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自动导引车容错设计的算法与方法

Algorithms and Methods for the Fault-Tolerant Design of an Automated Guided Vehicle.

作者信息

Stetter Ralf

机构信息

Department of Mechanical Engineering, Ravensburg-Weingarten University (RWU), 88250 Weingarten, Germany.

出版信息

Sensors (Basel). 2022 Jun 20;22(12):4648. doi: 10.3390/s22124648.

Abstract

Researchers around the globe have contributed for many years to the research field of fault-tolerant control; the importance of this field is ever increasing as a consequence of the rising complexity of technical systems, the enlarging importance of electronics and software as well as the widening share of interconnected and cloud solutions. This field was supplemented in recent years by fault-tolerant design. Two main goals of fault-tolerant design can be distinguished. The first main goal is the improvement of the controllability and diagnosability of technical systems through intelligent design. The second goal is the enhancement of the fault-tolerance of technical systems by means of inherently fault-tolerant design characteristics. Inherently fault-tolerant design characteristics are, for instance, redundancy or over-actuation. This paper describes algorithms, methods and tools of fault-tolerant design and an application of the concept to an automated guided vehicle (AGV). This application took place on different levels ranging from conscious requirements management to redundant elements, which were consciously chosen, on the most concrete level of a technical system, i.e., the product geometry. The main scientific contribution of the paper is a methodical framework for fault-tolerant design, as well as certain algorithms and methods within this framework. The underlying motivation is to support engineers in design and control trough product development process transparency and appropriate algorithms and methods.

摘要

多年来,全球各地的研究人员都为容错控制这一研究领域做出了贡献;由于技术系统的复杂性不断增加、电子和软件的重要性日益扩大以及互联和云解决方案的份额不断扩大,该领域的重要性与日俱增。近年来,容错设计对这一领域进行了补充。可以区分出容错设计的两个主要目标。第一个主要目标是通过智能设计提高技术系统的可控性和可诊断性。第二个目标是通过固有的容错设计特性增强技术系统的容错能力。固有的容错设计特性例如冗余或过驱动。本文描述了容错设计的算法、方法和工具,以及该概念在自动导引车(AGV)上的应用。该应用发生在从有意识的需求管理到冗余元件等不同层面,这些冗余元件是在技术系统最具体的层面即产品几何形状上有意识选择的。本文的主要科学贡献是一个用于容错设计的方法框架,以及该框架内的某些算法和方法。其潜在动机是通过产品开发过程的透明度以及适当的算法和方法来支持工程师进行设计和控制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4025/9227458/320791716edf/sensors-22-04648-g001.jpg

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