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Multi-objective optimization of stamping forming process of head using Pareto-based genetic algorithm 被引量:10
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作者 周杰 卓芳 +1 位作者 黄磊 罗艳 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第9期3287-3295,共9页
To obtain the optimal process parameters of stamping forming, finite element analysis and optimization technique were integrated via transforming multi-objective issue into a single-objective issue. A Pareto-based gen... To obtain the optimal process parameters of stamping forming, finite element analysis and optimization technique were integrated via transforming multi-objective issue into a single-objective issue. A Pareto-based genetic algorithm was applied to optimizing the head stamping forming process. In the proposed optimal model, fracture, wrinkle and thickness varying are a function of several factors, such as fillet radius, draw-bead position, blank size and blank-holding force. Hence, it is necessary to investigate the relationship between the objective functions and the variables in order to make objective functions varying minimized simultaneously. Firstly, the central composite experimental(CCD) with four factors and five levels was applied, and the experimental data based on the central composite experimental were acquired. Then, the response surface model(RSM) was set up and the results of the analysis of variance(ANOVA) show that it is reliable to predict the fracture, wrinkle and thickness varying functions by the response surface model. Finally, a Pareto-based genetic algorithm was used to find out a set of Pareto front, which makes fracture, wrinkle and thickness varying minimized integrally. A head stamping case indicates that the present method has higher precision and practicability compared with the "trial and error" procedure. 展开更多
关键词 stamping forming HEADS finite element analysis central composite experimental design response surface methodology multi-objective genetic algorithm
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Performance optimization of electric power steering based on multi-objective genetic algorithm 被引量:2
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作者 赵万忠 王春燕 +1 位作者 于蕾艳 陈涛 《Journal of Central South University》 SCIE EI CAS 2013年第1期98-104,共7页
The vehicle model of the recirculating ball-type electric power steering (EPS) system for the pure electric bus was built. According to the features of constrained optimization for multi-variable function, a multi-obj... The vehicle model of the recirculating ball-type electric power steering (EPS) system for the pure electric bus was built. According to the features of constrained optimization for multi-variable function, a multi-objective genetic algorithm (GA) was designed. Based on the model of system, the quantitative formula of the road feel, sensitivity, and operation stability of the steering were induced. Considering the road feel and sensitivity of steering as optimization objectives, and the operation stability of steering as constraint, the multi-objective GA was proposed and the system parameters were optimized. The simulation results show that the system optimized by multi-objective genetic algorithm has better road feel, steering sensibility and steering stability. The energy of steering road feel after optimization is 1.44 times larger than the one before optimization, and the energy of portability after optimization is 0.4 times larger than the one before optimization. The ground test was conducted in order to verify the feasibility of simulation results, and it is shown that the pure electric bus equipped with the recirculating ball-type EPS system can provide better road feel and better steering portability for the drivers, thus the optimization methods can provide a theoretical basis for the design and optimization of the recirculating ball-type EPS system. 展开更多
关键词 vehicle engineering electric power steering multi-objective optimization genetic algorithm
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Application of camera calibrating model to space manipulator with multi-objective genetic algorithm
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作者 王中宇 江文松 王岩庆 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第8期1937-1943,共7页
The multi-objective genetic algorithm(MOGA) is proposed to calibrate the non-linear camera model of a space manipulator to improve its locational accuracy. This algorithm can optimize the camera model by dynamic balan... The multi-objective genetic algorithm(MOGA) is proposed to calibrate the non-linear camera model of a space manipulator to improve its locational accuracy. This algorithm can optimize the camera model by dynamic balancing its model weight and multi-parametric distributions to the required accuracy. A novel measuring instrument of space manipulator is designed to orbital simulative motion and locational accuracy test. The camera system of space manipulator, calibrated by MOGA algorithm, is used to locational accuracy test in this measuring instrument. The experimental result shows that the absolute errors are [0.07, 1.75] mm for MOGA calibrating model, [2.88, 5.95] mm for MN method, and [1.19, 4.83] mm for LM method. Besides, the composite errors both of LM method and MN method are approximately seven times higher that of MOGA calibrating model. It is suggested that the MOGA calibrating model is superior both to LM method and MN method. 展开更多
关键词 space manipulator camera calibration multi-objective genetic algorithm orbital simulation and measurement
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Multi-objective design optimization of composite submerged cylindrical pressure hull for minimum buoyancy and maximum buckling load capacity 被引量:4
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作者 Muhammad Imran Dong-yan Shi +3 位作者 Li-li Tong Ahsan Elahi Hafiz Muhammad Waqas Muqeem Uddin 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2021年第4期1190-1206,共17页
This paper presents the design optimization of composite submersible cylindrical pressure hull subjected to 3 MPa hydrostatic pressure.The design optimization study is conducted for cross-ply layups[0_(s)/90_(t)/0_(u)... This paper presents the design optimization of composite submersible cylindrical pressure hull subjected to 3 MPa hydrostatic pressure.The design optimization study is conducted for cross-ply layups[0_(s)/90_(t)/0_(u)],[0_(s)/90_(t)/0_(u)]s,[0_(s)/90_(t)]s and[90_(s)/0_(t)]s considering three uni-directional composites,i.e.Carbon/Epoxy,Glass/Epoxy,and Boron/Epoxy.The optimization study is performed by coupling a Multi-Objective Genetic Algorithm(MOGA)and Analytical Analysis.Minimizing the buoyancy factor and maximizing the buckling load factor are considered as the objectives of the optimization study.The objectives of the optimization are achieved under constraints on the Tsai-Wu,Tsai-Hill and Maximum Stress composite failure criteria and on buckling load factor.To verify the optimization approach,optimization of one particular layup configuration is also conducted in ANSYS with the same objectives and constraints. 展开更多
关键词 multi-objective genetic algorithm Optimization Composite submersible pressure hull Thin shell Material failure Shell buckling
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Multi-objective optimization of active steering system with force and displacement coupled control 被引量:4
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作者 赵万忠 孙培坤 +1 位作者 刘顺 林逸 《Journal of Central South University》 SCIE EI CAS 2012年第4期974-981,共8页
A novel active steering system with force and displacement coupled control(the novel AFS system) was introduced,which has functions of both the active steering and electric power steering.Based on the model of the nov... A novel active steering system with force and displacement coupled control(the novel AFS system) was introduced,which has functions of both the active steering and electric power steering.Based on the model of the novel AFS system and the vehicle three-degree of freedom system,the concept and quantitative formulas of the novel AFS system steering performance were proposed.The steering road feel and steering portability were set as the optimizing targets with the steering stability and steering portability as the constraint conditions.According to the features of constrained optimization of multi-variable function,a multi-variable genetic algorithm for the system parameter optimization was designed.The simulation results show that based on parametric optimization of the multi-objective genetic algorithm,the novel AFS system can improve the steering road feel,steering portability and steering stability,thus the optimization method can provide a theoretical basis for the design and optimization of the novel AFS system. 展开更多
关键词 vehicle engineering active steering electric power steering multi-objective genetic algorithm
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Overview of multi-objective optimization methods 被引量:2
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作者 LeiXiujuan ShiZhongke 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2004年第2期142-146,共5页
To assist readers to have a comprehensive understanding, the classical and intelligent methods roundly based on precursory research achievements are summarized in this paper. First, basic conception and description ab... To assist readers to have a comprehensive understanding, the classical and intelligent methods roundly based on precursory research achievements are summarized in this paper. First, basic conception and description about multi-objective (MO) optimization are introduced. Then some definitions and related terminologies are given. Furthermore several MO optimization methods including classical and current intelligent methods are discussed one by one succinctly. Finally evaluations on advantages and disadvantages about these methods are made at the end of the paper. 展开更多
关键词 multi-objective optimization objective function Pareto optimality genetic algorithms simulated annealing fuzzy logical.
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Multi-objective planning model for simultaneous reconfiguration of power distribution network and allocation of renewable energy resources and capacitors with considering uncertainties 被引量:9
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作者 Sajad Najafi Ravadanegh Mohammad Reza Jannati Oskuee Masoumeh Karimi 《Journal of Central South University》 SCIE EI CAS CSCD 2017年第8期1837-1849,共13页
This research develops a comprehensive method to solve a combinatorial problem consisting of distribution system reconfiguration, capacitor allocation, and renewable energy resources sizing and siting simultaneously a... This research develops a comprehensive method to solve a combinatorial problem consisting of distribution system reconfiguration, capacitor allocation, and renewable energy resources sizing and siting simultaneously and to improve power system's accountability and system performance parameters. Due to finding solution which is closer to realistic characteristics, load forecasting, market price errors and the uncertainties related to the variable output power of wind based DG units are put in consideration. This work employs NSGA-II accompanied by the fuzzy set theory to solve the aforementioned multi-objective problem. The proposed scheme finally leads to a solution with a minimum voltage deviation, a maximum voltage stability, lower amount of pollutant and lower cost. The cost includes the installation costs of new equipment, reconfiguration costs, power loss cost, reliability cost, cost of energy purchased from power market, upgrade costs of lines and operation and maintenance costs of DGs. Therefore, the proposed methodology improves power quality, reliability and security in lower costs besides its preserve, with the operational indices of power distribution networks in acceptable level. To validate the proposed methodology's usefulness, it was applied on the IEEE 33-bus distribution system then the outcomes were compared with initial configuration. 展开更多
关键词 optimal reconfiguration renewable energy resources sitting and sizing capacitor allocation electric distribution system uncertainty modeling scenario based-stochastic programming multi-objective genetic algorithm
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NSGA Ⅱ based multi-objective homing trajectory planning of parafoil system 被引量:1
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作者 陶金 孙青林 +1 位作者 陈增强 贺应平 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第12期3248-3255,共8页
Homing trajectory planning is a core task of autonomous homing of parafoil system.This work analyzes and establishes a simplified kinematic mathematical model,and regards the homing trajectory planning problem as a ki... Homing trajectory planning is a core task of autonomous homing of parafoil system.This work analyzes and establishes a simplified kinematic mathematical model,and regards the homing trajectory planning problem as a kind of multi-objective optimization problem.Being different from traditional ways of transforming the multi-objective optimization into a single objective optimization by weighting factors,this work applies an improved non-dominated sorting genetic algorithm Ⅱ(NSGA Ⅱ) to solve it directly by means of optimizing multi-objective functions simultaneously.In the improved NSGA Ⅱ,the chaos initialization and a crowding distance based population trimming method were introduced to overcome the prematurity of population,the penalty function was used in handling constraints,and the optimal solution was selected according to the method of fuzzy set theory.Simulation results of three different schemes designed according to various practical engineering requirements show that the improved NSGA Ⅱ can effectively obtain the Pareto optimal solution set under different weighting with outstanding convergence and stability,and provide a new train of thoughts to design homing trajectory of parafoil system. 展开更多
关键词 parafoil system homing trajectory planning multi-objective optimization non-dominated sorting genetic algorithm(NSGA) non-uniform b-spline
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FL-FN-MOGA Based Traffic Signal Control
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作者 Wei Wu & Zhang Yi Department of Automation, Tsinghua University, Beijing 100084, P. R. China 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2003年第3期14-23,共10页
In this paper, a traffic signal control method based on fuzzy logic (FL), fuzzy-neuro (FN) and multi-objective genetic algorithms (MOGA) for an isolated four-approach intersection with through and left-turning movemen... In this paper, a traffic signal control method based on fuzzy logic (FL), fuzzy-neuro (FN) and multi-objective genetic algorithms (MOGA) for an isolated four-approach intersection with through and left-turning movements is presented. This method has an adaptive signal timing ability, and can make adjustments to signal timing in response to observed changes.The 'urgency degree' term, which can describe the different user's demand for green time is used in decision-making by which strategy of signal timing can be determined. Using a fuzzy logic controller, we can determine whether to extend or terminate the current signal phase and select the sequences of phases. In this paper, a method based on fuzzy-neuro can be used to predict traffic parameters used in fuzzy logic controller. The feasibility of using a multi-objective genetic algorithm ( MOGA) to find a group of optimizing sets of parameters for fuzzy logic controller depending on different objects is also demonstrated. Simulation results show that the proposed methed is effecfive to adjust the signal timing in response to changing traffic conditions on a real-time basis, and the controller can produce lower vehicle delays and percentage of stopped vehicles than a traffic-actuated controller. 展开更多
关键词 Traffic signal control Fuzzy logic Fuzzy-neuro multi-objective genetic algorithms.
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基于集合经验模态分解和多目标遗传算法的火-多储系统调频功率双层优化 被引量:19
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作者 李翠萍 司文博 +2 位作者 李军徽 严干贵 贾晨 《电工技术学报》 EI CSCD 北大核心 2024年第7期2017-2032,共16页
针对分布于区域电网不同网络节点的多座储能电站参与电网调频功率调度问题,该文提出一种基于集合经验模态分解(EEMD)和多目标遗传算法(MOGA)的火-多储系统调频功率双层优化策略。该策略包含火-储调频功率优化层和多储能电站调频功率优化... 针对分布于区域电网不同网络节点的多座储能电站参与电网调频功率调度问题,该文提出一种基于集合经验模态分解(EEMD)和多目标遗传算法(MOGA)的火-多储系统调频功率双层优化策略。该策略包含火-储调频功率优化层和多储能电站调频功率优化层:上层计及火-储调配资源各自优势及剩余调频能力,构建火-储调频功率优化分配模型,完成火-储调频功率的分配;下层引入关于调频成本和荷电状态(SOC)的自适应权重系数,以调频成本最低和SOC均衡为优化目标,完成调频功率在多储能电站之间的分配。仿真结果表明,所提策略可以提升区域电网调频效果并降低调频成本,均衡控制多个储能电站的调频成本和SOC,可以防止经济性较好的储能电站长期处于SOC越限边缘状态,提升储能电站参与调频的积极性和可持续性。 展开更多
关键词 多火电储能系统 二次调频 双层优化控制 多目标遗传算法(moga) 自适 应权重系数
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Multi-objective Function Optimization for Environmental Control of a Greenhouse Based on a RBF and NSGA-Ⅱ
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作者 Zhou Xiu-li Liu Ming-wei +3 位作者 Wang Ling Xu Xiao-chuan Chen Gang Wang De-fu 《Journal of Northeast Agricultural University(English Edition)》 CAS 2021年第1期75-89,共15页
To better meet the needs of crop growth and achieve energy savings and efficiency enhancements,constructing a reliable environmental model to optimize greenhouse decision parameters is an important problem to be solve... To better meet the needs of crop growth and achieve energy savings and efficiency enhancements,constructing a reliable environmental model to optimize greenhouse decision parameters is an important problem to be solved.In this work,a radial-basis function(RBF)neural network was used to mine the potential changes of a greenhouse environment,a temperature error model was established,a multi-objective optimization function of energy consumption was constructed and the corresponding decision parameters were optimized by using a non-dominated sorting genetic algorithm with an elite strategy(NSGA-Ⅱ).The simulation results showed that RBF could clarify the nonlinear relationship among the greenhouse environment variables and decision parameters and the greenhouse temperature.The NSGA-Ⅱ could well search for the Pareto solution for the objective functions.The experimental results showed that after 40 min of combined control of sunshades and sprays,the temperature was reduced from 31℃to 25℃,and the power consumption was 0.5 MJ.Compared with tire three days of July 24,July 25 and July 26,2017,the energy consumption of the controlled production greenhouse was reduced by 37.5%,9.1%and 28.5%,respectively. 展开更多
关键词 greenhouse temperature multi-objective optimization radial-basis function(RBF) non-dominated sorting genetic algorithm with an elite strategy(NSGA-Ⅱ)
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复合载荷作用下H型垂直轴风力机叶片结构多目标优化 被引量:2
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作者 周兴明 周井玲 《现代制造工程》 CSCD 北大核心 2024年第4期153-159,145,共8页
为改善气动力、离心力和重力等复合载荷作用下的H型垂直轴风力机叶片的结构性能,提出一种多目标优化方法。以质量和最大应力最小为目标,最大变形为约束建立优化模型。通过流固耦合(Fluid-Structure-Interaction,FSI)方法,实现叶片表面... 为改善气动力、离心力和重力等复合载荷作用下的H型垂直轴风力机叶片的结构性能,提出一种多目标优化方法。以质量和最大应力最小为目标,最大变形为约束建立优化模型。通过流固耦合(Fluid-Structure-Interaction,FSI)方法,实现叶片表面压力的实时准确提取,建立复合载荷作用下的叶片有限元模型;基于最优空间填充(Optimal Space-Filling,OSF)方法和Kriging模型建立各变量对应力、质量和变形的响应面模型,进行灵敏度和变化趋势分析;最后采用多目标遗传算法(Multi-Objective Genetic Algorithm,MOGA)获得各变量的最优解,并进行结果验证。结果表明,优化后叶片质量减少了14.7%,各方位角下的最大应力减幅最大为7.8%,最大变形减幅最大为16.7%。研究结果可为复合载荷作用下叶片的结构优化设计提供参考。 展开更多
关键词 垂直轴风力机 叶片 流固耦合 KRIGING模型 多目标遗传算法
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某车型排气系统隔振性能及优化研究 被引量:1
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作者 张国顺 罗建国 +2 位作者 张建 傅爱军 杨晋博 《现代制造工程》 CSCD 北大核心 2024年第3期62-69,共8页
为提高某车型排气系统隔振性能,用HyperMesh软件构建排气系统有限元模型并对其进行隔振性能分析,经测试分析发现其传递力过大,通过重新设定将各个吊耳传递力之和及其标准差作为优化目标一;将各个吊耳静态位移之和与预载力标准差作为优... 为提高某车型排气系统隔振性能,用HyperMesh软件构建排气系统有限元模型并对其进行隔振性能分析,经测试分析发现其传递力过大,通过重新设定将各个吊耳传递力之和及其标准差作为优化目标一;将各个吊耳静态位移之和与预载力标准差作为优化目标二。在HyperStudy软件中通过拉丁超立方采样并进行试验设计(Design of Experiments,DOE),以进行变量筛选,最终确定以6个吊耳的Z向动刚度作为设计变量,并构建响应面模型,用多目标遗传算法(Multi-Objective Genetic Algorithm,MOGA)得出最优的吊耳动刚度值。将最优的吊耳动刚度值代入排气系统有限元模型进行分析,结果表明优化目标均有所提升。最后,将实际生产的吊耳装载后在实际道路上进行测试,试验结果表明,隔振率均大于20 dB,与有限元结果相同,符合生产设计要求。 展开更多
关键词 排气系统 拉丁超立方 多目标遗传算法 隔振率
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改进的多目标遗传算法在配电网规划中的应用 被引量:17
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作者 苗增强 姚建刚 +3 位作者 李婷 李佐胜 肖辉耀 盛艳 《电力系统及其自动化学报》 CSCD 北大核心 2009年第5期63-67,103,共6页
针对配电网规划复杂多目标优化问题,建立以经济性和可靠性为目标的配电网规划模型,提出改进的多目标遗传算法,采用分解-协调思想将复杂多变量的规划问题分解成多个子问题,分别对各子问题优化,最终达到全局优化的目的。该算法通过精英选... 针对配电网规划复杂多目标优化问题,建立以经济性和可靠性为目标的配电网规划模型,提出改进的多目标遗传算法,采用分解-协调思想将复杂多变量的规划问题分解成多个子问题,分别对各子问题优化,最终达到全局优化的目的。该算法通过精英选择和个体迁移策略提高了收敛速度,将一种新型编码方式应用于此算法使配电网自然呈辐射状,同时在精华种群中加入裁剪算子以提高搜索效率。与常规算法相比较,该算法收敛性好,最后通过算例表明该算法的有效性。 展开更多
关键词 配电网规划 多目标优化 多目标遗传算法 遗传算法
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基于多目标遗传算法的混流加工/装配系统排序问题研究 被引量:15
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作者 王炳刚 饶运清 +1 位作者 邵新宇 徐迟 《中国机械工程》 EI CAS CSCD 北大核心 2009年第12期1434-1438,共5页
为解决由一条混流装配线和一条柔性部件加工线组成的拉式生产系统的优化排序问题,以平顺化混流装配线的部件消耗和最小化加工线总的切换时间为优化目标,建立了优化数学模型;提出了一种多目标遗传算法(MOGA)用于求解该优化模型;在该算法... 为解决由一条混流装配线和一条柔性部件加工线组成的拉式生产系统的优化排序问题,以平顺化混流装配线的部件消耗和最小化加工线总的切换时间为优化目标,建立了优化数学模型;提出了一种多目标遗传算法(MOGA)用于求解该优化模型;在该算法中,提出了一种三阶段的实数编码方法用于可行解的表达,同时应用帕累托分级方法和共享函数方法对可行解适应度值进行评价,保证了解的分布性和均匀性。利用遗传算法对两个单目标分别进行优化,结果表明,该多目标遗传算法是可行的和有效的,应用该算法可以获得满意的非支配解集。 展开更多
关键词 排序 混流加工/装配系统 多目标遗传算法(moga) 遗传算法
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基于多目标遗传算法的弧齿锥齿轮多学科优化设计 被引量:9
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作者 罗潘 梁尚明 +3 位作者 蒋立茂 王鹏 曾祥平 刘小谭 《机械设计与制造》 北大核心 2012年第8期6-8,共3页
针对常规设计中弧齿锥齿轮存在的问题,将多学科优化设计引入到弧齿锥齿轮设计中,改善其不足。以大小弧齿锥齿轮体积之和最小、弧齿锥齿轮齿根弯曲应力最小以及工作噪音最小三个方面为目标函数,以齿数、齿宽中点螺旋角、齿宽和大端模数... 针对常规设计中弧齿锥齿轮存在的问题,将多学科优化设计引入到弧齿锥齿轮设计中,改善其不足。以大小弧齿锥齿轮体积之和最小、弧齿锥齿轮齿根弯曲应力最小以及工作噪音最小三个方面为目标函数,以齿数、齿宽中点螺旋角、齿宽和大端模数为设计变量,考虑齿面接触疲劳强度、齿根弯曲疲劳强度、环境保护等8个方面约束,建立弧齿锥齿轮的多学科优化设计数学模型。根据该数学模型,运用多目标遗传算法对文中的实例优化求解,计算结果表明该设计方法是合理的,行之有效的。 展开更多
关键词 多学科优化设计 弧齿锥齿轮 多目标遗传算法
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车用空调冷凝器性能多目标优化方法 被引量:4
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作者 过海 倪益华 +1 位作者 王进 陆国栋 《浙江大学学报(工学版)》 EI CAS CSCD 北大核心 2015年第1期142-149,共8页
针对车用空调平行流冷凝器的性能优化问题,将冷凝器划分为3个相区,分别为过热区、两相区和过冷区.通过划分微元并通过比焓或干度逐一判断所属相区并进行计算的方式,基于ε-NTU法建立结构参数与性能参数之间的数学关系,通过运行实验验证... 针对车用空调平行流冷凝器的性能优化问题,将冷凝器划分为3个相区,分别为过热区、两相区和过冷区.通过划分微元并通过比焓或干度逐一判断所属相区并进行计算的方式,基于ε-NTU法建立结构参数与性能参数之间的数学关系,通过运行实验验证了该换热计算模型.利用多目标遗传算法(MOGA)分别获得双目标优化与多目标优化的Pareto最优解集,比较了两者的优劣.结果表明,采用MOGA能够解决车用空调平行流冷凝器性能优化问题,相对双目标优化具有更好的优化效果.通过对优化点进行分析,分别获得最佳综合性能、最佳运行性能、小型轻量化3种优化方案,其中综合性能优化方案提升换热效率4.7%、降低压降4.5%,体积和质量分别减小10.5%和6.4%. 展开更多
关键词 冷凝器 多目标优化 多目标遗传算法(moga)
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高超声速飞行器气动布局总体性能优化设计研究 被引量:12
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作者 车竞 唐硕 何开锋 《空气动力学学报》 EI CSCD 北大核心 2009年第2期214-219,共6页
总体设计是吸气式高超声速巡航飞行器的关键技术之一。为提高高超声速飞行器的设计水平,获得一个总体性能较优的布局构型,对乘波布局的高超声速飞行器进行了总体优化设计研究。采用多目标遗传算法,以飞行器外形参数作为设计变量,考虑了... 总体设计是吸气式高超声速巡航飞行器的关键技术之一。为提高高超声速飞行器的设计水平,获得一个总体性能较优的布局构型,对乘波布局的高超声速飞行器进行了总体优化设计研究。采用多目标遗传算法,以飞行器外形参数作为设计变量,考虑了巡航状态下的气动力、热、雷达散射截面、机体/推进一体化、机身容积、配平特性、静稳定性和机动性等指标。优化设计得到了Pareto最优前沿面,获得了很多总体性能优于基本构型的最优个体。根据设计指标,给出了一个推荐方案作为进一步研究的参考构型,并对它的气动特性进行了风洞实验验证,证明了本文优化设计方法的可行性。 展开更多
关键词 高超声速飞行器 乘波布局 多目标遗传算法 机体/推进一体化 总体优化设计
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基于多目标遗传算法的巨型水库群发电优化调度 被引量:8
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作者 魏加华 张远东 《地学前缘》 EI CAS CSCD 北大核心 2010年第6期255-262,共8页
低碳时代,水电作为清洁可再生能源,节能发电调度为梯级水电联合调度运行带来了难得的历史机遇,如何有效地开展梯级水库群优化调度,充分合理利用水能资源,是流域梯级电站管理迫切需要解决的问题。文章在对清江梯级与三峡梯级径流特征分... 低碳时代,水电作为清洁可再生能源,节能发电调度为梯级水电联合调度运行带来了难得的历史机遇,如何有效地开展梯级水库群优化调度,充分合理利用水能资源,是流域梯级电站管理迫切需要解决的问题。文章在对清江梯级与三峡梯级径流特征分析的基础上,建立了以水库群整体发电量最大和弃能最小为目标的梯级调度模型。根据电力系统对三峡、葛洲坝、水布垭、隔河岩、高坝洲水电站的要求,用1951—2002年的月径流资料和典型年的日径流资料进行长期和短期优化调度,采用多目标遗传算法得到清江3个电站、三峡-葛洲坝2电站单独运行和联合优化调度发电指标,5库联合优化调度系统多年平均发电量增加约21亿kW.h;短期(日)优化调度较长期(月时间尺度)优化调度发电效益有进一步提升,增发电量约9.68亿kW.h。研究表明,充分利用清江和三峡梯级实际运行位置相近、水力联系紧密、互补性强的特点,统一安排电站机组运行模式,合理分配机组出力,可在来水量相同的条件下获得更大的效益。 展开更多
关键词 水库调度 优化模型 多目标遗传算法 三峡梯级 清江梯级
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基于中枢模式发生器的机器人行走控制 被引量:3
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作者 陈启军 王国星 刘成菊 《同济大学学报(自然科学版)》 EI CAS CSCD 北大核心 2010年第10期1534-1539,共6页
基于中枢模式发生器(central pattern generator,CPG)的动物运动控制机理实现四足机器人AIBO的行走控制.利用Kimura振荡神经元构建CPG分布式控制网络,通过多目标遗传算法优化调整CPG网络中的参数,在AIBO上实现类似动物行走(walk)的行走... 基于中枢模式发生器(central pattern generator,CPG)的动物运动控制机理实现四足机器人AIBO的行走控制.利用Kimura振荡神经元构建CPG分布式控制网络,通过多目标遗传算法优化调整CPG网络中的参数,在AIBO上实现类似动物行走(walk)的行走模式.通过Webots仿真和实体实验,验证所设计的CPG控制网络和控制方法的可行性与有效性. 展开更多
关键词 中枢模式发生器 Kimura振荡神经元 行走控制 多目标优化算法
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