A symplectic approach for the fractional heat transfer and thermal damage in 2D biological tissues
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Published:2023-07-10
Issue:9
Volume:33
Page:3073-3093
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ISSN:0961-5539
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Container-title:International Journal of Numerical Methods for Heat & Fluid Flow
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language:en
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Short-container-title:HFF
Author:
Xu Chenghui,Leng Sen,Li Deen,Yu Yajun
Abstract
Purpose
This paper aims to focus on the accurate analysis of the fractional heat transfer in a two-dimensional (2D) rectangular monolayer tissue with three different kinds of lateral boundary conditions and the quantitative evaluation of the degree of thermal damage and burn depth.
Design/methodology/approach
A symplectic method is used to analytically solve the fractional heat transfer dual equation in the frequency domain (s-domain). Explicit expressions of the dual vector can be constructed by superposing the symplectic eigensolutions. The solution procedure is rigorously rational without any trial functions. And the accurate predictions of temperature and heat flux in the time domain (t-domain) are derived through numerical inverse Laplace transform.
Findings
Comparison study shows that the maximum relative error is less than 0.16%, which verifies the accuracy and effectiveness of the proposed method. The results indicate that the model and heat source parameters have a significant effect on temperature and thermal damage. The pulse duration (Δt) of the laser heat source can effectively control the time to reach the peak temperature and the peak slope of the thermal damage curve. The burn depth is closely correlated with exposure temperature and duration. And there exists the delayed effect of fractional order on burn depth.
Originality/value
A symplectic approach is presented for the thermal analysis of 2D fractional heat transfer. A unified time-fractional heat transfer model is proposed to describe the anomalous thermal behavior of biological tissue. New findings might provide guidance for temperature prediction and thermal damage assessment of biological tissues during hyperthermia.
Subject
Mechanical Engineering,Aerospace Engineering,Computational Mechanics,Engineering (miscellaneous)
Reference74 articles.
1. A simple algebraic model to predict burn depth and injury;International Communications in Heat and Mass Transfer,2011
2. Thermal lagging in living biological tissue based on nonequilibrium heat transfer between tissue, arterial and venous bloods;International Journal of Heat and Mass Transfer,2011
3. Numerical simulation of thermal damage to living biological tissues induced by laser irradiation based on a generalized dual phase lag model;Numerical Heat Transfer, Part A: Applications,2012
4. Fractional Green-Naghdi theory for thermoelectric MHD;Waves in Random and Complex Media,2019
5. Analytical analysis of the dual-phase-lag model of bioheat transfer equation during transient heating of skin tissue;Heat and Mass Transfer,2014