AECMA PREN 4533-004-2005 Aerospace series Fibre optic systems Handbook Part 004 Repair maintenance and inspection Edition P 1《航天系列光纤系统手册.第004部分 修理 维修和检查 P.第1版》.pdf
《AECMA PREN 4533-004-2005 Aerospace series Fibre optic systems Handbook Part 004 Repair maintenance and inspection Edition P 1《航天系列光纤系统手册.第004部分 修理 维修和检查 P.第1版》.pdf》由会员分享,可在线阅读,更多相关《AECMA PREN 4533-004-2005 Aerospace series Fibre optic systems Handbook Part 004 Repair maintenance and inspection Edition P 1《航天系列光纤系统手册.第004部分 修理 维修和检查 P.第1版》.pdf(19页珍藏版)》请在麦多课文档分享上搜索。
1、AECMA STANDARD NORME AECMA AECMA NORM prEN 4533-004 Edition P 1 April 2005 PUBLISHED BY THE EUROPEAN ASSOCIATION OF AEROSPACE INDUSTRIES - STANDARDIZATION Gulledelle 94 - B-1200 Brussels - Tel. + 32 2 775 8110 - Fax. + 32 2 775 8111 - www.aecma-stan.orgICS: 49.060 Descriptors: ENGLISH VERSION Aerosp
2、ace series Fibre optic systems Handbook Part 004: Repair, maintenance and inspection Srie arospatiale Systmes des fibres optiques Manuel dutilisation Partie 004 : Rparation, maintenance et contrle Luft- und Raumfahrt Faseroptische Systemtechnik Handbuch Teil 004: Reparatur und Inspektion This “Aeros
3、pace Series“ Prestandard has been drawn up under the responsibility of AECMA-STAN (The European Association of Aerospace Industries - Standardization). It is published for the needs of the European Aerospace Industry. It has been technically approved by the experts of the concerned Domain following
4、member comments. Subsequent to the publication of this Prestandard, the technical content shall not be changed to an extent that interchangeability is affected, physically or functionally, without re-identification of the standard. After examination and review by users and formal agreement of AECMA-
5、STAN, it will be submitted as a draft European Standard (prEN) to CEN (European Committee for Standardization) for formal vote and transformation to full European Standard (EN). The CEN national members have then to implement the EN at national level by giving the EN the status of a national standar
6、d and by withdrawing any national standards conflicting with the EN. Edition approved for publication 30 April 2005 Comments should be sent within six months after the date of publication to AECMA-STAN Electrical Domain Copyright 2005 by AECMA-STAN Copyright Association Europeene des Constructeurs d
7、e Materiel Aerospatial Provided by IHS under license with AECMANot for ResaleNo reproduction or networking permitted without license from IHS-,-,-Page 2 prEN 4533-004:2005Foreword This standard was reviewed by the Domain Technical Coordinator of AECMA-STANs Electrical Domain. After inquiries and vot
8、es carried out in accordance with the rules of AECMA-STAN defined in AECMA-STANs General Process Manual, this standard has received approval for Publication. Contents Page Foreword 3 1 Scope 4 2 Normative references. 4 3 Fault analysis and repair 4 3.1 From notification to repair 4 3.2 Fault notific
9、ation 4 3.3 Symptoms . 5 3.4 Fault location. 5 3.5 Potential faults. 10 3.6 Repair techniques 13 4 Scheduled maintenance and inspection 16 4.1 When to maintain / inspect?. 16 4.2 Maintenance/Inspection of system. 17 5 Good practices during maintenance / inspection 18 6 Harness design considerations
10、. 19 Copyright Association Europeene des Constructeurs de Materiel Aerospatial Provided by IHS under license with AECMANot for ResaleNo reproduction or networking permitted without license from IHS-,-,-Page 3 prEN 4533-004:2005Foreword a) The handbook The handbook draws on the work of the Fibre-Opti
11、c Harness Study, part sponsored by the United Kingdoms Department of Trade and Industry, plus other relevant sources. It aims to provide general guidance for experts and non-experts alike in the area of designing, installing, and supporting multi-mode fibre-optic systems on aircraft. Where appropria
12、te more detailed sources of information are referenced throughout the text. It is arranged in 4 parts, which reflect key aspects of an optical harness life cycle, namely: Part 001: Termination methods and tools Part 002: Test and measurement Part 003: Looming and installation practices Part 004: Rep
13、air, maintenance and inspection b) Background It is widely accepted in the aerospace industry that photonic technology offers a number of significant advantages over conventional electrical hardware. These include massive signal bandwidth capacity, electrical safety, and immunity of passive fibre-op
14、tic components to the problems associated with electromagnetic interference (EMI). To date, the latter has been the critical driver for airborne fibre-optic communications systems because of the growing use of non-metallic aerostructures. However, future avionic requirements are driving bandwidth sp
15、ecifications from 10s of Mbits/s into the multi-Gbits/s regime in some cases, i.e. beyond the limits of electrical interconnect technology. The properties of photonic technology can potentially be exploited to advantage in many avionic applications, such as video/sensor multiplexing, flight control
16、signalling, electronic warfare, and entertainment systems, as well as in sensing many of the physical phenomena on-board aircraft. The basic optical interconnect fabric or optical harness is the key enabler for the successful introduction of optical technology onto commercial and military aircraft.
17、Compared to the mature telecommunications applications, an aircraft fibre-optic system needs to operate in a hostile environment (e.g. temperature extremes, humidity, vibrations, and contamination) and accommodate additional physical restrictions imposed by the airframe (e.g. harness attachments, ti
18、ght bend radii requirements, and bulkhead connections). Until recently, optical harnessing technology and associated practices were insufficiently developed to be applied without large safety margins. In addition, the international standards did not adequately cover many aspects of the life cycle. T
19、he lack of accepted standards thus lead to airframe specific hardware and support. These factors collectively carried a significant cost penalty (procurement and through-life costs), that often made an optical harness less competitive than an electrical equivalent. c) The fibre-optic harness study T
20、he Fibre-Optic Harness Study concentrated on developing techniques, guidelines, and standards associated with the through-life support of current generation fibre-optic harnesses applied in civil and military airframes (fixed and rotary wing). Some aspects of optical system design were also investig
21、ated. This programme has been largely successful. Guidelines and standards based primarily on harness study work are beginning to emerge through a number of standards bodies. Because of the aspects covered in the handbook, European prime contractors are in a much better position to utilise and suppo
22、rt available fibre optic technology. Copyright Association Europeene des Constructeurs de Materiel Aerospatial Provided by IHS under license with AECMANot for ResaleNo reproduction or networking permitted without license from IHS-,-,-Page 4 prEN 4533-004:20051 Scope The original task headings in the
23、 Fibre Optic Harness Study were Inspection and Fault Analysis and Repair and Maintenance. However, to create a more coherent and readable handbook these have been re-arranged in this part of EN 4533 to make two new topic headings Fault analysis and repair and Scheduled maintenance and inspection. Th
24、e first deals with what to do when something goes wrong how to go from a fault notification to locating the fault, and finally, repairing it. The second covers the recommended procedures for upkeep and maintaining harness health over the lifetime of its installation. It is beneficial to read both se
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