Temperature distribution in tumour tissue during targeted destruction by heat: A hyperbolic bioheat equation approach

Thermotherapy is a frequently used treatment to destroy malignant tumour. The procedure is carried-out using various techniques like radio frequency, laser, focused ultrasound, and microwaves to elevate the desired temperature at targeted tissues. However, it becomes indispensable to note that the i...

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Main Authors: Mir Aijaz, Javid Gani Dar, Ibrahim M. Almanjahie, Fatimah Alshahrani
Format: Article
Language:English
Published: Elsevier 2023-10-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X23007979
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author Mir Aijaz
Javid Gani Dar
Ibrahim M. Almanjahie
Fatimah Alshahrani
author_facet Mir Aijaz
Javid Gani Dar
Ibrahim M. Almanjahie
Fatimah Alshahrani
author_sort Mir Aijaz
collection DOAJ
description Thermotherapy is a frequently used treatment to destroy malignant tumour. The procedure is carried-out using various techniques like radio frequency, laser, focused ultrasound, and microwaves to elevate the desired temperature at targeted tissues. However, it becomes indispensable to note that the impact of the high temperatures also expands to the peripherals of the targeted tissues and can harm the surrounding healthy tissue. This paper aims to find the temperature distribution in tumour tissue during the process and draw the corresponding graphical representation. A five-tine trocar has used to raise the temperature at the centre of the targeted tissue as much as to destroy the tumour tissue. A mathematical model based on the hyperbolic bioheat equation has been formulated and solved by variable separable method after converting the devised equation into dimensionless form. The heat waves make a significant contribution in the propagation of heat at high temperatures therefore, this paper can be viewed as an improvement of the models based on parabolic Penne’s bioheat equation. The results are helpful in estimating the temperature distribution on and around the targeted tissue and hence the therapist can be guided to prevent injuries during the treatment of therapeutic treatments.
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spelling doaj.art-19a7052e8325439389b92b9bbbc465ae2023-09-30T04:54:49ZengElsevierCase Studies in Thermal Engineering2214-157X2023-10-0150103491Temperature distribution in tumour tissue during targeted destruction by heat: A hyperbolic bioheat equation approachMir Aijaz0Javid Gani Dar1Ibrahim M. Almanjahie2Fatimah Alshahrani3Department of Mathematics, Govt. Degree College Kilam, Department of Higher Education, J&K, India; Corresponding author.Department of Applied Sciences, Symbiosis Institute of Technology, Symbiosis International (Deemed University), Pune 412115, IndiaDepartment of Mathematics, College of Science, King Khalid University, Abha 62223, Saudi ArabiaDepartment of Mathematical Sciences, College of Science, Princess Nourah bint Abdulrahman University, P.O. Box 84428, Riyadh 11671, Saudi ArabiaThermotherapy is a frequently used treatment to destroy malignant tumour. The procedure is carried-out using various techniques like radio frequency, laser, focused ultrasound, and microwaves to elevate the desired temperature at targeted tissues. However, it becomes indispensable to note that the impact of the high temperatures also expands to the peripherals of the targeted tissues and can harm the surrounding healthy tissue. This paper aims to find the temperature distribution in tumour tissue during the process and draw the corresponding graphical representation. A five-tine trocar has used to raise the temperature at the centre of the targeted tissue as much as to destroy the tumour tissue. A mathematical model based on the hyperbolic bioheat equation has been formulated and solved by variable separable method after converting the devised equation into dimensionless form. The heat waves make a significant contribution in the propagation of heat at high temperatures therefore, this paper can be viewed as an improvement of the models based on parabolic Penne’s bioheat equation. The results are helpful in estimating the temperature distribution on and around the targeted tissue and hence the therapist can be guided to prevent injuries during the treatment of therapeutic treatments.http://www.sciencedirect.com/science/article/pii/S2214157X23007979Thermo-therapiesTrocarHyperbolic bioheat equationRadio-frequency
spellingShingle Mir Aijaz
Javid Gani Dar
Ibrahim M. Almanjahie
Fatimah Alshahrani
Temperature distribution in tumour tissue during targeted destruction by heat: A hyperbolic bioheat equation approach
Case Studies in Thermal Engineering
Thermo-therapies
Trocar
Hyperbolic bioheat equation
Radio-frequency
title Temperature distribution in tumour tissue during targeted destruction by heat: A hyperbolic bioheat equation approach
title_full Temperature distribution in tumour tissue during targeted destruction by heat: A hyperbolic bioheat equation approach
title_fullStr Temperature distribution in tumour tissue during targeted destruction by heat: A hyperbolic bioheat equation approach
title_full_unstemmed Temperature distribution in tumour tissue during targeted destruction by heat: A hyperbolic bioheat equation approach
title_short Temperature distribution in tumour tissue during targeted destruction by heat: A hyperbolic bioheat equation approach
title_sort temperature distribution in tumour tissue during targeted destruction by heat a hyperbolic bioheat equation approach
topic Thermo-therapies
Trocar
Hyperbolic bioheat equation
Radio-frequency
url http://www.sciencedirect.com/science/article/pii/S2214157X23007979
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AT ibrahimmalmanjahie temperaturedistributionintumourtissueduringtargeteddestructionbyheatahyperbolicbioheatequationapproach
AT fatimahalshahrani temperaturedistributionintumourtissueduringtargeteddestructionbyheatahyperbolicbioheatequationapproach