Precision Orthodontic Force Simulation Using Nodal Displacement-Based Archwire Loading Approach.

IF 2.2 4区 医学 Q3 ENGINEERING, BIOMEDICAL International Journal for Numerical Methods in Biomedical Engineering Pub Date : 2024-11-13 DOI:10.1002/cnm.3889
Waheed Ahmad, Kanhui Liang, Jing Xiong, Juan Dai, Jun Cao, Zeyang Xia
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Abstract

Precision in force simulationis critical for forecasting tooth movement and optimizing orthodontic treatment strategies. While traditional techniques have provided valuable insights, there remains a need for improved methodologies that can seamlessly integrate with fixed orthodontic practices. This study aims to refine orthodontic force simulation techniques by integrating a nodal displacement approach within finite element analysis, specifically designed to enhance prediction accuracy in tooth movement and optimize orthodontic treatment planning. Three-dimensional patient-specific models of the Tooth, Periodontal Ligament, and Bone Complex (TPBC) of five volunteers were created, along with models of brackets and wires. The simulation involved an initial step of estimating node displacements to align the archwire with the brackets, followed by a subsequent step to attain the required tooth movement and determine the orthodontic force. Experimental validation of the simulation results was performed using an orthodontic force tester (OFT). Utilizing the nodal displacement approach, the simulation successfully positioned the archwire onto the brackets. When benchmarked against the OFT, 80% of the simulated force directions exhibited angular discrepancies of less than 5°. Additionally, the absolute differences in force magnitude reached 20.06 cN, and in moments, up to 71.76 cN mm. The relative differences were as high as 9.55% for force and 13.83% for moments. These findings represent an improvement of up to 10.45% in force accuracy and 8.87% in moment accuracy compared to median values reported in most recent literature. In this research, a nodal displacement methodology was employed to simulate orthodontic forces with precision across the dental arch. The results demonstrate the approache's potential to enhance the accuracy of force prediction in orthodontic treatment planning, thereby advancing our understanding of orthodontic biomechanics.

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使用基于节点位移的弓丝加载法进行精确正畸力模拟
精确的力模拟对于预测牙齿移动和优化正畸治疗策略至关重要。虽然传统技术已经提供了有价值的见解,但仍然需要能够与固定正畸实践无缝结合的改进方法。本研究旨在通过在有限元分析中整合节点位移方法来改进正畸力模拟技术,专门用于提高牙齿移动的预测准确性和优化正畸治疗计划。研究建立了五名志愿者的牙齿、牙周韧带和骨复合体(TPBC)的三维患者特异性模型,以及托槽和钢丝模型。模拟的初始步骤是估算节点位移,以便将弓丝与托槽对齐,随后的步骤是实现所需的牙齿移动并确定矫治力。模拟结果的实验验证使用正畸力测试仪(OFT)进行。利用节点位移方法,模拟成功地将弓丝定位到托槽上。以正畸力测试仪为基准,80% 的模拟力方向显示出小于 5° 的角度差异。此外,力大小的绝对差异达到 20.06 cN,力矩的绝对差异高达 71.76 cN mm。力的相对差异高达 9.55%,力矩的相对差异高达 13.83%。这些结果表明,与最新文献报道的中值相比,力的精度提高了 10.45%,力矩的精度提高了 8.87%。在这项研究中,采用了节点位移方法来精确模拟整个牙弓的正畸力。研究结果表明,该方法有望提高正畸治疗计划中力预测的准确性,从而促进我们对正畸生物力学的理解。
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来源期刊
International Journal for Numerical Methods in Biomedical Engineering
International Journal for Numerical Methods in Biomedical Engineering ENGINEERING, BIOMEDICAL-MATHEMATICAL & COMPUTATIONAL BIOLOGY
CiteScore
4.50
自引率
9.50%
发文量
103
审稿时长
3 months
期刊介绍: All differential equation based models for biomedical applications and their novel solutions (using either established numerical methods such as finite difference, finite element and finite volume methods or new numerical methods) are within the scope of this journal. Manuscripts with experimental and analytical themes are also welcome if a component of the paper deals with numerical methods. Special cases that may not involve differential equations such as image processing, meshing and artificial intelligence are within the scope. Any research that is broadly linked to the wellbeing of the human body, either directly or indirectly, is also within the scope of this journal.
期刊最新文献
Real-Time Surgical Planning for Cerebral Aneurysms Treated With Intrasaccular Flow Disruption Devices Based on Fast Virtual Deployment and Discrete Element Method. Analyzing Pulse Compression Performance and Image Quality Metrics of Different Excitations in MAET With Magnetic Field Measurements. Precision Orthodontic Force Simulation Using Nodal Displacement-Based Archwire Loading Approach. Design of Mechanics-Guided Helmet Pad and Its Protection Performance Against the Blast Shock Waves. Gender-Based Differences in the Biomechanical Behavior of the Thorax During CPR Maneuvers.
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