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Hybrid Finite Element/finite difference (fe/fd) Model To analyze Thermal Transients In biological Vascularized Tissues

机译:混合有限元/有限差分(fe / fd)模型,用于分析生物血管化组织中的热瞬变

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摘要

Purpose - The aim of the paper is to apply a numerical dosimetry procedure to a biological tissue with an embedded discrete vascularisation in order to evaluate the temperature increase produced by radio-frequency (RF) exposure. Design/methodology/approach - The blood temperature inside thin vessels is analysed by a 1D finite difference procedure to solve the convection-dominated heat problem. The tissue temperature inside the remaining 3D domain governed by the heat diffusion equation is calculated by the finite element method. Then, the two separate numerical methods are coupled by an iterative time domain procedure. Findings - The main advantage of the proposed hybrid method is found to be the considerable reduction of the number of unknowns respect to other traditional numerical techniques. Research limitations/implications - In this paper, only the numerical model of the new hybrid procedure has been proposed. In future work realistic biological regions will be examined and the proposed model will be improved by considering the artery/vein coupled structure. Originality/value - The originality of the proposed method regards the solution of the bio-heat equation by means of a new hybrid finite element/finite difference procedure. This procedure is applied inside a vascularized region considering a discrete blood vessel structure.
机译:目的-本文的目的是对具有嵌入式离散血管化作用的生物组织进行数字剂量测定,以评估射频(RF)暴露产生的温度升高。设计/方法/方法-通过一维有限差分程序分析薄血管内部的血液温度,以解决对流主导的热问题。由热扩散方程控制的其余3D域内部的组织温度是通过有限元方法计算的。然后,通过迭代的时域过程将两个单独的数值方法耦合在一起。发现-与其他传统数值技术相比,提出的混合方法的主要优点是可以大大减少未知数。研究局限性/意义-在本文中,仅提出了新混合过程的数值模型。在未来的工作中,将研究现实的生物学区域,并通过考虑动脉/静脉耦合结构来改善建议的模型。独创性/价值-所提出方法的独创性通过新的混合有限元/有限差分程序来考虑生物热方程的解。考虑到离散的血管结构,该程序适用于血管化区域内。

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