Panaite Tinela, Savin Carmen, Olteanu Nicolae Daniel, Karvelas Nikolaos, Romanec Cristian, Vieriu Raluca-Maria, Balcos Carina, Baltatu Madalina Simona, Benchea Marcelin, Achitei Dragos, Zetu Irina
Department of Oral and Maxillofacial Surgery, Faculty of Dental Medicine, "Gr. T. Popa" University of Medicine and Pharmacy, 16 Universitatii Str., 700115 Iasi, Romania.
Faculty of Materials Science and Engineering, "Gheorghe Asachi" Technical University of Iasi, 41 "D. Mangeron" Street, 700050 Iasi, Romania.
Dent J (Basel). 2024 Apr 11;12(4):103. doi: 10.3390/dj12040103.
Orthodontic mini-implants are devices used for anchorage in various orthodontic treatments. We conducted a pilot study which aimed to observe preliminary trends regarding the impact of heat treatment on the elastic modulus of Ti6Al4V alloy and stainless steel 316L mini-implants. The initial phase involved testing the impact of heat treatment on the mechanical properties of Ti6Al4V alloy and stainless steel 316L mini-implants.
Ten self-drilling mini-implants sourced from two distinct manufacturers (Jeil Medical Corporation and Leone) with dimensions of 2.0 mm diameter and 10 mm length were tested. They were separated into two material groups: Ti6Al4V and 316L. Using the CETRUMT-2 microtribometer equipment, indentation testing was conducted employing a diamond-tipped Rockwell penetrator at a constant force of 4.5 N.
Slight differences were observed in the elastic modulus of the Ti6Al4V alloy (103.99 GPa) and stainless steel 316L (203.20 GPa) compared to natural bone. The higher elastic moduli of these materials indicate that they are stiffer, which could potentially lead to stress-shielding phenomena and bone resorption. Heat treatment resulted in significant changes in mechanical properties, including elastic modulus reductions of approximately 26.14% for Ti6Al4V and 24.82% for 316L, impacting their performance in orthodontic applications.
Understanding the effects of heat treatment on these alloys is crucial for optimizing their biomechanical compatibility and longevity in orthodontic treatment. To fully evaluate the effects of heat treatment on mini-implants and to refine their design and efficacy in clinical practice, further research is needed.
正畸微型种植体是用于各种正畸治疗中作为支抗的装置。我们进行了一项初步研究,旨在观察热处理对Ti6Al4V合金和316L不锈钢微型种植体弹性模量影响的初步趋势。初始阶段涉及测试热处理对Ti6Al4V合金和316L不锈钢微型种植体力学性能的影响。
测试了来自两个不同制造商(Jeil Medical Corporation和Leone)的10个自攻型微型种植体,其直径为2.0毫米,长度为10毫米。它们被分为两个材料组:Ti6Al4V和316L。使用CETRUMT - 2微摩擦计设备,采用金刚石尖端的洛氏压头在4.5 N的恒定力下进行压痕测试。
与天然骨相比,Ti6Al4V合金(103.99 GPa)和316L不锈钢(203.20 GPa)的弹性模量存在细微差异。这些材料较高的弹性模量表明它们更硬,这可能会导致应力屏蔽现象和骨吸收。热处理导致力学性能发生显著变化,包括Ti6Al4V的弹性模量降低约26.14%,316L降低约24.82%,影响了它们在正畸应用中的性能。
了解热处理对这些合金的影响对于优化它们在正畸治疗中的生物力学兼容性和使用寿命至关重要。为了全面评估热处理对微型种植体的影响并在临床实践中优化其设计和功效,还需要进一步的研究。