汽车碰撞安全基础 (27).pdf
《汽车碰撞安全基础 (27).pdf》由会员分享,可在线阅读,更多相关《汽车碰撞安全基础 (27).pdf(11页珍藏版)》请在淘文阁 - 分享文档赚钱的网站上搜索。
1、INTRODUCTIONPedestrian protection has been drawing attention for morethan two decades.In 2008,pedestrian fatalities made up12%-33%of all road fatalities in the US,European Union,and Japan 1.Statistics show that the lower limb is the mostfrequently injured body part in car-to-pedestrian accidents2,an
2、d that more than 30%of all pedestrians involved incar-to-pedestrian accidents suffer knee injuries 3.In impacts with the vehicle front-end,pedestrian lowerlimbs will contact with the bumper system first,which willcreate a turning moment about the center of gravity of thepedestrian and cause the uppe
3、r body to arc downwards.Theupper leg,pelvis,chest and head will contact with the bonnetleading edge,bonnet and windshield successively 4,asshown in Figure 1.In regulatory tests,legform impactors are used to evaluatelower limb injuries of pedestrians when laterally impacted bya vehicle.Popular legfor
4、m impactors include the EEVCpedestrian legform impactor(EEVC-PLI)and the Flexlegforms 5,7,6.Due to the repeatability and reusabilityrequirement for testing,simplified structures are usuallypreferred in the design of the impactors.They are usuallyunable to completely reflect real lower limb injurymec
5、hanisms and kinematics due to their design limitations7-8.Figure 1.Kinematics of pedestrian impacts with vehiclefront-end 9.In order to enhance the real-life protection of pedestrians,a validated finite element full-body pedestrian human bodymodel(HBM)is used as an effective tool for the study oflow
6、er limb injuries.It can provide realistic kinematic lowerlimb response in real-world accidents and can be used toassess pedestrian injuries at the bone and tissue level.To evaluate the vehicle protection performance,it isnecessary to give a quick prediction on human bodykinematics and injury levels
7、under different impact loadingconditions.Response surface(RS)methodology is taken asthe approach to construct global approximations to systembehavior based on results calculated at various points in thedesign space 10.It explores the relationships between inputdesign variables and one or more respon
8、ses 11.The mainideal is to use a sequence of design experiments to obtain the2013-01-0216Published 04/08/2013Copyright 2013 SAE Internationaldoi:10.4271/2013-01-0216saetransaf.saejournals.orgResponse Surface Generation for Kinematics and InjuryPrediction in Pedestrian Impact SimulationsBingbing Nie,
9、Yong Xia,Qing Zhou and Jun HuangTsinghua Univ.Bing Deng and Mark NealGeneral Motors CompanyABSTRACTThis study concerns the generation of response surfaces for kinematics and injury prediction in pedestrian impactsimulations using human body model.A 1000-case DOE(Design of Experiments)study with a La
10、tin Hypercube samplingscheme is conducted using a finite element pedestrian human body model and a simplified parametric vehicle front-endmodel.The Kriging method is taken as the approach to construct global approximations to system behavior based onresults calculated at various points in the design
11、 space.Using the response surface models,human lower limb kinematicsand injuries,including impact posture,lateral bending angle,ligament elongation and bone fractures,can be quicklyassessed when either the structural dimensions or the structural behavior of the vehicle front-end design change.This w
12、illaid in vehicle front-end design to enhance protection of pedestrian lower limbs.CITATION:Nie,B.,Xia,Y.,Zhou,Q.,Huang,J.et al.,Response Surface Generation for Kinematics and Injury Predictionin Pedestrian Impact Simulations,SAE Int.J.Trans.Safety 1(2):2013,doi:10.4271/2013-01-0216._THIS DOCUMENT I
13、S PROTECTED BY U.S.AND INTERNATIONAL COPYRIGHT.It may not be reproduced,stored in a retrieval system,distributed or transmitted,in whole or in part,in any form or by any means.Downloaded from SAE International by Bingbing Nie,Sunday,March 24,2013 09:19:36 PMresponse of a new design.Global approximat
14、ions are oftenutilized in multidisciplinary optimization 12 or in reliabilitycalculations 13.Response surface modeling approaches arewidely used in aerospace engineering 14,structural design15,and mechanical engineering 16.To deal with the highly nonlinear responses in car-pedestrian impacts,Kriging
15、 models are used since they cangive global approximations with relatively good accuracy17-18.In recent years,the Kriging method has found widerapplication as a spatial prediction method in engineeringdesign.Design of experiment(data sampling)plays animportant role,especially when building Kriging mo
16、dels19.Latin Hypercube sampling,or other space fillingmethods,are typically used as the data sampling strategy incombination with the Kriging method 20-21.This paper documents the generation of response surfacesfor kinematics and injury prediction in pedestrian impactsimulations using human body mod
17、el.A computationallyefficient,parametric vehicle model with adjustable geometricand stiffness variables to represent different vehicle front endconfigurations has been developed.This model has beenvalidated by performing impact simulations with a humanbody model in a standing posture and comparing t
18、o similarsimulations with a detailed finite element model of a vehiclefront structure.Impact simulations between simplifiedvehicle models with different stiffness or geometry designvariable values and a standing finite element human bodymodel have been performed.Several response surfaces for pedestr
19、ian human lowerlimb kinematics and injury predictions are generated usingthe numerical DOE(Design of Experiments)study.Theaccuracy of the RS models is validated with additional checkpoints which are not in the DOE matrix.Using the RSmodels,human lower limb injuries,including ligamentelongation and b
20、one fractures,can be quickly assessed wheneither the structural dimensions or the structural behavior ofthe vehicle front-end design changes.This will aid in vehiclefront-end design to enhance pedestrian protection of lowerlimbs.MODEL SETUPTo assess the protection performance of various vehiclefront
21、-end designs,simulations of the finite element humanbody model in a standing posture impacted by the simplifiedvehicle model with different design variable values werecarried out(Figure 2).The impact speed of the vehicle was40 kpm,and the pedestrian was struck laterally,at thecenterline of the vehic
22、le.The trailing lower limb on the rightside was the first contact with the vehicle.Human Body Model(HBM)The full-body mid-size pedestrian model(HBM)in thispaper was first developed by General Motors(GM)and theUniversity of Virginia(UVA)in 2007(Figure 2)22.Themodel is 177 cm high and weighs 77 kg,whi
23、ch represents a50th percentile male pedestrian in a standing posture.It is anLS-DYNA based finite element model,containing about 370parts and 130,000 elements,including 83,900 solid elementsand 45,000 shell elements.It consists of FE lower limbmodels,rigid foot and shoe models,a rigid pelvis,a FE pe
24、lvicflesh model and other upper body part models.Thebiofidelity of the lower limbs has been validated atcomponent level 23,24,25.The kinematics of the HBMhas been validated at full-scale level,using the data from 7full-scale Post Mortem Human Subjects(PMHS)impact tests26.The HBM can therefore be use
25、d to evaluate the injuriesand kinematics of human lower limbs under different impactloading conditions more realistically.Figure 2.FE modeling of HBM impacts with simplifiedvehicle front-end model.Kinematics DescriptionKinematics of the first-struck right lower limb is assessedusing five markers;the
- 配套讲稿:
如PPT文件的首页显示word图标,表示该PPT已包含配套word讲稿。双击word图标可打开word文档。
- 特殊限制:
部分文档作品中含有的国旗、国徽等图片,仅作为作品整体效果示例展示,禁止商用。设计者仅对作品中独创性部分享有著作权。
- 关 键 词:
- 汽车碰撞安全基础 27 汽车 碰撞 安全 基础 27
限制150内