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数值模拟彩弹撞击眼外伤:渐进性损伤机制的识别。

Numerical modeling of paintball impact ocular trauma: identification of progressive injury mechanisms.

机构信息

Department of Geological Sciences, University of Texas at San Antonio, San Antonio, Texas, USA.

出版信息

Invest Ophthalmol Vis Sci. 2011 Sep 29;52(10):7506-13. doi: 10.1167/iovs.11-7942.

Abstract

PURPOSE

To create a computer-based numerical simulation model for comparison with empiric paintball-ocular ballistic study findings, allowing identification of the dynamic physical mechanisms (stress, strain, pressure) responsible for intraocular traumatic injury accompanying blunt ocular impact. Virtual experiments with numerical models could exploit mathematical "instrumentation" to facilitate internal observation impossible with physical experiments alone.

METHODS

Models of human eye structures and orbit were implemented into the finite-volume Eulerian numerical hydrocode CTH. Numerical simulation results were compared with dynamic imaging and postimpact histopathology obtained during previous ballistic impact experiments on fresh porcine eyes impacted with paintballs. Forty numerical simulations and 59 impact experiments were conducted as part of the study.

RESULTS

Time-lapse correlations showed the CTH models to be dynamically commensurate with orbital penetration and globe deformation measured from ballistic high-speed videos. CTH also predicted the types and levels of damage observed in detailed postimpact pathologic assessments of porcine specimens. High strain in the ciliary body and zonule corresponded with angle recession and lens displacement pathologically. Globe rupture was attained at the highest paintball impact velocities in both the porcine ballistic studies and CTH models, consistent with predicted dynamic intraocular pressures. The simulations also revealed that phenomena such as macular Berlin's edema, midperipheral retinoschisis, and choroidal and retinal detachment might be explained by focal dynamic pressure-wave reflection from the interior surface of the globe.

CONCLUSIONS

Significant insight was gained regarding the physical mechanisms responsible for injury. CTH predictions corresponded closely with previous ballistic experimental results, adding intraocular detail otherwise unattainable.

摘要

目的

创建一个基于计算机的数值模拟模型,与经验性彩弹眼球弹道研究结果进行比较,以确定导致钝性眼球冲击时伴随的眼内创伤的动态物理机制(应力、应变、压力)。数值模型的虚拟实验可以利用数学“仪器”来促进单凭物理实验无法进行的内部观察。

方法

将人眼结构和眼眶模型实施到有限体积欧拉数值水力代码 CTH 中。将数值模拟结果与之前在新鲜猪眼上用彩弹进行的弹道冲击实验中获得的动态成像和冲击后组织病理学进行比较。作为研究的一部分,进行了 40 次数值模拟和 59 次冲击实验。

结果

时移相关性表明,CTH 模型与从弹道高速视频测量的眼眶穿透和眼球变形在动力学上是一致的。CTH 还预测了在对猪标本进行详细的冲击后组织病理学评估中观察到的损伤类型和程度。睫状体和悬韧带的高应变量与病理性的前房角后退和晶状体移位相对应。在猪的弹道研究和 CTH 模型中,最高的彩弹冲击速度都导致了眼球破裂,这与预测的动态眼内压力一致。模拟还表明,黄斑柏林水肿、中周边视网膜劈裂、脉络膜和视网膜脱离等现象可能是由于眼球内部表面的动态压力波反射引起的。

结论

对导致损伤的物理机制有了重要的了解。CTH 的预测与之前的弹道实验结果非常吻合,增加了原本无法获得的眼内细节。

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