面向用户参与的互联开放式设计模式及方法研究
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1.An approach to user knowledge acquisition in product design
- 关键词:
- Product design;Digital storage;Machine design;Rough set theory;Decision theory;Computer technology;Design information;Information flows;Knowledge based economy;NAtural language processing;Product collaborative design;Product design process;User requirements
- Tan, Libin;Zhang, Haijuan
- 《Advanced Engineering Informatics》
- 2021年
- 50卷
- 期
- 期刊
As the world increasingly moves towards a knowledge-based economy, user requirements become an important factor for enterprises to drive product collaborative design evolution. To map user requirements to the product model, user requirements are generally extracted into knowledge that can be used for design decisions. However, because users are interest-driven participants and not professional design engineers, the effect of user knowledge acquisition is not ideal. There are significant challenges for rapid knowledge acquisition with dynamic user requirements. This paper presents an approach to user knowledge acquisition in the product design process, which obtains the tangible requirements of users under the premise that users are adequate for participation. In this approach, the typical information flow is divided into four stages: submission, interaction, knowledge discovery, and model evolution. In the submission stage, natural language processing technology is used to transform text form solutions into data, so that computer technology can be applied to manage large-scale user requirements. In the interaction stage, users are helped to improve their solutions by the iterative recommendation process. In the knowledge discovery stage, after less concerned partial solutions are removed and vacant items are predicted to be supplemented, the final collection of user design information is obtained. Finally, based on rough set theory, design knowledge can be extracted to support the decision of the product model. The washing machine design project is used as a case study to explain the implementation of the proposed approach.© 2021 Elsevier Ltd...2.A flexible configuration method of distributed manufacturing resources in the context of social manufacturing
- 关键词:
- Social manufacturing; Manufacturing community; Collaborative production;Production networks; Production disturbance;OPTIMIZATION ALGORITHM; GENETIC ALGORITHM; SELECTION; PARTNERS; MODEL;IOT
- Zhang, Yi;Tang, Dunbing;Zhu, Haihua;Li, Shipei;Nie, Qinwei
- 《COMPUTERS IN INDUSTRY》
- 2021年
- 132卷
- 期
- 期刊
Under the influence of Industry 4.0, manufacturing resources (MRs) across regions and enterprises realize ubiquitous interconnection and real-time data acquisition via communication network and internet of things, which makes it possible for distributed MRs to provide appropriate production services according to changeable market demand. Therefore, social manufacturing (Social Mfg) system came into being. Under the Social Mfg environment, a flexible configuration method of distributed MRs is put forward in this paper, which is qualified to quickly respond to order demand and production disturbance. Firstly, superior manufacturing services are selected from the resource pool of the platform according to the types of subtasks. Secondly, high-quality service compositions capable of completing a complicated manufacturing task are obtained by NSGA-III algorithm, which meets the requirements of multi-objective optimization in terms of time, cost and quality. In addition, a MRs collaborative network model is constructed based on the historical cooperation data. The Louvain algorithm is employed to detect the manufacturing communities (MCs) from the collaborative network. Finally, the MCs are applied to provide the optimal service schemes for personalized demand at a fast speed, as well as realizing dynamic reconfiguration of MRs under abnormal disturbance. Experimental results demonstrate that the proposed method possesses significant performance in both efficiency and robustness, and makes great contributions to the development of Social Mfg in terms of resource configuration. (c) 2021 Elsevier B.V. All rights reserved.
...3.基于改进粒子群算法求解分布式多工厂生产调度问题
- 关键词:
- 分布式多工厂;改进粒子群算法;二阶振荡;随机权重;最大完工时间
- 王仕存;唐敦兵;朱海华;聂庆炜;潘俊峰;杨雷
- 《机械制造与自动化》
- 2021年
- 卷
- 04期
- 期刊
为解决分布式多工厂生产调度问题,将其转化为分布式柔性车间调度问题,设计了基于二阶振荡的随机权重混合粒子群算法,以最小化、最大完工时间为目标,将柔性作业车间调度问题嵌套于分布式调度方式中进行求解,利用随机权重来平衡全局和局部搜索能力,运用学习因子的二阶振荡提高全局搜索能力,并通过算例仿真验证了该算法的有效性和优越性。
...4.A Process Simulation-Based Method for Engineering Change Management
- 关键词:
- Artificial intelligence;Belt conveyors;Cost engineering;Product design;Ant Colony Optimization (ACO);Change propagation;Design change;Engineering change managements;Engineering changes;Optimization algorithms;Process simulations;Product changes
- Yin, Leilei;Zhu, Haihua;Sun, Hongwei;Liao, Liangchuang
- 《Transactions of Nanjing University of Aeronautics and Astronautics》
- 2021年
- 38卷
- 1期
- 期刊
Engineering change management is a special form of problem solving where many rules must be followed to satisfy the requirements of product changes. As engineering change has great influence on the cycle and the cost of product development, it is necessary to anticipate design changes (DCs) in advance and estimate the influence effectively. A process simulation-based method for engineering change management is proposed incorporating multiple assessment parameters. First, the change propagation model is established, which includes the formulation of change propagation influence, assessment score of DC solution. Then the optimization process of DC solution is introduced based on ant colony optimization (ACO), and an optimization algorithm is detailed to acquire the optimal DC solution automatically. Finally, a case study of belt conveyor platform is implemented to validate the proposed method. The results show that changed requirement of product can be satisfied by multiple DC solutions and the optimal one can be acquired according to the unique characteristics of each solution.© 2021, Editorial Department of Transactions of NUAA. All right reserved....5.An Improved Genetic Algorithm for Solving the Mixed-Flow Job-Shop Scheduling Problem with Combined Processing Constraints
- Zhu Haihua;Zhang Yi;Sun Hongwei;Liao Liangchuang;Tang Dunbing;
- 0年
- 卷
- 期
- 期刊
6.基于过程仿真的工程变更管理方法
- 关键词:
- 变更传播;仿真;蚁群算法;设计变更方案
- 殷磊磊;朱海华;孙宏伟;廖良闯
- 《南京航空航天大学学报:英文版》
- 2021年
- 卷
- 1期
- 期刊
工程变更管理是解决产品设计问题的一种特殊形式,必须遵循许多规则才能满足产品变更的要求。由于工程变更对产品开发周期、成本有很大的影响,因此有必要提前预测设计变更并对其影响进行有效的评估。本文提出一种融合多评价参数过程仿真
...7.一种基于改进遗传算法的组合加工约束混流车间调度方法(英文)
- 《Transactions of Nanjing University of Aeronautics and Astronautics》
- 2021年
- 卷
- 03期
- 期刊
具有组合加工约束的柔性作业车间调度问题是混流生产线中常见的任务排产问题。然而,传统车间调度方法均未将组合加工约束考虑进调度模型中,无法满足混线生产模式的现实情况。针对这一问题,分析了混流生产线的工艺状态模型。在此基础上,基于传统柔性作业车间调度问题,建立了具有组合加工约束的混线车间调度问题的数学模型。然后,针对组合加工约束,提出了一种改进的多段编码、交叉、变异的遗传算法。最后,将该算法应用于某航空航天研究所导弹结构件生产车间,验证了该方法的可行性和有效性。
...8.基于过程仿真的工程变更管理方法(英文)
- 《Transactions of Nanjing University of Aeronautics and Astronautics》
- 2021年
- 卷
- 01期
- 期刊
工程变更管理是解决产品设计问题的一种特殊形式,必须遵循许多规则才能满足产品变更的要求。由于工程变更对产品开发周期、成本有很大的影响,因此有必要提前预测设计变更并对其影响进行有效的评估。本文提出一种融合多评价参数过程仿真的工程变更管理方法。首先,建立了变更传播模型,包括变更传播影响的数学模型、设计变更方案的的评价得分;然后介绍了基于蚁群算法的变更方案优化过程,并给出了一种自动获取最优变更方案的优化算法;最后,以带式输送机平台为例验证了该方法的有效性。结果表明,产品的变化需求可以由多个候选变更方案满足,并可根据方案的特性获得最优的结果。
...9.An improved iterative stochastic multi-objective acceptability analysis method for robust alternative selection in new product development
- 关键词:
- Iterative methods;Stochastic systems;Product development;Decision making;Numerical methods;Acceptability analysis;Alternative selections;Decision making process;Missing information;Multi criteria decision making;New product development;Partial preferences;Preference information
- Yang, Jun;Tang, Dunbing;Li, Shipei;Wang, Qi;Zhu, Haihua
- 《Advanced Engineering Informatics》
- 2020年
- 43卷
- 期
- 期刊
Alternative selection in new product development (NPD) is a multi-criteria decision-making (MCDM) problem. It usually starts with incomplete, imprecise or even partially missing information. Currently, most existing methods in dealing with this problem cannot work well if required information is incomplete or missing. It is acknowledged that stochastic multi-objective acceptability analysis (SMAA) can be applied to address MCDM problem with incomplete preference information and uncertain criteria measurements. In SMAA, alternatives are evaluated based on SMAA measurements (acceptability index, central weight vector and confidence factor). The discriminability of SMAA for the optimum alternative heavily depends on differences of SMAA measurements among different alternatives. Usually, a large number of alternatives and high level of uncertainty are involved in alternative selection in NPD. In this situation, the differences among SMAA measurements are not obvious, and therefore SMAA cannot deal with such problem very well. To this end, this paper proposes an improved SMAA method called Iterative-SMAA (I-SMAA) for alternative selection in NPD. In the I-SMAA, an iterative multi-step decision-making process is suggested to improve differences of SMAA measurements among different alternatives, and thus assist decision makers (DMs) to positively discern from the most preferred alternative. To enhance the decision-making efficiency, sensitive criteria are acquired in each iteration by ranking sensitivity analysis. DMs are guided to provide partial preference information and give more accurate criteria measurements for sensitive criteria rather than all criteria. Eventually, to verify the proposed method, a numerical example of the existing literature is solved with the method, and the results are compared. And then, a practical example of a preparation equipment for coal samples is further employed to verify the practicability of the proposed I-SMAA.
...
© 2020 Elsevier Ltd10.A practical approach for multiagent manufacturing system based on agent computing nodes
- 关键词:
- Distributed artificial intelligence; multiagent manufacturing system;discrete manufacturing workshop; radio frequency identification;plug-and-play;FRAMEWORK; FMS; ARCHITECTURE; CONTROLLER; DESIGN; AGILE
- Zhang, Zequn;Tang, Dunbing;Zhu, Haihua;Zhou, Tong;Resendez Pulido, Ana Sheryl;Wang, Liping;Nie, Qingwei
- 《PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART C-JOURNAL OFMECHANICAL ENGINEERING SCIENCE》
- 2020年
- 236卷
- 4期
- 期刊
With the increasing requirement for personalized customization service, discrete manufacturing workshop, as the parts processing unit in manufacturing system, is expected for more agile and fast adaptation to environment changes, dynamically handling production tasks according to resource conditions. Simultaneously, distributed artificial intelligence system (e.g. multiagent manufacturing system and the holonic manufacturing system) has been considered as an important approach for developing industrial applications to solve the problems of complexity, uncertainty, and dynamic in the modern manufacturing environment. But the lack of universality and the difficulty in deployment have restricted the use of distributed artificial intelligence in actual industrial sites. For this issue, a new concept of agent computing node is proposed in this paper to enable the realization of multiagent manufacturing system. Adaptation layer, information development layer, and intelligent analysis layer are investigated for standardizing the configuration mode of agent computing node. Cooperating agent computing node with the radio frequency identification-based dynamic recognition technology for workpiece machining process is presented in this paper, and a practical approach for multiagent manufacturing system is considered, which can apply the functions regarding to deployment of dynamic scheduling and plug-and-play. A laboratory discrete manufacturing workshop system is used as a case study to prove the feasibility of this approach. In addition, a verification in industry is carried out, and the result proves the universality of this approach.
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