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COOLING CHARACTERISTICS OF ULTRAFINE CRYOPROBE UTILIZING CONVECTIVE BOILING HEAT TRANSFER IN MICROCHANNEL

机译:利用微通道对流沸腾热传递超细冷冻探针的冷却特性

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This paper describes a novel cooling system to be applied in cryosurgery. An ultrafine cryoprobe has been developed to treat small lesions which cannot be treated by conventional cryoprobes. The main problem of the ultrafine cryoprobe is the reduction of the heat transfer rate by the small flow rate due to the large pressure drop in a microchannel and the large ratio of the surface area to the volume. In order to overcome these problems, we utilized boiling heat transfer in a microchannel as the heat transfer mechanism in the ultrafine cryoprobe. The objectives of this paper are to develop an ultrafine cryoprobe and evaluate its cooling characteristics. The ultrafine cryoprobe has a co-axial double tube structure which consists of inner and outer stainless steel tubes. The outer and inner diameters of the outer tube are 0.55mm and 0.3mm, respectively. The outer and inner diameters of the inner tube are 0.15mm and 0.07mm, respectively. The inner tube serves as a capillary tube to change the refrigerant from liquid state to two-phase flow. Furthermore, two-phase flow passes through the annular passage between the inner and out tube. The hydraulic diameter of the annular passage is 0.15mm. Furthermore, HFC-23 (Boiling point is -82.1°C at 1atm) is used as the refrigerants. The temperature of the ultrafine cryoprobe was measured. The lowest temperatures were -45°C in the insulated condition and -35°C in the agar at 37°C (which simulates in vivo condition). Furthermore, the frozen region which is generated around the ultrafine cryoprobe was measured 5mm from the tip of cryoprobe at 120s, and resulted to be 3mm in diameter. Moreover, the change of the refrigerant state is calculated by using the energy conservation equation and the empirical correlations of two-phase pressure drop and boiling heat transfer. As a result, the refrigerant state in the ultrafine cryoprobe depends on the external heat flux. Finally, the required geometry of the ultrafine cryoprobe to make high cooling performance is evaluated.
机译:本文介绍了一种用于在冷冻机构中的新型冷却系统。已经开发出超细冷冻探针以处理不能通过常规冷冻管治疗的小病变。超细冷冻探针的主要问题是由小流量的热传递率的降低是由于在微通道的较大的压力降和表面面积与体积的比率大。为了克服这些问题,我们在微通道中使用沸腾的传热作为超细冷冻探针中的传热机制。本文的目的是开发超细冷冻探针并评估其冷却特性。超细冷冻探针具有共轴双管结构,由内部和外部不锈钢管组成。外管的外径和内径分别为0.55mm和0.3mm。内管的外径和内径分别为0.15mm和0.07mm。内管用作毛细管,以将制冷剂从液态改变为两相流。此外,两相流通过内外管之间的环形通道。环形通道的液压直径为0.15mm。此外,使用HFC-23(在1ATM处为-82.1℃)作为制冷剂。测量超细冷冻探针的温度。最低温度为-45℃的绝缘状态-35℃在琼脂在37℃(其模拟体内条件)。此外,从冷冻探针的尖端在120℃下测量围绕超细冷冻探针产生的冷冻区域,直径为3mm。此外,通过使用节能方程和两相压降和沸腾热传递的经验相关性来计算制冷剂状态的变化。结果,超细冷冻探针中的制冷剂状态取决于外部热通量。最后,评估超细冷冻探针的所需几何形状以进行高冷却性能。

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