




已閱讀5頁(yè),還剩12頁(yè)未讀, 繼續(xù)免費(fèi)閱讀
版權(quán)說(shuō)明:本文檔由用戶提供并上傳,收益歸屬內(nèi)容提供方,若內(nèi)容存在侵權(quán),請(qǐng)進(jìn)行舉報(bào)或認(rèn)領(lǐng)
文檔簡(jiǎn)介
Computer-AidedCivilandInfrastructureEngineering23(2008)448464INDUSTRIALAPPLICATIONDynamicResponseofaRolloverProtectiveStructureDavidP.Thambiratnam&BrianJ.ClarkSchoolofUrbanDevelopment,FacultyofBuiltEnvironment&Engineering,QueenslandUniversityofTechnology,Brisbane,Australia&NimalJ.PereraSchoolofUrbanDevelopment,FacultyofBuiltEnvironment&Engineering,QueenslandUniversityofTechnology,Brisbane,AustraliaRobertBirdGroup,Brisbane,AustraliaAbstract:RollOverProtectiveStructures(ROPS)aresafetydevicesfittedtoheavyvehiclestoprovideprotectiontotheoperatorduringanaccidentalrollover.Atpresent,ROPSdesignstandardsrequirefull-scaledestructivetest-ingthatcanbeexpensive,timeconsuming,andunsuitableforsmallcompanies.Moreeconomicalanalyticalmeth-odsarenotpermittedduetoalackofunderstandingofpostyieldbehaviorandtheenergyabsorptioncapacityofROPS.Toaddressthis,acomprehensiveresearchprojectwasundertakentoinvestigateROPSbehaviorusingan-alyticaltechniquessupportedbyexperiments.Thisarti-clepresentsthedynamicimpactanalysisofabulldozerROPSusingcalibratedfiniteelementmodels.Resultsindi-catethat(1)ROPSpostshavesignificantinfluenceontheenergy-absorbingcapacity,(2)dynamicamplificationsinenergycouldbeupto25%,(3)stifferROPScausehighpeakdecelerationsthatmaybedetrimentaltotheoperator,and(4)analyticaltechniquesmaybeusedforevaluatingROPSperformance.1INTRODUCTIONHeavyvehiclesthatareusedintherural,mining,andconstructionindustriesaresusceptibletorolloversasTowhomcorrespondenceshouldbeaddressed.E-mail:.au.theyhaveahighcenterofgravityandcommonlyop-erateonslopinganduneventerrain.Asteelmoment-resistingframewitheithertwoorfourpostsisusuallyattachedtothesevehiclesabovetheoperatorscabinforprotectionduringrollovers.ThissafetydeviceiscalledaRolloverProtectiveStructure(ROPS)anditsroleistoabsorbsomeofthekineticenergy(KE)oftherollover,whilemaintainingasurvivalzonefortheoperator.ThedesignandanalysisofROPSiscomplexandrequiresdualcriteriaofadequateflexibilitytoabsorbenergyandadequatestiffnesstomaintainasurvivalzonearoundtheoperator.EvaluationtechniquesusedinthecurrentAustralianstandardforearthmovingmachineryprotectivestruc-turesAS22941997aresimplifiedandinvolvefull-scaledestructivetestingofROPSsubjectedtostaticloadsalongtheirlateral,vertical,andlongitudinalaxes.Thestandardisperformancebased,withcertainforceandenergyabsorptioncriteriathatarederivedfromempir-icalformulaerelatedtothetypeofmachineandoper-atingmass.Deflectionrestrictionsarealsoemployedtoenableasurvivalspaceknownasthedynamiclimitingvolume(DLV)tobemaintainedforthevehicleoperator.Thesesimplifiedprovisionsprovidedesignguidelinesthatwillsubstantiallyimprovetheoperatorschancesofsurvivalduringanaccidentalrollover.Thisformofcerti-ficationcanbetimeconsumingandextremelyexpensiveC2008Computer-AidedCivilandInfrastructureEngineering.PublishedbyBlackwellPublishing,350MainStreet,Malden,MA02148,USA,and9600GarsingtonRoad,OxfordOX42DQ,UK.Dynamicresponseofarolloverprotectivestructure449asestablishingtheforceandenergycriteriacaninvolvelargeloadsthatmaythereforerequiretheuseofaspe-cializedtestingfacility.CertificationofROPSbymoreeconomicalanalyti-calmodelingtechniquesiscurrentlynotpermittedbyROPSstandardsforearthmovingmachinerybothinAustraliaandinternationally.Reasonsfortheexclusionareattributedtoalackofknowledgeandresearchin-formationonthebehaviorofthesestructuresinthepostyieldregionandtheirenergy-absorptioncapacity.Pre-liminaryresearchhasshownpromisefortheuseofan-alyticaltechniquestomodelthenonlinearresponseofROPS.Theseanalyticalmethodswereverysimplifiedandinvolvedtheuseofelasto-plasticbeamelementstosimulatethebehaviorofROPSsubjectedtoastaticlateralload.Inrecentyears,substantialadvanceshavebeenmadeinbothcomputationalpowerandtheimple-mentationofadvancedelementtypesinFiniteElement(FE)techniquesthatcanaccuratelymodelandpredictthenonlinearresponseofstructures,particularlyinthepostyieldregion.ResearchcarriedoutonROPSbehav-iorusinganalyticalandexperimentaltechniquesincludethoseofClarketal.(2006a,b),KimandReid(2001),Tomasetal.(1997),Swan(1988),andHuckleretal.(1985).AcomprehensiveresearchprojectwasundertakenattheQueenslandUniversityofTechnologytoinves-tigateROPSbehaviorusingcomputersimulationssup-portedbyexperimentsto(1)enhanceourunderstandingofROPSbehavior,(2)improveenergyabsorptionandsafety,and(3)generateresearchinformationtofacili-tatethedevelopmentofanalyticaltechniquesfordesignandevaluationthatmaylessentheneedfordestructivefull-scaletesting(Clark,2006a).ThisarticletreatsthedynamicresponseoftheROPSmodelforaK275bulldozer,usingcalibratedFEmodels.TheexperimentaltestingandcalibrationofthecomputemodelofthisparticularROPSmodelarereportedelse-where(Clark,2006a,b).Thedynamicimpactloadsarecharacteristicofthosethatareexperiencedduringthesidewardsrolloverofavehicleonafirmslope.Asim-plifiedmethodbasedonaconservationofangularmo-mentumapproachreportedbyWatson(1967)isusedtoestimatethedynamicimpactparametersfortheROPSduringasidewardsoverturn.TheexplicitFEcodeLS-Dynav970wasusedtoconductthenecessarydynamicimpactmodelingforrolloverimpactsonfirmslopeswithinclinationsof15,30,and45.Theinfluenceofcon-trollingvariablessuchasROPSstiffness,impactveloc-ity,anddurationandrollslopeangleonthedynamicresponseoftheROPSwasstudied.Theresultsarecom-paredwiththosefrompreviousstaticanalysistoestab-lishtheeffectofpossibledynamicamplificationsandtheadequacyofcurrentstandardprovisions.1.1DynamicfiniteelementanalysisRolloversimulationusingFEanalysishasreceivedlit-tleattentionfromresearchers.Chouetal.(1998)high-lightedthatthemajordifficultyassociatedwithusingFEforrolloveranalysiswasthelargesimulationtimerequiredtocapturetheeventaccurately.Indirectparal-leltothis,Klose(1969)alsoemphasizedthattherolloverprocesswasextremelydifficulttomodelasitinvolvedthecomplexinteractionofnumerousparametersthatinfluencedthebehavioroftherollingvehicle.Intheopenliterature,theFEmodelingofrolloverprotectivestructuresunderdynamicloadinghasbeenlimitedtore-searchperformedbyTomasetal.(1997)andHarrisetal.(2000).TheworkperformedbyHarris(2000)examinedtherearwardrolloverofatractorwhereasTomassre-searchusedtheprogramMADYMOtostudytheeffectofROPSstiffnessandoccupantrestraintduringtheside-wardsrolloverofanearthmovingmachine.AlthoughthemodelingtechniquesemployedbyeachoftheseauthorshaveassistedwithassessingtheperformanceofROPSundersimulateddynamicimpactloads,littlecompari-sonhasbeenmadewithreferencetotheadequacyofthestaticloadingproceduresadoptedincurrentROPSstan-dardsandthepossibledynamicamplificationsthatmaytakeplaceduringsuchloadingconditions.WiththeseviewsinmindthesimplifiedprocedureproposedbyWat-son(1967)isusedasabasisforadynamicimpactstudytoinvestigatetheinfluenceofcriticalparametersthatcon-troltheresponsebehaviorofROPSsubjectedtosuchloadingconditions.2ROPSFORK275BULLDOZERTheK275bulldozerisacrawlertypedozerwithagrossvehicleweightofapproximately50tonscommonlyusedintheconstructionandminingindustriesforearthmov-ingpurposes.Rolloverprotectionfortheoccupantisaf-fordedthroughatwopostrollbartypeROPS,whichisshowninFigure1.ThisROPSisprimarilyafixedbaseportalframe,con-sistingoftwopostsandabeam,rigidlyconnectedtothechassisofthevehicle.InadditiontotheROPS,anaddi-tionalroofcanopysectionknownastheFallingObjectProtectiveStructure(FOPS),isincorporatedtoprovideprotectiontotheoperatorunderfallingobjects.Inthisstudy,theFOPS,whichisaseparatedetachablestruc-ture,wasomitted.Theoverallgeometryofthefull-scaleK275ROPSmodelwasestablishedfromsitemeasure-mentstakenatthemanufacturersstorageyard.Appro-priateRHS/SHSmembersizeswereselectedsothattheROPSwouldpossesssufficientstrengthandenergyab-sorptioncharacteristicsthatwouldenableittosuccess-fullypasstherequirementsoftheAustralianStandard.450Thambiratnam,Clark&PereraFig.1.K275bulldozerwithROPS.2.1Half-scaleROPSmodelPreviousresearchbySrivastavaetal.(1978)hasshownthatprinciplesofsimilitudemodelingcouldbesuccess-fullyappliedtoROPStestingtechniques,andcouldleadtolarge-scaleeconomicsavings.BasedontheresearchfindingsoftheseauthorstheprinciplesofsimilitudewereappliedtotheK275bulldozerROPStolessenfabrica-tioncostsandreducethemagnitudesofthetestloadstobeappliedtotheROPS.Reductioninthemagnitudesoftheloadswasessentialasafull-scaletestofROPSforavehiclesuchasthiswasextremelylargeandwouldre-quiretheuseofanextensivelaboratorytestingfacility.Ascalingfactor(forsize)wasthenselectedbetweenthemodelandprototypethatgaverisetothescalingfactorsof1/8forenergyabsorbedunderlateralload,1/4forloads,and1/2fordeflections.Ahalf-scalemodeloftheK275ROPSwithlength1,000mm,height900mm,andsectionproperties125755mmforthepostsand1251255mmforthebeam,wasdesignedandfabricatedandsubjectedtotheloadingandenergyre-quirementsofAS22941997.ThemembertypesusedfortheROPSconsistedof350gradeRHSwithfullpenetrationbutt-weldedmoment-resistingconnections.Thehalf-scaleK275ROPSmodelwasexperimentallytestedundertherequiredlateral,vertical,andlongitu-dinalloads(Clark,2006a).Theloadandenergymagni-tudesestablishedfromAS2294.21997weremodifiedtotakeintoaccountthesimilituderelationshipsestablishedforthismodel.Strainanddeflectionmeasurementswererecordedforeachloadingsequence.TheexperimentaltestingwasfollowedbyFEanalysisofthehalf-scaleROPSmodelunderthesameloads,us-ingtheprogramABAQUSstandardv6.3.ScalinglawsfromthesimilitudestudyalongwiththeprogramMSCPatranwereusedtodevelopthenecessarygeometryfortheFEmodel.Figures2and3showtheexperimentaltestingoftheROPSmodelunderlateralloadandtheFEmodelofFig.2.LateralloadtestingofK275ROPS.thesameROPS,respectively.Therectangularportion(inlightershade)atthetopright-handpostintheFEmodelshowstherigidbodyusedtoapplythedynamicimpactloadingdescribedlateroninthearticle.Thelat-eralloaddeflectionplotsobtainedexperimentallyandfromtheFEanalysisshowninFigure4demonstrateexcellentagreementbetweenthetwosetsofresults.ThevariationofthestresswithloadatthebaseoftheROPSpost(acriticalregion),alsoshowedexcellentagreementbetweentheexperimentalandanalyticalre-sults(Clark,2006a).ThiscalibratedFEROPSmodelwasusedforthedynamicanalysisunderlateralimpactloads.Fig.3.FiniteelementmodelofK275ROPS.Dynamicresponseofarolloverprotectivestructure451Fig.4.Lateralloaddeflectionresponsefromexperiment(LVDT1)a
溫馨提示
- 1. 本站所有資源如無(wú)特殊說(shuō)明,都需要本地電腦安裝OFFICE2007和PDF閱讀器。圖紙軟件為CAD,CAXA,PROE,UG,SolidWorks等.壓縮文件請(qǐng)下載最新的WinRAR軟件解壓。
- 2. 本站的文檔不包含任何第三方提供的附件圖紙等,如果需要附件,請(qǐng)聯(lián)系上傳者。文件的所有權(quán)益歸上傳用戶所有。
- 3. 本站RAR壓縮包中若帶圖紙,網(wǎng)頁(yè)內(nèi)容里面會(huì)有圖紙預(yù)覽,若沒(méi)有圖紙預(yù)覽就沒(méi)有圖紙。
- 4. 未經(jīng)權(quán)益所有人同意不得將文件中的內(nèi)容挪作商業(yè)或盈利用途。
- 5. 人人文庫(kù)網(wǎng)僅提供信息存儲(chǔ)空間,僅對(duì)用戶上傳內(nèi)容的表現(xiàn)方式做保護(hù)處理,對(duì)用戶上傳分享的文檔內(nèi)容本身不做任何修改或編輯,并不能對(duì)任何下載內(nèi)容負(fù)責(zé)。
- 6. 下載文件中如有侵權(quán)或不適當(dāng)內(nèi)容,請(qǐng)與我們聯(lián)系,我們立即糾正。
- 7. 本站不保證下載資源的準(zhǔn)確性、安全性和完整性, 同時(shí)也不承擔(dān)用戶因使用這些下載資源對(duì)自己和他人造成任何形式的傷害或損失。
最新文檔
- 2025年智能工廠生產(chǎn)效率提升方案申請(qǐng)報(bào)告
- 2025年海洋經(jīng)濟(jì)實(shí)施方案與深海資源開發(fā)報(bào)告
- 2025年植物基因編輯技術(shù)在植物抗土壤重金屬污染方面的成果鑒定報(bào)告
- 醫(yī)保支付改革下2025年醫(yī)療行業(yè)風(fēng)險(xiǎn)管理與控制報(bào)告
- 城市軌道交通建設(shè)規(guī)劃與城市景觀設(shè)計(jì)研究報(bào)告
- 2025年醫(yī)院電子病歷系統(tǒng)優(yōu)化構(gòu)建智能醫(yī)療生態(tài)系統(tǒng)報(bào)告
- 2025年醫(yī)藥企業(yè)CRO模式下的臨床試驗(yàn)數(shù)據(jù)管理系統(tǒng)的應(yīng)用與優(yōu)化報(bào)告
- 原子彈相關(guān)英文課件
- 保姆奧數(shù)題目及答案
- 磅房安全考試題及答案
- 眼鏡店經(jīng)營(yíng)管理制度
- 2025年湖北高考生物試卷真題及答案詳解(精校打印版)
- 2024年郴電國(guó)際招聘真題
- 學(xué)校五年發(fā)展規(guī)劃2026-2030年
- 2025重慶新華出版集團(tuán)招聘18人筆試參考題庫(kù)附帶答案詳解析集合
- 新疆烏魯木齊市六校2023?2024學(xué)年高一下學(xué)期期末聯(lián)考 數(shù)學(xué)試題(含解析)
- 2025春季學(xué)期國(guó)開電大專科《管理學(xué)基礎(chǔ)》一平臺(tái)在線形考(形考任務(wù)一至四)試題及答案
- 腫瘤內(nèi)科常用化療藥物
- 馬克思主義基本原理試卷2(附答案)
- 車禍現(xiàn)場(chǎng)急救處理
- 2025年教育行政管理人員考試試題及答案
評(píng)論
0/150
提交評(píng)論