SAE AIR 6006-2009 Modeling and Simulation Capabilities for Aerospace WDM LAN Applications《航空航天波分多路复用(WDM)局域网(LAN)应用软件的建模与仿真能力》.pdf
《SAE AIR 6006-2009 Modeling and Simulation Capabilities for Aerospace WDM LAN Applications《航空航天波分多路复用(WDM)局域网(LAN)应用软件的建模与仿真能力》.pdf》由会员分享,可在线阅读,更多相关《SAE AIR 6006-2009 Modeling and Simulation Capabilities for Aerospace WDM LAN Applications《航空航天波分多路复用(WDM)局域网(LAN)应用软件的建模与仿真能力》.pdf(48页珍藏版)》请在麦多课文档分享上搜索。
1、_SAE Technical Standards Board Rules provide that: “This report is published by SAE to advance the state of technical and engineering sciences. The use of this report is entirely voluntary, and its applicability and suitability for any particular use, including any patent infringement arising theref
2、rom, is the sole responsibility of the user.” SAE reviews each technical report at least every five years at which time it may be reaffirmed, revised, or cancelled. SAE invites your written comments and suggestions. Copyright 2009 SAE International All rights reserved. No part of this publication ma
3、y be reproduced, stored in a retrieval system or transmitted, in any form or by any means, electronic, mechanical, photocopying, recording, or otherwise, without the prior written permission of SAE. TO PLACE A DOCUMENT ORDER: Tel: 877-606-7323 (inside USA and Canada) Tel: +1 724-776-4970 (outside US
4、A) Fax: 724-776-0790 Email: CustomerServicesae.org SAE WEB ADDRESS: http:/www.sae.orgSAE values your input. To provide feedback on this Technical Report, please visit http:/www.sae.org/technical/standards/AIR6006AEROSPACEINFORMATIONREPORTAIR6006 Issued 2009-12Modeling and Simulation Capabilities for
5、 Aerospace WDM LAN Applications RATIONALEIt is desirable to architect a new standard Wavelength Division Multiplexed (WDM) fiber optic network architecture for aerospace platforms that will not just supplement current networks, but completely replace all legacy networks to maximize the benefits of f
6、iber optic network technology and revolutionize networking in aerospace platforms. One of the goals of the availability of a WDM Local Area Network (LAN) standard is to help put in place metrics to evaluate and compare candidate architectures, thereby providing an objective perspective on the variou
7、s merits and complexities associated with each. Modeling and simulation tools are critical for addressing and realizing this goal. Designing, modeling, and simulating a high-speed WDM network to be deployed in an aerospace environment with its unique requirements is a challenging task that requires
8、the use of sophisticated modeling and simulation tools. FORWARDThe Society of Automotive Engineering (SAE) Avionic Systems Division (ASD) Technical Committee on Aerospace Avionic Systems sub-committee on Fiber Optics and Applied Photonics (AS-3) formed a standards working group in April 2005 with th
9、e goal of developing a standard for WDM LANs (wavelength division multiplexed local area networks) for aerospace applications. The working group is chartered to develop a standard with broad applicability to both commercial and military (tactical) aircraft. Wavelength division multiplexing provides
10、many potential benefits as the infrastructure communications cable plant in an aircraft. Along with these benefits, there are significant challenges. WDM network architectures must be capable of supporting all communication needs aboard the aircraft. The different communications types may range from
11、 high priority with tight latency requirements, to low priority with loose latency requirements. High priority traffic may include flight controls, while low priority traffic may include data collection for post-mission analysis. Different communications types may also have a variety of quality of s
12、ervice (QoS) requirements. Initial work in the standards group was broken down into two primary tasks, and a separate subtask group was formed to work on those two separate tasks. The first of these tasks was to develop a requirements specification for WDM LANs for aerospace applications. Several do
13、cuments are in the process of being developed through the work in that subtask group. The second of these tasks was to develop a document identifying modeling and simulation capabilities required. This document is the output from this subtask group.Following the completion of the work in these first
14、 two subtask groups, additional subtask groups will be formed. Documents produced by these first two working groups, including this present document, will be used to continue the work towards the development the aerospace WDM LAN standard and deployment of systems based upon it. SAE AIR6006 Page 2 o
15、f 48TABLE OF CONTENTS 1. SCOPE 51.1 Purpose . 52. REFERENCES 52.1 Applicable Documents 52.1.1 SAE Publications . 52.2 Related Publications . 52.2.1 SAE Publications . 52.2.2 Telecommunications Industry Association (TIA) Publications 52.2.3 ARINC Publications 52.2.4 IEEE Publications 62.2.5 SPIE Publ
16、ications 62.2.6 U.S. Government Publications 62.2.7 Web Site References 73. OVERVIEW . 74. ARCHITECTURES CAPABLE OF BEING EVALUATED . 84.1 Point-to-point . 84.2 Bus 84.3 Star 94.4 Ring . 94.5 Mesh . 104.6 Combinations of the above . 115. EVALUATION CRITERIA FOR ARCHITECTURES . 115.1 Metrics . 115.1.
17、1 Eye diagrams 115.1.2 Optical/RF spectra 115.1.3 SNR . 115.1.4 OSNR 115.1.5 Noise Figure (NF) . 115.1.6 Q values 115.1.7 BER . 125.1.8 Jitter. 125.1.9 Power transients . 125.1.10 Interference between channels. 125.1.11 Spurious Free Dynamic Range (SFDR) . 125.1.12 Channel isolation. 125.1.13 Impair
18、ments within the same channel 125.1.14 Optical power/loss budget . 125.1.15 Latency 125.1.16 Data throughput 135.1.17 Goodput 135.1.18 Operational availability uptime . 135.1.19 Mean time to recovery (MTTR) . 135.1.20 Costs cost of equipment, weight, total lifecycle costs 135.2 Acceptance Criteria .
19、 136. METHODOLOGIES FOR APPLICATION OF MODELING AND SIMULATION 136.1 Business Case Analysis 146.1.1 Business case analysis model inputs . 15SAE AIR6006 Page 3 of 486.1.2 Applications . 156.1.3 Methodologies . 156.2 Network Planning 166.2.1 Network-level model inputs . 166.2.2 Applications - evaluati
20、on of network capacity . 176.2.3 Methodologies . 186.3 Discrete-Event Network Simulation 196.3.1 Network-level model inputs . 196.3.2 Applications . 196.3.3 Petri Net Formalism Methodology . 206.4 Loss Budget Analysis 206.4.1 Loss budget analysis model inputs . 216.4.2 Applications . 226.4.3 Methodo
21、logies . 226.5 Physical-Layer System-Level Simulation 236.5.1 Physical-layer model inputs 236.5.2 Applications . 256.5.3 Methodologies . 266.6 Operational Limits Analysis . 276.6.1 Model inputs 276.6.2 Applications . 276.6.3 Methodologies . 286.7 Failure Modeling 286.7.1 Failure model (Reliability B
22、lock Diagram) inputs . 286.7.2 Applications . 296.7.3 Methodologies . 296.8 Reliability, Maintainability and Supportability 296.8.1 Model inputs 306.8.2 Applications . 316.8.3 Methodologies . 317. TOOLS REQUIRED 327.1 Requirements 327.2 Available Tools (commercial or otherwise widely available) . 33
23、7.2.1 Business case analysis . 337.2.2 Network simulation 347.2.3 Power/loss budget analysis 357.2.4 Time-domain waveform-level system simulation 357.2.5 Tools that bridge the optical physical layer and network layer . 367.2.6 Reliability and required preventive maintenance simulation tools 378. NEE
24、DED TOOLS 388.1 Cost/benefit Analysis 388.2 Dynamic Transient Simulation of Network and Physical Components . 408.3 Bi-directional Fiber Optic Bus Modeling 419. DESIGNING A WDM NETWORK FOR AVIONICS APPLICATIONSUSING MODELING AND SIMULATION . 429.1 Overall description of design flow . 429.2 Network-L
- 1.请仔细阅读文档,确保文档完整性,对于不预览、不比对内容而直接下载带来的问题本站不予受理。
- 2.下载的文档,不会出现我们的网址水印。
- 3、该文档所得收入(下载+内容+预览)归上传者、原创作者;如果您是本文档原作者,请点此认领!既往收益都归您。
下载文档到电脑,查找使用更方便
10000 积分 0人已下载
下载 | 加入VIP,交流精品资源 |
- 配套讲稿:
如PPT文件的首页显示word图标,表示该PPT已包含配套word讲稿。双击word图标可打开word文档。
- 特殊限制:
部分文档作品中含有的国旗、国徽等图片,仅作为作品整体效果示例展示,禁止商用。设计者仅对作品中独创性部分享有著作权。
- 关 键 词:
- SAEAIR60062009MODELINGANDSIMULATIONCAPABILITIESFORAEROSPACEWDMLANAPPLICATIONS 航空航天 多路复用 WDM 局域网 LAN 应用软件

链接地址:http://www.mydoc123.com/p-1020341.html