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Overall efficiency optimization of controllable mechanical turbo-compounding system for heavy duty diesel engines 被引量:3
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作者 HE GuanZhang XIE Hui HE ShiJie 《Science China(Technological Sciences)》 SCIE EI CAS CSCD 2017年第1期36-50,共15页
A controllable mechanical turbo-compounding(CMTC) system including continuously variable transmission(CVT) and power turbine bypass valve is proposed to recover waste heat from engine exhaust. The combined matching pr... A controllable mechanical turbo-compounding(CMTC) system including continuously variable transmission(CVT) and power turbine bypass valve is proposed to recover waste heat from engine exhaust. The combined matching principle considering swallowing capacity of both charging turbine and power turbine, main gear ratio is investigated at first based on the analysis of individual influence. Then the effects and strategies of CVT and power turbine bypass valve are studied for better performance under off-design conditions. At last, the transient response of intake pressure of engine with CMTC system is researched and the fuel saving potential is tested under driving cycle conditions. The results indicate that the overall fuel efficiency elevates at the off-design conditions if CVT is adopted due to the improvement of power turbine operating efficiency by speed modulation. The diversion of exhaust through power turbine bypass valve under the low load condition is necessary. The back pressure of the charging turbine infuences the transient response of intake pressure for a fixed CMTC configuration. A method featured by the assistance of power turbine bypass valve is tested to improve the transient response of the intake pressure. The fuel consumption reduces by 2% and 3.4% under highway fuel economy test(HWFET) and Tianjin 503(TJ503) driving cycles respectively. 展开更多
关键词 heavy duty diesel engine waste heat recovery controllable mechanical turbo-compounding continuously variabletransmission device driving cycle transient response
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液压压紧式牵引传动装置动力学研究 被引量:2
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作者 沈楚敬 苑士华 +2 位作者 魏超 陈星 刘洪 《农业机械学报》 EI CAS CSCD 北大核心 2012年第6期15-18,共4页
运用弹流动力润滑理论建立了传动装置牵引特性计算模型,并通过Matlab建立了该传动系统的动力学仿真模型。通过仿真计算可知,在变速过程中,由于摩擦副存在滑滚比,牵引摩擦副所起的作用相当于传统变速箱的变矩器或主离合器,具有缓冲功能;... 运用弹流动力润滑理论建立了传动装置牵引特性计算模型,并通过Matlab建立了该传动系统的动力学仿真模型。通过仿真计算可知,在变速过程中,由于摩擦副存在滑滚比,牵引摩擦副所起的作用相当于传统变速箱的变矩器或主离合器,具有缓冲功能;并且在某一输入转速和法向加载力下,传动比越小,最大输出转速越大,但达到稳定所用时间越长,同时输出转矩和输出角加速度响应时间越长。仿真结果反映了牵引传动装置的动力学特性,为液压压紧式牵引传动装置提供了准确的分析方法。 展开更多
关键词 牵引传动 液压压紧式 动力学 无级变速器
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