J. Okajima, A. Komiya, S. Maruyama
{"title":"Experimental and Numerical Evaluation of Small-Scale Cryosurgery Using Ultrafine Cryoprobe","authors":"J. Okajima, A. Komiya, S. Maruyama","doi":"10.1115/1.4027988","DOIUrl":null,"url":null,"abstract":"Cryosurgery is one of the surgical treatments using a frozen phenomenon in biological tissue. In order to reduce the invasiveness of cryosurgery, the miniaturization of cryoprobe, which is a cooling device for cryosurgery, has been required. The authors have developed a ultrafine cryoprobe for realizing low-invasive cryosurgery by the local freezing. The objective of this study is to evaluate the small-scale cryosurgery using the ultrafine cryoprobe experimentally and numerically.The ultrafine cryoprobe has a double-tube structure and consists of two stainless microtube. The outer diameter of ultrafine cryoprobe was 550 μm. The inner tube, which has 70 μm in inner diameter, depressurizes the high-pressure liquidized refrigerant. Depressurized refrigerant changes its state to two-phase and passes through the gap between outer and inner tube. The alternative Freon of HFC-23 was used as a refrigerant, which has the boiling point of −82°C at 0.1 MPa.The cooling performance of this ultrafine cryoprobe was tested by the freezing experiment of the gelated water kept at 37°C. The gelated water at 37°C is a substitute of the biological tissue. As a result of the cooling in 1 minute, the surface temperature of the ultrafine cryoprobe was reached at −35°C and the radius of frozen region was 2 mm.In order to evaluate the temperature distribution in the frozen region, the numerical simulation was conducted. The two-dimensional axisymmetric bioheat transfer equation with phase change was solved. By using the result from the numerical simulation, the temperature distribution in the frozen region and expected necrosis area is discussed.Copyright © 2013 by ASME","PeriodicalId":73845,"journal":{"name":"Journal of nanotechnology in engineering and medicine","volume":"4 1","pages":"040906"},"PeriodicalIF":0.0000,"publicationDate":"2013-11-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://sci-hub-pdf.com/10.1115/1.4027988","citationCount":"1","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Journal of nanotechnology in engineering and medicine","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1115/1.4027988","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 1
使用超细冷冻探针进行小规模冷冻手术的实验与数值评价
冷冻手术是利用生物组织中的冷冻现象进行外科治疗的一种。为了减少冷冻手术的侵入性,冷冻探针作为冷冻手术的冷却装置,其小型化已成为人们的要求。作者研制了一种超细冷冻探针,用于局部冷冻的低创冷冻手术。本研究的目的是在实验和数值上评价超细冷冻探针在小范围冷冻手术中的应用。超细冷冻探针采用双管结构,由两个不锈钢微管组成。超细冷冻探针外径550 μm。内管内径为70 μm,用于对高压液态制冷剂进行减压。减压后的制冷剂变为两相状态,并通过内外管之间的间隙。采用HFC-23的替代品氟利昂作为制冷剂,在0.1 MPa下沸点为- 82℃。通过37℃下凝胶水的冷冻实验,测试了该超细冷冻探针的冷却性能。37℃的凝胶水是生物组织的替代品。经过1分钟的冷却,超细冷冻探针的表面温度达到- 35℃,冻结区域半径为2 mm,为了评估冻结区域的温度分布,进行了数值模拟。求解了含相变的二维轴对称生物传热方程。利用数值模拟结果,讨论了冻结区和预期坏死区的温度分布。ASME版权所有©2013
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