人工根管清创冲洗液流量特性的数值研究

G. Janes, Tikran Kocharian, S. Manoharan
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摘要

根管治疗或根管治疗是一种非手术方法,用于去除感染的牙髓,消毒和重塑根管。尽管一个多世纪以来,根管手术技术不断进步,但临床研究表明,在使用抗菌冲洗剂进行标准化清洁和整形手术后,根管中的微生物菌群仍然存在。不幸的是,考虑到控制流型的大量参数,进入顶部三分之一的“死区”是一项挑战。计算流体力学(CFD)为研究难以进行实验测量的区域的流动特性提供了强有力的工具。本文分为两部分。首先,在简化根系几何的条件下,通过计算研究了灌溉流量和插针深度对速度特性的影响。考虑的针型是30 gage KerrHawe,带有用于液体排放的侧通风口。简化根管模型为一个截锥体,长度为18 mm,孔处直径为1.59 mm,根尖缩窄处直径为0.45 mm(锥度为6.5%)。在此之后,将使用更实际的根几何来研究第1部分的结果如何与根几何相匹配。
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Numerical Investigation of Irrigant Flow Characteristics for Manual Endodontic Debridement
Root canal therapy or endodontic treatment is a nonsurgical approach used to remove the infected pulp, disinfect, and reshape the canal. Despite more than a century of technological improvements in root canal procedures, clinical studies indicate that microbial flora remain in the canal following standardized cleaning and shaping procedures using antimicrobial irrigants. Unfortunately, accessing this ‘dead zone’ in the apical third has been challenging given the large number of parameters that govern the flow pattern. Computational fluid dynamics (CFD) presents a powerful tool to investigate flow behavior in areas where experimental measurements are difficult to perform. This paper is divided into two sections. First, the influence of irrigant flow rate and needle insertion depth on velocity characteristics are computationally investigated for a simplified root geometry. The needle type considered is a 30 gage KerrHawe with a side vent for fluid discharge. The simplified root canal was modeled as a frustum with a length of 18 mm, diameter of 1.59 mm at the orifice, and a diameter of 0.45 mm at the apical constriction (6.5% taper). Following this, a more realistic root geometry is used to investigate how the results from part 1 scale with root geometry.
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