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考虑车内振动的动力总成悬置系统多目标优化 被引量:5
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作者 陈剑 史韦意 +3 位作者 蒋丰鑫 曾维俊 沈忠亮 汪一峰 《中国机械工程》 EI CAS CSCD 北大核心 2015年第8期1129-1135,共7页
以实际工况下的测试数据为基础,建立了简化的车内振动传递路径分析模型。在此基础上,以发动机悬置刚度为设计变量,综合考虑悬置系统能量解耦和车内振动,建立了基于灰色粒子群优化算法的多目标优化模型。并以某型卡车为例,进行了多目标... 以实际工况下的测试数据为基础,建立了简化的车内振动传递路径分析模型。在此基础上,以发动机悬置刚度为设计变量,综合考虑悬置系统能量解耦和车内振动,建立了基于灰色粒子群优化算法的多目标优化模型。并以某型卡车为例,进行了多目标优化求解。实验和优化结果表明,在得到较好能量解耦的同时,降低了车内振动,实现了能量解耦和车内低振动的优化匹配。 展开更多
关键词 动力总成悬置系统 传递路径分析 灰色粒群算法 蒙特卡罗法
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Stereo garage parking space allocation model and simulation analysis 被引量:1
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作者 WANG Xiao-nong LI Jian-guo HE Yun-peng 《Journal of Measurement Science and Instrumentation》 CAS CSCD 2019年第4期369-378,共10页
Based on grey neural network and particle swarm optimization algorithm,an automated stereo garage decision model is proposed to solve the problems of long waiting queue and low efficiency of automated parking garage.T... Based on grey neural network and particle swarm optimization algorithm,an automated stereo garage decision model is proposed to solve the problems of long waiting queue and low efficiency of automated parking garage.The gray neural network is used to forecast the stay time of the vehicle and particle swarm optimization algorithm is used to allocate the parking spaces in the stereo garage.The proposed stereo garage mathematical model is established on condition that vehicle arrival interval obeys Poisson distribution.The performance of stereo garage is evaluated by the average waiting time,average waiting queue length,average service time and average energy consumption of the customers.By comparing the efficiency indexes of the existing model based on near-distribution principle and the proposed model based on gray neural network and particle swarm algorithm,it is proved that the proposed model based on gray neural network and particle swarm algorithm is effective in improving the efficiency of garage operation and reducing the energy consumption of garage. 展开更多
关键词 stereo garage parking space allocation particle swarm algorithm grey neural network algorithm near-distribution principle
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