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FEMFAT LAB 2015 版 VI 新增附加信号功能解析

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摘要:

这份文档是 FEMFAT LAB 2015 版虚拟迭代(VI)新增附加信号输入通道功能的技术解析。核心介绍在整车四轮台架(4 Poster)虚拟迭代中,可导入 WFT 等实测外部信号作为附加输入,与迭代驱动信号联合仿真。功能支持多通道加载、增益调整、样条 ID 匹配、响应文件自动滤波,信号可从首次迭代或末次驱动加入,流程全自动化集成。以整车载荷迭代为例,附加转向力矩、轮心力等信号后,仿真结果与实测更吻合,提升疲劳分析精度,不影响原有模块功能,于 2015 年底正式发布。


New Feature  Applying additional Signals during VI Process

Introduction
image.png

· VI

· Using additional signals

        - Input channels

        - Not updated by VI

        - From beginning or additional to last drive

· Process integrated and automated in FEMFAT LAB vi

· Software release end of 2015

New feature-additional input channels                          

New folder

· Additional evaluation

· No change in function of other folders

image.png

Data of additional signals

· Different file formats possible

· Usually measured data

image.png

Data of additional signals

· If activated,these signals will be applied to adm-file for next simulation

· Select channels of data file

which should be used additionally

image.png

nformation of additional input channels

· Sequence defined by selection

· Spline ID has to be defined corresponding to adm-file

· Gain

        - Default is 1,i.e.same data as in data file

        - Can  be  changed,e.g.for  using different wheel load

image.png

Filter response channels

· Automatic filtering of response files

· Trend will be computed with filtered signals

· Filter applied by filter file

image.png

Trend monitoring

· Only location changed

· From folder lteration to

folder Additional evaluation

image.png

Example

· VI of full vehicle using WFT signals (“4 Poster with WFT signals”)

· Iteration of vertical displacements (4 poster)

· Apply  additional  channels  to  vertical displacements

        - FX,FY,TX,TZ

        - At all 4 wheel centers

· Additional channels can be applied

        - From first iteration on

        - To last drive

image.png

· 7th iteration of 4 poster

· Spring displacements and wheel  center acceleration very accurate

· Additional WFT signals applied

image.png

· Selection of desired file   which includes also WFT signals

· Selection of WFT channels

image.pngimage.png

· Channel description of data file is shown

· Spline ID has to be selected for each additional input channel

· Gain factor 1

image.png

· Simulate

- Additional channels will be applied additionally

- adm-file includes iterated vertical displacements (4-poster)and

measured additional WFT signals   (FX,FY,TX,TZ)

image.png

Results

· WFT torque front left about Z axis (steering torque)

image.png


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首次发布时间:2026-05-15
最近编辑:3月前
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allysearchforcomponentdatafiles,applyingloadsandrewritingthedataasrequired.AQWA-WAVEcanalsotransferAQWAfacetpressurestoANSYS®.Inordertousethisfacility,theusermustfirstcreateanequivalentASASmodelfromtheANSYSmodelusingtheANSTOASASmacroinANSYS.AfterrunningAQWA-WAVE,thestructuralloadinggeneratedcanbeimportedbacktotheANSYSmodelusingthe/INPUTcommandwhileinthesolutionprocessor.TheinterfacetoANSYScurrentlyhasthefollowinglimitations:•Hydrodynamicloadsonbeamsareignored(loadsonPIPEtypeelementscanbetransferred,however).•Thestructuralmodelmustbemodelledasasinglestructure,i.e.nosub-structurecomponents.2.2SelectionofWaveCasesAlargenumberofwavecasesmaybeselectedbytheuserintheAQWA-WAVEdata.ThisisachievedbydefiningawavefrequencynumberandawavedirectionnumberfromtheprecedingAQWA-LINEdataandthenspecifyingawaveheightandphasetobeassociatedwiththem.ThewaveheightisrequiredsincetheAQWA-LINErunisforunitwaveamplitudeandmustbescaledtotherequiredheight.ThephaseisnecessaryasthedragforcesthatcanbeproducedbytheprogramgenerallydonotvarysinusoidallyandcannotberepresenteddynamicallyasinAQWA-LINE.PressuresfromtheAQWA-LINEanalysisarethenextractedfromthebackingfilesandevaluatedfortheselectedheight/phaseasfollows:Optionally,staticpressuresmaybecalculatedandaddedtotheabovetimevaryingpressuresbythesettingofthe‘STAT’optionintheAQWA-WAVEdata.Therevisedpressureisthensimplygivenas:LoadcasescreatedbyAQWA-WAVEwillbewrittenbeforeanyotherASASloadcasesandwillbesequencedfrom1001unlesstheuserspecifiesadifferentloadcaseoffset(SeeLCOFcommandinSection3.1.5).2.3IncidentDiffractedandRadiatedWaveForcesIncident,diffractedandradiatedwaveforcesonthestructurearecalculatedbyAQWA-LINEforselectedwaveperiodsanddirections.Theseforcesmaybethoughtofasrelatingtoaunitwaveamplitude,althoughtheyareactuallyforcesperunitwaveamplitudeandrelatetoinfinitesimalwaves.TheincidentwaveforcesaresometimesreferredtoasFroude-Krylovforces.Theradiatedwaveforcesarezeroforafixedstructure.AQWA-LINEstorestheincident,diffractedandradiatedcomponentsofthepressuresontheindividualfacetsinabackingfile.Realandimaginarycomponentsofpressureareretained.ThewayAQWA-WAVEhandlesthesepressuresdependsonthetypeofASASmodelbeingloaded,tube/beammodelsorshell/solidmodels.Fortube/beammodels,groupsofAQWAfacets(specifiedbyelementgroupnumbers)maybeassociatedwithagivennodeorelementintheASASmodel.ThisdataisprovidedintheAQWA-WAVEdatafile.Inadditiontothegroupnumber,theusermustalsospecifywhichquadrantorhalfofasymmetricmodelistobeused.Provisionisalsomadefordefiningtheassembledcomponenttowhichtheelementornodebelongs.TheprogramwillevaluatetheincidentanddiffractedwaveforcesforeachfacetintheAQWAgroupattherequestedwaveheight,period,directionandphase(seeSection2.2).Itwillthensumtheseforcesaboutthenodeorelementcentroidrequested.SummedforcesatanodewillbeappliedasASASNodalLoads.Forcesonanelementwillbeappliedasdistributedloads.ElementsandnodesthatdonothaveAQWAgroupsassignedtothemwillnotbeloaded.Forsolid/shellelements,aspecialloadcase(loadcase1000)mustbepresentintheASASdataforanycomponentthathasanexternalwettedsurface.Componentswithnoloadcase1000willbeassumedtobewhollyinternal,orabovethewatersurface.ThisloadcaseshouldbeanASASfacepressureorunitloadcase,definingthewettedfacesofallwettedelements.(Note:Theactualloadvaluesareunimportant,onlythefacedataisusedbyAQWA-WAVE.)AQWA-WAVEevaluatespressuresfortherequestedwaveheight,period,directionandphase,inaccordancewithSection2.2,foreachnodeonthewettedsurfaceofeachelementthatappearsinloadcase1000.ElementsintheASASmodelgenerallywillnotcorrespondtofacetsintheAQWAmodelandsomemethodisclearlyneededtoobtainthesepressuresattheASASnodes.ThemethodcurrentlyadoptedistolocatetheASASnodeontheAQWAmeshandtheninterpolatethepressure.2.4MorisonLoadsAQWA-LINEdoesnotevaluatedragforcesonsubmergedcomponents.AQWA-WAVEthereforeallowsMorisonforcesonsuchcomponentstobecalculatedandaddedtotheincidentanddiffractedwaveforcesfromAQWA-LINE.Twotypesofcomponentareconsideredhere:1.RelativelylargediametertubularcomponentssimulatedusingfacetsinAQWA-LINE,butforwhichdragloadsareconsideredimportant(e.g.GBSshafts)2.Smallerdiametertubularmemberssubjecttodragandinertialoads(e.g.conductorframingonGBS).AlthoughprovisionismadeformodellingtheinertialoadsonsuchtubesinAQWA-LINE,thisisnottherecommendedmodellingforAQWA-WAVE,andthetubularmembersdonotneedtobemodelledinAQWA-LINE.WhenevaluatingMorisonloadsonsuchcomponentsofthestructure,severalfactorsneedtobeconsidered:•Theincidentflowisexpectedtobemodifiedbythepresenceofthemainstructureduetodiffractedwaveforces.TheparticlevelocitiesandaccelerationsonwhichtheMorisonforcesarebasedneedtoconsiderthiseffect.•Thelocalwatersurfaceduringthepassageofawaveisalsoexpectedtobemodifiedduetothepresenceofthestructure,thusaffectingtheextentofstructuresubjectedtowaveloading.A‘caissoneffect’(overallincreaseinwaterheight)anda‘rideup’onverticalmemberscuttingthesurfaceareexpected.•Theeffectsofcurrentvelocityondragshouldbeconsidered.Currentvelocitiesshouldalsobemodifiedtoallowforthepresenceofthestructure.•Althoughlinearwavetheoryisconsideredsufficientforevaluatingincidentanddiffractedwaveeffects,thisisoftennotsufficientfordragloadsnearthewatersurfacewheretheparticlevelocitiesandwatersurfaceelevationcanoftenbeinexcessofthatpredictedbysimpleAirytheory.Someconsiderationshouldbegiventotheeffectsofhigherorderwavetheory.•ThemethodofmodellingoftheASASstructureshouldbeconsidered.Althoughtheapplicationofdragandinertialoadstotubeelementsisrelativelystraightforward,somefurtherruleneedstobeprovidedtoassignpressurestotubularstructuresdefinedbyplateorsolidelements.Theaboveconsiderationsareaddressedinthefollowingtwosectionsundertheheadingsoffluidflowandloadapplication.2.4.1FluidFlowAtanypointintheflowoutsidetheAQWAfacetmodel,theincidentanddiffractedwaveflowpotentialcanbecalculatedusingthesameGreen’sfunctionroutinesasAQWA-LINE.Therateofchangeofpotentialineachprincipaldirectiongivesthevelocityoftheflowforthatdirection.Theeffectofallcontributingfacetsisconsidered.Thesecanbeaddedasavectortotheincidentflowtogivethedisturbedflowaroundthestructure.Waterparticleaccelerationsarederivedsimplyfromtherateofchangeofvelocity.Acurrentprofile(variationofcurrentwithdepth)maybespecifiedintheAQWA-WAVEdataforeachwavecaseandphaseselectedfromtheAQWA-LINEanalysis.Thecurrentflowisassumedtobehorizontalbutthedirectionmayvarywithdepth.Foreachgivenpoint,acurrentvelocityisthencalculatedbylinearinterpolationtotherequireddepth.Thisvelocityisagainsummedasavectortothewavevelocityinthedisturbedflow,calculatedasabove.Theuser-definedcurrentprofileisassumedtoincludetheeffectsofthestructuredisturbingtheflow.Theprogramdoesnotmodifythecurrentvelocitiesasitdoesforwaves.PrinciplesofmomentumpreservationorevenrunsofAQWA-LINEwiththecurrentrepresentedasalongdurationwavemaybehelpfulindeterminingthismodifiedprofile.Flowaroundamassiveobjecttendstocausealocaldistortionofthestillwatersurfaceknownasa‘caissoneffect’andwatertendsto‘rideup’membersthatcutthewatersurface.Thelattereffectisnormallynotconsideredtosignificantlychangegloballoadonthestructure,butisofsomeimportancetolocaldesign,particularlywaveslam,slapandthedeterminationoftherequiredairgap.The‘caissoneffect’issignificantonGBStypestructuresandcanresultinthetotalloadbeingappliedhigherupinthestructure.AQWA-WAVEcalculatesmostofthiseffect,whichisduetothediffractedwave.(Theincreaseinwaveelevationduetodiffractionmaybeobtainedexplicitly,usingthefieldpointfacilityinAQWA-LINE.Thepressureatagivenpointatthestillwaterlevelmaybeobtainedusingthismethodandthedynamicdisplacementofthewatersurfacemaybederivedfromthesimpleh=p/(ρg)formulation.)Theeffectofthisartificialraisingofthewatersurfaceissimplytoincrease(ordecreaseifnegative)theextentofstructuresubjecttowaterpressureloads.Ifapositivevalueisfound,theundisturbedwater-surfacemotionsareassumedtoapplyovertheincreaseindepth.Otherwise,themotionsarecutoffatthereducedwatersurface.HigherorderwavetheorymayproducehigherloadsthansimpleAirytheoryandtypicallyaccountforaraisingofthewatersurfaceelevationatthecrestandasmoothingofthetrough.AlthoughnotdealtwithexplicitlybyAQWA-WAVE,theusercanattempttomodeltheeffectbyinputtingascaled-upwaveheight,obtainedusingasuitablescalingfactor.Itissuggestedthatanestimateforthisfactorbeobtainedfromaprogramthatdoesallowfordifferentwavetheories,suchasASAS-WAVE.2.4.2LoadApplicationSmalldiametertubularmembersarehandledasbelow:•Thewatersurfaceelevationsattheendsoftheelementareevaluatedwithdueallowanceforthelocalincreaseordecreasementionedabove.•Ifbothendsoftheelementarebelowthewatersurface,thenthememberisfullyloaded.•Ifneitherendoftheelementisbelowthewatersurface,thenthememberisunloaded.•Ifonlyoneendoftheelementisinthewater,thememberisloadedoverthewettedlengthonly.•Thefluidflowateachendofaloadedlengthisevaluatedinaccordancewith2.4.1.•ThefluidflowsateachloadedendaretransformedintoloadsperunitlengthperpendiculartothememberusingMorison’sequationasbelow:F=0.5ρCdDuu+CmρAaWhereF=theforceperunitlengthCd=thedragcoefficientρ=themassdensityofwaterD=thememberdiameteru=theinstantaneousvelocityresolvednormaltothememberCm=theinertiacoefficientA=thecross-sectionalarea=πD2/4a=instantaneousaccelerationresolvednormaltothememberNote:Cm=1+CaWhereCa=theaddedmasscoefficient.TheaddedmasscanbeignoredbysettingCmtozero.However,ifCmissettoavaluelessthanone,butnotzero,anegativeCawillbeusedastheCm=1+Carelationshipisrespected,hencethevalidvaluesforCmare0or≥1.TheusershouldtakeintoaccountmarinegrowthwheninputtingthediameterintotheAQWA-WAVEdata.ThedragandinertiacoefficientscanbedefinedexplicitlybytheuserforalltubeelementsintheASASmodel.Memberswithnocoefficientswillnotbeconsidered.ThecoefficientsoccurintheAQWA-WAVEdataandarereferencedbyASASelementnumberandassembledcomponentname.•DistributedloadsontheelementarewrittentotheoutputdatafileasASAS‘BL6'typedistributedloads.Note:TheusermustnotdefineeitherOFFSETSorLOCALAXESfortubeelementsintheASASgeometrydeck.LargeAQWAsubstructures,whichhavecylindricalsymmetry(suchastheshaftofaGBS)andwhichhavebeenmodelledinAQWA-LINEusingPLATEelementscanalsohavetheirdragloadscalculatedbyAQWA-WAVE.Suchsubstructuresarereferredtohereas‘AQWAcomponents’.(AnAQWAcomponentwillcorrespondtooneormoreASAScomponents.)Ignoringcurrentforthemoment,theflow‘seenby’anAQWAcomponent,atanyinstantoftime,istakentobetheflowwhich,atthatinstant,isbeingexactlycancelled(normaltoeveryplate)bythecombinedflowduetoallthehydrodynamicsourcesonthecomponent.Theflow‘seenby’thecomponentcanthusbecalculatedbyadding,totheincidentflow(assumedundisturbed),theflowduetoallthehydrodynamicsourcesonthewholeAQWAstructure,EXCEPTthoseonthecomponent.Theresultingflowisevaluatedonthecentralaxisofthecomponentand(afteraddingtheconstantcurrent)usedinMorison’sequationtocalculatethedrag.TheprogramhasnoknowledgeofwhatconstitutesanAQWAcomponent.Ifitisrequiredtocalculatethedragonsuchacomponent,alltheelementswhichconstitutethecomponentmustbespecifiedintheAQWA-WAVEdata(seeOMITcommandinSection3.1.7),sothatthecorrespondinghydrodynamicsourcescanbeOMITTEDfromthedragcalculations.Twocasesneedtobeconsidered:a)ThetubularshaftisrepresentedbytubeelementsintheASASmodel.b)Thetubularshaftisrepresentedbysolidorshellelementshavingawettedsurface,asinSection2.3.Forcesonatubeelementidealisationoftheseshaftsmaynowbecalculatedexactlyasbefore,exceptthatinertialoadingisnotgenerallyrequiredandshouldbepreventedbysettingCmtozero.Shellorsolidelementmodelsrequiremoredata.SuchelementsshouldbearrangedintoASASgroups,eachofwhichrepresentsaringofelements.Theendco-ordinates,diameteranddragcoefficientsforeachsuchringaregivenintheAQWA-WAVEdata.RingsarereferencedbyASASgroupnumberandassembledcomponentnameintheAQWA-WAVEdata.Withtwoends,adiameterandadragcoefficient,eachringcannowbehandledexactlyasfortheabovetubesasfarastheevaluationofdistributedloadsonthelengthoftubular.Thedistributedloads(whichvaryfromendtoend)nowneedtobeassignedaspressureloadsontothewettedfaces.Fortunately,thereisampleliteraturetoshowthelikelydistributionofdragpressurearoundsuchacylinderandapressuredistributionasillustratedinFigure2-2isused.Theco-ordinatesofeachnodeateachelementoftheringisfoundandtransformedrelativetothestartandendofthetubeitrepresents.Fromthis,apressurecanbederivedaccordingtoFigure2-1.Thedragloadsonthetubularelementsandthepressuresontheelementsoftheringsareevaluatedasaboveandaresummedwithincident/diffractionloadscalculatedinaccordancewithSection2.3,priortobeingwrittentotheoutputASASdatafileintheappropriateformat.Itshouldbenotedthattheabovetreatmentofthewatersurfaceelevationandlinearisationofpressureloadsisrelativelysimplistic.Excessiveerrorswilloccuriftheelementmeshistoocoarse,particularlynearthewatersurface.Thisshouldberememberedwhenmeshingthemodel.2.5InertialLoadsForfloatingstructures,AQWA-WAVEwritesbodyforceandangularaccelerationcardsintotheASASLOADdecksofallcomponentscontainingmassiveelements.WhenASASisrun,thesewillgenerateinertialloadstobalancethepressureloadstransferredfromAQWA-LINE.Ifthe‘STAT’optionisselected,thenstaticaccelerationswillbeadded,tobalancethehydrostaticpressureswhichareincludedwhenthisoptionisinvoked.IfthefloatingstructureisinequilibriuminAQWA-LINE(asitshouldbe)thenthestaticaccelerationwillsimplybetheaccelerationduetogravity.Forfixedstructures,thereisnodynamicaccelerationandaccelerationcardswillonlybeoutputifthe‘STAT’optionisselected.Inthiscase,theaccelerationoutputisalwaystheaccelerationduetogravity.WhenASASisrun,thiswillcreateinertialloadsequal(intotal)totheweightofthestructure.Theusershouldnotethatthereisnoforcebalanceinthecaseoffixedstructures,sincethereactionattheseabedisnotmodelledinAQWA-WAVE.2.6UnitsProvisionismadeforthecasewheredifferentunitsareusedinAQWAandASAS.AQWA-WAVEneedstoknowwhattheASASlengthunitsareandASASneedstoknowwhattheAQWAloadunitsare.TheusermustsupplythisinformationintheAQWA-WAVEdatafile(seeSCALandUNITcommandsinSection3.1.6),iftheunitsarenotconsistentbetweenAQWAandASAS.详细内容请见附件免责声明:本页面/内容部分素材来源于互联网公开信息,旨在传递更多信息,不代表本平台立场。版权归原作者或机构所有,如涉及侵权,请通过平台联系我们,我们将在核实后第一时间处理。本平台对转载内容的真实性、准确性不作任何保证,用户需自行判断并承担使用风险。

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