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MEASUREMENTS OF THE THERMAL CONDUCTIVITY OF SUB-MILLIMETER BIOLOGICAL TISSUES

机译:亚毫米级生物组织热导率的测量

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Accurate knowledge of the thermal conductivities of biological tissues is important for thermal bioengineering, including applications in cryopreservation, cryosurgery, and other thermal therapies. The thermal conductivity of biomaterials is traditionally measured with macroscale techniques such as the steady longitudinal heat flow method or embedded thermistor method. These techniques typically require relatively large, centimeter-scale samples, limiting their applicability to finer biological structures. They are also vulnerable to errors caused by thermal contact resistances and parasitic heat losses. In contrast, the thermal conductivity of inorganic solids such as semiconductor wafers and thin films is commonly measured using the "3 omega method" [1-3]. This frequency domain technique is robust against thermal contact resistances and parasitic heat losses. It routinely has sub-millimeter spatial resolution, with theoretical limits down to tens of microns. Here we adapt the 3 omega method for measurements of biological tissues. Thermal conductivity measurements are made on both frozen and un-frozen samples including agar gel, water, and mouse liver, including samples with sub-millimeter thicknesses. The measurement results compare favorably with literature values and span the range from around 0.5 to 2.5 W/m-K. This study demonstrates the promise that this technique holds for thermal measurements of bulk tissues as well as fine sub-millimeter samples.
机译:准确了解生物组织的热导率对于热生物工程非常重要,包括在冷冻保存,冷冻手术和其他热疗法中的应用。传统上,生物材料的热导率是通过宏观技术来测量的,例如稳定的纵向热流方法或嵌入式热敏电阻器方法。这些技术通常需要相对较大的厘米级样本,从而限制了它们对更精细的生物结构的适用性。它们还容易受到由热接触电阻和寄生热量损失引起的误差的影响。相反,通常使用“ 3Ω方法” [1-3]测量无机固体(例如半导体晶片和薄膜)的热导率。这种频域技术可抵抗热接触电阻和寄生热量损失。它通常具有亚毫米级的空间分辨率,理论极限低至数十微米。在这里,我们采用3Ω方法来测量生物组织。对包括琼脂凝胶,水和小鼠肝脏在内的冷冻和未冷冻样品(包括亚毫米厚度的样品)进行热导率测量。测量结果与文献值相比具有优势,并且范围从0.5到2.5 W / m-K。这项研究证明了该技术可用于对大块组织以及精细的亚毫米样品进行热测量的希望。

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