浏览全部资源
扫码关注微信
1.重载快捷大功率电力机车全国重点实验室,湖南 株洲 412001
2.中南大学 轨道交通安全教育部重点实验室,湖南 长沙 410083
申路民,男,博士,讲师,主要从事轨道车辆强度和动力学研究;E-mail: shenlm@csu.edu.cn
纸质出版日期:2024-07-10,
收稿日期:2023-12-01,
修回日期:2024-05-27,
移动端阅览
张华海, 陆军, 熊伟, 等. 动车组排雪特性与排障面板拓扑构型关联分析[J]. 机车电传动, 2024(4): 72-79.
ZHANG Huahai, LU Jun, XIONG Wei, et al. Correlation analysis between snow-removal characteristics of EMU and topological configuration of obstacle deflector panel[J]. Electric drive for locomotives,2024(4): 72-79.
张华海, 陆军, 熊伟, 等. 动车组排雪特性与排障面板拓扑构型关联分析[J]. 机车电传动, 2024(4): 72-79. DOI:10.13890/j.issn.1000-128X.2024.04.009.
ZHANG Huahai, LU Jun, XIONG Wei, et al. Correlation analysis between snow-removal characteristics of EMU and topological configuration of obstacle deflector panel[J]. Electric drive for locomotives,2024(4): 72-79. DOI:10.13890/j.issn.1000-128X.2024.04.009.
为明确在排雪横截面不变时某型出口欧洲动车组的排雪特性与排障面板几何构型之间的关联关系,指导积雪加载条件下排障面板拓扑构型设计,运用光滑粒子流体力学方法构建动车组冲击轨道松软积雪数值模型,开展不同前角和张角排障面板在冲击积雪过程中飞雪运动形态、排雪阻力和能耗功率分析。研究结果表明,被排除积雪在空中的飞扬形态与排障面板前角与张角密切相关,调整排障面板前角与张角可调整飞雪
z
方向的飞扬高度和
x
方向的速度,从而避免空中飞扬的积雪阻挡司机视线,保障动车组安全运行;排障面板前角对动车组
x
方向排雪阻力影响较小,但可改变
z
方向排雪阻力的大小和方向;排障面板张角增大会导致
x
方向排雪阻力增大,
z
方向排雪阻力先增大后减小;动车组排雪能耗、功率与排障面板前角关联性较小,与排障面板张角呈正相关关系,减小排障面板张角可有效减小排雪能耗和功率,达到减载降负和节能效果。
This paper aims to clarify the relationship between the snow-removal characteristics of an EMU mode intended for export to Europe and the geometrical configuration of its obstacle deflector panels
while maintaining a consistent snow-removal cross-section
and guide the topological configuration design for these panels to ensure their effectiveness under snow loading. A numerical model describing the impact of the EMUs on accumulated snow on tracks was constructed
using the smoothed particle hydrodynamics method. This model was then utilized to analyze snow movement
snow-removal resistance
energy consumption power under various rake and flare angles of the obstacle deflector panels. The results reveal a close relationship between snow movement and the rake and flare angles. Adjusting these angles can affect the height of snow movement in the
z
direction and the speed in the
x
direction
thereby preventing flying snow from blocking the driver's sight and ensuring the safe operation of the EMUs. The rake angle is found to influence both the magnitude and direction of
z
-directional snow-removal resistance
despite having little effect on
x
-directional snow-removal resistance. As the flare angle increases
x
-directional snow-removal resistance increases
whereas
z
-directional snow-removal resistance first increases and then decreases. Moreover
the snow-removal energy consumption and power of the EMUs exhibit low correlations with rake angles of the obstacle deflector panels and positive correlations with flare angles. Therefore
reducing flare angles can effectively decrease snow-removal energy consumption and power
leading to load reduction and energy conservation.
动车组排障面板积雪排雪特性
EMUobstacle deflector panelsnowsnow-removal characteristic
王家斌, 刘浩源, 刘操, 等. 下斜导流防积雪结构对高寒高速列车转向架区域积雪的影响[J]. 铁道学报, 2023, 45(9): 46-55.
WANG Jiabin, LIU Haoyuan, LIU Cao, et al. Impact of downward-inclined anti-snow deflectors on snow accumulation on bogies of alpine high-speed trains[J]. Journal of the China railway society, 2023, 45(9): 46-55.
姚曙光, 周雪飞, 许平, 等. 高速列车排障装置安全防护性能演化综述[J]. 中南大学学报(自然科学版), 2022, 53(5): 1559-1571.
YAO Shuguang, ZHOU Xuefei, XU Ping, et al. Review on evolution of safety protection performance of high speed train obstacle deflector[J]. Journal of central south university(science and technology), 2022, 53(5): 1559-1571.
谭惠日, 秦睿贤, 陈秉智. 多工况载荷下机车排障器拓扑和尺寸优化设计[J]. 大连交通大学学报, 2021, 42(4): 28-32.
TAN Huiri, QIN Ruixian, CHEN Bingzhi. Research on topology and size optimization of locomotive cowcatcher under multiple loads[J]. Journal of Dalian jiaotong university, 2021, 42(4): 28-32.
孙业琛, 孙丽萍, 王玉艳, 等. 高速动车组排障器结构轻量化研究[J]. 大连交通大学学报, 2020, 41(4): 86-89.
SUN Yechen, SUN Liping, WANG Yuyan, et al. Research on lightweight cowcatcher structures of high speed EMU[J]. Journal of Dalian jiaotong university, 2020, 41(4): 86-89.
童小山, 李祥涛, 李八宁, 等. 基于EN 15227标准的排障器仿真计算及试验验证[J]. 电力机车与城轨车辆, 2020, 43(3): 35-38.
TONG Xiaoshan, LI Xiangtao, LI Baning, et al. Simulation calculation and experimental verification of cowcatcher based on EN 15227[J]. Electric locomotives & mass transit vehicles, 2020, 43(3): 35-38.
陈文宾, 于洋洋, 张鹏, 等. 动车组排雪特性影响因素仿真分析[J]. 铁道科学与工程学报, 2023, 20(11): 4050-4061.
CHEN Wenbin, YU Yangyang, ZHANG Peng, et al. Influencing factors of snow discharge characteristics of motor train units based on simulation[J]. Journal of railway science and engineering, 2023, 20(11): 4050-4061.
罗晓晶. 动车组犁型排雪装置除雪过程仿真研究[D]. 长沙: 中南大学, 2012.
LUO Xiaojing. Research on snow removal process simulation of snowplow in EMU[D]. Changsha: Central South University, 2012.
周雪飞. 犁型排障器冲击特性研究及结构设计[D]. 长沙: 中南大学, 2022.
ZHOU Xuefei. Research on impact characteristics and structural design of plow obstacle deflector[D]. Changsha: Central South University, 2022.
BERDYCHOWSKI M, GÓRECKI J, WAŁĘSA K. Numerical simulation of dry ice compaction process: comparison of the Mohr-Coulomb model with the experimental results[J]. Materials, 2022, 15(22): 7932.
郑明军, 李张永, 吴文江. 除雪车集雪螺旋切雪过程有限元模拟研究[J]. 石家庄铁道大学学报(自然科学版), 2019, 32(2): 79-84.
ZHENG Mingjun, LI Zhangyong, WU Wenjiang. Finite element simulation of snow-cleaning process and structure optimization for snow-cleaning vehicle's snow collection[J]. Joural of Shijiazhuang tiedao university(natural science edition), 2019, 32(2): 79-84.
SURKUTWAR Y, SANDU C, UNTAROIU C. Review of modeling methods of compressed snow-tire interaction[J]. Journal of terramechanics, 2023, 105: 27-40.
孙雷. 机场跑道清雪车推雪铲优化设计与分析[D]. 沈阳: 东北大学, 2017.
SUN Lei. Optimal design and analysis of snowplough for airport runway snow removal vechicle[D]. Shenyang: Northeatern University, 2017.
王亚伟. 高海拔公路隧道洞口段积雪路面轮胎抗滑性能数值模拟研究[D]. 重庆: 重庆交通大学, 2019.
WANG Yawei. Numerical simulation of anti-sliding of tire on snowy road in tunnel section of high-cold region[D]. Chongqing: Chongqing Jiaotong University, 2019.
WANG Zhonggang, SHI Chong, DING Sansan, et al. Crashworthiness of innovative hexagonal honeycomb-like structures subjected to out-of-plane compression[J]. Journal of central south university, 2020, 27(2): 621-628.
刘杰夫, 雷紫平, 朱玉雯, 等. 高速列车设备舱底板夹芯结构异物冲击压痕行为及抗性强化[J]. 中南大学学报(自然科学版), 2022, 53(5): 1976-1988.
LIU Jiefu, LEI Ziping, ZHU Yuwen, et al. Impact indentation behavior and resistance enhancement of high-speed train equipment cabin bottom plate with honeycomb sandwich structure[J]. Journal of central south university (science and technology), 2022, 53(5): 1976-1988.
0
浏览量
0
下载量
0
CSCD
0
CNKI被引量
关联资源
相关文章
相关作者
相关机构