Schenkl Sebastian, Muggenthaler Holger, Hubig Michael, Erdmann Bodo, Weiser Martin, Zachow Stefan, Heinrich Andreas, Güttler Felix Victor, Teichgräber Ulf, Mall Gita
Institute of Forensic Medicine, Jena University Hospital-Friedrich Schiller University Jena, Am Klinikum 1, Jena, 07747, Germany.
Zuse Institute Berlin, Berlin, Germany.
Int J Legal Med. 2017 May;131(3):699-712. doi: 10.1007/s00414-016-1523-0. Epub 2017 Jan 14.
Temperature-based death time estimation is based either on simple phenomenological models of corpse cooling or on detailed physical heat transfer models. The latter are much more complex but allow a higher accuracy of death time estimation, as in principle, all relevant cooling mechanisms can be taken into account.Here, a complete workflow for finite element-based cooling simulation is presented. The following steps are demonstrated on a CT phantom: Computer tomography (CT) scan Segmentation of the CT images for thermodynamically relevant features of individual geometries and compilation in a geometric computer-aided design (CAD) model Conversion of the segmentation result into a finite element (FE) simulation model Computation of the model cooling curve (MOD) Calculation of the cooling time (CTE) For the first time in FE-based cooling time estimation, the steps from the CT image over segmentation to FE model generation are performed semi-automatically. The cooling time calculation results are compared to cooling measurements performed on the phantoms under controlled conditions. In this context, the method is validated using a CT phantom. Some of the phantoms' thermodynamic material parameters had to be determined via independent experiments.Moreover, the impact of geometry and material parameter uncertainties on the estimated cooling time is investigated by a sensitivity analysis.
基于温度的死亡时间估计要么基于尸体冷却的简单现象学模型,要么基于详细的物理传热模型。后者要复杂得多,但能实现更高精度的死亡时间估计,因为原则上可以考虑所有相关的冷却机制。在此,给出了基于有限元的冷却模拟的完整工作流程。在一个CT体模上展示了以下步骤:计算机断层扫描(CT)扫描;对CT图像进行分割,以获取各个几何形状的热力学相关特征,并编译到一个几何计算机辅助设计(CAD)模型中;将分割结果转换为有限元(FE)模拟模型;计算模型冷却曲线(MOD);计算冷却时间(CTE)。在基于有限元的冷却时间估计中,首次实现了从CT图像到分割再到有限元模型生成的步骤半自动执行。将冷却时间计算结果与在受控条件下对体模进行的冷却测量结果进行比较。在这种情况下,使用CT体模对该方法进行了验证。一些体模的热力学材料参数必须通过独立实验来确定。此外,通过敏感性分析研究了几何形状和材料参数不确定性对估计冷却时间的影响。