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SCALABLE SET-BASED DESIGN OPTIMIZATION AND REMANUFACTURING FOR MEETING CHANGING REQUIREMENTS

机译:基于可扩展的集合设计优化和再制造,以满足更改要求

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摘要

Engineering design problems often have open-ended requirements, especially in the early stages of development. Set-based design is a paradigm for exploring, and keeping under consideration, several alternatives so that commitment to a single design can be delayed until requirements are settled. In addition, requirements may change over the lifetime of a component or a system. Novel manufacturing technologies enable designs to be remanufactured to meet changed requirements. By considering this capability during the set-based design optimization process, solutions can be scaled to meet evolving requirements and customer specifications even after commitment. Such an ability can also support a circular economy paradigm based on the return of used or discarded components and systems to working condition. We propose a set-based design methodology to obtain scalable optimal solutions that can satisfy changing requirements through remanufacturing. We first use design optimization and surrogate modeling to obtain parametric optimal designs.This set of parametric optimal designs is then reduced to scalable optimal designs by observing a set of transition rules for the manufacturing process used (additive or subtractive). The methodology is demonstrated by means of a structural aeroengine component that is remanufactured by direct energy deposition of a stiffener to meet higher loading requirements.
机译:工程设计问题往往具有开放式要求,特别是在开发的早期阶段。基于集的设计是探索和保存的范例,若干替代方案,以便在要求达到要求之前延迟对单一设计的承诺。此外,要求可能会在组件或系统的寿命上改变。新颖的制造技术使得能够进行设计,以满足更改的要求。通过考虑在基于集合的设计优化过程中的这种能力,即使在承诺之后也可以扩展解决方案以满足不断变化的要求和客户规范。这种能力还可以基于使用或丢弃的组件和系统的返回到工作条件来支持循环经济范式。我们提出了一种基于集合的设计方法,以获得可通过再制造来满足不断变化的要求的可扩展最佳解决方案。我们首先使用设计优化和代理建模来获得参数最优设计。然后通过观察用于所用的制造过程的一组转换规则(添加或减法),减少了参数最优设计的一组参数最优设计。通过通过直接能量沉积加强件来进行的结构性航空发动机组分来证明方法,以满足更高的负载要求。

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