[干颅骨模拟肌肉应力分布研究]。

M Okano
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引用次数: 0

摘要

在咬合时,下颌骨以t.m.j.为支点被咀嚼肌肉抬高,此时主要集中在牙弓上的咀嚼力通过牙周组织被吸收到颌骨中。因此,评估上颌和下颌骨在咀嚼时对咬合力的机械应变分布对修复学的研究具有重要意义。很多研究已经澄清这一点,但许多人分析的应力模式下牙(点)时力模型准备假设在颌骨牙齿种植,但只有很少的研究分析模式当下颌骨应力在武力的提升主要在m .咬肌的方向定位骨同样作为体内机制。为了评估下颌骨被咀嚼肌抬高时所受到的机械应变分布,作者在实验模型上假设自记忆合金代替下颌肌(咬肌)和颞肌(颞肌),将下颌肌从颧骨下缘中心和颧弓中心设置为下颌角,评估了在轻、硬两种拉力条件下应力分布的变化。因此,得出以下结论:1。当咬肌原点位于颧骨下缘的中心时,所有测点在轻拉力和硬拉力下均显示出最大的拉伸应变。在轻拉力作用下,最小应变表现为从下犬齿到下犬齿的压应变;在硬拉力作用下,最小应变在所有测点均表现为拉应变。硬拉力作用下的应变量大于轻拉力作用下的应变量。2. 当咬肌原点位于颧弓中心时,最大应变在所有测点均表现为轻拉力和硬拉力作用下的拉伸应变。在光和硬拉力作用下,最小应变在所有测点均表现为压缩应变。硬拉力作用下的应变量总是大于轻拉力作用下的应变量。(摘要删节为400字)
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[Studies on stress distribution under simulated muscles on dry skull].

In case of occlusion, the mandible is elevated by the muscles of mastication with T. M. J. as the fulcrum point, and at this time, the masticatory force concentrated mainly on the dental arch is absorbed into the jaw bone through the periodontal tissues. Therefore, it is of great significance for the study of prosthodontics to assess what distribution of mechanical strain the maxillar and mandibular bones exhibit to occlusal force at mastication. Very many studies have been made to clarify this point, but many of them were analyses of stress pattern when a tooth (a point) is under force on models prepared on the assumption that a tooth is planted on the jaw bone, but there are only very few studies which made analysis of stress pattern when the mandible is under force by elevating it mainly along the direction of the M. masseter upon positioning the bone similarly as in vivo mechanism. With the purpose of assessing the distribution of mechanical strain received when the mandible is elevated by the muscle of mastication, the author has assessed the change in the stress distribution under 2 conditions of light and hard tensile forces by setting the M. masseter form the center of the inferior border of the zygomatic bone and center of the zygomatic arch to the mandibular angles on the assumption that self memory alloy takes the places of the M. masseter (the masseter) and M. temporalis (the temporalis) on the experimental model. As a result, the following conclusions have been reached: 1. When the origin of the masseter is at the center of the inferior border of the zygomatic bone, the maximum exhibited tensile strain at all the measuring points both under light and hard tensile forces. Under light tensile force, the minimum strain showed compressive strain in the region from the lower canine to the lower first under hard tensile force, the minimum strain exhibited tensile strain at all measuring points. The amount of strain under hard tensile force exceeded the amount under light tensile force. 2. When the origin of the masseter is at the center of the zygomatic arch, the maximum strain showed tensile strain at all the measuring points both under light and hard tensile foece. The minimum strain exhibited compressive strain at all the measuring points both under light and hard tensile foece. The amount of strain under hard tensile force always exceeded the amount under light tensile force.(ABSTRACT TRUNCATED AT 400 WORDS)

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