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Theoretical Considerations and a Mathematical Model for the Analysis of the Biomechanical Response of Human Keratinized Oral Mucosa

机译:人角化口腔黏膜生物力学响应分析的理论考虑和数学模型

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摘要

Removable complete and partial dentures are supported by the residual alveolar ridges consisting of mucosa, submucosa, periosteum, and bone. An understanding of the biomechanical behavior of the oral mucosa is essential in order to improve the denture-bearing foundations for complete and partially edentulous patients. The purpose of this paper was to examine the biomechanical behavior of the soft tissues supporting a removable denture and develop a model for that reason. Keratinized oral mucosa blocks with their underlying bone were harvested from the maxillary palatal area adjacent to the edentulous ridges of a cadaver. The compressive response of the oral mucosa was tested by using atomic force microscopy. The specimens were first scanned in order their topography to be obtained. The mechanical properties of the specimens were tested using a single crystal silicon pyramidal tip, which traversed toward the keratinized oral mucosa specimens. Loading-unloading cycles were registered and four mathematical models were tested using MATLAB to note which one approximates the force-displacement curve as close as possible: a. spherical, b. conical, c. third order polynomial, d. Murphy (fourth order polynomial, non-linear Hertzian based). The third order polynomial model showed the best accuracy in representing the force-displacement data of the tested specimens. A model was developed in order to analyze the biomechanical behavior of the human oral keratinized mucosa and obtain information about its mechanical properties.
机译:可移动的全口义齿和部分义齿由包括黏膜,黏膜下层,骨膜和骨骼的残留牙槽支撑。对口腔粘膜的生物力学行为的理解是必不可少的,以便为完全和部分缺牙的患者改善义齿的基础。本文的目的是检查支持可移动义齿的软组织的生物力学行为,并为此建立模型。从邻近尸体无牙ent的上颚bone区域收获角化的口腔粘膜块及其下端骨。使用原子力显微镜检查口腔粘膜的压缩反应。首先扫描样品,以便获得其形貌。使用单晶硅金字塔形尖端测试样品的机械性能,该尖端朝着角化口腔粘膜样品移动。记录了装卸循环,并使用MATLAB测试了四个数学模型,以注意到哪个模型尽可能接近力-位移曲线:球形,b。圆锥形三阶多项式,d。 Murphy(四阶多项式,基于非线性Hertzian)。三阶多项式模型在表示测试样本的力-位移数据方面显示出最佳的准确性。为了分析人类口腔角化黏膜的生物力学行为并获得有关其机械特性的信息,开发了一个模型。

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