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A TRAFFIC INFORMATION SERVICE-BROADCAST MODEL FOR MIXEDEQUIPAGE AIRCRAFT SIMULATION

机译:混合等级飞机仿真的交通信息服务广播模型

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The use of new Air Traffic Management (ATM) concepts built upon the capabilities afforded by the Automatic Dependent Surveillance-Broadcast (ADSB) system in NextGen airspace aims to provide substantial improvements in system capacity and throughput without compromising safety relative to today's ground-directed ATM based on Secondary Surveillance Radar (SSR). These concepts rely on airborne based surveillance and include the use of airborne systems and procedures to perform traffic monitoring, self-separation, and merging and spacing. The Traffic Information Service-Broadcast ( TIS-B) system is intended to provide the crucial bridge for ADS-B aircraft to employ some of these concepts during the transition phase. Although TIS-B surveillance is not expected to be of the same quality as ADS-B surveillance, it still provides aircraft state and velocity information required so that airborne systems can provide a i r b o r n e s e p a r a t i o n ssistance/assurance and airborne spacing capabilities (with increased separation margins). While simulation studies of these NextGen concepts in the end-state system are already underway [1], additional simulation models will be needed to represent the intermediate state system where not all aircraft will be equipped with ADS-B. The suitability of new ATM concepts for use in the transitional NextGen airspace with mixed equipage (Mode C, Mode S, and Mode S Extended Squitter (ES)) aircraft can be studied using simulation tools such as NASA Langley's Airspace and Traffic Operations Simulation (ATOS) enhanced with the TIS-B model described in this paper. ATOS is a distributed, Human in the Loop (HITL) simulation consisting of multiple, mid-fidelity, desktop cockpit simulators called ASTOR (Aircraft Simulation for Traffic Operations Research). This paper describes the RTCA standards-based design of the TIS-B model developed for use in ATOS. This model consists of ground and aircraft subsystems with a focus on the models of TIS-B system functional elements such as Ground Surveillance Processing (GSP), TIS-B Target Report Distribution Function (DF), Ground Link Specific Processing (GLSP), Airborne Link Specific Processing (ALSP), and Target Tracking and Report Assembly (RA). The modeling of SSR data processing functions in the GSP, including position and altitude measurement, state estimation, radar tracking, and computation of Navigation Accuracy Category (NAC) and Navigation Integrity Category ( NIC) of aircraft position is discussed at length. This paper also describes how Target reports are extrapolated (to account for data latency), generated, and distributed by the DF model. A Ground Based Transceiver (GBT) model implements the GLSP functions that include generation of TIS-B messages and suppression of TIS-B messages corresponding to aircraft producing ADS-B signals being received by the GBT. Modeling of the reception of ADS-B transmissions by the GBT is included using the ADSB reception model developed for ASTOR air-to-air reception modeling [2, 3]. Finally, this paper describes the modeling of the ALSP and RA functions within the ASTOR. The paper also presents and discusses the preliminary model validation test results obtained from the simulation by comparing truth and TIS-B message derived track data and provides insights into bow the TIS-B model can be used to support NextGen concept studies.
机译:使用新的空中交通管理(ATM)概念基于NextGen Airspace的自动依赖监视广播(ADSB)系统提供的功能,旨在提供系统能力和吞吐量的大量改进,而不会影响当今地面定向ATM的安全性基于二次监视雷达(SSR)。这些概念依赖于基于空中的监视,包括使用空中系统和程序来执行交通监测,自分离和合并和间距。交通信息服务广播(TIS-B)系统旨在为ADS-B飞机提供关键桥,以在过渡阶段期间采用这些概念中的一些。虽然TIS-B监视预计与ADS-B监视的质量相同,但它仍然提供所需的飞机状态和速度信息,以便空气传播系统可以提供I R B O R N E S E P A R A T I O N SSISTANCE /保证和空中间距能力(具有增加的分离边距)。虽然在最终系统系统中对这些NextGen概念的仿真研究已经开始[1],但需要额外的仿真模型来代表中间状态系统,其中不是所有飞机都配备有ADS-B。可以使用混合设备(模式C,MODE S和MODE S扩展询问器的过渡性NextGen空域的新型ATM概念的适用性可以使用NASA Langley的空域和交通运营模拟(ATOS)等仿真工具来研究飞机)通过本文描述的TIS-B模型增强。 ATOS是一种分布式,人类的循环(HITL)模拟,由多个,中级保真,桌面驾驶舱模拟器组成,称为Astor(飞机仿真,用于交通运营研究)。本文介绍了在ATOS中使用的TIS-B模型的基于RTCA标准的设计。该模型包括地面和飞机子系统,专注于TIS-B系统功能元件的模型,如地面监控处理(GSP),TIS-B目标报告分配功能(DF),地面链路特定处理(GLSP),空降链接特定处理(ALSP),以及目标跟踪和报告组件(RA)。在GSP中的SSR数据处理功能的建模,包括位置和高度测量,状态估计,雷达跟踪以及航空器位置的导航精度类别(NAC)和导航完整性类别(NIC)。本文还介绍了目标报告的推断方式(要考虑数据延迟),生成和分发DF模型。基于地面的收发器(GBT)模型实现了GLSP函数,包括产生TIS-B消息的生成和对应于由GBT接收的ADS-B信号的飞机对应的TIS-B消息的抑制。使用GBT的接收到ADS-B传输的建模包括用于ASTOR空气到空气接收建模[2,3]开发的ADSB接收模型。最后,本文介绍了Astor内的ALSP和RA功能的建模。本文还通过比较真理和TIS-B消息导出的跟踪数据来介绍并讨论从模拟中获得的初步模型验证测试结果,并为弓箭提供了洞察力,可以使用TIS-B模型来支持NextGen概念研究。

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