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Influence of loading frequency on implant failure under cyclic fatigue conditions

机译:加载频率对周期性疲劳条件下植入物失效的影响

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摘要

Objectives. Preliminary studies on implant fatigue testing suggested that fractures were more likely to occur at 2 Hz than at 30 Hz (χ~2, p<0.05). This investigation explores frequency and base elastic modulus effects on strain, strain rate and failure.rnMethods. A total of 66 implants were mounted in different base materials (acrylic, glass-filled epoxy, aluminum) and loaded up to 10~6 cycles per ISO 14801 (20 N to 420-500 N) at frequencies of 2 Hz and 30 Hz (chosen to accelerate frequency as the stressor). Absolute strain magnitudes and strain rates under varying loading conditions and with different base materials were measured using one strain-gauged implant. Failure probability distributions were analyzed by both Weibull and life data analysis. Measured strain was used to validate an FEA model. Fracture surfaces were examined by SEM.rnResults. Number of failures and failure-rates-per-cycle differed significantly between implants tested at 2 Hz versus 30 Hz (p<0.05). Strain magnitude was independent of frequency. Strain rates were highly correlated with frequency (linear r~2>0.99) and differed significantly under failure conditions (420 N): 2 Hz = 8292 (μstrain/s; (500 N): 30 Hz = 80,840 μstrain/s. Measured and FEA-calculated strains were similar. Fracture surfaces were indistinguishable (2 Hz versus 30 Hz).rnSignificance. Fatigue failure was significantly more likely at 2 Hz than 30 Hz whereas base material and loading magnitude seemed to have only minor influence. Absolute strain was identical at these frequencies suggesting strain rate sensitivity for this commercially pure titanium implant. Both the Weibull and SEM analyses support an identical failure mechanism with damage accumulation more severe at lower frequencies, an interpretation consistent with strain rate sensitivity.
机译:目标。对植入物疲劳测试的初步研究表明,在2 Hz时比在30 Hz时更容易发生骨折(χ〜2,p <0.05)。这项研究探讨了频率和基础弹性模量对应变,应变率和破坏的影响。总共将66个植入物安装在不同的基础材料(丙烯酸,玻璃纤维环氧树脂,铝)中,并按照ISO 14801(20 N至420-500 N)在2 Hz和30 Hz的频率下加载多达10〜6个周期(选择加速频率作为压力源)。使用一种应变计植入物,测量了在变化的负载条件下以及在不同基材下的绝对应变幅度和应变率。通过威布尔和寿命数据分析来分析失效概率分布。使用测得的应变来验证FEA模型。通过SEM检查断裂表面。结果。在2 Hz和30 Hz下测试的植入物之间的失败次数和每个周期的失败率有显着差异(p <0.05)。应变大小与频率无关。应变率与频率高度相关(线性r〜2> 0.99),并且在故障条件下(420 N):2 Hz = 8292(μstrain/ s;(500 N):30 Hz = 80,840μs/ s。 FEA计算得出的应变相似,断裂表面难以区分(2 Hz与30 Hz)rn意义:2 Hz比30 Hz时,疲劳破坏的可能性更大,而基体材料和加载量的影响似乎很小,绝对应变相同Weibull和SEM分析均支持相同的失效机制,在较低频率下损伤积累更为严重,这与应变速率敏感性相符。

著录项

  • 来源
    《Dental materials》 |2009年第11期|1426-1432|共7页
  • 作者

    Matthias Karl; J. Robert Kelly;

  • 作者单位

    Department of Prosthodontics, University of Erlangen-Nuremberg, Erlangen, Germany;

    Department of Reconstructive Sciences, University of Connecticut Health Center, 263 Farmington Avenue,Farmington, CT 06030-1615, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    dental implant; fatigue testing; strain rate; strain; loading frequency;

    机译:牙种植体;疲劳测试;应变率;应变;加载频率;

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