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DYNAMIC COMPRESSIVE RESPONSE OF THE HUMAN PELVIS: AXIAL LOADING OF THE SACROILIAC JOINT

机译:人骨盆的动态压缩反应:骶髂关节的轴向载荷

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The purpose of this study was to quantify the biomechanical response of the intact human pelvis subjected to dynamic axial compressive loading. Axial compression tests were performed on a total of six fresh frozen human cadaver pelves, five male and one female. The intact pelves were fixed to a load cell with a custom aluminum pot placed around the sacrum. Special care was taken when potting the pelves in order to ensure that the orientation of the pelves was representative of that seen in normal upright seating. The pelves were then subjected to dynamic compressive loading at a rate of approximately 2 m/s using a servo-hydraulic Material Testing System (MTS). The average peak force, moment, and displacement at the point of failure were 5,896 ± 1455 N, 33.4 ± 28.6 N-m, and 6.4 ± 0.7 mm, respectively. The failure of the all pelvis specimens corresponded to a bilateral dislocation of the sacroiliac joint. As a general trend, strain gage data showed that the right and left superior ramus were placed in tension and the right and left ischium were placed in compression. The peak strain values ranged from 746 mstr to 5717 mstr in tension and from -356 mstr to -2677 mstr in compression. The current study will help future researchers reduce the number of incidences and severity of pelvic fractures that can result from falls from heights, ejection seat loading, or motor vehicle crash environments by providing valuable test data that quantifies biomechanical response of the human pelvis in vertical loading.
机译:本研究的目的是量化对受动态轴压载荷的完整人骨盆的生物力学响应。轴向压缩试验总共六个新鲜的冷冻人尸爪,五个雄性和一名女性进行。完整的Pelves固定到带有定制铝罐的称重块,围绕骶骨。灌封脚垫时,特别小心拍摄,以确保骨盆的取向代表正常直立座位所示。然后使用伺服液压材料测试系统(MTS)以约2m / s的速率进行动态压缩负载。故障点的平均峰值力,时刻和位移分别为5,896±1455 n,33.4±28.6 n-m,分别为6.4±0.7 mm。所有骨盆标本的失败对应于骶髂关节的双侧位错。作为一般趋势,应变计数据显示右侧和左下ramus沉入张力,右侧和左索均被置于压缩中。峰值应变值范围为746mstR至5717 MSTR,张力和-356mstR至-2677 MSTR压缩。目前的研究将帮助未来的研究人员减少盆腔骨折的发生率和严重程度,通过提供从高度,喷射座椅装载或机动车碰撞环境中可能导致有价值的测试数据,这些测试数据量化了人类骨盆在垂直装载中的生物力学响应。

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