首页> 外文会议>SAE World Congress and Exhibition >Development of a Biofidelic Rollover Dummy-Part II: Validation of the Kinematic Response of THOR Multi-Body and Finite Element Models Relative to Response of the Physical THOR Dummy under Laboratory Rollover Conditions
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Development of a Biofidelic Rollover Dummy-Part II: Validation of the Kinematic Response of THOR Multi-Body and Finite Element Models Relative to Response of the Physical THOR Dummy under Laboratory Rollover Conditions

机译:生物玻璃滚动虚拟第II部分的开发:验证校对多体和有限元模型的运动响应相对于实验室翻车条件下的物理钍假响应的响应

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While over 30% of US occupant fatalities occur in rollover crashes, no dummy has been developed for such a condition. Currently, an efficient, cost-effective methodology is being implemented to develop a biofidelic rollover dummy. Instead of designing a rollover dummy from scratch, this methodology identifies a baseline dummy and modifies it to improve its response in a rollover crash. Using computational models of the baseline dummy, including both multibody (MB) and finite element (FE) models, the dummy’s structure is continually modified until its response is aligned (using BioRank/CORA metric) with biofidelity targets. A previous study (Part I) identified the THOR dummy as a suitable baseline dummy by comparing the kinematic responses of six existing dummies with PMHS response corridors through laboratory rollover testing. In this study (Part II), the whole-body kinematic responses of the THOR MB and FE models were validated with responses of the physical THOR dummy in experiments that simulated rollover conditions. This step is necessary to ensure accuracy of the computer-aidedengineering dummy design, thereafter improving confidence in the proposed rollover dummy design modifications. In addition, to ensure the robustness of the model validation, the sensitivities of the THOR dummy computational model responses to parameters with uncertainty in the experiment were assessed, including seatbelt pretension, friction, and dummy seating posture. In summary, both the THOR MB and FE model responses matched well with its physical counterpart. Future studies (Part III) will focus on using these validated dummy models for rollover dummy design modification and evaluation.
机译:虽然超过30%的美国居住者的死亡发生在翻车崩溃中,但没有为这种情况制定了虚拟的假人。目前,正在实施高效,经济高效的方法来开发生物玻璃滚动假人。该方法而不是从头开始设计翻转虚拟,而是识别基线虚拟,并修改它以改善其在翻转崩溃中的响应。使用基线虚拟的计算模型,包括多体(MB)和有限元(FE)模型,在其响应对准(使用BioRank / Cora度量)与生物功能靶标对齐(使用BioRank / Cora度量)之前,虚拟的结构被不断修改。先前的研究(第I部分)通过比较通过实验室翻转测试将六个现有假人与PMHS响应走廊的运动反应进行比较,将钍·假人作为合适的基线虚拟。在本研究(第二部分)中,验证了Thor MB和Fe模型的全身运动响应,并在模拟翻转条件的实验中的物理雷维询问响应。这一步骤是确保计算机 - Aidegineing虚拟设计的准确性所必需的,此后提高了在所提出的翻转伪设计修改方面的置信度。此外,为了确保模型验证的稳健性,评估了对实验中不确定性的参数对参数的敏感性,包括安全带预张力,摩擦和虚拟座椅姿势。总之,Thor MB和FE模型响应良好与其物理对应物匹配。未来的研究(第三部分)将专注于使用这些经过验证的虚拟模型进行翻转虚拟设计修改和评估。

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