首页> 外文期刊>Bioinspiration & biomimetics >Improved single- and multi-contact life-time testing of dental restorative materials using key characteristics of the human masticatory system and a force/position-controlled robotic dental wear simulator
【24h】

Improved single- and multi-contact life-time testing of dental restorative materials using key characteristics of the human masticatory system and a force/position-controlled robotic dental wear simulator

机译:利用人类咀嚼系统的关键特性和受力/位置控制的机器人牙科磨损模拟器,改善了牙科修复材料的单接触和多接触寿命测试

获取原文
获取原文并翻译 | 示例
           

摘要

This paper presents a new in vitro wear simulator based on spatial parallel kinematics and a biologically inspired implicit force/position hybrid controller to replicate chewing movements and dental wear formations on dental components, such as crowns, bridges or a full set of teeth. The human mandible, guided by passive structures such as posterior teeth and the two temporomandibular joints, moves with up to 6 degrees of freedom (DOF) in Cartesian space. The currently available wear simulators lack the ability to perform these chewing movements. In many cases, their lack of sufficient DOF enables them only to replicate the sliding motion of a single occlusal contact point by neglecting rotational movements and the motion along one Cartesian axis. The motion and forces of more than one occlusal contact points cannot accurately be replicated by these instruments. Furthermore, the majority of wear simulators are unable to control simultaneously the main wear-affecting parameters, considering abrasive mechanical wear, which are the occlusal sliding motion and bite forces in the constraint contact phase of the human chewing cycle. It has been shown that such discrepancies between the true in vivo and the simulated in vitro condition influence the outcome and the quality of wear studies. This can be improved by implementing biological features of the human masticatory system such as tooth compliance realized through the passive action of the periodontal ligament and active bite force control realized though the central nervous system using feedback from periodontal preceptors. The simulator described in this paper can be used for single- and multi-occlusal contact testing due to its kinematics and ability to exactly replicate human translational and rotational mandibular movements with up to 6 DOF without neglecting movements along or around the three Cartesian axes. Recorded human mandibular motion and occlusal force data are the reference inputs of the simulator. Experimental studies of wear using this simulator demonstrate that integrating the biological feature of combined force/position hybrid control in dental material testing improves the linearity and reduces the variability of results. In addition, it has been shown that present biaxially operated dental wear simulators are likely to provide misleading results in comparative in vitro/in vivo one-contact studies due to neglecting the occlusal sliding motion in one plane which could introduce an error of up to 49% since occlusal sliding motion D and volumetric wear loss V _(loss) are proportional.
机译:本文介绍了一种新的体外磨损模拟器,该模拟器基于空间平行运动学和受生物学启发的隐式力/位置混合控制器,可在牙齿组件(例如冠,桥或整套牙齿)上复制咀嚼运动和牙齿磨损结构。下颌骨在被动结构(例如后牙和两个颞下颌关节)的引导下,在笛卡尔空间中以最高6个自由度(DOF)移动。当前可用的磨损模拟器缺乏执行这些咀嚼运动的能力。在许多情况下,由于缺少足够的自由度,因此它们仅通过忽略旋转运动和沿一个笛卡尔轴的运动来复制单个咬合接触点的滑动运动。这些器械无法精确地复制多个咬合点的运动和力。此外,考虑到磨损性机械磨损,大多数磨损模拟器无法同时控制主要的影响磨损的参数,这些参数是人类咀嚼周期的约束接触阶段中的咬合滑动和咬合力。已经表明,真实的体内条件与模拟的体外条件之间的这种差异会影响穿戴研究的结果和质量。这可以通过实现人类咀嚼系统的生物学特征来改善,例如通过牙周膜的被动作用实现的牙齿顺应性以及通过中枢神经系统使用牙周感受器的反馈实现的主动咬力控制。本文所述的模拟器可用于单咬合和多咬合接触测试,这是因为其运动学特性以及能够精确复制人体平移和旋转下颌运动的能力(多达6个自由度),而不会忽略沿三个直角坐标轴或围绕三个直角坐标轴的运动。记录的人体下颌运动和咬合力数据是模拟器的参考输入。使用该模拟器进行的磨损实验研究表明,在牙科材料测试中整合力/位混合控制的生物学特性可以改善线性度并减少结果的可变性。此外,已经表明,由于忽略了一个平面中的咬合滑动,目前的双轴操作牙科磨损模拟器可能会在比较的体外/体内单接触研究中提供误导性结果,这可能会引入高达49的误差因为咬合滑动运动D和体积磨损损失V _(损失)成正比,所以%。

著录项

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号