Efficient clear air turbulence avoidance algorithms using IoT for commercial aviation

A. Chatterjee, Hugo Flores, B. Tang, Ashish Mani, Khondker S. Hasan
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引用次数: 5

Abstract

With the growth of commercial aviation over the last few decades there have been many applications designed to improve the efficiency of flight operations as well as safety and security. A number of these applications are based on the gathered data from flights; the data is usually acquired from the various sensors available on the aircraft. There are numerous senors among the electrical and electronics devices on an aircraft, most of which are essential for the proper functioning of the same. With the sensors being operational throughout the time of movement of the aircraft, a large amount of data is collected during each flight. Normally, most of the gathered data are stored on a storage device on the aircraft, and are analyzed and studied later off-site for research purposes focusing on improving airline operation and efficiently maintaining the same. In certain cases, when there is data transfer during the flight, it is between the aircraft and an air-traffic-control (ATC) tower, which serves as the base station. The aircraft equipped with all these sensors, which can gather and exchange data, form a framework of Internet of things (IoT). Detecting and avoiding any form of turbulence for an aircraft is vital; it adds to the safety of both passengers and aircraft while reducing the operating cost of the airline. Therefore, in this paper, we study techniques to detect and avoid Clear Air Turbulence (CAT), which is a specific type of turbulence, based on the IoT framework of aircraft. We propose algorithms that consider both direct and indirect communication between aircraft within a specific region. Using simulation results, we show that our proposed techniques of direct communication using the IoT framework is faster than conventional techniques involving radio communication via both single ATC tower and multiple ATC towers.
商用航空中使用物联网的高效晴空湍流避免算法
随着过去几十年商业航空的发展,出现了许多旨在提高飞行操作效率以及安全性的应用程序。其中一些应用程序是基于从飞行中收集的数据;这些数据通常是从飞机上的各种传感器获取的。飞机上的电气和电子设备中有许多传感器,其中大多数对于飞机的正常运行是必不可少的。由于传感器在飞机的整个飞行过程中都处于工作状态,因此在每次飞行期间都会收集大量数据。通常情况下,收集到的大部分数据都存储在飞机上的存储设备上,稍后在现场进行分析和研究,用于研究目的,重点是改善航空公司的运营,并有效地保持不变。在某些情况下,当飞行过程中有数据传输时,它是在飞机和充当基站的空中交通管制(ATC)塔之间进行的。配备所有这些传感器的飞机可以收集和交换数据,形成物联网(IoT)框架。探测和避免任何形式的乱流对飞机来说至关重要;它增加了乘客和飞机的安全,同时降低了航空公司的运营成本。因此,在本文中,我们研究了基于飞机物联网框架的晴空湍流(CAT)检测和避免技术,这是一种特定类型的湍流。我们提出了考虑特定区域内飞机之间直接和间接通信的算法。通过模拟结果,我们表明,我们提出的使用物联网框架的直接通信技术比通过单个ATC塔和多个ATC塔进行无线电通信的传统技术更快。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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