Literature DB >> 14509313

Temperature dependence of thermal conductivity of biological tissues.

A Bhattacharya1, R L Mahajan.   

Abstract

In this paper, we present our experimental results on the determination of the thermal conductivity of biological tissues using a transient technique based on the principles of the cylindrical hot-wire method. A novel, 1.45 mm diameter, 50 mm long hot-wire probe was deployed. Initial measurements were made on sponge, gelatin and Styrofoam insulation to test the accuracy of the probe. Subsequent experiments conducted on sheep collagen in the range of 25 degrees C < T < 55 degrees C showed the thermal conductivity to be a linear function of temperature. Further, these changes in the thermal conductivity were found to be reversible. However, when the tissue was heated beyond 55 degrees C, irreversible changes in thermal conductivity were observed. Similar experiments were also conducted for determining the thermal conductivity of cow liver. In this case, the irreversible effects were found to set in much later at around 90 degrees C. Below this temperature, in the range of 25 degrees C < T < 90 degrees C, the thermal conductivity, as for sheep collagen, varied linearly with temperature. In the second part of our study, in vivo measurements were taken on the different organs of a living pig. Comparison with reported values for dead tissues shows the thermal conductivities of living organs to be higher, indicating thereby the dominant role played by blood perfusion in enhancing the net heat transfer in living tissues. The degree of enhancement is different in different organs and shows a direct dependence on the blood flow rate.

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Year:  2003        PMID: 14509313     DOI: 10.1088/0967-3334/24/3/312

Source DB:  PubMed          Journal:  Physiol Meas        ISSN: 0967-3334            Impact factor:   2.833


  14 in total

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Review 5.  Review of temperature dependence of thermal properties, dielectric properties, and perfusion of biological tissues at hyperthermic and ablation temperatures.

Authors:  Christian Rossmanna; Dieter Haemmerich
Journal:  Crit Rev Biomed Eng       Date:  2014

6.  Theoretical modeling for hepatic microwave ablation.

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7.  Development and validation of a MRgHIFU non-invasive tissue acoustic property estimation technique.

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Review 8.  Theoretical modeling for radiofrequency ablation: state-of-the-art and challenges for the future.

Authors:  Enrique J Berjano
Journal:  Biomed Eng Online       Date:  2006-04-18       Impact factor: 2.819

9.  High accuracy thermal conductivity measurement of aqueous cryoprotective agents and semi-rigid biological tissues using a microfabricated thermal sensor.

Authors:  Xin M Liang; Praveen K Sekar; Gang Zhao; Xiaoming Zhou; Zhiquan Shu; Zhongping Huang; Weiping Ding; Qingchuan Zhang; Dayong Gao
Journal:  Sci Rep       Date:  2015-05-20       Impact factor: 4.379

10.  Numerical study of the influence of water evaporation on radiofrequency ablation.

Authors:  Qing Zhu; Yuanyuan Shen; Aili Zhang; Lisa X Xu
Journal:  Biomed Eng Online       Date:  2013-12-10       Impact factor: 2.819

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