BS IEC 62396-1-2016 Process management for avionics Atmospheric radiation effects Accommodation of atmospheric radiation effects via single event effects within avionics electronic.pdf
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1、BSI Standards PublicationProcess management for avionics Atmospheric radiation effectsPart 1: Accommodation of atmospheric radiation effects via single event effects within avionics electronic equipmentBS IEC 62396-1:2016National forewordThis British Standard is the UK implementation of IEC 62396-1:
2、2016.It supersedes BS IEC 62396-1:2012 which is withdrawn.The UK participation in its preparation was entrusted to TechnicalCommittee GEL/107, Process management for avionics.A list of organizations represented on this committee can be obtained onrequest to its secretary.This publication does not pu
3、rport to include all the necessary provisions ofa contract. Users are responsible for its correct application. The British Standards Institution 2016.Published by BSI Standards Limited 2016ISBN 978 0 580 90359 5ICS 03.100.50; 31.020; 49.060Compliance with a British Standard cannot confer immunity fr
4、omlegal obligations.This British Standard was published under the authority of the Standards Policy and Strategy Committee on 31 January 2016.Amendments/corrigenda issued since publicationDate Text affectedBRITISH STANDARDBS IEC 62396-1:2016IEC 62396-1 Edition 2.0 2016-01 INTERNATIONAL STANDARD Proc
5、ess management for avionics Atmospheric radiation effects Part 1: Accommodation of atmospheric radiation effects via single event effects within avionics electronic equipment INTERNATIONAL ELECTROTECHNICAL COMMISSION ICS 03.100.50; 31.020; 49.060 ISBN 978-2-8322-3078-7 Registered trademark of the In
6、ternational Electrotechnical Commission Warning! Make sure that you obtained this publication from an authorized distributor. colourinsideBS IEC 62396-1:2016 2 IEC 62396-1:2016 IEC 2016 CONTENTS FOREWORD . 6 INTRODUCTION . 8 1 Scope 9 2 Normative references 9 3 Terms and definitions 9 4 Abbreviation
7、s and acronyms 18 5 Radiation environment of the atmosphere 21 5.1 Radiation generation . 21 5.2 Effect of secondary particles on avionics 21 5.3 Atmospheric neutrons . 21 5.3.1 General . 21 5.3.2 Atmospheric neutrons energy spectrum and SEE cross-sections . 22 5.3.3 Altitude variation of atmospheri
8、c neutrons . 24 5.3.4 Latitude variation of atmospheric neutrons . 25 5.3.5 Thermal neutrons within aircraft . 27 5.4 Secondary protons 27 5.5 Other particles 28 5.6 Solar enhancements . 29 5.7 High altitudes greater than 60 000 ft (18 290 m) . 29 6 Effects of atmospheric radiation on avionics 30 6.
9、1 Types of radiation effects 30 6.2 Single event effects (SEEs) 30 6.2.1 General . 30 6.2.2 Single event upset (SEU) . 31 6.2.3 Multiple bit upset (MBU) and multiple cell upset (MCU) 31 6.2.4 Single effect transients (SETs) 33 6.2.5 Single event latch-up (SEL) . 34 6.2.6 Single event functional inte
10、rrupt (SEFI) . 34 6.2.7 Single event burnout (SEB) . 34 6.2.8 Single event gate rupture (SEGR) 35 6.2.9 Single event induced hard error (SHE) . 35 6.2.10 SEE potential risks based on future technology . 35 6.3 Total ionising dose (TID) . 36 6.4 Displacement damage . 37 7 Guidance for system designs
11、. 37 7.1 Overview. 37 7.2 System design 40 7.3 Hardware considerations. 41 7.4 Electronic devices characterisation and control . 42 7.4.1 Rigour and discipline . 42 7.4.2 Level A systems 42 7.4.3 Level B 42 7.4.4 Level C 43 7.4.5 Levels D and E 43 8 Determination of avionics single event effects rat
12、es . 43 BS IEC 62396-1:2016IEC 62396-1:2016 IEC 2016 3 8.1 Main single event effects 43 8.2 Single event effects with lower event rates 44 8.2.1 Single event burnout (SEB) and single event gate rupture (SEGR) 44 8.2.2 Single event transient (SET) 44 8.2.3 Single event hard error (SHE) 45 8.2.4 Singl
13、e event latch-up (SEL) . 45 8.3 Single event effects with higher event rates Single event upset data 45 8.3.1 General . 45 8.3.2 SEU cross-section . 46 8.3.3 Proton and neutron beams for measuring SEU cross-sections . 46 8.3.4 SEU per bit cross-section trends in SRAMs . 50 8.3.5 SEU per bit cross-se
14、ction trends and other SEE in DRAMs 51 8.4 Calculating SEE rates in avionics 53 8.5 Calculation of availability of full redundancy 54 8.5.1 General . 54 8.5.2 SEU with mitigation and SET . 54 8.5.3 Firm errors and faults 55 9 Considerations for SEE compliance . 55 9.1 Compliance . 55 9.2 Confirm the
15、 radiation environment for the avionics application 55 9.3 Identify the system development assurance level 55 9.4 Assess preliminary electronic equipment design for SEE 55 9.4.1 Identify SEE-sensitive electronic components 55 9.4.2 Quantify SEE rates 55 9.5 Verify that the system development assuran
16、ce level requirements are met for SEE . 55 9.5.1 Combine SEE rates for the entire system . 55 9.5.2 Management of electronic components control and dependability 56 9.6 Corrective actions . 56 Annex A (informative) Thermal neutron assessment 57 Annex B (informative) Methods for calculating SEE rates
17、 in avionics electronics 58 B.1 Proposed in-the-loop system test Irradiating avionics LRU in neutron/proton beam, with output fed into aircraft simulation computer . 58 B.2 Irradiating avionics LRU in a neutron/proton beam 58 B.3 Utilising existing SEE data for specific electronic components on LRU
18、59 B.3.1 Neutron proton data . 59 B.3.2 Heavy ion data 60 B.4 Applying generic SEE data to all electronic components on LRU . 61 B.5 Component level laser simulation of single event effects . 62 B.6 Determination of SEU rate from service monitoring . 63 Annex C (informative) Review of test facility
19、availability . 65 C.1 Facilities in the USA and Canada 65 C.1.1 Neutron facilities 65 C.1.2 Proton facilities 66 C.1.3 Laser facilities . 68 C.2 Facilities in Europe . 69 C.2.1 Neutron facilities 69 C.2.2 Proton facilities 71 C.2.3 Laser facilities . 72 BS IEC 62396-1:2016 4 IEC 62396-1:2016 IEC 201
20、6 Annex D (informative) Tabular description of variation of atmospheric neutron flux with altitude and latitude . 73 Annex E (informative) Consideration of effects at higher altitudes 75 Annex F (informative) Prediction of SEE rates for ions . 80 Annex G (informative) Late news as of 2014 on SEE cro
21、ss-sections applicable to the atmospheric neutron environment . 83 G.1 SEE cross-sections key to SEE rate calculations 83 G.2 Limitations in compiling SEE cross-section data 83 G.3 Cross-section measurements (figures with data from public literature) 84 G.4 Conservative estimates of SEE cross-sectio
22、n data 84 G.4.1 General . 84 G.4.2 Single event upset (SEU) . 85 G.4.3 Multiple cell upset (MCU) . 87 G.4.4 Single event functional interrupt (SEFI) . 88 G.4.5 Single event latch-up (SEL) . 89 G.4.6 Single event transient (SET) 91 G.4.7 Single event burnout (SEB) . 92 Annex H (informative) Calculati
23、ng SEE rates from non-white (non-atmospheric like) neutron cross-sections for small geometry electronic components 94 H.1 Energy thresholds . 94 H.2 Nominal neutron fluxes . 94 H.3 Calculating event rates using non-atmospheric like cross-sections for small geometry electronic devices 95 Bibliography
24、 96 Figure 1 Energy spectrum of atmospheric neutrons at 40 000 ft (12 160 m), latitude 45 22 Figure 2 Model of the atmospheric neutron flux variation with altitude (see Annex D) 25 Figure 3 Distribution of vertical rigidity cut-offs around the world 26 Figure 4 Model of atmospheric neutron flux vari
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