ITU-T SERIES G SUPP 47-2012 General aspects of optical fibres and cables (Study Group 15)《光学纤维和电缆的一般方面研究组15》.pdf

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1、 International Telecommunication Union ITU-T Series GTELECOMMUNICATION STANDARDIZATION SECTOR OF ITU Supplement 47(09/2012) SERIES G: TRANSMISSION SYSTEMS AND MEDIA, DIGITAL SYSTEMS AND NETWORKS General aspects of optical fibres and cables ITU-T G-series Recommendations Supplement 47 ITU-T G-SERIES

2、RECOMMENDATIONS TRANSMISSION SYSTEMS AND MEDIA, DIGITAL SYSTEMS AND NETWORKS INTERNATIONAL TELEPHONE CONNECTIONS AND CIRCUITS G.100G.199 GENERAL CHARACTERISTICS COMMON TO ALL ANALOGUE CARRIER-TRANSMISSION SYSTEMS G.200G.299 INDIVIDUAL CHARACTERISTICS OF INTERNATIONAL CARRIER TELEPHONE SYSTEMS ON MET

3、ALLIC LINES G.300G.399 GENERAL CHARACTERISTICS OF INTERNATIONAL CARRIER TELEPHONE SYSTEMS ON RADIO-RELAY OR SATELLITE LINKS AND INTERCONNECTION WITH METALLIC LINES G.400G.449 COORDINATION OF RADIOTELEPHONY AND LINE TELEPHONY G.450G.499 TRANSMISSION MEDIA AND OPTICAL SYSTEMS CHARACTERISTICS G.600G.69

4、9 DIGITAL TERMINAL EQUIPMENTS G.700G.799 DIGITAL NETWORKS G.800G.899 DIGITAL SECTIONS AND DIGITAL LINE SYSTEM G.900G.999 MULTIMEDIA QUALITY OF SERVICE AND PERFORMANCE GENERIC AND USER-RELATED ASPECTS G.1000G.1999 TRANSMISSION MEDIA CHARACTERISTICS G.6000G.6999 DATA OVER TRANSPORT GENERIC ASPECTS G.7

5、000G.7999 PACKET OVER TRANSPORT ASPECTS G.8000G.8999 ACCESS NETWORKS G.9000G.9999 For further details, please refer to the list of ITU-T Recommendations. G series Supplement 47 (09/2012) i Supplement 47 to ITU-T G-series Recommendations General aspects of optical fibres and cables Summary Supplement

6、 47 to ITU-T G-series Recommendations provides information on the general transmission characteristics of single-mode optical fibres and cables specified in the ITU-T G.65x-series of Recommendations related to the practical use condition. It covers the environmental and length-related characteristic

7、 of ITU-T G.65x-series optical fibres and cables. The fibre material-related characteristics are also described in Appendix I. Version 2 of this supplement introduces the general aspect of multi-path interference (MPI) in an optical fibre in order to support newly established test methods for cohere

8、nt MPI which can be found in Appendix IV of Recommendation ITU-T G.650.1. History Edition Recommendation Approval Study Group 1.0 ITU-T G Suppl. 47 2009-10-09 15 2.0 ITU-T G Suppl. 47 2012-09-21 15 ii G series Supplement 47 (09/2012) FOREWORD The International Telecommunication Union (ITU) is the Un

9、ited Nations specialized agency in the field of telecommunications, information and communication technologies (ICTs). The ITU Telecommunication Standardization Sector (ITU-T) is a permanent organ of ITU. ITU-T is responsible for studying technical, operating and tariff questions and issuing Recomme

10、ndations on them with a view to standardizing telecommunications on a worldwide basis. The World Telecommunication Standardization Assembly (WTSA), which meets every four years, establishes the topics for study by the ITU-T study groups which, in turn, produce Recommendations on these topics. The ap

11、proval of ITU-T Recommendations is covered by the procedure laid down in WTSA Resolution 1. In some areas of information technology which fall within ITU-Ts purview, the necessary standards are prepared on a collaborative basis with ISO and IEC. NOTE In this publication, the expression “Administrati

12、on“ is used for conciseness to indicate both a telecommunication administration and a recognized operating agency. Compliance with this publication is voluntary. However, the publication may contain certain mandatory provisions (to ensure, e.g., interoperability or applicability) and compliance with

13、 the publication is achieved when all of these mandatory provisions are met. The words “shall“ or some other obligatory language such as “must“ and the negative equivalents are used to express requirements. The use of such words does not suggest that compliance with the publication is required of an

14、y party. INTELLECTUAL PROPERTY RIGHTS ITU draws attention to the possibility that the practice or implementation of this publication may involve the use of a claimed Intellectual Property Right. ITU takes no position concerning the evidence, validity or applicability of claimed Intellectual Property

15、 Rights, whether asserted by ITU members or others outside of the publication development process. As of the date of approval of this publication, ITU had not received notice of intellectual property, protected by patents, which may be required to implement this publication. However, implementers ar

16、e cautioned that this may not represent the latest information and are therefore strongly urged to consult the TSB patent database at http:/www.itu.int/ITU-T/ipr/. ITU 2013 All rights reserved. No part of this publication may be reproduced, by any means whatsoever, without the prior written permissi

17、on of ITU. G series Supplement 47 (09/2012) iii Table of Contents Page 1 Scope 1 2 References. 1 3 Definitions 4 4 Abbreviations and acronyms 4 5 Environmental characteristics of optical fibre and cable 5 5.1 Temperature dependence of chromatic dispersion . 5 5.2 Temperature dependence of polarizati

18、on mode dispersion 5 6 Length-related characteristics of optical fibre and cable 6 6.1 Cut-off wavelength . 6 6.2 SBS power rating 8 6.3 FWM efficiency 9 Appendix I Intrinsic material characteristics of optical fibre . 11 I.1 Rayleigh scattering . 11 I.2 Material dispersion . 11 I.3 Non-linear refra

19、ctive index . 12 I.4 Raman gain coefficient . 12 G series Supplement 47 (09/2012) 1 Supplement 47 to ITU-T G-series Recommendations General aspects of optical fibres and cables 1 Scope The purpose of this supplement is to understand the transmission properties of the cabled single-mode fibres during

20、 use, and to promote the proper and effective use of ITU-T G.65x-series Recommendations for single-mode fibres and cables. In particular, when upgrading existing systems to high-speed transmission systems based on the installed transmission line and/or designing a new transmission line for a high-sp

21、eed and large capacity transmission system, the system operators and designers should be provided with useful information that is not shown in the fibre Recommendations. This supplement covers the general transmission characteristics of single-mode optical fibres and cables related to the practical

22、use conditions. This supplement contains: environmental characteristics of optical fibres and cables, length-related characteristics of optical fibres and cables. In Appendix I, the optical fibre characteristics related to the fibre material such as Rayleigh scattering and material dispersion are de

23、scribed for reference. This supplement will provide useful guidelines when designing the transmission lines and/or systems. Moreover, it should be updated as and when optical fibre technologies are updated. 2 References ITU-T G.650.1 Recommendation ITU-T G.650.1 (2010), Definitions and test methods

24、for linear, deterministic attributes of single-mode fibre and cable. ITU-T G.650.2 Recommendation ITU-T G.650.2 (2007), Definitions and test methods for statistical and non-linear related attributes of single-mode fibre and cable. ITU-T G.652 Recommendation ITU-T G.652 (2009), Characteristics of a s

25、ingle-mode optical fibre and cable. ITU-T G.653 Recommendation ITU-T G.653 (2010), Characteristics of a dispersion-shifted single-mode optical fibre and cable. ITU-T G.654 Recommendation ITU-T G.654 (2010), Characteristics of a cut-off shifted single-mode optical fibre and cable. ITU-T G.655 Recomme

26、ndation ITU-T G.655 (2009), Characteristics of a non-zero dispersion-shifted single-mode optical fibre and cable. ITU-T G.656 Recommendation ITU-T G.656 (2010), Characteristics of a fibre and cable with non-zero dispersion for wideband optical transport. ITU-T G.657 Recommendation ITU-T G.657 (2012)

27、, Characteristics of a bending-loss insensitive single-mode optical fibre and cable for the access network. ITU-T G.663 Recommendation ITU-T G.663 (2011), Application-related aspects of optical amplifier devices and subsystems. ITU-T G.691 Recommendation ITU-T G.691 (2006), Optical interfaces for si

28、ngle channel STM-64 and other SDH systems with optical amplifiers. ITU-T G.959.1 Recommendation ITU-T G.959.1 (2012), Optical transport network physical layer interfaces. 2 G series Supplement 47 (09/2012) Agrawal1 Agrawal, G.P. (2001), Nonlinear Fiber Optics, 3rd ed. Academic Press. Agrawal2 Agrawa

29、l, G.P. (2001), Applications of Nonlinear Fiber Optics, Academic Press. Agrawal3 Agrawal, G.P. (2002), Fiber-Optic Communication Systems, 3rd edition, Wiley Interscience. Anderson Anderson, W.T., et al. (1984), Length dependence of the effective cutoff wavelength in single-mode fibers, Journal of Li

30、ghtwave Technology, Vol. 2, No. 2, pp. 238-242, IEEE. Andre Andre, P.S., et al. (2003), Effect of temperature on the single mode fibers chromatic dispersion, Microwave and Optoelectronics Conference, 2003. IMOC 2003. Proceedings of the 2003 SBMO/IEEE MTT-S International, pp. 231-234, IEEE. Boskovic

31、Boskovic, A., et al. (1996), Direct continuous-wave measurement of n2in various types of telecommunication fiber at 1.55 m, Optics Letters, Vol. 21, No. 24, pp. 1966-1968, OSA. Brodsky Brodsky, M., et al. (2006), Polarization Mode Dispersion of Installed Fibers, Journal of Lightwave Technology, Vol.

32、 24, No. 12, pp. 4584-4599, IEEE. Cameron Cameron, J., et al. (1998), Time evolution of polarization mode dispersion in optical fibers, Photonics Technology Letters, Vol. 10, No. 9, pp. 1265-1267, IEEE. Davey Davey, S.T., et al. (1989), Optical gain spectrum of GeO2-SiO2Raman fibre amplifiers, Optoe

33、lectronics, IEE Proceedings J, Vol. 136, pp. 301-306. Fleming Fleming, J.W. (1984), Dispersion in GeO2-SiO2glasses, Applied Optics, Vol. 23, No. 24, p. 4486-4493, OSA. Fludger Fludger, C.R.S and Mears, R.J., (2001), Electrical measurements of multipath interference in distributed Raman amplifiers, J

34、ournal of Lightwave Technology Vol. 19, No. 4, pp. 536-545, IEEE. Fukai1 Fukai, C., et al., (2010), Relationship between optical wiring conditions and MPI degradation, Optical Fiber Communication (OFC), collocated National Fiber Optic Engineers Conference, (OFC/NFOEC), IEEE. Fukai2 Fukai, C., et al.

35、 (2004), Effective Raman gain characteristics in germanium- and fluorine-doped optical fibers, Optics Letters, Vol. 29, No. 6, pp. 545-547, OSA. Geittner Geittner, P., et al. (1989), Intrinsic scattering and absorption losses of Ge- and F-doped optical fibres prepared by PCVD, Electronics Letters, V

36、ol. 25, No. 7, pp. 436-437, IEE. Gisin Gisin, N., et al. (1996), How accurately can one measure a statistical quantity like polarization-mode dispersion, Photonics Technology Letters, Vol. 8, No. 12, pp. 1671-1673, IEEE. Hamp Hamp, M.J., et al. (2002), Investigation into the temperature dependence o

37、f chromatic dispersion in optical fiber, Photonics Technology Letters, Vol. 14, No. 11, pp. 1524-1526, IEEE. Harris Harris, D., et al. (2004), Temperature dependence of wavelength-averaged DGD on different buried fibers, Lasers and Electro-Optics Society, LEOS, pp. 84-85, IEEE. G series Supplement 4

38、7 (09/2012) 3 Hatton Hatton, W.H., et al. (1986), Temperature dependence of chromatic dispersion in single mode fibers, Journal of Lightwave Technology, Vol. 4, No. 10, pp. 1552-1555, IEEE. Hill Hill, K.O., Johnson, D.C., Kawasaki, B.S., and MacDonald, R.I. (1978), cw three-wave mixing in single-mod

39、e optical fibers, Journal of Applied Physics, Vol. 49, No. 10, pp. 5098-5106, AIP. Inoue1 Inoue, K. (1992), Four-wave mixing in an optical fiber in the zero-dispersion wavelength region, Journal of Lightwave Technology, Vol. 10, No. 11, pp. 1553-1561, IEEE. Inoue2 Inoue, K., and Toba, H. (1995), Fib

40、er four-wave mixing in multi-amplifier systems with nonuniform chromatic dispersion, Journal of Lightwave Technology, Vol. 13, No. 1, pp. 88-93, IEEE. Kato1 Kato, T., et al. (2000), Temperature dependence of chromatic dispersion in various types of optical fiber, Optics Letters, Vol. 25, No. 16, pp.

41、 1156-1158, OSA. Kato2 Kato, T. (1995), Estimation of nonlinear refractive index in various silica-based glasses for optical fibers, Optics Letters, Vol. 20, No. 22, pp. 2279-2281, OSA. Kitayama Kitayama, K., et al. (1984), Length dependence of effective cutoff wavelength in single-mode fibers, Jour

42、nal of Lightwave Technology, Vol. 2, No. 5, pp. 629-634, IEEE. Kobayashi Kobayashi, S., Shibata, S., Shibata, N., and Izawa, T. (1977), Refractive-index dispersion of doped fused silica, Proceedings of IOOC77 (Integrated Optics and Optical fibre Communication), pp. 309-312. Koch Koch, F., et al. (20

43、01), Broadband Raman gain characterisation in various optical fibres, Electronics Letters, Vol. 37, No. 24, pp. 1437-1439, IEE. Manolescu Manolescu, G., et al. (2005), Large spectral range Raman gain prediction for telecommunication glass fibres, Glass Technology, Vol. 46, No. 2, pp. 85-88. Montmori

44、llon Montmorillon, L.-A., et al. (2011), Cutoff mechanisms in Bend-Insensitive Single-Mode Fibers, Optical Fiber Communication Conference and Exposition (OFC/NFOEC), pp. 1-3, IEEE. Mao Mao, X.P., et al. (1992), Stimulated Brillouin threshold dependence on fiber type and uniformity,Photonics Technolo

45、gy Letters, Vol. 4, No. 1, pp. 66-69, IEEE. Marcuse Marcuse, D., et al. (1991), Effect of fiber nonlinearity on long distance transmission, Journal of Lightwave Technology, Vol. 9, No. 1, pp. 121-128, IEEE. Nagayama Nagayama, K., et al. (2002), Ultra-low-loss (0.1484 dB/km) pure silica core fibre an

46、d extension of transmission distance, Electronics Letters, Vol. 38, No. 20, pp. 1168-1169, IEE. Nakajima Nakajima, K., et al. (2002), Dopant dependence of effective nonlinear refractive index in GeO2-and F-doped core single-mode fibers, Photonics Technology Letters, Vol. 14, No. 4, pp. 492-494, IEEE

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48、amental optical attenuation limits in the liquid and glassy state with application of fiber optical waveguide materials, Applied Physical Letters, Vol. 22, No. 10, pp. 527-529. Poggiolini Poggiolini, P., et al. (2006), Long-term PMD characterization of a Metropolitan G.652 fiber plant, Journal of Li

49、ghtwave Technology, Vol. 24, No. 11, pp. 4022-4029, IEEE. Shah Shah, V., et al. (1989), Curvature sensitivity study of the cutoff region of single-mode fibers exhibiting mode coupling effects, Proc. ECOC89, Gothenburg, Sweden, pp. 498-501. Shibata1 Shibata, N., Baun, R.P., and Waarts, R.G. (1987), Phase-mismatch dependence of efficiency of wave generation through four-wave mixing in a single-mode optical fi

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