Huang Ming, Chen Wenxi
University of Aizu, Aizu-wakamatsu, Fukushima, 965-8580 Japan.
Annu Int Conf IEEE Eng Med Biol Soc. 2010;2010:561-4. doi: 10.1109/IEMBS.2010.5626459.
Deep body temperature reveals individual physiological states, and is important in patient monitoring and chronobiological studies. An innovative dual-heat-flux method has been shown experimentally to be competitive with the conventional zero-heat-flow method in its performance, in terms of measurement accuracy and step response to changes in the deep temperature. We have utilized a finite element method to model and simulate the dynamic process of a dual-heat-flux probe in deep body temperature measurements to validate the fundamental principles of the dual-heat-flux method theoretically, and to acquire a detailed quantitative description of the thermal profile of the dual-heat-flux probe. The simulation results show that the estimated deep body temperature is influenced by the ambient temperature (linearly, at a maximum rate of 0.03 °C/°C) and the blood perfusion rate. The corresponding depth of the estimated temperature in the skin and subcutaneous tissue layer is consistent when using the dual-heat-flux probe. Insights in improving the performance of the dual-heat-flux method were discussed for further studies of dual-heat-flux probes, taking into account structural and geometric considerations.
深部体温揭示个体生理状态,在患者监测和时间生物学研究中具有重要意义。实验表明,一种创新的双热流方法在测量精度和对深部体温变化的阶跃响应方面,其性能与传统零热流方法相当。我们利用有限元方法对双热流探头测量深部体温的动态过程进行建模和模拟,从理论上验证双热流方法的基本原理,并获得双热流探头热分布的详细定量描述。模拟结果表明,估计的深部体温受环境温度(线性影响,最大速率为0.03℃/℃)和血液灌注率的影响。使用双热流探头时,估计温度在皮肤和皮下组织层中的相应深度是一致的。考虑到结构和几何因素,讨论了提高双热流方法性能的见解,以便对双热流探头进行进一步研究。