Temperature Dependence of Thermal Properties of Ex Vivo Porcine Heart and Lung in Hyperthermia and Ablative Temperature Ranges

被引:0
作者
Leonardo Bianchi
Martina Bontempi
Sabrina De Simone
Martina Franceschet
Paola Saccomandi
机构
[1] Politecnico di Milano,Department of Mechanical Engineering
来源
Annals of Biomedical Engineering | 2023年 / 51卷
关键词
Heart; Lung; Thermal properties; Temperature dependence; Hyperthermia; Thermal ablation;
D O I
暂无
中图分类号
学科分类号
摘要
This work proposes the characterization of the temperature dependence of the thermal properties of heart and lung tissues from room temperature up to > 90 °C. The thermal diffusivity (α), thermal conductivity (k), and volumetric heat capacity (Cv) of ex vivo porcine hearts and deflated lungs were measured with a dual-needle sensor technique. α and k associated with heart tissue remained almost constant until ~ 70 and ~ 80 °C, accordingly. Above ~ 80 °C, a more substantial variation in these thermal properties was registered: at 94 °C, α and k respectively experienced a 2.3- and 1.5- fold increase compared to their nominal values, showing average values of 0.346 mm2/s and 0.828 W/(m·K), accordingly. Conversely, Cv was almost constant until 55 °C and decreased afterward (e.g., Cv = 2.42 MJ/(m3·K) at 94 °C). Concerning the lung tissue, both its α and k were characterized by an exponential increase with temperature, showing a marked increment at supraphysiological and ablative temperatures (at 91 °C, α and k were equal to 2.120 mm2/s and 2.721 W/(m·K), respectively, i.e., 13.7- and 13.1-fold higher compared to their baseline values). Regression analysis was performed to attain the best-fit curves interpolating the measured data, thus providing models of the temperature dependence of the investigated properties. These models can be useful for increasing the accuracy of simulation-based preplanning frameworks of interventional thermal procedures, and the realization of tissue-mimicking materials.
引用
收藏
页码:1181 / 1198
页数:17
相关论文
共 208 条
  • [1] Ahmed M(2011)Principles of and advances in percutaneous ablation Radiology 258 351-369
  • [2] Brace CL(2022)Characterization of thermal and optical properties in porcine pancreas tissue Lasers. Surg. Med. 54 702-715
  • [3] Lee FT(2019)Modeling heat transfer in tumors: a review of thermal therapies Ann. Biomed. Eng. 47 676-693
  • [4] Goldberg SN(2022)Experimental evaluation of radiation response and thermal properties of NPs-loaded tissues-mimicking phantoms Nanomaterials 12 945-664
  • [5] Akhter F(2017)Lung ablation: Best practice/results/response assessment/role alongside other ablative therapies Clin. Radiol. 72 657-1357
  • [6] Manrique-Bedoya S(2004)Thermal-electrical modeling for epicardial atrial radiofrequency ablation IEEE Trans. Biomed. Eng. 51 1348-783
  • [7] Moreau C(2003)Temperature dependence of thermal conductivity of biological tissues Physiol. Meas. 24 769-676
  • [8] Smith AL(1999)Thermophysical properties of swine myocardium Int. J. Thermophys. 20 665-340
  • [9] Feng Y(2022)Thermophysical and mechanical properties of biological tissues as a function of temperature: a systematic literature review Int. J. Hyperth. 39 297-11306
  • [10] Mayer KM(2021)Quasi-distributed fiber optic sensor-based control system for interstitial laser ablation of tissue: theoretical and experimental investigations Biomed. Opt. Express 12 2841-80