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Systematic search and ranking of physical contradictions using graph theory principles: Toward a systematic analysis of design strategies and their impacts

机译:使用图论原理对物理矛盾进行系统搜索和排序:旨在对设计策略及其影响进行系统分析

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摘要

This paper presents three interconnected developments made during the course of a recent collective research work, the development of a systematic graph-based search tool for physical contradictions, a ranking approach for defining the order of criticality of the design contradictions and the associated analysis of the different design strategies that can be used to solve those contradictions or to enhance performance indicators. The systematic graph-based search for physical contradictions is using the set of elementary variables necessary to describe the system as basic input. The initial set is extracted based on taxonomy of variables combining classification work from NIST and classification of variables derived from the Bond Graph theory. The contradiction search method is in a second step classifying the set of variables into three categories: the constraint variables imposed to the designers by the context and the environment, the design variables on which the designer as the possibility to act and theperformance variables that are used to evaluate the performance of the designed system. In a third step, interactions between variables are searched using two possibilities: a causal ordering algorithm developed during the course of the research or via a collective work of experts. The result of this step is a directed graph starting from the constraints variables and ending with the performance variables. In the fourth step objectives have to be assigned to the performance variables (minimal value, maximal value or target value). Those objectives are propagated back into the graph by analyzing the impact of the variables interacting with the performance variables. A physical contradiction is detected each time it is discovered that a design variable is associated with two contradictory objectives. Following this approach, a contradiction is represented as a node in the directed graph. It is possible to systematically map the different design strategies that can be used and to rank the possible impact of those design strategies. The article presents a concrete application of the approach on the case study of an air bearing and demonstrates the novelty of the approach to generate new viewpoints and insight in the analysis of the early stages of the development process. The potential impact of such type of design support is potentially very important. A future step will consists of developing a computer aided tool implementing the method.
机译:本文介绍了在最近的集体研究工作过程中进行的三项相互关联的开发,针对物理矛盾的基于系统图的搜索工具的开发,用于定义设计矛盾的严重性顺序的排序方法以及对设计矛盾的相关分析可用于解决这些矛盾或增强性能指标的不同设计策略。基于系统的基于图的物理矛盾搜索使用了将系统描述为基本输入所必需的一组基本变量。基于变量分类法,结合NIST的分类工作和从Bond Graph理论导出的变量分类,提取初始集合。矛盾搜索方法在第二步中将变量集分为三类:上下文和环境对设计人员施加的约束变量,设计人员作为行动对象的设计变量以及使用的性能变量评估设计系统的性能。第三步,使用两种可能性搜索变量之间的相互作用:在研究过程中或通过专家的集体合作开发的因果排序算法。该步骤的结果是从约束变量开始到性能变量结束的有向图。在第四步中,必须将目标分配给性能变量(最小值,最大值或目标值)。通过分析变量与性能变量相互作用的影响,将那些目标传播回图形中。每当发现设计变量与两个矛盾的目标相关联时,就会检测到物理矛盾。按照这种方法,矛盾被表示为有向图中的一个节点。可以系统地绘制可使用的不同设计策略,并对这些设计策略可能产生的影响进行排名。本文介绍了该方法在空气轴承案例研究中的具体应用,并展示了该方法的新颖性,可以在开发过程的早期阶段分析中产生新的观点和见解。这种设计支持的潜在影响可能非常重要。未来的步骤将包括开发实现该方法的计算机辅助工具。

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