方华 王广浩 +2 位作者 潘尔听 贾欣裕 李仁旺 《工程科学与技术》 EI CAS CSCD 北大核心 2023年第5期202-211,共10页
为了缓解高峰期停车难、排队等待时间长和立体车库存车效率低的问题,提出一种具有缓存功能的立体车库。首先,充分利用立体车库底层空间设计子母车缓存池存车方案,通过缓存池的连续搬运工作提高存取车效率。车库各层均布置有一辆母车,采... 为了缓解高峰期停车难、排队等待时间长和立体车库存车效率低的问题,提出一种具有缓存功能的立体车库。首先,充分利用立体车库底层空间设计子母车缓存池存车方案,通过缓存池的连续搬运工作提高存取车效率。车库各层均布置有一辆母车,采取多层循环车位分配策略,实现车库多层母车并行存车功能,并通过分析多个存车请求下立体车库的工作时序特征计算立体车库并行存车效率。其次,基于顾客存车流程建立M/M/n多服务窗排队模型,并采用排队理论分析不同顾客到达速率下升降货梯平均利用率及不同升降货梯数量下顾客存车平均排队的时间、队长和需要等待的概率。最后,结合实际车辆参数、车库结构尺寸和子母车搬运系统的运动参数,基于占地面积合理设计存车缓存池容量,对比分析缓存池作用前后的顾客存车指标,验证了缓存池能够大幅降低顾客存车等待时间。结果表明:立体车库系统在进行5辆车并行存车状态下,比传统的堆垛机式立体车库存车效率提升39%;顾客到达速率为75辆/h时,设置存车的子车缓存池容量为4,可节省顾客约47.8%的平均排队时间。因此,该含有缓存池的立体车库并行存车方案能显著提高存车效率,同时降低顾客等待时间,可进一步满足顾客存车需求。 展开更多
关键词 立体车库 子母车 缓存池 并行存车 排队模型
下载PDF
Energy management strategy for a parallel hybrid electric vehicle equipped with a battery/ultra-capacitor hybrid energy storage system 被引量:6
2
作者 Jun-yi LIANG Jian-long ZHANG +2 位作者 Xi ZHANG Shi-fei YUAN Cheng-liang YIN 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2013年第8期535-553,共19页
To solve the low power density issue of hybrid electric vehicular batteries, a combination of batteries and ultracapacitors (UCs) could be a solution. The high power density feature of UCs can improve the performance ... To solve the low power density issue of hybrid electric vehicular batteries, a combination of batteries and ultracapacitors (UCs) could be a solution. The high power density feature of UCs can improve the performance of battery/UC hybrid energy storage systems (HESSs). This paper presents a parallel hybrid electric vehicle (HEV) equipped with an internal combus- tion engine and an HESS. An advanced energy management strategy (EMS), mainly based on fuzzy logic, is proposed to improve the fuel economy of the HEV and the endurance of the HESS. The EMS is capable of determining the ideal distribution of output power among the internal combustion engine, battery, and UC according to the propelling power or regenerative braking power of the vehicle. To validate the effectiveness of the EMS, numerical simulation and experimental validations are carried out. The results indicate that EMS can effectively control the power sources to work within their respective efficient areas. The battery load can be mitigated and prolonged battery life can be expected. The electrical energy consumption in the HESS is reduced by 3.91% compared with that in the battery only system. Fuel consumption of the HEV is reduced by 24.3% compared with that of the same class conventional vehicles under Economic Commission of Europe driving cycle. 展开更多
关键词 Energy management Fuel economy parallel hybrid electric vehicle Hybrid energy storage system (HESS) Fuzzy logic
原文传递
上一页 1 下一页 到第
使用帮助 返回顶部