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New theoretical model to measure pressure produced during impression procedure for complete dentures-Visual inspection of impression material flow

机译:新的理论模型可以测量压印过程中产生的压力,以完成全口义齿的目视检查压印材料流

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摘要

Objective. A theoretical model, based on fluid dynamics, was developed to measure impression pressure. The purpose of this study was to evaluate the validity of this theoretical model by comparing its theoretical analysis against actual pressure measurements conducted using an impression tray and edentulous oral mucosa analog embedded with pressure sensors. Methods. In the theoretical model, a hollow tube was mounted onto an impression tray by penetrating through the tray. When force was applied to the tray, pressure was produced which then caused the impression material to flow into the hollow tube. Length of impression material which flowed into tube was denoted as I. In the calculation formula for theoretical model, pressure impulse I was expressed as a function of impression flow length I. For actual pressure measurements, four electric pressure sensors were embedded in an experimental edentulous arch. To visually observe and measure length of impression material flow, four transparent silicon tubes were mounted vertically at different positions on tray. During tray seating, impression material flowed into tubes and pressure which caused material flow movement was measured by the embedded sensor at each tube's position. Results. Based on actual pressure measurements under one experimental condition, regression analysis of pressure data acquired from electric sensors yielded the formula, Y = 0.056X~2 + 0.124X. Based on theoretical analysis using a particular viscosity value, the numerical formula yielded was Y = 0.057X~2, which resembled that of the regression formula. Significance. Theoretical model presented in this paper augured well for clinical application as an easy and economical means to examine magnitude and distribution of impression pressure by measuring lengths of impression material flow in tubes fixed to impression tray.
机译:目的。建立了基于流体动力学的理论模型来测量压印压力。这项研究的目的是通过将其理论分析与使用压模盘和嵌有压力传感器的无牙口腔粘膜类似物进行的实际压力测量进行比较来评估该理论模型的有效性。方法。在理论模型中,中空管通过穿透托盘而安装在压印托盘上。当对托盘施加力时,产生压力,然后使压印材料流入中空管。流入管中的压印材料的长度记为I。在理论模型的计算公式中,压力脉冲I表示为压印流长度I的函数。对于实际压力测量,在实验的无齿状态中嵌入了四个电动压力传感器拱。为了目视观察和测量压印材料流的长度,将四个透明硅管垂直安装在托盘上的不同位置。在托盘固定期间,压印材料流入管中,并通过每个管位置处的嵌入式传感器测量导致材料流动运动的压力。结果。根据在一种实验条件下的实际压力测量结果,对从电传感器获取的压力数据进行回归分析得出公式:Y = 0.056X〜2 + 0.124X。根据使用特定粘度值的理论分析,得出的数值公式为Y = 0.057X〜2,与回归公式相似。意义。本文介绍的理论模型非常适合临床应用,是一种通过测量固定在压印托盘上的压印材料流的长度来检查压印压力的大小和分布的简便经济的方法。

著录项

  • 来源
    《Dental materials》 |2013年第5期|530-534|共5页
  • 作者单位

    Occlusion and Removable Prosthodontics, Okayama University Hospital, 2-5-1, Shikata-cho, Okayama 700-8525, Japan;

    Occlusion and Removable Prosthodontics, Okayama University Hospital, 2-5-1, Shikata-cho, Okayama 700-8525, Japan;

    Department o/Biomaterials, Okayama Uniuersity Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, 2-5-1,Shifeata-cho, Kitafeu, Okayama City 700-8525, Japan;

    Department of Occlusal and Oral Functional Rehabilitation, Okayama Uniuersity Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, 2-5-1, Shifeata-cho, Kitafeu, Okayama City 700-8525, Japan;

    Occlusion and Removable Prosthodontics, Okayama University Hospital, 2-5-1, Shikata-cho, Okayama 700-8525, Japan;

    Department of Occlusal and Oral Functional Rehabilitation, Okayama Uniuersity Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, 2-5-1, Shifeata-cho, Kitafeu, Okayama City 700-8525, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    impression; pressure; complete denture;

    机译:印象;压力;全口义齿;
  • 入库时间 2022-08-18 03:47:03

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