Ruichen He, Florian Holzapfel, Johannes Bröcker, Yi Lai, Shuguang Zhang
{"title":"A Decentralized Voting and Monitoring Flight Control Actuation System for eVTOL Aircraft","authors":"Ruichen He, Florian Holzapfel, Johannes Bröcker, Yi Lai, Shuguang Zhang","doi":"10.3390/aerospace11030195","DOIUrl":null,"url":null,"abstract":"The emergence of eVTOL (electrical Vertical Takeoff and Landing) aircraft necessitates the development of safe and efficient systems to meet stringent certification and operational requirements. The primary state-of-the-art technology for flight control actuation in eVTOL aircraft is electro-mechanical actuators (EMAs), which heavily rely on multiple redundancies of critical components to achieve fault tolerance. However, challenges persist in terms of insufficient reliability, immaturity, and a lack of a measurable evaluation method. This research addresses these issues by elucidating the design requirements for EMAs in eVTOL aircraft and proposing a systematic design and evaluation approach for EMA architecture. A key enhancement involves the incorporation of decentralized voting and monitoring (VoDeMo) mechanisms within the Electronic Control Units (ECUs) to improve the overall safety of the EMA. The paper introduces an innovative triple-dual redundant architecture for aircraft control effectors, comprising three dissimilar lanes of ECUs and two similar redundant parallel channels of power electronics and motors. The design is synergistically supported by a comprehensive evaluation that incorporates quantifiable Model-Based Safety Assessment (MBSA), utilizing both physical simulation and logical safety models. Hardware-In-the-Loop (HIL) tests are conducted on a constructed prototype to validate the proposed architecture.","PeriodicalId":505273,"journal":{"name":"Aerospace","volume":"5 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-02-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Aerospace","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.3390/aerospace11030195","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
The emergence of eVTOL (electrical Vertical Takeoff and Landing) aircraft necessitates the development of safe and efficient systems to meet stringent certification and operational requirements. The primary state-of-the-art technology for flight control actuation in eVTOL aircraft is electro-mechanical actuators (EMAs), which heavily rely on multiple redundancies of critical components to achieve fault tolerance. However, challenges persist in terms of insufficient reliability, immaturity, and a lack of a measurable evaluation method. This research addresses these issues by elucidating the design requirements for EMAs in eVTOL aircraft and proposing a systematic design and evaluation approach for EMA architecture. A key enhancement involves the incorporation of decentralized voting and monitoring (VoDeMo) mechanisms within the Electronic Control Units (ECUs) to improve the overall safety of the EMA. The paper introduces an innovative triple-dual redundant architecture for aircraft control effectors, comprising three dissimilar lanes of ECUs and two similar redundant parallel channels of power electronics and motors. The design is synergistically supported by a comprehensive evaluation that incorporates quantifiable Model-Based Safety Assessment (MBSA), utilizing both physical simulation and logical safety models. Hardware-In-the-Loop (HIL) tests are conducted on a constructed prototype to validate the proposed architecture.
电动垂直起降飞机(eVTOL)的出现要求开发安全高效的系统,以满足严格的认证和运行要求。用于 eVTOL 飞机飞行控制驱动的主要先进技术是电动机械致动器 (EMA),该技术严重依赖关键部件的多重冗余来实现容错。然而,在可靠性不足、不成熟以及缺乏可衡量的评估方法等方面仍存在挑战。本研究通过阐明 eVTOL 飞机中 EMA 的设计要求并提出 EMA 架构的系统设计和评估方法来解决这些问题。其中一个关键的改进措施是在电子控制单元(ECU)中加入分散表决和监控(VoDeMo)机制,以提高 EMA 的整体安全性。本文介绍了一种创新的飞机控制效应器三重双冗余架构,包括三个不同的电子控制单元通道和两个类似的电力电子设备和电机冗余并行通道。利用物理仿真和逻辑安全模型进行的综合评估结合了可量化的基于模型的安全评估(MBSA),为该设计提供了协同支持。在构建的原型上进行了硬件在环 (HIL) 测试,以验证所提出的架构。