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重型载重车辆灰铸铁制动鼓力学性能研究 被引量:4
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作者 李莉 陈永泰 张方 《铸造》 CAS CSCD 北大核心 2012年第5期539-542,共4页
为满足重型载重车辆灰铸铁材质制动鼓力学性能的要求,研究了制动鼓用灰铸铁相关力学性能。在碳含量3.7%左右时,加入少量或微量的Sn、Sb、Cr、Cu等元素,采用75SiFe和自制孕育剂进行孕育,浇注后测试并分析试样力学性能。试验结果表明,合... 为满足重型载重车辆灰铸铁材质制动鼓力学性能的要求,研究了制动鼓用灰铸铁相关力学性能。在碳含量3.7%左右时,加入少量或微量的Sn、Sb、Cr、Cu等元素,采用75SiFe和自制孕育剂进行孕育,浇注后测试并分析试样力学性能。试验结果表明,合金元素的加入有利于提高自动鼓的力学性能。在综合考虑质量及经济因素的基础上,得出了比较适合制动鼓材质的三种配方。 展开更多
关键词 制动鼓 重型载重车辆 灰铸铁 力学性能
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重型载重车辆加载安全区域与极限载荷分析 被引量:1
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作者 吴根忠 周云波 王显会 《合肥工业大学学报(自然科学版)》 CAS CSCD 北大核心 2009年第B11期54-57,共4页
重型载重车辆的加载重心位置是重型载重车辆安全行驶的关键因素。文章结合相关项目,对重型载重车辆的加载重心安全区域进行了详细的分析和计算,突破了项目的一个技术关口,同时也给出了加载重心安全区域一种研究方法和思路,为后续相关的... 重型载重车辆的加载重心位置是重型载重车辆安全行驶的关键因素。文章结合相关项目,对重型载重车辆的加载重心安全区域进行了详细的分析和计算,突破了项目的一个技术关口,同时也给出了加载重心安全区域一种研究方法和思路,为后续相关的研究和车辆开发奠定基础。 展开更多
关键词 载重心安全区域 极限加载载荷 重型载重车辆 安全运输
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Hybridisation Potentials for Heavy Trucks Considering Route Topography
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作者 Oliver Zim Stephan Krauth Michael Ahlborn 《Journal of Mechanics Engineering and Automation》 2016年第7期326-333,共8页
Based on dynamometer test cycles or plain motorway operation, heavy truck hybridisation must be considered as uneconomic if only the kinetic vehicle energy can be recuperated. In mountainous regions, micro hybridizati... Based on dynamometer test cycles or plain motorway operation, heavy truck hybridisation must be considered as uneconomic if only the kinetic vehicle energy can be recuperated. In mountainous regions, micro hybridization by a 48V-belt generator or mild parallel hybridisation by a large high voltage electric drive can result in considerable fuel consumption savings as well as additional benefits for heavy load utility vehicles. Additional electric power and battery size are still critical design parameters as well as critical cost factors considering the limited space and depreciation time as well as the need for maximum payload. Based on vehicle model simulations, this contribution quantifies fuel consumption savings, recuperation energy harvesting and battery requirements for different truck sizes with test cycles based on realistic route topography. The main route topography parameter for the recuperation benefit is the effective incline that integrates all downhill sections that overcompensates the vehicle resistance by tire friction and air resistance. The simulation parameter studies lead to an analytical benefit estimation, based on load cycle parameters like effective velocity, effective incline as well as the vehicle parameters mass, drag coefficient and cross sectional area. Thus, the return on investment can be assessed by an analytic rule of thumb, based on tracked cycles of existing vehicles. 展开更多
关键词 HYBRIDISATION vehicle model SIMULATION test cycles route topography.
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