用于列车自动化和交通管理的频谱信号轮轨接触分析系统

B. Stanciulescu, Romain Ceolato Onera, C. Nicodeme, Saïd el Fassi
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引用次数: 1

摘要

为了实现自动运输系统,交通运输业需要进行大量改进。铁路也受到关注。自动驾驶汽车必须能够感知和分析其环境,以便能够适应其驾驶。在本文中,我们着重于轮轨接触分析和附着性评价,因为它的条件载荷变量,如制动,牵引力和最大速度。它还会对列车之间的安全距离产生影响。钢轨表面的污染会降低附着力。我们提出了一种多光谱相机成像系统,能够检测和识别污染物。然后将污染与附着系数联系起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wheel-rail contact analysis system using spectral signatures for train automation and traffic management
The transport industry is subject to a lot of improvement aiming to autonomous transportation systems. Railway is also concerned. An autonomous vehicle must be able to perceive and analyze its environment with a view to being able to adapt its driving. In this paper we focus on the wheel-rail contact analysis, and the adherence evaluation, as it conditions loads of variables such as braking, traction and maximum speed. It also has an impact on security distance between trains. Adherence can be degraded by the presence of pollution on the rail surface. We present an imaging system, using a multispectral camera, capable of detecting and recognizing pollutant. The pollution is then associated to an adherence coefficient.
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