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Aircraft family design using enhanced collaborative optimization.

机译:使用增强型协作优化的飞机系列设计。

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Significant progress has been made toward the development of multidisciplinary design optimization (MDO) methods that are well-suited to practical large-scale design problems. However, opportunities exist for further progress. This thesis describes the development of enhanced collaborative optimization (ECO), a new decomposition-based MDO method. To support the development effort, the thesis offers a detailed comparison of two existing MDO methods: collaborative optimization (CO) and analytical target cascading (ATC). This aids in clarifying their function and capabilities, and it provides inspiration for the development of ECO. The ECO method offers several significant contributions. First, it enhances communication between disciplinary design teams while retaining the low-order coupling between them. Second, it provides disciplinary design teams with more authority over the design process. Third, it resolves several troubling computational inefficiencies that are associated with CO. As a result, ECO provides significant computational savings (relative to CO) for the test cases and practical design problems described in this thesis.;New aircraft development projects seldom focus on a single set of mission requirements. Rather, a family of aircraft is designed, with each family member tailored to a different set of requirements. This thesis illustrates the application of decomposition-based MDO methods to aircraft family design. This represents a new application area, since MDO methods have traditionally been applied to multidisciplinary problems. ECO offers aircraft family design the same benefits that it affords to multidisciplinary design problems. Namely, it simplifies analysis integration, it provides a means to manage problem complexity, and it enables concurrent design of all family members. In support of aircraft family design, this thesis introduces a new wing structural model with sufficient fidelity to capture the tradeoffs associated with component commonality, but of appropriate fidelity for aircraft conceptual design. The thesis also introduces a new aircraft family concept. Unlike most families, the intent is not necessarily to produce all family members. Rather, the family includes members for immediate production and members that address potential future market conditions and/or environmental regulations. The result is a set of designs that yield a small performance penalty today in return for significant future flexibility to produce family members that respond to new market conditions and environmental regulations.
机译:在开发多学科设计优化(MDO)方法方面取得了重大进展,该方法非常适合实际的大规模设计问题。但是,存在进一步发展的机会。本文介绍了一种基于分解的MDO新方法-增强协作优化(ECO)的发展。为了支持开发工作,本文对两种现有的MDO方法进行了详细的比较:协作优化(CO)和分析目标级联(ATC)。这有助于阐明其功能和能力,并为ECO的发展提供了启发。 ECO方法提供了许多重要的贡献。首先,它增强了学科设计团队之间的沟通,同时保持了它们之间的低阶耦合。其次,它为学科设计团队提供了有关设计过程的更多权限。第三,它解决了与CO相关的一些令人费解的计算效率低下的问题。因此,ECO为本文所述的测试案例和实际设计问题提供了可观的计算节省(相对于CO)。新飞机开发项目很少关注于单套任务要求。而是设计了一个飞机家族,每个家族成员都针对不同的要求量身定制。本文阐述了基于分解的MDO方法在飞机族设计中的应用。这代表了一个新的应用领域,因为传统上将MDO方法应用于多学科问题。 ECO为飞机系列设计提供了与多学科设计问题相同的优势。即,它简化了分析集成,提供了一种管理问题复杂性的方法,并且可以同时设计所有家族成员。为了支持飞机家族设计,本文引入了一种新的机翼结构模型,该模型具有足够的保真度,可以捕获与组件通用性相关的权衡,但对于飞机的概念​​设计具有适当的保真度。本文还介绍了一种新的飞机家族概念。与大多数家庭不同,其目的不一定是要养育所有家庭成员。而是,该家族包括用于立即生产的成员和解决潜在的未来市场条件和/或环境法规的成员。结果是,一组设计今天产生了很小的性能损失,以换取将来具有显着的灵活性来生产能够响应新市场条件和环境法规的家庭成员。

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