Wang Keyong, Tavakkoli Fatemeh, Wang Shujuan, Vafai Kambiz
School of Mechanical Engineering, Shanghai University of Engineering Science, Shanghai 201620, China; Department of Mechanical Engineering, University of California, Riverside, CA 92521, USA.
Department of Mechanical Engineering, University of California, Riverside, CA 92521, USA.
J Biomech. 2015 Apr 13;48(6):930-40. doi: 10.1016/j.jbiomech.2015.02.023. Epub 2015 Feb 23.
Understanding thermal transport and temperature distribution within biological organs is important for therapeutic aspects related to hyperthermia treatments such as radiofrequency ablation (RFA). Unlike surface heating, the RFA treatment volumetrically heats up the biological media using a heating probe which provides the input energy. In this situation, the shape of the affected region is annular, which is described by an axisymmetric geometry. To better understand the temperature responses of the living tissues subject to RFA, comprehensive characteristics of bioheat transport through the annular biological medium is presented under local thermal non-equilibrium (LTNE) condition. Following the operational features of the RFA treatment, based on the porous media theory, analytical solutions have been derived for the blood and tissue temperature distributions as well as an overall heat exchange correlation in cylindrical coordinates. Our analytical results have been validated against three limiting cases which exist in the literature. The effects of various physiological parameters, such as metabolic heat generation, volume fraction of the vascular space, ratio of the effective blood to tissue conductivities, different biological media and the rate of heat exchange between the lumen and the tissue are investigated. Solutions developed in this study are valuable for thermal therapy planning of RFA. A criterion is also established to link deep heating protocol to surface heating.
了解生物器官内的热传递和温度分布对于诸如射频消融(RFA)等热疗相关的治疗方面非常重要。与表面加热不同,RFA治疗使用提供输入能量的加热探针在生物介质中进行体积加热。在这种情况下,受影响区域的形状是环形的,由轴对称几何形状描述。为了更好地理解活体组织在RFA作用下的温度响应,本文在局部热非平衡(LTNE)条件下给出了通过环形生物介质的生物热传递的综合特性。根据RFA治疗的操作特点,基于多孔介质理论,推导了圆柱坐标系下血液和组织温度分布的解析解以及整体热交换关联式。我们的解析结果已针对文献中存在的三种极限情况进行了验证。研究了各种生理参数的影响,如代谢热生成、血管空间的体积分数、有效血液与组织热导率之比、不同的生物介质以及管腔与组织之间的热交换速率。本研究中开发的解决方案对于RFA的热疗规划具有重要价值。还建立了一个标准,将深部加热方案与表面加热联系起来。