Suppr超能文献

猪体内碎石冲击波的压力测量

In vivo pressure measurements of lithotripsy shock waves in pigs.

作者信息

Cleveland R O, Lifshitz D A, Connors B A, Evan A P, Willis L R, Crum L A

机构信息

Applied Physics Laboratory, University of Washington, Seattle 98105, USA.

出版信息

Ultrasound Med Biol. 1998 Feb;24(2):293-306. doi: 10.1016/s0301-5629(97)00270-6.

Abstract

Stone comminution and tissue damage in lithotripsy are sensitive to the acoustic field within the kidney, yet knowledge of shock waves in vivo is limited. We have made measurements of lithotripsy shock waves inside pigs with small hydrophones constructed of a 25-microm PVDF membrane stretched over a 21-mm diameter ring. A thin layer of silicone rubber was used to isolate the membrane electrically from pig fluid. A hydrophone was positioned around the pig kidney following a flank incision. Hydrophones were placed on either the anterior (shock wave entrance) or the posterior (shock wave exit) surface of the left kidney. Fluoroscopic imaging was used to orient the hydrophone perpendicular to the shock wave. For each pig, the voltage settings (12-24 kV) and the position of the shock wave focus within the kidney were varied. Waveforms measured within the pig had a shape very similar to those measured in water, but the peak pressure was about 70% of that in water. The focal region in vivo was 82 mm x 20 mm, larger than that measured in vitro (57 mm x 12 mm). It appeared that a combination of nonlinear effects and inhomogeneities in the tissue broadened the focus of the lithotripter. The shock rise time was on the order of 100 ns, substantially more than the rise time measured in water, and was attributed to higher absorption in tissue.

摘要

碎石术中的结石粉碎和组织损伤对肾内的声场很敏感,但对体内冲击波的了解却很有限。我们用由25微米聚偏二氟乙烯(PVDF)膜拉伸在直径21毫米的环上制成的小型水听器,对猪体内的碎石冲击波进行了测量。用一层薄的硅橡胶将膜与猪的体液进行电隔离。在侧腹切开后,将一个水听器放置在猪肾周围。水听器放置在左肾的前表面(冲击波入口)或后表面(冲击波出口)。使用荧光透视成像使水听器垂直于冲击波。对于每头猪,改变电压设置(12 - 24千伏)和冲击波在肾内的聚焦位置。在猪体内测量的波形形状与在水中测量的非常相似,但峰值压力约为水中的70%。体内的聚焦区域为82毫米×20毫米,比体外测量的(57毫米×12毫米)更大。似乎是组织中的非线性效应和不均匀性共同作用使碎石机的焦点变宽。冲击波的上升时间约为100纳秒,大大超过在水中测量的上升时间,这归因于组织中更高的吸收。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验