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Journal ArticleDOI

A New Simplified Bioheat Equation for the Effect of Blood Flow on Local Average Tissue Temperature

TLDR
A new simplified three-dimensional bioheat equation is derived to describe the effect of blood flow on blood-tissue heat transfer and shows that the vascularization of tissue causes it to behave as an anisotropic heat transfer medium.
Abstract
A new simplified three-dimensional bioheat equation is derived to describe the effect of blood flow on blood-tissue heat transfer. In two recent theoretical and experimental studies [1, 2] the authors have demonstrated that the so-called isotropic blood perfusion term in the existing bioheat equation is negligible because of the microvascular organization, and that the primary mechanism for blood-tissue energy exchange is incomplete countercurrent exchange in the thermally significant microvessels. The new theory to describe this basic mechanism shows that the vascularization of tissue causes it to behave as an anisotropic heat transfer medium. A remarkably simple expression is derived for the tensor conductivity of the tissue as a function of the local vascular geometry and flow velocity in the thermally significant countercurrent vessels. It is also shown that directed as opposed to isotropic blood perfusion between the countercurrent vessels can have a significant influence on heat transfer in regions where the countercurrent vessels are under 70-micron diameter. The new bioheat equation also describes this mechanism.

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Thermal and electrical conductivity probes and methods of making the same

TL;DR: In this article, a system for sensing attributes of tissue in at least one direction is provided, which includes a thermal conductivity probe having a sensor configured to measure thermal conductivities in the target tissue in one direction, and a power supply operatively coupled to the probe and being configured to supply power to the thermal probe.
Journal ArticleDOI

Early detection of the breast cancer using infrared technology – A comprehensive review

TL;DR: A comprehensive review of previous studies conducted at the intersection of thermography, numerical simulation, and artificial intelligence that can improve early detection of breast cancer is presented in this article , where the authors highlight the thermography and numerical simulations problems to detect breast cancer.
Journal ArticleDOI

Discrete vessel heat transfer in perfused tissue--model comparison.

TL;DR: The test indicates that the simpler, and less computationally intensive method proposed by the present author for calculating 2D problems containing countercurrent blood vessel systems can reproduce quite well some features of the solution obtained by the more complex 3D method.
Journal ArticleDOI

Early detection of the breast cancer using infrared technology – A Comprehensive Review

TL;DR: A comprehensive review of previous studies conducted at the intersection of thermography, numerical simulation, and artificial intelligence that can improve early detection of breast cancer is presented in this paper, where the authors present a comprehensive review.
Journal ArticleDOI

Investigation of nonlinear temperature distribution in biological tissues by using bioheat transfer equation of Pennes’ type

TL;DR: In this article, a two level finite difference scheme of Crank-Nicholson type is constructed and used to numerically investigate nonlinear temperature distribution in biological tissues described by bioheat transfer equation of Pennes' type.
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