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Aircraft Integration Challenges and Opportunities for Distributed Intelligent Control, Power, Thermal Management, Diagnostic and Prognostic Systems

机译:分布式智能控制,电力,热管理,诊断和预后系统的飞机集成挑战和机遇

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Modern propulsion system designers face challenges that require that aircraft and engine manufacturers improve performance as well as reduce the life-cycle cost (LCC). These improvements will require a more efficient, more reliable, and more advanced propulsion system. The concept of smart components is built around actively controlling the engine and the aircraft to operate optimally. Usage of smart components intelligently increases efficiency and system safety throughout the flight envelope, all while meeting environmental challenges. This approach requires an integration and optimization, both at the local level and the system level, to reduce cost. Interactions between the various subsystems must be understood through the use of modeling and simulation. This is accomplished by starting with individual subsystem models and combining them into a complete system model. Hierarchical, decentralized control reduces cost and risk by enabling integration and modularity. This process involves defining, developing, and validating against requirements for key integrated propulsion, power, and thermal management system capabilities.
机译:现代推进系统设计师面临挑战,要求飞机和发动机制造商提高性能,并降低生命周期成本(LCC)。这些改进需要更有效,更可靠,更先进的推进系统。智能组件的概念是在积极控制发动机和飞机上进行最佳运行。智能组件的使用智能地提高了整个飞行信封的效率和系统安全,同时满足了环境挑战。这种方法需要在本地层面和系统级别的集成和优化,以降低成本。必须通过使用建模和仿真来理解各个子系统之间的相互作用。这是通过以各个子系统模型开始并将它们组合成完整的系统模型来实现的。分层,分散控制通过实现集成和模块化来降低成本和风险。该过程涉及针对关键集成推进,功率和热管理系统能力的要求定义,开发和验证。

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