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Structural Optimization of Hatch Cover Based on Bi-directional Evolutionary Structure Optimization and Surrogate Model Method 被引量:3
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作者 LI Kai YU Yanyun +2 位作者 HE Jingyi ZHAO Decai LIN Yan 《Journal of Shanghai Jiaotong university(Science)》 EI 2018年第4期538-549,共12页
Weight reduction has attracted much attention among ship designers and ship owners.In the present work,based on an improved bi-directional evolutionary structural optimization(BESO) method and surrogate model method,w... Weight reduction has attracted much attention among ship designers and ship owners.In the present work,based on an improved bi-directional evolutionary structural optimization(BESO) method and surrogate model method,we propose a hybrid optimization method for the structural design optimization of beam-plate structures,which covers three optimization levels:dimension optimization,topology optimization and section optimization.The objective of the proposed optimization method is to minimize the weight of design object under a group of constraints.The kernel optimization procedure(KOP) uses BESO to obtain the optimal topology from a ground structure.To deal with beam-plate structures,the traditional BESO method is improved by using cubic box as the unit cell instead of solid unit to construct periodic lattice structure.In the first optimization level,a series of ground structures are generated based on different dimensional parameter combinations,the KOP is performed to all the ground structures,the response surface model of optimal objective values and dimension parameters is created,and then the optimal dimension parameters can be obtained.In the second optimization level,the optimal topology is obtained by using the KOP according to the optimal dimension parameters.In the third optimization level,response surface method(RSM) is used to determine the section parameters.The proposed method is applied to a hatch cover structure design.The locations and shapes of all the structural members are determined from an oversized ground structure.The results show that the proposed method leads to a greater weight saving,compared with the original design and genetic algorithm(GA) based optimization results. 展开更多
关键词 hatch cover structure optimization multi-level optimization hi-directional evolutionary structural optimization response surface method
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Stress Relaxation and Sensitivity Weight for Bi-Directional Evolutionary Structural Optimization to Improve the Computational Efficiency and Stabilization on Stress-Based Topology Optimization 被引量:2
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作者 Chao Ma Yunkai Gao +1 位作者 Yuexing Duan Zhe Liu 《Computer Modeling in Engineering & Sciences》 SCIE EI 2021年第2期715-738,共24页
Stress-based topology optimization is one of the most concerns of structural optimization and receives much attention in a wide range of engineering designs.To solve the inherent issues of stress-based topology optimi... Stress-based topology optimization is one of the most concerns of structural optimization and receives much attention in a wide range of engineering designs.To solve the inherent issues of stress-based topology optimization,many schemes are added to the conventional bi-directional evolutionary structural optimization(BESO)method in the previous studies.However,these schemes degrade the generality of BESO and increase the computational cost.This study proposes an improved topology optimization method for the continuum structures considering stress minimization in the framework of the conventional BESO method.A global stress measure constructed by p-norm function is treated as the objective function.To stabilize the optimization process,both qp-relaxation and sensitivity weight scheme are introduced.Design variables are updated by the conventional BESO method.Several 2D and 3D examples are used to demonstrate the validity of the proposed method.The results show that the optimization process can be stabilized by qp-relaxation.The value of q and p are crucial to reasonable solutions.The proposed sensitivity weight scheme further stabilizes the optimization process and evenly distributes the stress field.The computational efficiency of the proposed method is higher than the previous methods because it keeps the generality of BESO and does not need additional schemes. 展开更多
关键词 Stress-based topology optimization aggregation function stress relaxation sensitivity weight bi-directional evolutionary structural optimization
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A Modified Bi-Directional Evolutionary Structural Optimization Procedure with Variable Evolutionary Volume Ratio Applied to Multi-Objective Topology Optimization Problem
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作者 Xudong Jiang Jiaqi Ma Xiaoyan Teng 《Computer Modeling in Engineering & Sciences》 SCIE EI 2023年第4期511-526,共16页
Natural frequency and dynamic stiffness under transient loading are two key performances for structural design related to automotive,aviation and construction industries.This article aims to tackle the multi-objective... Natural frequency and dynamic stiffness under transient loading are two key performances for structural design related to automotive,aviation and construction industries.This article aims to tackle the multi-objective topological optimization problem considering dynamic stiffness and natural frequency using modified version of bi-directional evolutionary structural optimization(BESO).The conventional BESO is provided with constant evolutionary volume ratio(EVR),whereas low EVR greatly retards the optimization process and high EVR improperly removes the efficient elements.To address the issue,the modified BESO with variable EVR is introduced.To compromise the natural frequency and the dynamic stiffness,a weighting scheme of sensitivity numbers is employed to form the Pareto solution space.Several numerical examples demonstrate that the optimal solutions obtained from the modified BESO method have good agreement with those from the classic BESO method.Most importantly,the dynamic removal strategy with the variable EVR sharply springs up the optimization process.Therefore,it is concluded that the modified BESO method with variable EVR can solve structural design problems using multi-objective optimization. 展开更多
关键词 bi-directional evolutionary structural optimization variable evolutionary volume ratio multi-objective optimization weighted sum topology optimization
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Structural Topology Optimization by Combining BESO with Reinforcement Learning 被引量:1
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作者 Hongbo Sun Ling Ma 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2021年第1期85-96,共12页
In this paper,a new algorithm combining the features of bi-direction evolutionary structural optimization(BESO)and reinforcement learning(RL)is proposed for continuum structural topology optimization(STO).In contrast ... In this paper,a new algorithm combining the features of bi-direction evolutionary structural optimization(BESO)and reinforcement learning(RL)is proposed for continuum structural topology optimization(STO).In contrast to conventional approaches which only generate a certain quasi-optimal solution,the goal of the combined method is to provide more quasi-optimal solutions for designers such as the idea of generative design.Two key components were adopted.First,besides sensitivity,value function updated by Monte-Carlo reinforcement learning was utilized to measure the importance of each element,which made the solving process convergent and closer to the optimum.Second,ε-greedy policy added a random perturbation to the main search direction so as to extend the search ability.Finally,the quality and diversity of solutions could be guaranteed by controlling the value of compliance as well as Intersection-over-Union(IoU).Results of several 2D and 3D compliance minimization problems,including a geometrically nonlinear case,show that the combined method is capable of generating a group of good and different solutions that satisfy various possible requirements in engineering design within acceptable computation cost. 展开更多
关键词 structural topology optimization bi-direction evolutionary structural optimization reinforcement learning first-visit Monte-Carlo method ε-greedy policy generative design
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A Smooth Bidirectional Evolutionary Structural Optimization of Vibrational Structures for Natural Frequency and Dynamic Compliance
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作者 Xiaoyan Teng Qiang Li Xudong Jiang 《Computer Modeling in Engineering & Sciences》 SCIE EI 2023年第6期2479-2496,共18页
A smooth bidirectional evolutionary structural optimization(SBESO),as a bidirectional version of SESO is proposed to solve the topological optimization of vibrating continuum structures for natural frequencies and dyn... A smooth bidirectional evolutionary structural optimization(SBESO),as a bidirectional version of SESO is proposed to solve the topological optimization of vibrating continuum structures for natural frequencies and dynamic compliance under the transient load.A weighted function is introduced to regulate the mass and stiffness matrix of an element,which has the inefficient element gradually removed from the design domain as if it were undergoing damage.Aiming at maximizing the natural frequency of a structure,the frequency optimization formulation is proposed using the SBESO technique.The effects of various weight functions including constant,linear and sine functions on structural optimization are compared.With the equivalent static load(ESL)method,the dynamic stiffness optimization of a structure is formulated by the SBESO technique.Numerical examples show that compared with the classic BESO method,the SBESO method can efficiently suppress the excessive element deletion by adjusting the element deletion rate and weight function.It is also found that the proposed SBESO technique can obtain an efficient configuration and smooth boundary and demonstrate the advantages over the classic BESO technique. 展开更多
关键词 Topology optimization smooth bi-directional evolutionary structural optimization(Sbeso) eigenfrequency optimization dynamic stiffness optimization
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Bi-Directional Evolutionary Topology Optimization with Adaptive Evolutionary Ratio for Nonlinear Structures
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作者 Linli Tian Wenhua Zhang 《Chinese Journal of Mechanical Engineering》 2025年第5期337-350,共14页
Current topology optimization methods for nonlinear continuum structures often suffer from low computational efficiency and limited applicability to complex nonlinear problems.To address these issues,this paper propos... Current topology optimization methods for nonlinear continuum structures often suffer from low computational efficiency and limited applicability to complex nonlinear problems.To address these issues,this paper proposes an improved bi-directional evolutionary structural optimization(BESO)method tailored for maximizing stiffness in nonlinear structures.The optimization program is developed in Python and can be combined with Abaqus software to facilitate finite element analysis(FEA).To accelerate the speed of optimization,a novel adaptive evolutionary ratio(ER)strategy based on the BESO method is introduced,with four distinct adaptive ER functions proposed.The Newton-Raphson method is utilized for iteratively solving nonlinear equilibrium equations,and the sensitivity information for updating design variables is derived using the adjoint method.Additionally,this study extends topology optimization to account for both material nonlinearity and geometric nonlinearity,analyzing the effects of various nonlinearities.A series of comparative studies are conducted using benchmark cases to validate the effectiveness of the proposed method.The results show that the BESO method with adaptive ER significantly improves the optimization efficiency.Compared to the BESO method with a fixed ER,the convergence speed of the four adaptive ER BESO methods is increased by 37.3%,26.7%,12%and 18.7%,respectively.Given that Abaqus is a powerful FEA platform,this method has the potential to be extended to large-scale engineering structures and to address more complex optimization problems.This research proposes an improved BESO method with novel adaptive ER,which significantly accelerates the optimization process and enables its application to topology optimization of nonlinear structures. 展开更多
关键词 Topology optimization Adaptive evolutionary ratio beso method Nonlinear
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COMPUTER PROGRAM FOR DIRECTED STRUCTURE TOPOLOGY OPTIMIZATION 被引量:1
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作者 Xianjie Wang Xun'an Zhang Kepeng Cheng 《Acta Mechanica Solida Sinica》 SCIE EI CSCD 2015年第4期431-440,共10页
To compensate for the imperfection of traditional bi-directional evolutionary structural optimization, material interpolation scheme and sensitivity filter functions are introduced. A suitable filter can overcome the ... To compensate for the imperfection of traditional bi-directional evolutionary structural optimization, material interpolation scheme and sensitivity filter functions are introduced. A suitable filter can overcome the checkerboard and mesh-dependency. And the historical information on accurate elemental sensitivity numbers are used to keep the objective function converging steadily. Apart from rational intervals of the relevant important parameters, the concept of distinguishing between active and non-active elements design is proposed, which can be widely used for improving the function and artistry of structures directly, especially for a one whose accurate size is not given. Furthermore, user-friendly software packages are developed to enhance its accessibility for practicing engineers and architects. And to reduce the time cost for large timeconsuming complex structure optimization, parallel computing is built-in in the MATLAB codes. The program is easy to use for engineers who may not be familiar with either FEA or structure optimization. And developers can make a deep research on the algorithm by changing the MATLAB codes. Several classical examples are given to show that the improved BESO method is superior for its handy and utility computer program software. 展开更多
关键词 bi-directional evolutionary structural optimization beso continuum structurescomputer program development improved algorithm directed structure topology optimizationportion construction design
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Topology Optimization in Damping Structure Based on ESO
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作者 郭中泽 陈裕泽 侯强 《Defence Technology(防务技术)》 SCIE EI CAS 2008年第4期293-298,共6页
The damping material optimal placement for the structure with damping layer is studied based on evolutionary structural optimization (ESO) to maximize modal loss factors. A mathematical model is constructed with the o... The damping material optimal placement for the structure with damping layer is studied based on evolutionary structural optimization (ESO) to maximize modal loss factors. A mathematical model is constructed with the objective function defined as the maximum of modal loss factors of the structure and design constraints function defined as volume fraction of damping material. The optimal placement is found. Several examples are presented for verification. The results demonstrate that the method based on ESO is effective in solving the topology optimization of the structure with unconstrained damping layer and constrained damping layer. This optimization method suits for free and constrained damping structures. 展开更多
关键词 机械设计 减振 隔振 理论
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基于最低灵敏度区域更新的改进双向渐近结构优化方法
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作者 刘辉 杨旭东 孙栋 《机电工程》 北大核心 2025年第9期1759-1770,共12页
针对双向渐近结构拓扑优化方法(BESO)中灵敏度过滤引发的原始信息偏差及算法收敛性不足的问题,提出了一种最低灵敏度区域更新法。首先,找出了灵敏度值过滤前的最低一批单元在有限元划分后的网格中的位置信息(简称为最低灵敏度区域),在... 针对双向渐近结构拓扑优化方法(BESO)中灵敏度过滤引发的原始信息偏差及算法收敛性不足的问题,提出了一种最低灵敏度区域更新法。首先,找出了灵敏度值过滤前的最低一批单元在有限元划分后的网格中的位置信息(简称为最低灵敏度区域),在灵敏度过滤后,仅在最低灵敏度区域中进行了设计变量的更新,即可在不丢失网格无关滤波器的作用下,在一定程度上保障灵敏度过滤方法对灵敏度信息的偏差影响,确保算法仅在真正小的一批单元中更新设计变量,在一定程度上能够确保演化的正确方向;然后,判断了目标函数的稳定性,通过逐步缩小最低灵敏度区域,缩减了设计变量的更新范围,迫使结构的拓扑形状趋于稳定;最后,针对静载荷作用下的线弹性材料刚度最大化设计、几何非线性结构的刚度最大化设计以及微结构的剪切模量最大化设计,分别进行了对比验证。研究结果表明:最低灵敏度区域更新法比原BESO方法的总迭代次数降低了约16%,平均柔度降低了1.6%,平均迭代时长降低了约20%。该结果证明,最低灵敏度区域更新法可获得更优的解,并具有较好的收敛性,且提高了算法的收敛速度。 展开更多
关键词 机械设计 拓扑优化 双向渐近结构优化方法 灵敏度过滤 收敛准则 非线性 微结构
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基于BESO方法的连续体结构动态特性多目标拓扑优化 被引量:1
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作者 江旭东 刘克勤 +1 位作者 刘铮 滕晓艳 《机械设计》 CSCD 北大核心 2019年第5期80-86,共7页
为实现动态多目标下的拓扑优化结构设计,以结构动柔顺度最小化和固有频率最大化加权函数为目标,提出基于双向渐进结构优化方法(Bi-direction Evolutionary Structural Optimization, BESO)的连续体结构动态特性多目标拓扑优化方法。基... 为实现动态多目标下的拓扑优化结构设计,以结构动柔顺度最小化和固有频率最大化加权函数为目标,提出基于双向渐进结构优化方法(Bi-direction Evolutionary Structural Optimization, BESO)的连续体结构动态特性多目标拓扑优化方法。基于等效静载荷法(Equivalent Static Loads, ESL),将结构动刚度优化问题转化为多工步载荷作用下的线性静刚度优化问题,结合BESO方法实现结构多工况线性静态优化。分别归一化目标函数和灵敏度,避免不同性质目标函数及灵敏度的量级差异引起的数值奇异性。数值算例结果表明,结构体积约束、频率与动柔顺度综合目标均能渐进收敛于最优目标值,优化结构具有清晰的拓扑构型。随着柔顺度灵敏度、权重因子的减小,优化结构拓扑形式发生显著变化,其动刚度逐渐减小,而固有频率逐渐增加。所提出的频率-动刚度多目标拓扑优化方法能够提高结构动态特性,拓展了BESO方法对结构动力学拓扑优化问题的应用范围。 展开更多
关键词 连续体结构 动态特性 多目标拓扑优化 ESL方法 beso方法
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双向渐进结构拓扑优化方法的改进
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作者 付萌萌 陶晓庆 袁晓安 《机械设计与制造工程》 2025年第7期11-14,共4页
为解决拓扑优化结构边界易出现锯齿状的问题,提出在双向渐进结构法(BESO)中引入固定网格法进行有限元分析。通过单元节点灵敏度判断边界单元,对其进行局部网格划分,实现了优化结果的边界光滑处理。最后通过算例验证了该方法的可行性。
关键词 双向渐进结构法 固定网格法 锯齿状
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基于融合邻域规则的双尺度拓扑优化新方法
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作者 王震 《南方农机》 2025年第3期147-149,159,共4页
【目的】开发一种创新的双尺度拓扑优化策略,应用于结构设计与优化研究。【方法】结合混合元胞自动机(HCA)与双向渐进法(BESO),推出HCA-BESO拓扑优化方法,其核心创新点在于采用HCA的邻域规则替代传统基于距离的加权处理机制,简化了灵敏... 【目的】开发一种创新的双尺度拓扑优化策略,应用于结构设计与优化研究。【方法】结合混合元胞自动机(HCA)与双向渐进法(BESO),推出HCA-BESO拓扑优化方法,其核心创新点在于采用HCA的邻域规则替代传统基于距离的加权处理机制,简化了灵敏度过滤规则,并引入了多样的邻域组合形式。【结果】通过引入HCA,该方法在双尺度优化方面显著提升了性能,减少了迭代次数,相比传统BESO算法,能够创建出刚度更高的结构。【结论】HCA-BESO方法代表了双尺度拓扑优化研究的一个重大进步,为未来的结构设计与优化研究开辟了新的路径。 展开更多
关键词 双尺度优化 双向渐进法(beso) 混合元胞自动机(HCA) 灵敏度过滤
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基于BESO算法的大型海洋垂直轴风力机支撑结构优化 被引量:3
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作者 何文君 苏捷 +5 位作者 周岱 韩兆龙 包艳 赵永生 许玉旺 涂佳黄 《上海交通大学学报》 EI CAS CSCD 北大核心 2023年第2期127-137,共11页
大型海洋垂直轴风力机的研究对发展海洋风能具有重要意义,研究大型垂直轴风力机的合理支撑结构形式对风力发电结构安全至关重要.基于变删除率的双向渐进结构优化(BESO)算法,对大型海洋垂直轴风力机进行支撑结构优化,并通过风力机的动力... 大型海洋垂直轴风力机的研究对发展海洋风能具有重要意义,研究大型垂直轴风力机的合理支撑结构形式对风力发电结构安全至关重要.基于变删除率的双向渐进结构优化(BESO)算法,对大型海洋垂直轴风力机进行支撑结构优化,并通过风力机的动力响应特性分析,验证结构优化方法的可靠性.结果表明:反比例型变删除率的BESO算法能有效改善优化迭代速率,适用于垂直轴风力机的支撑结构优化设计;相比于初始结构,拓扑出的新结构模型在风荷载作用下的风致动力响应显著降低.研究成果可用于垂直轴风力机支撑结构设计优化. 展开更多
关键词 垂直轴风力机 双向渐进结构优化算法 动力响应 减振
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基于BESO算法的邮轮结构开孔拓扑优化 被引量:2
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作者 仇成刚 郭德松 +3 位作者 刘昆 张延昌 鞠理扬 吴晓源 《船舶工程》 CSCD 北大核心 2022年第S01期248-255,共8页
以大型邮轮舱段中的船底旁桁材结构为研究对象,采用结构优化算法,对大型豪华邮轮船底桁材结构进行开孔,并对其结构加以优化。结合多工况的船体结构优化的BESO算法,在特定的设计域内进行结构拓扑优化。在此基础上,分析了10种工况下优化... 以大型邮轮舱段中的船底旁桁材结构为研究对象,采用结构优化算法,对大型豪华邮轮船底桁材结构进行开孔,并对其结构加以优化。结合多工况的船体结构优化的BESO算法,在特定的设计域内进行结构拓扑优化。在此基础上,分析了10种工况下优化开孔前后最大应力、平均应力和体积的变化,并对孔型结构进行了优化,以分析新开孔的力学性能。优化结果显示,在满足船体刚度的条件下,优化后,新式开孔的最大应力比优化前提高了44.26%。开孔后的面积比优化后减少51%,达到了轻量化的目的。研究结果可以用于指导船体建造。 展开更多
关键词 邮轮结构开孔 beso算法 拓扑优化 孔型优化 开孔重建
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基于双向渐进结构优化法的机翼翼肋拓扑优化设计 被引量:1
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作者 黄成磊 范庆明 +1 位作者 刘红军 喻伯牙 《西北工业大学学报》 EI CAS CSCD 北大核心 2024年第6期1005-1010,共6页
太阳能无人机对自身结构质量的要求极为苛刻,而机翼作为太阳能无人机的重要组成部分,其质量占据了整体结构的绝大部分比重。因此,通常可对机翼结构进行优化设计,在满足结构强度的同时尽可能最大限度地降低机翼结构质量,进而提高无人机... 太阳能无人机对自身结构质量的要求极为苛刻,而机翼作为太阳能无人机的重要组成部分,其质量占据了整体结构的绝大部分比重。因此,通常可对机翼结构进行优化设计,在满足结构强度的同时尽可能最大限度地降低机翼结构质量,进而提高无人机的整体性能。以某大展弦比的太阳能无人机机翼为研究对象,利用双向渐进结构优化法,以机翼整体最小应变能为目标函数、翼肋体积分数为约束,对翼肋进行拓扑优化设计,根据单元应力大小对翼肋内部材料进行合理增删,并将优化后的翼肋进行重新设计,最终机翼整体质量下降了29.7%。结果表明:应用文中方法可以得到翼肋的最佳构型,有效提高了材料利用率,并且机翼结构质量大大降低,为太阳能无人机的轻量化研究提供了一定参考。 展开更多
关键词 机翼结构 太阳能无人机 双向渐进结构优化法 拓扑优化 翼肋减轻孔
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基于双向渐进结构优化算法的预制拼装箱梁剪力键设计研究 被引量:5
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作者 刘世明 黄如妍 +2 位作者 孙宝珊 巴松涛 李晓克 《世界桥梁》 北大核心 2024年第4期77-84,共8页
为研究单项和多项荷载组合作用下节段预制拼装箱梁接缝处剪力键受力状况,以郑州南四环全预制装配高架桥为背景,采用Abaqus软件和双向渐进结构优化(BESO)算法,建立典型箱梁节段分析模型,研究剪力键在单位轴力、剪力、扭矩、弯矩和不同荷... 为研究单项和多项荷载组合作用下节段预制拼装箱梁接缝处剪力键受力状况,以郑州南四环全预制装配高架桥为背景,采用Abaqus软件和双向渐进结构优化(BESO)算法,建立典型箱梁节段分析模型,研究剪力键在单位轴力、剪力、扭矩、弯矩和不同荷载组合作用下的布置规律。结果表明:轴力作用时剪力键应布置于顶板;剪力作用时剪力键应布置于腹板和底板;扭矩作用时剪力键应布置在顶板、腹板交接处和腹板外侧;横桥向弯矩作用时剪力键应布置于顶板、腹板下侧和底板;竖向弯矩作用时,剪力键应布置于顶板翼缘。轴剪组合作用下,当剪力占比小于50%时,轴力对剪力键布置起控制作用;当剪力占比达95.24%时,剪力对剪力键布置起控制作用。弯剪组合作用下,当剪力占比超过4.76%时,剪力对剪力键布置起控制作用;当剪力占比小于0.50%时,横桥向弯矩对剪力键布置起控制作用。扭剪组合作用下,当剪力占比超过0.10%时,剪力对剪力键布置起控制作用。预制拼装箱梁剪力键布置受荷载类型及荷载组合影响显著,应考虑不同位置剪力键的实际受力状况进行设计。 展开更多
关键词 节段预制拼装箱梁 剪力键布置 双向渐进结构优化算法 传力机理 单项荷载 荷载组合 设计优化 有限元法
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声子晶体能带结构仿真的CS-FEM方法及其在拓扑优化设计中的应用
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作者 赵跃 王刚 《河北工业大学学报》 CAS 2024年第1期1-10,共10页
针对声子晶体拓扑优化设计时能带结构和灵敏度计算效率低的缺陷,构造了一种Cell-based光滑有限元法模型(CS-FEM),并结合双向渐进结构优化法(BESO)实现了声子晶体的带隙最大化设计。基于四边形单元构造光滑子域,将梯度光滑技术与Bloch定... 针对声子晶体拓扑优化设计时能带结构和灵敏度计算效率低的缺陷,构造了一种Cell-based光滑有限元法模型(CS-FEM),并结合双向渐进结构优化法(BESO)实现了声子晶体的带隙最大化设计。基于四边形单元构造光滑子域,将梯度光滑技术与Bloch定理结合,构建了声子晶体能带结构计算的CS-FEM数值模型,并将其用于正问题的仿真模拟。在渐进优化准则下,通过BESO算法完成了声子晶体的优化设计。数值算例表明:CS-FEM能够适当软化离散系统的刚度,提供更加准确、高效的能带结构仿真结果;基于CS-FEM进行正问题的计算,在优化设计中得到了最优的拓扑构型,并有效地提高了优化效率,对于实现声子晶体的高效设计具有重要的参考价值。 展开更多
关键词 声子晶体 拓扑优化 光滑有限元法 梯度光滑技术 双向渐进结构优化法
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Layout optimization of steel reinforcement in concrete structure using a truss-continuum model
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作者 Anbang CHEN Xiaoshan LIN +1 位作者 Zi-Long ZHAO Yi Min XIE 《Frontiers of Structural and Civil Engineering》 SCIE EI CSCD 2023年第5期669-685,共17页
Owing to advancement in advanced manufacturing technology,the reinforcement design of concrete structures has become an important topic in structural engineering.Based on bi-directional evolutionary structural optimiz... Owing to advancement in advanced manufacturing technology,the reinforcement design of concrete structures has become an important topic in structural engineering.Based on bi-directional evolutionary structural optimization(BESO),a new approach is developed in this study to optimize the reinforcement layout in steel-reinforced concrete(SRC)structures.This approach combines a minimum compliance objective function with a hybrid trusscontinuum model.Furthermore,a modified bi-directional evolutionary structural optimization(M-BESO)method is proposed to control the level of tensile stress in concrete.To fully utilize the tensile strength of steel and the compressive strength of concrete,the optimization sensitivity of steel in a concrete–steel composite is integrated with the average normal stress of a neighboring concrete.To demonstrate the effectiveness of the proposed procedures,reinforcement layout optimizations of a simply supported beam,a corbel,and a wall with a window are conducted.Clear steel trajectories of SRC structures can be obtained using both methods.The area of critical tensile stress in concrete yielded by the M-BESO is more than 40%lower than that yielded by the uniform design and BESO.Hence,the M-BESO facilitates a fully digital workflow that can be extremely effective for improving the design of steel reinforcements in concrete structures. 展开更多
关键词 bi-directional evolutionary structural optimization steel-reinforced concrete concrete stress reinforcement method hybrid model
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基于改进的双向渐进结构优化法的应力约束拓扑优化 被引量:34
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作者 王选 刘宏亮 +2 位作者 龙凯 杨迪雄 胡平 《力学学报》 EI CSCD 北大核心 2018年第2期385-394,共10页
工程结构设计时经常需要限制最大名义应力,以避免发生断裂或疲劳破坏,一个有效的策略是采用拓扑优化方法.常规的双向渐进结构优化法(bi-evolutionary structural optimization,BESO)不能有效求解应力约束拓扑优化问题,为此本文提出一种... 工程结构设计时经常需要限制最大名义应力,以避免发生断裂或疲劳破坏,一个有效的策略是采用拓扑优化方法.常规的双向渐进结构优化法(bi-evolutionary structural optimization,BESO)不能有效求解应力约束拓扑优化问题,为此本文提出一种改进的双向渐进结构优化方法,处理体积和应力约束下的最小柔顺性问题.引入基于K-S函数的全局应力度量,以减小大量局部应力约束引起的计算代价.采用拉格朗日乘子法将应力约束函数引入到目标函数,然后由二分法确定合适的拉格朗日乘子的值使得应力约束得到满足.而且,详细推导了基于BESO方法的应力约束拓扑优化模型及其灵敏度列式,最后通过三个典型拓扑优化算例验证改进方法的有效性.为展示考虑应力约束的优点,将应力约束设计与传统的基于刚度的设计进行了比较.结果表明,改进的BESO方法优化迭代过程稳健,获得了边界灰度单元很少的清晰的拓扑构型,并实现了有效降低应力集中效应的设计. 展开更多
关键词 结构拓扑优化 应力约束 双向渐进结构优化法 拉格朗日乘子法 二分法
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以频率为目标的加筋平板结构优化设计研究 被引量:8
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作者 米大海 杨睿 +2 位作者 周亮 刘玚 郭东明 《机械强度》 CAS CSCD 北大核心 2013年第2期179-182,共4页
以加筋平板结构的多阶模态频率达到指定值为优化目标,探讨结构的优化设计方法。提出一种双向渐进结构拓扑优化法结合尺寸优化方法的结构频率优化设计的改进方法。该方法采用具有规则格栅骨架的加筋平板结构优化模型,以骨架中的梁为结构... 以加筋平板结构的多阶模态频率达到指定值为优化目标,探讨结构的优化设计方法。提出一种双向渐进结构拓扑优化法结合尺寸优化方法的结构频率优化设计的改进方法。该方法采用具有规则格栅骨架的加筋平板结构优化模型,以骨架中的梁为结构修改基本单位,以梁敏度计算为基础。实现以频率为目标函数、以体积为约束,并结合敏度再分配策略的结构优化设计。最后,运用尺寸优化方法对优化结果进行后续详细设计。经加筋平板结构频率优化设计算例证明,该方法能满足结构的多阶模态频率优化要求;同时优化结果不存在一般拓扑优化的不规则结构问题,抑制局部模态的产生,对飞机风洞颤振实验模型的设计具有借鉴意义。 展开更多
关键词 加筋平板 结构设计 频率优化 双向渐进结构优化
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