...
首页> 外文期刊>Progress in Aerospace Sciences >An integrated systems engineering approach to aircraft design
【24h】

An integrated systems engineering approach to aircraft design

机译:飞机设计的综合系统工程方法

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

The challenge in Aerospace Engineering, in the next two decades as set by Vision 2020, is to meet the targets of reduction of nitric oxide emission by 80%, carbon monoxide and carbon dioxide both by 50%, reduce noise by 50% and of course with reduced cost and improved safety. All this must be achieved with expected increase in capacity and demand. Such a challenge has to be in a background where the understanding of physics of flight has changed very little over the years and where industrial growth is driven primarily by cost rather than new technology. The way forward to meet the challenges is to introduce innovative technologies and develop an integrated, effective and efficient process for the life cycle design of aircraft, known as systems engineering (SE). SE is a holistic approach to a product that comprises several components. Customer specifications, conceptual design, risk analysis, functional analysis and architecture, physical architecture, design analysis and synthesis, and trade studies and optimisation, manufacturing, testing validation and verification, delivery, life cycle cost and management. Further, it involves interaction between traditional disciplines such as Aerodynamics, Structures and Flight Mechanics with people- and process-oriented disciplines such as Management, Manufacturing, and Technology Transfer. SE has become the state-of-the-art methodology for organising and managing aerospace production. However, like many well founded methodologies, it is more difficult to embody the core principles into formalised models and tools. The key contribution of the paper will be to review this formalisation and to present the very latest knowledge and technology that facilitates SE theory. Typically, research into SE provides a deeper understanding of the core principles and interactions, and helps one to appreciate the required technical architecture for fully exploiting it as a process, rather than a series of events. There are major issues as regards to systems approach to aircraft design and these include lack of basic scientific/ practical models and tools for interfacing and integrating the components of SE and within a given component, for example, life cycle cost, basic models for linking the key drivers. The paper will review the current state of art in SE approach to aircraft design and identify some of the major challenges, the current state of the art and visions for the future. The review moves from an initial basis in traditional engineering design processes to consideration of costs and manufacturing in this integrated environment. Issues related to the implementation of integration in design at the detailed physics level are discussed in the case studies.
机译:根据2020年愿景设定的未来二十年中,航空航天工程所面临的挑战是要实现以下目标:一氧化氮排放减少80%,一氧化碳和二氧化碳减少50%,噪声减少50%,当然降低成本并提高安全性。所有这些都必须通过预期的容量和需求增加来实现。多年来,对飞行物理学的理解变化很小,而且工业增长主要由成本而不是新技术驱动,因此这种挑战必须存在于这样的背景下。迎接挑战的方法是引入创新技术并为飞机的生命周期设计开发一种集成,有效和高效的流程,即系统工程(SE)。 SE是包含多个组件的产品的整体方法。客户规范,概念设计,风险分析,功能分析和体系结构,物理体系结构,设计分析和综合以及贸易研究和优化,制造,测试验证和验证,交付,生命周期成本和管理。此外,它涉及传统学科(如空气动力学,结构和飞行力学)与以人和过程为导向的学科(如管理,制造和技术转让)之间的交互。 SE已成为组织和管理航空航天生产的最新方法。但是,像许多行之有效的方法论一样,将核心原理体现到形式化的模型和工具中更加困难。本文的主要贡献将是回顾这种形式化,并提出有助于SE理论的最新知识和技术。通常,对SE的研究可提供对核心原理和交互作用的更深入的了解,并有助于人们了解将其作为一个过程而不是一系列事件充分利用所需的技术体系结构。飞机设计的系统方法存在重大问题,其中包括缺乏基本的科学/实用模型和工具来连接和集成SE的组件以及在给定组件内,例如,生命周期成本,用于连接SE的基本模型。关键驱动力。本文将回顾SE方法在飞机设计中的最新技术,并确定一些主要的挑战,当前的技术水平以及对未来的展望。审查从传统工程设计流程的初始基础转变为在这种集成环境中考虑成本和制造的过程。在案例研究中,讨论了与在详细物理层进行设计中的集成实现有关的问题。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号