BS ISO 21348-2007 Space environment (natural and artificial) Process for determining solar irradiances《航天环境(天然和人造) 太阳辐照度的测定过程》.pdf
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1、 g49g50g3g38g50g51g60g44g49g42g3g58g44g55g43g50g56g55g3g37g54g44g3g51g40g53g48g44g54g54g44g50g49g3g40g59g38g40g51g55g3g36g54g3g51g40g53g48g44g55g55g40g39g3g37g60g3g38g50g51g60g53g44g42g43g55g3g47g36g58for determining solar irradiancesICS 49.140Space environment (natural and artificial) Process BRITI
2、SH STANDARDBS ISO 21348:2007BS ISO 21348:2007This British Standard was published under the authority of the Standards Policy and Strategy Committee on 31 May 2007 BSI 2007ISBN 978 0 580 50833 2Amendments issued since publicationAmd. No. Date CommentsThis publication does not purport to include all t
3、he necessary provisions of a contract. Users are responsible for its correct application.Compliance with a British Standard cannot confer immunity from legal obligations.National forewordThis British Standard was published by BSI. It is the UK implementation of ISO 21348:2007.The UK participation in
4、 its preparation was entrusted by Technical Committee ACE/68, Space systems and operations, to Panel ACE/68/-/4, Space systems and operations Space environment (natural and artificial).A list of organizations represented on this committee can be obtained on request to its secretary.Reference numberI
5、SO 21348:2007(E)INTERNATIONAL STANDARD ISO21348First edition2007-05-01Space environment (natural and artificial) Process for determining solar irradiances Environnement spatial (naturel et artificiel) Procd de dtermination des irradiances solaires BS ISO 21348:2007ii iiiContents Page Foreword iv Int
6、roduction v 1 Scope . 1 2 Terms and definitions. 1 3 Symbols and abbreviated terms . 2 4 General concept and assumptions. 2 4.1 Solar irradiance representation. 2 4.2 Robustness of standard. 3 4.3 Process-based standard 3 4.4 Process-ownership of standard development. 3 4.5 Parallel activity of cert
7、ification to standard . 3 5 Solar irradiance product types 3 5.1 Rationale 3 5.2 Type designation 3 6 Solar irradiance spectral categories. 4 6.1 General. 4 6.2 Total Solar Irradiance . 4 6.3 Gamma-rays 4 6.4 X-rays . 5 6.5 Ultraviolet 5 6.6 Visible 6 6.7 Infrared. 6 6.8 Microwave 6 6.9 Radio 7 7 Co
8、mpliance criteria. 7 7.1 Rationale 7 7.2 Reporting . 8 7.3 Documenting . 8 7.4 Publishing 11 7.5 Archiving . 11 8 Certification . 11 Bibliography . 12 BS ISO 21348:2007iv Foreword ISO (the International Organization for Standardization) is a worldwide federation of national standards bodies (ISO mem
9、ber bodies). The work of preparing International Standards is normally carried out through ISO technical committees. Each member body interested in a subject for which a technical committee has been established has the right to be represented on that committee. International organizations, governmen
10、tal and non-governmental, in liaison with ISO, also take part in the work. ISO collaborates closely with the International Electrotechnical Commission (IEC) on all matters of electrotechnical standardization. International Standards are drafted in accordance with the rules given in the ISO/IEC Direc
11、tives, Part 2. The main task of technical committees is to prepare International Standards. Draft International Standards adopted by the technical committees are circulated to the member bodies for voting. Publication as an International Standard requires approval by at least 75 % of the member bodi
12、es casting a vote. Attention is drawn to the possibility that some of the elements of this document may be the subject of patent rights. ISO shall not be held responsible for identifying any or all such patent rights. ISO 21348 was prepared by Technical Committee ISO/TC 20, Aicraft and space vehicle
13、s, Subcommittee SC 14, Space systems and operations. BS ISO 21348:2007vIntroduction This International Standard provides guidelines for specifying the process of determining solar irradiances. Solar irradiances are reported through products such as measurement sets, reference spectra, empirical mode
14、ls, theoretical models and solar irradiance proxies or indices. These products are used in scientific and engineering applications to characterize within the natural space environment solar irradiances that are relevant to space systems and materials. Examples of applications using input solar irrad
15、iance energy include the determination of atmospheric densities for spacecraft orbit determination, attitude control and re-entry calculations, as well as for debris mitigation and collision avoidance activity. Direct and indirect pressure from solar irradiance upon spacecraft surfaces also affects
16、attitude control separately from atmospheric density effects. Solar irradiances are used to provide inputs for a) calculations of ionospheric parameters, b) photon-induced radiation effects, and c) radiative transfer modelling of planetary atmospheres. Input solar irradiance energy is used to charac
17、terize material properties related to spacecraft thermal control, including surface temperatures, reflectivity, absorption and degradation. Solar energy applications requiring a standard process for determining solar irradiance energy include solar cell power simulation, material degradation, and th
18、e development of lamps and filters for terrestrial solar simulators. A solar irradiance product certifies compliance with this process-based standard by following compliance criteria that are described in this International Standard. The compliance criteria in Clause 7 are based upon solar irradianc
19、e product types that are described in Clause 5 and solar irradiance spectral categories described in Clause 6. The method for certifying compliance of a solar irradiance product with this International Standard is provided in Clause 8. BS ISO 21348:2007blank1Space environment (natural and artificial
20、) Process for determining solar irradiances 1 Scope This International Standard specifies the process for determining solar irradiances and is applicable to measurement sets, reference spectra, empirical models, theoretical models, and solar irradiance proxies or indices that provide solar irradianc
21、e products representing parts or all of the solar electromagnetic spectrum. Its purpose is to create a standard method for specifying all solar irradiances for use by space systems and materials users. 2 Terms and definitions For the purposes of this document, the following terms and definitions app
22、ly. 2.1 astronomical unit ua AU unit of length approximately equal to the mean distance between the Sun and the Earth with a currently accepted value of (149 597 870 691 3) m See References 1 and 2. NOTE Distances between objects within the solar system are frequently expressed in terms of ua. The u
23、a or AU is a non-SI unit accepted for use with the International System and whose value in SI units is obtained experimentally. Its value is such that, when used to describe the motion of bodies in the solar system, the heliocentric gravitation constant is (0,017 202 098 95)2ua3d2, where one day (d)
24、 is 86 400 s (see Reference 3). 1 AU is slightly less than the average distance between the Earth and the Sun, since an AU is based on the radius of a Keplerian circular orbit of a point-mass having an orbital period, in days, of 2 /k, where k is the Gaussian gravitational constant and is (0,017 202
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