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Thermal Management Solutions for enhanced Digital Flight Data Acquisition Unit in Avionics Applications

机译:AVIONICS应用中增强数字飞行数据采集单元的热管理解决方案

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According to the Federal Aviation Administration, the commercial airline industry should expect to see the number of passengers traveling per year to grow from its current level of 750 million to nearly 1 billion by 2030. To meet this demand, airlines are placing orders for thousands of new aircraft over the next decade and beyond. With this increase in airline traffic, newer aircraft systems will generate an ever increasing amount of data per flight, data that allows airlines to further enhance their flight operations, flight safety, and reliability. For commercial avionics, the migration of the data acquisition and reporting functions from the traditional interface environments to newer, faster, and more network-centric architectures is creating a new generation of "smart" aircraft. Teledyne Controls' enhanced Digital Flight Data Acquisition Unit is an integral part of a new generation of aircraft and combines the functions of Mandatory Data Acquisition and Recording with a sophisticated Aircraft Conditioning Monitoring System that the aircraft operator uses to monitor the performance and reliability of each aircraft in its fleet. Some of the critical goals in the development of the Digital Flight Data Acquisition Unit are reducing the size and weight over previous generations, while maximizing performance and reducing cost. All of these opposing requirements make the design and fabrication very challenging. One such challenge includes dissipating high power in a confined space, and this makes thermal management a critical component of the overall LRU (line-replaceable unit) design. In addition, to increase the reliability over the lifespan of the unit, passive cooling systems are often required in place of internal fans. This presents another set of challenges, such as optimizing the airflow provided by the aircraft in the electronics bay compartment. This paper will present some of the critical elements in thermal management such as heat sinks, components placement, thermal interface materials, thermal vias, thermal links, packaging approaches and cooling strategy. The design and optimization of the system are based on analytical solutions, conjugated heat transfer and experimental results. The LRU should safely operate under various environmental conditions: ground operation, flight operation, high operating temperature and loss of cooling air where each environmental condition has different parameters for coolant airflow rate, effect of the surroundings, and ambient and coolant air temperature. Draw-Through and Blow-Through cooling analysis were performed using CFD (Computational Fluid Dynamics). The thermal analysis problems solved are conjugated heat transfer for laminar flow with radiation in steady-state or transient regimes. Multiple approaches were identified to remove heat from the critical components through optimization of the components and subsystems. These same approaches can also be used to increase the system's performance and reliability.
机译:根据联邦航空管理局的说法,商业航空公司的行业应指望每年旅行的乘客数量从其目前的7.5亿美元增长到2030年的10亿美元。为了满足这一需求,航空公司正在为成千上万的订单下订单新飞机在未来十年及以后。随着航空公司交通的增加,较新的飞机系统将产生每次飞行数量的数据,允许航空公司进一步增强其飞行运营,飞行安全性和可靠性的数据。对于商业航空商来说,数据采集和报告功能的迁移从传统的接口环境到更新,更快,更快,更多的网络中心的架构正在创建新一代“智能”飞机。 Teledyne Controls的增强数字飞行数据采集单元是新一代飞机的组成部分,并将强制数据采集和记录的功能与飞机运营商用于监测每架飞机的性能和可靠性的复杂的飞机调理监控系统在它的舰队中。在数字飞行数据采集单元开发中的一些临界目标正在降低前几代的大小和重量,同时最大化性能和降低成本。所有这些反对要求都使得设计和制造非常具有挑战性。一个这样的挑战包括在密闭空间中消散高功率,这使得热管理成为整个LRU(可更换单元)设计的关键组件。另外,为了提高单元的寿命的可靠性,通常需要被动冷却系统代替内部风扇。这提出了另一种挑战,例如优化由飞机提供的气流在电子舱室舱内提供的气流。本文将介绍热管理中的一些关键元件,如散热器,部件放置,热界面材料,热通孔,热链路,包装方法和冷却策略。该系统的设计和优化基于分析解决方案,共轭传热和实验结果。 LRU应在各种环境条件下安全运行:地面运行,飞行运行,高效温度和冷却空气的损失,其中每个环境条件具有不同参数的冷却剂气流率,周围效果和环境和冷却剂气温。使用CFD(计算流体动力学)进行绘制和吹气冷却分析。解决的热分析问题是具有稳态或瞬时制度的辐射的层流的共轭传热。通过优化组件和子系统,识别多种方法以从关键部件中除去热量。这些相同的方法也可用于提高系统的性能和可靠性。

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