Advanced avionics system architecture

G. Fábián, T. Rayl
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引用次数: 1

Abstract

The Collins Advanced Avionics System Architecture uses an increased amount of integration to provide an unprecedented level of functional capability, fault tolerance and flexibility, as well as on-board diagnostic aids and other features designed to reduce crew work load and enhance the availability of system functions. Large format liquid crystal flight displays (LCD) and cursor control devices with voice activation integrate the display and control of system functions. This lessens crew work load while reducing the number of system displays and controls, providing a more intuitive cockpit. Functional processing is accomplished in an integrated processing center (IPC) using standardized modules and virtual machine/partitioned processing and field-loadable software. This provides a flexible, cost effective, reusable architecture with inherent growth capability and true software mobility. The digital communication network achieves total connectivity among all subsystems. The connectivity is accomplished with data concentrators for legacy equipment and high speed digital local area network hubs for internal IPC data, IPC to IPC communication, and interface to other high data rate users. This significantly reduces system latencies, cross cockpit wiring and individual I/O connections.
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先进的航空电子系统架构
柯林斯先进航空电子系统架构采用了更高的集成度,提供了前所未有的功能能力、容错性和灵活性,以及机载诊断辅助和其他功能,旨在减少机组人员的工作负荷,提高系统功能的可用性。大画幅液晶飞行显示器(LCD)和带有语音激活的光标控制装置集成了系统的显示和控制功能。这减少了机组人员的工作量,同时减少了系统显示和控制的数量,提供了一个更直观的驾驶舱。功能处理在集成处理中心(IPC)中使用标准化模块和虚拟机/分区处理以及可现场加载的软件完成。这提供了一个灵活、经济、可重用的体系结构,具有固有的增长能力和真正的软件移动性。数字通信网实现了各子系统之间的全连通。连接是通过用于传统设备的数据集中器和用于内部IPC数据、IPC到IPC通信以及与其他高数据速率用户的接口的高速数字局域网集线器来完成的。这大大减少了系统延迟、跨座舱接线和单个I/O连接。
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