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A two way fully coupled fluid structure simulation of human ureter peristalsis

机译:输尿管蠕动的双向全耦合流体结构模拟

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Numerical simulations of ureter peristalsis have been carried out in the past to understand both the flow field and ureter wall mechanics. The main objective of the current investigations is to have a better understanding of the urine transport due to the peristalsis in the ureter, thus making the information helpful for a better treatment and diagnosis of ureteral complications like urine reflux. In the current study, a numerical simulation is performed using a finite-element-based solver with a two-way fully coupled fluid structure interaction approach between the ureter wall and urine. For the first time, the ureter wall is modeled as an anisotropic hyper-elastic material based on experiments performed in previous literature on the human ureter. Peristalsis in the ureter is modeled as a series of isolated boluses. By observing the flow field it is clear that the peristalsis mechanism has a natural tendency to create a backflow as the isolated bolus moves forward. As a result, the urine can flow back from the bladder to the ureter at the ureterovesical (ureter-bladder) junctions, if the one-way valve starts to malfunction.
机译:过去已经进行了输尿管蠕动的数值模拟,以了解流场和输尿管壁力学。当前研究的主要目的是更好地了解输尿管蠕动引起的尿液运输,从而使这些信息有助于更好地治疗和诊断输尿管并发症,如尿液反流。在当前的研究中,使用基于有限元的求解器以及输尿管壁和尿液之间的双向完全耦合流体结构相互作用方法进行了数值模拟。输尿管壁首次基于先前关于人体输尿管的文献中进行的实验,被建模为各向异性的超弹性材料。输尿管中的蠕动被建模为一系列孤立的大丸剂。通过观察流场,很明显蠕动机制具有自然趋势,因为孤立的小丸向前移动会产生回流。结果,如果单向阀开始出现故障,尿液会在膀胱输尿管(输尿管-膀胱)连接处从膀胱流回输尿管。

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