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使用复合生物材料-丁基橡胶/生物材料来防止在长期电动左心室辅助装置(LVAD)泵送过程中经膈肌的水渗透。

Use of a composite Biomer-butyl rubber/Biomer material to prevent transdiaphragmatic water permeation during long-term, electrically-actuated left ventricular assist device (LVAD) pumping.

作者信息

McGee Michael G., Szycher Michael, Turner Stephen A., Clay Warren, Trono Ruben, Fuqua John M., Norman John C.

机构信息

Cardiovascular Surgical Research Laboratories, Texas Heart Institute of St. Luke's Episcopal and Texas Children's Hospitals, Houston, Texas.

出版信息

Cardiovasc Dis. 1980 Sep;7(3):278-287.

Abstract

The pumping diaphragm of the Texas Heart Institute (THI) E-Type ALVAD must perform the dual functions of providing a flexible blood interface and isolating the electrical actuator from adjacent fluids. Thus, protection is required against fluid leakage and moisture diffusion to prevent corrosion and damage to electrical actuator components. Average diffusion rates up to 1 ml per day through currently used elastomeric diaphragm materials have been measured during static in-vitro and in-vivo tests. To circumvent this problem, an improved pumping diaphragm has been recently developed for use with the electrically-actuated THI E-Type ALVAD. This trilaminar diaphragm consists of a composite Biomer and butyl rubber design. A.010 inch layer of butyl rubber (characterized by an extremely low diffusion rate for water, approximately 0 ml per day) is positioned between two Biomer layers (.020 and.010 inches in thickness). Initial invitro and in-vivo studies, in calves, indicate that this composite diaphragm provides an excellent barrier to water permeation, without sacrificing biocompatibility or structural integrity under conditions of chronic flexure.

摘要

德克萨斯心脏研究所(THI)E型辅助左心室装置(ALVAD)的泵浦隔膜必须具备双重功能,既要提供灵活的血液界面,又要将电动执行机构与相邻液体隔离开来。因此,需要采取防护措施防止液体泄漏和水分扩散,以防止对电动执行机构部件造成腐蚀和损坏。在静态体外和体内测试中,已测量出通过目前使用的弹性体隔膜材料的平均扩散速率高达每天1毫升。为了解决这个问题,最近开发了一种改进的泵浦隔膜,用于电动的THI E型ALVAD。这种三层隔膜由复合生物材料和丁基橡胶设计组成。一层0.010英寸厚的丁基橡胶(其特点是水的扩散速率极低,约为每天0毫升)位于两层生物材料层(厚度分别为0.020英寸和0.010英寸)之间。在小牛身上进行的初步体外和体内研究表明,这种复合隔膜在慢性弯曲条件下,在不牺牲生物相容性或结构完整性的情况下,能提供出色的防水渗透屏障。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6c6b/287865/a47c43c4525f/cardiodis00007-0047-a.jpg

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