版权说明:本文档由用户提供并上传,收益归属内容提供方,若内容存在侵权,请进行举报或认领
文档简介
FiberOpticNetworkDesignX.Wu,M.Y.Li,C.S.YanDept.ofOpt.Engr.,ZJU2011Class9&10
FutureOpticalAmplifierDesignofHybridAmplifierGainOptimizationGainBalanceNoiseFigureExerciseWhat’stheNextforOpticalAmplifiers?IntelligentEDFAsEDFAisbacktonormalAmplifiersinMidlife(midlifecrisis?)Fromwiki……Midlifecrisisisatermcoinedin1965byElliottJaquesandusedinWesternsocietiestodescribeaperiodofdramaticself-doubtthatisfeltbysomeindividualsinthe"middleyears"ormiddleageoflife,asaresultofsensingthepassingoftheirownyouthandtheimminenceoftheiroldage.Sometimes,acrisiscanbetriggeredbytransitionsexperiencedintheseyears,suchasextramaritalaffairs,andropauseormenopause,thedeathofparentsorothercausesofgrief,unemploymentorunderemployment,realizingthatajoborcareerishatedbutnotknowinghowelsetoearnanequivalentliving,orchildrenleavinghome.Theresultmaybeadesiretomakesignificantchangesincoreaspectsofday-to-daylifeorsituation,suchasincareer,work-lifebalance,marriage,romanticrelationships,largeexpenditures,orphysicalappearance.CoreNetworkEvolutionCommoditizationofAmplifiersReconfigurableNetworksneedFastGainControlHybridAmplifiersPartICombiningRamanAmplificationwithAmplificationbyEDFAinLonghaulWDMSystemsOutlineOverviewofRamanandEDFAscombinedamplificationHybridamplifierissuesComparisonofdifferentamplifiedsystemconfigurationsGainbalancebetweenRamanandEDFAsOverviewofRamanandEDFAsCombinedAmplificationWhyuseHybridAmplifiersEnlargesthetransmissioncapacityofbroadbandsystems“Upgrading”theexistingsystemsbuiltwithEDFAamplifierswithbroader/flatterbandwidthAbilitytocarrymorewavelength-multiplexedopticalchannelsatgivenspacingamongthechannelsRamanamplificationgivesflexibilitytotheselectedbandamplificationLesssensitivetononlineareffects–systems’point-of-viewBasicIdeaofHybridAmplifiersPrincipleofworking/OperatingModeFlattenEDFAgainbyusingRamangainImprovegainperformanceatlongersignalwavelengthsTypicalConfigurationsRamanAmplifierssetupindifferentconfigurations:DiscreteDistributedbackward-,forward-andbidirectionalpumpednumeroustypesoffibers(DSF,DCFtobeusedasSRSactivemedia)EDFAssetupconsiders:
seriesorparallelconfigurationsingleormultiplefiberstagesC-andL-bandregionsHybridAmplifiersIssuesTheHybridAmplifiersstudiesareconcernedwith:maximizingthespanlengthand/orminimizingtheimpairmentsoffibernonlinearitiesenhancingtheEDFAs’bandwidthdesigning“optimal”hybridamplifiersinordertoobtainflatandwidestoutputgainperformanceComparingDifferentSystemConfigurationResultsObtainedAfterComparingthe3TypesofSystemsConsideringin-lineandpre-amplificationfunctions:Long-haulEDFA-onlysystemsarelimitedbyOSNRandNLeffectsRaman-onlysystemstendtobelimitedbyareductionofSNRcausedbydoubleRayleighbackscatteringCombinationofdistributedRamanandEDFAspresentbetterperformancethanconventionalEDFA-onlysystemsRamancomplementEDFAsinterrestrialhighcapacitylonghaulapplicationsOptimizingHybridAmplifierinaSystemGainBalanceBetweenRamanandEDFAsComplexproblemwithseveraldegreesoffreedom-optimizationtechniqueMainconsiderationstodeterminetheoptimumgainbalancebetweenRamanandEDFAsMostimportantparametersOSNR,gain-flatness,bandwidthnumberofchannels,numberofspans,MaximumtransmissioncapacityFocusingonExtendingtheBandwidthIncreasethenumberoftransmittedchannelsGainflatnessOptimizethehybridamplifierperformanceGain,NF,OSNRTechniquesthatEnlargeFlattenedGain-Bandwidthof“Discrete”FiberAmplifiersI.Newhostmaterialsfluoride-andtelluride-basedEDFAsthulium-dopedfiberamplifierII.UsingEDFAswithGEQ+discreteRamanamplifierIII.Differentamplifierconfigurationstwo-gainbandparallel/seriesconfiguration–multiplefiberstagegain-equalizing(GEQ)filtersTypicalValuesObservedinHybridAmplifiersBandwidth>40nmGain15–25dBGainRipple<11.3%NoiseFigure<6dBOSNR>32dBExamplesofWideFlattenedBandwidthforDiscreteRaman/HybridFiberAmplifierPartIIDesignHybridAmplifierOutline1.Modelsrequiredinthesimulations2.HybridamplifierdesignedtoLAN3.Gainandnoisefigureresults4.Ahybridamplifiersetupinmultiplefiberstages5.CharacterizationandperformanceinasystemModelsRequiredintheSimulationsEDFAModeling:Solverateandpropagatingequationsforpump,signal,andASE,consideringnon-lineareffectspresentinthefiberpropagation.RamanAmplifierModeling:Solvetherateandpropagationequationsforpump,signal,andASEintheRamanfiberamplifierHybridAmplifiersDesignedforLocalAreaNetworks*LANandMANapplications -Gave~20dB -Netgain>10dBDistributedRamanfiberamplifierinserieswitharemotelypumpeddiscreteEDFAC-bandandL-BandWDMsignalinputOptimizeddesignparameters*Karaseketal.,IEEProc.-Optoelectron.Vol.148,No.3,p.150,HybridAmplifierLayout-copropagatingPumpingPowerSettingInputSignalsSettingEvaluatingResultsintheC-bandWavelengthRangeRamanOutputSpectraTotalPowersalongtheEDFAResultsinL-bandWavelengthRangeIn-classExerciseDesignahybridamptoobservegainbalanceaswellasnoisefigure/OSNRequalizationCounter-propagationpumpingv.s.co-propagationpumpingParameters:PumpingwavelengthPumplaserpositionPumpingpowerFiberlength,EffectiveareaRamanamplocationResidualpowerpumpingforEDFA->reduce#oflasersFutureAmplifier:
ExtendingfromC+LtoS,EbandOutlineStandardizationactivitiesinopticalamplifiersTrendsinopticalamplifiersCurrentstandardizationissuesOpticalamplifiers
-Transparencyofphysicallayer-Specificparameters:
Outputpower,Gain,Noisefigure,…-Independentonsignalformats,bitrate,etc-
NRZ,RZ,duobinary,…
OTU1,OTU2,…CooperationwithIECIECrole Selectionofspecificparameters Definitionoftheparameters Testmethodoftheparameters
opticalpower,gain,noisefigure,etc..ITU-Trole
RequirementfromtheviewpointofopticalsystemsbasedonIECdefinitionandtestmethodCooperationwithIEC-SC86C-WG3inRec.G.661Table1/G.661–Recommendedtestmethodsforparametersdefinedinclause4GroupoftestparametersParametersof
clause4involvedTestMethod(TM)–IECBasic
SpecificationnumberGainparameters4.1to4.8,4.10,4.32,4.39,4.4061290-1-1:OpticalspectrumanalyserTM
61290-1-2:ElectricalspectrumanalyserTM
61290-1-3:OpticalpowermeterTMOpticalpowerparameters4.9,4.11,4.12,4.25,4.28,4.2961290-2-1:OpticalspectrumanalyserTM
61290-2-2:ElectricalspectrumanalyserTM
61290-2-3:OpticalpowermeterTMNoiseparameters4.13to4.15,4.33to4.3661290-3-1:OpticalspectrumanalyserTM
61290-3-2:ElectricalspectrumanalyserTM
61290-3-3:PulseopticalTM(understudy)Reflectanceparameters4.16to4.19,4.3861290-5-1:OpticalspectrumanalyserTM
61290-5-2:ElectricalspectrumanalyserTM
61290-5-3:ElectricalspectrumanalyserTM(forreflectancetolerance)Pumpleakageparameters4.20,4.2161290-6-1:OpticaldemultiplexerTMInsertionlossparameters4.22,4.23,4.3761290-7-1:FilteredopticalpowermeterTMRecommendationsandpublicationsforopticalamplifiersITU-TSG15Recommendations G.661:DefinitionandtestmethodsfortherelevantgenericparametersofOpticalAmplifiers G.662:GenericcharacteristicsofOpticalAmplifierdevicesandsub-systems G.663:Application-relatedaspectsofOpticalAmplifierdevicesandsub-systemsandcomprehensiveAppendixontransmission-relatedaspectsIECTC86SC86CPublications Genericspecification Testmethod PerformancespecificationtemplateTrendsinopticalamplifiers
-EDFAvs.Raman-EDFA:Maturetechnology
Newmaterials(Fluoride,Tellurite) Newdopant(Pr,Tm)~PDFA,TDFA
toexhibitbroaderandflattergainRamanamplifier:Advantageinlong-haul(LH)space
SNimprovementbydistributedRaman Flatgainbymultiplepumpwavelength>> EfficiencymeritofEDFAisoffsetbyrequiredgain
flattening.
>> RamansystemsarechallengingEDFAstrongholdinLH
applications.OpticalamplifiertypeRareearth-DopedFiberAmplifiers Erbium-DopedFiberAmplifiers(EDFA) :C,L-Band
Thulium-DopedFiberAmplifiers(TDFA) :S-Band Praseodymium-DopedFiberAmplifiers(PDFA) :O-BandFiberRamanAmplifiers DiscreteRamanAmplifiers DistributedRamanAmplifiers(DRA)SemiconductorOpticalAmplifiers(SOA) conventionalSOA GC-SOA(Gain-ClampedSOA) LOA(LinearOpticalAmplifier)SEEFIRETechnicalWorkshop–Sofia,Bulgaria,14-15
July2005
AmplifierExamplesEDFASOARamanOptical
FibreAmplifiersActiveenvironment–specialfibredopedwithoneormorerareearthelement(Er,Nd,Pr,Tm,…orcombinationEr/Yb,Tm/Yb,..)PDFAPrdoped,suitablefor(1280-1340nm)G>30dB,Pout>16dBm,NF<7dBTDFATmdoped,suitablefor(1440-1520nm)G>30dB,Pout>20dBm,NF<7dBErbium-DopedFiberAmplifiers
CharacteristicsMostwidespreadintelecommunicationsSuitableforCband(lowestfiberattenuation)commonsilicaglassAdvantagesOperatingrangein1520-1610nmG>45dB,Pout>37dBm,NFin<3.5,7>dBMulti-channelcrosstalkverylowPolarizationindependentDisadvantagesNotsmalldevices,cannotbeintegratedwithothersemiconductorsGainspectrumnotinherentlyflatRamanAmplifiers
CharacteristicsBasedonsimulatedRamanscattering,activeenvironment–common(non-doped)fiberG
in<10,15>
dB,Pout>30dBm,NF<1dBAdvantagesUsablein1250-1650nmregionsBandwithcanbetailored(1pump35nm,morepumpupto90nm)LowerNFthanEDFAHighprocessefficiencyinDCF(loss->gain)componentDisadvantagesHigherinterchannelcrosstalkthanEDFAHighpumppowers(safetyissues)SemiconductorOpticalAmplifiersBasedonconventionallaserprinciple,activeenvironment–waveguideregionsandwichedbetweennandpregionsG>25dB,Pout>15dBm,NFin<7,10>dBAdvantagesUsablein13101550nmregionsWideband(40-80nm)Smallcompactsemiconductors,easytointegrateDisadvantagesHigherNFthanEDFAHigherinterchannelcrosstalkthanEDFAPolarizationsensitiveSpectralusabilityofAmplifiersOSCLAmplifiersfor(D)WDMIEDFA–needsgainflatteningGlasscomposition(F,Teglasshost)SinglestageEDFA,silicahost:bandwidth15nmSinglestageEDFA,fluoridehost:bandwidth25nmEqualizersTwostage,silicaorfluoridehost,nogainflattening:30nmTwostage,silicahost,gainflattening:50nmTwostage,telluritehost,gainflattening:80nmHybridOAMulti-arm-twobandoperation,silicahost:85nmAmplifiersfor(D)WDMIIHybridEDFA/RamanBandwidthcanbetailored~80nmLowerNFthanEDFAseparate!!OSNRimprovement
Rareearth(Er,Tm,Pr)-DopedFiberAmplifiersGainband:
Er(C,L-Band),Tm(S-Band),Pr(O-Band)
76nm(1532-1608nm)recordgainbandwidthinsinglebandconfiguration[M.Yamadaetal.,OFC’98PD].
-Flatgain:21dB,Noisefigure:7dB
-Gainequalizer:twoMZfilterswithFSRof32and120nmSemiconductorOpticalAmplifiersGainband:
1.3~1.7um(tunablebyInGaAsPcomposition)
Maximumgainbandwidth:~100nmConventionalSOA SufferingfromgainrippleandXGM-inducedcrosstalkoriginated fromgaindynamics(relaxationoscillationetc.) ->Notapplicabletohigh-speedorwide-bandsignalsGC-SOA(Gain-clampedSOA): Gainstabilizationbyanadditionallasingoscillationwhichlocksthe carrierdensity. >Excellentlinearity(lowXGM) >>high-speedorwide-bandapplicationsFiberRamanAmplifiersGainband:1.3~1.7um(tunablebypumpwavelength)132nmrecordgainbandwidth
indoublebandconfigurationhasbeenachieved[H.Masudaetal.,ECOC’99].
-CombinationofDistributedRamanamplifiers(DRA)anddiscreteRaman -Two-gain-bandRamanamplifierGainprofileofhybridDRA132nmRecordGainBandwidthinDouble-BandConfiguration-2520151050-5-10Gain(dB)1650160015501500Wavelength(nm)91nmdistributedgaindiscretegaintotalgainfiberloss41nmHirojiMasuda’swork(NTT)HirojiMasuda’swork(NTT)Type2Type4HirojiMasuda’swork(NTT,2000)BERperformanceoftheType-2testedina9x2.5Gb/sWDMThesignalpowerlaunched5dBm/total=-4.5dBm/channel.ErrorfreeoperationwithBERsunder10-11
3-dBgain-bandwidthsofupto82.
温馨提示
- 1. 本站所有资源如无特殊说明,都需要本地电脑安装OFFICE2007和PDF阅读器。图纸软件为CAD,CAXA,PROE,UG,SolidWorks等.压缩文件请下载最新的WinRAR软件解压。
- 2. 本站的文档不包含任何第三方提供的附件图纸等,如果需要附件,请联系上传者。文件的所有权益归上传用户所有。
- 3. 本站RAR压缩包中若带图纸,网页内容里面会有图纸预览,若没有图纸预览就没有图纸。
- 4. 未经权益所有人同意不得将文件中的内容挪作商业或盈利用途。
- 5. 人人文库网仅提供信息存储空间,仅对用户上传内容的表现方式做保护处理,对用户上传分享的文档内容本身不做任何修改或编辑,并不能对任何下载内容负责。
- 6. 下载文件中如有侵权或不适当内容,请与我们联系,我们立即纠正。
- 7. 本站不保证下载资源的准确性、安全性和完整性, 同时也不承担用户因使用这些下载资源对自己和他人造成任何形式的伤害或损失。
最新文档
- 会计合同管理方法
- 回购合同适用的地方
- 车辆维修服保养年生服务合同
- 车间安全标识合同名称
- 2024年度电影器材租赁合同
- 二零二四年度车位设计合同:停车场车位设计咨询协议
- 二零二四年度技术开发合同技术成果归属
- 二零二四年度知识产权许可合同专利技术许可及使用协议
- 二零二四年度车位代理销售公司与车位运营商车位代理销售合同
- 2024年度健身房经营管理合同
- 《质量守恒定律》复习课教案(共5页)
- 彩钢瓦屋面施工组织
- 离散数学第13章群
- 开封市黑臭水体治理方案
- 安全顾问岗位职责
- 液碱的测定方法
- 增值税专用发票清单模板
- 化学工程专业毕业设计聚丁二烯生产设计
- 环境化学复习题库(含答案)
- 部队保密工作心得体会最新三篇
- 气象信息网络传输应急预案
评论
0/150
提交评论