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通过艾哈迈德青光眼引流装置的流动的薄膜耦合流固分析。

Thin-film coupled fluid-solid analysis of flow through the Ahmed glaucoma drainage device.

作者信息

Stay Matthew S, Pan Tingrui, Brown J David, Ziaie Babak, Barocas Victor H

机构信息

Department of Biomedical Engineering, University of Minnesota, Minneapolis, MN 55455, USA.

出版信息

J Biomech Eng. 2005 Oct;127(5):776-81. doi: 10.1115/1.1993662.

Abstract

The Ahmed glaucoma valve (AGV) is a popular glaucoma drainage device, allowing maintenance of normal intraocular pressure in patients with reduced trabecular outflow facility. The uniquely attractive feature of the AGV, in contrast to other available drainage devices, is its variable resistance in response to changes in flow rate. As a result of this variable resistance, the AGV maintains a pressure drop between 7 and 12 mm Hg for a wide range of aqueous humor flow rates. In this paper, we demonstrate that the nonlinear behavior of the AGV is a direct result of the flexibility of the valve material. Due to the thin geometry of the system, the leaflets of the AGV were modeled using the von Kármán plate theory coupled to a Reynolds lubrication theory model of the aqueous humor flow through the valve. The resulting two-dimensional coupled steady-state partial differential equation system was solved by the finite element method. The Poisson's ratio of the valve was set to 0.45, and the modulus was regressed to experimental data, giving a best-fit value 4.2 MPa. Simulation results compared favorably with previous experimental studies and our own pressure-drop/flow-rate data. For an in vitro flow of 1.6 microL/min, we calculated a pressure drop of 5.8 mm Hg and measured a pressure drop of 5.2 +/- 0.4 mm Hg. As flow rate was increased, pressure drop rose in a strongly sublinear fashion, with a flow rate of 20 microL/min giving a predicted pressure drop of only 10.9 mm Hg and a measured pressure drop of 10.5 +/- 1.1 mm Hg. The AGV model was then applied to simulate in vivo conditions. For an aqueous humor flow rate of 1.5-3.0 microL/min, the calculated pressure drops were 5.3 and 6.3 mm Hg.

摘要

艾哈迈德青光眼引流阀(AGV)是一种常用的青光眼引流装置,可使小梁网引流功能降低的患者维持正常眼压。与其他现有引流装置相比,AGV独特的吸引人之处在于其对流速变化的可变阻力。由于这种可变阻力,AGV在广泛的房水流量范围内可维持7至12毫米汞柱的压降。在本文中,我们证明AGV的非线性行为是瓣膜材料柔韧性的直接结果。由于该系统的几何形状较薄,AGV的瓣膜小叶采用冯·卡门板理论与房水通过瓣膜流动的雷诺兹润滑理论模型相结合进行建模。通过有限元方法求解所得的二维耦合稳态偏微分方程组。瓣膜的泊松比设定为0.45,模量根据实验数据进行回归,得出最佳拟合值为4.2兆帕。模拟结果与先前的实验研究以及我们自己的压降/流速数据相比具有优势。对于1.6微升/分钟的体外流量,我们计算出压降为5.8毫米汞柱,测量得到的压降为5.2±0.4毫米汞柱。随着流速增加,压降以强烈的亚线性方式上升,流速为20微升/分钟时,预测压降仅为10.9毫米汞柱,测量压降为10.5±1.1毫米汞柱。然后将AGV模型应用于模拟体内情况。对于1.5 - 3.0微升/分钟的房水流量,计算出的压降分别为5.3和6.3毫米汞柱。

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