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基于变量驱动的GBOM产品族模型建立方法 被引量:3
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作者 冯梓堃 陈新度 吴磊 《机电工程》 CAS 2009年第10期1-5,共5页
大规模定制环境下,为建立一个高效、低冗余、易配置的产品族结构模型和相应的配置方法并且保证配置方案的可实现性,根据产品族的特点,以通用物料清单(GBOM)作为产品族的知识表示方法,提出了一种基于变量驱动的GBOM产品族模型的建立方法... 大规模定制环境下,为建立一个高效、低冗余、易配置的产品族结构模型和相应的配置方法并且保证配置方案的可实现性,根据产品族的特点,以通用物料清单(GBOM)作为产品族的知识表示方法,提出了一种基于变量驱动的GBOM产品族模型的建立方法,并给出了形式化表示;通过使用统一建模语言(UML)语言实现了产品族模型的结构化设计;最后,给出了微波炉的配置实例。研究结果表明,该方法为实现产品族配置系统提供了理论基础。 展开更多
关键词 变量驱动 通用物料清单 产品族模型 统一建模语言
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基于通用生产结构的物料和过程清单集成模型研究 被引量:5
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作者 薛冬娟 刘晓冰 +1 位作者 白朝阳 吕强 《中国机械工程》 EI CAS CSCD 北大核心 2008年第5期566-570,612,共6页
针对通常MRPⅡ/ERP系统中由于产品结构数据和生产过程数据没有完全集成而造成物料需求、能力需求和计划调度等相关的生产活动被分隔考虑的情况,提出了基于生产计划的PPGBOMP模型,将静态的产品结构数据和动态的生产过程数据统一在此模型... 针对通常MRPⅡ/ERP系统中由于产品结构数据和生产过程数据没有完全集成而造成物料需求、能力需求和计划调度等相关的生产活动被分隔考虑的情况,提出了基于生产计划的PPGBOMP模型,将静态的产品结构数据和动态的生产过程数据统一在此模型中,并引入通用生产结构(GPS)来表征零部件齐套过程跟踪中物料清单和过程清单之间的物料逻辑关系。GPS为不同层次的产品结构、多样性参数及不同取值的产品变型提供了一个通用的表示方法。通过采用参数取值约束的形式来定义分解规则和计划规则,对所有的多样性参数都利用产品所分解的最低层物料编码来进行赋值,从而大大简化了多样性表示中不同变量间的协调问题,并利用多样性参数及其取值的集合实现了产品变量与其操作变量之间的一致性。 展开更多
关键词 通用BOM 过程清单 通用生产结构 参数取值约束
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Customer Requirements Mapping Method Based on Association Rule Mining for Mass Customization 被引量:2
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作者 夏世升 王丽亚 《Journal of Shanghai Jiaotong university(Science)》 EI 2008年第3期291-296,共6页
Customer requirements analysis is the key step for product variety design of mass customiza-tion(MC). Quality function deployment (QFD) is a widely used management technique for understanding the voice of the customer... Customer requirements analysis is the key step for product variety design of mass customiza-tion(MC). Quality function deployment (QFD) is a widely used management technique for understanding the voice of the customer (VOC), however, QFD depends heavily on human subject judgment during extracting customer requirements and determination of the importance weights of customer requirements. QFD pro-cess and related problems are so complicated that it is not easily used. In this paper, based on a general data structure of product family, generic bill of material (GBOM), association rules analysis was introduced to construct the classification mechanism between customer requirements and product architecture. The new method can map customer requirements to the items of product family architecture respectively, accomplish the mapping process from customer domain to physical domain directly, and decrease mutual process between customer and designer, improve the product design quality, and thus furthest satisfy customer needs. Finally, an example of customer requirements mapping of the elevator cabin was used to illustrate the proposed method. 展开更多
关键词 association rules analysis requirements mapping classification mechanism generic bills of material (gbom mass customization
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Learning Invariant Representation of Multiscale Hyperelastic Constitutive Law from Sparse Experimental Data
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作者 Rui He Junzhi Cui +2 位作者 Zihao Yang Jieqiong Zhang Xiaofei Guan 《Communications in Computational Physics》 SCIE 2023年第7期392-417,共26页
Constitutive modeling of heterogeneous hyperelastic materials is still a challenge due to their complex and variable microstructures.We propose a multiscale datadriven approach with a hierarchical learning strategy fo... Constitutive modeling of heterogeneous hyperelastic materials is still a challenge due to their complex and variable microstructures.We propose a multiscale datadriven approach with a hierarchical learning strategy for the discovery of a generic physics-constrained anisotropic constitutive model for the heterogeneous hyperelastic materials.Based on the sparse multiscale experimental data,the constitutive artificial neural networks for hyperelastic component phases containing composite interfaces are established by the particle swarm optimization algorithm.A microscopic finite element coupled constitutive artificial neural networks solver is introduced to obtain the homogenized stress-stretch relation of heterogeneous materials with different microstructures.And a dense stress-stretch relation dataset is generated by training a neural network through the FE results.Further,a generic invariant representation of strain energy function(SEF)is proposed with a parameter set being implicitly expressed by artificial neural networks(SANN),which describes the hyperelastic properties of heterogeneous materials with different microstructures.A convexity constraint is imposed on the SEF to ensure that the multiscale constitutive model is physically relevant,and the ℓ_(1) regularization combined with thresholding is introduced to the loss function of SANN to improve the interpretability of this model.Finally,the multiscale model is hierarchically trained,cross-validated and tested using the experimental data of cord-rubber composite materials with different microstructures.The proposed multiscale model provides a convenient and general methodology for constitutive modeling of heterogeneous hyperelastic materials. 展开更多
关键词 Heterogeneous hyperelastic materials data-driven approach multiscale generic constitutive model physics-constrained
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