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Next generation aircraft design considering airline operations and economics

机译:考虑航空公司运营和经济因素的下一代飞机设计

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Traditional approaches to design and optimization of a new system often use a system-centric objective and do not take into consideration how the operator will use this new system alongside other existing systems. When the new system design is incorporated into the broader group of systems, the performance of the operator-level objective can be sub-optimal due to the unmodeled interaction between the new system and the other systems. Among the few available references that describe attempts to address this disconnect, most follow an MDO-motivated sequential decomposition approach of first designing a very good system and then providing this system to the operator who, decides the best way to use this new system along with the existing systems. This paper addresses this issue by including aircraft design, airline operations, and revenue management "subspaces"; and presents an approach that could simultaneously solve these subspaces posed as a monolithic optimization problem rather than the traditional approach described above. The monolithic approach makes the problem an expensive Mixed Integer Non-Linear Programming problem, which are extremely difficult to solve. To address the problem, we use a recently developed optimization framework that simultaneously solves the subspaces to capture the "synergy" in the problem that the previous decomposition approaches did not exploit, addresses mixed-integer/discrete type design variables in an efficient manner, and accounts for computationally expensive analysis tools. This approach solves an 11-route airline network problem consisting of 94 decision variables including 33 integer and 61 continuous type variables. Simultaneously solving the subspaces leads to significant improvement in the fleet-level objective of the airline when compared to the previously developed sequential subspace decomposition approach.
机译:传统的设计和优化新系统的方法通常使用以系统为中心的目标,并且不考虑操作员如何将这种新系统与其他现有系统一起使用。当新系统设计被纳入更广泛的系统中时,由于新系统与其他系统之间的未确定相互作用,操作员级目标的性能可以是次优。在描述尝试解决这种断开的可用参考文献中,大多数人遵循首次设计一个非常好的系统的MDO - 激励的顺序分解方法,然后向操作员提供该系统,谁决定使用这个新系统的最佳方法现有系统。本文通过包括飞机设计,航空公司业务和收入管理“子空间”来解决此问题;提出了一种方法,可以同时解决作为单片优化问题而不是上述传统方法构成的这些子空间。单片方法使得问题昂贵的混合整数非线性编程问题,这极难解决。为了解决问题,我们使用最近开发的优化框架,同时解决子空间来捕获“Synergy”,以便以先前的分解方法没有利用,以有效的方式地址混合整数/离散类型设计变量以及考虑到计算昂贵的分析工具。该方法解决了由94个决策变量组成的11路线航空公司网络问题,包括33个整数和61连续类型变量。与先前开发的顺序子空间分解方法相比,同时解决该子空间导致航空公司的车队级目标的显着改善。

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