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Characterization of mouthguard materials: Thermal properties of commercialized products

机译:护齿材料的表征:商业化产品的热性能

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摘要

Objectives. Several mechanisms have been purported to describe how mouthguards protect the orofacial complex against injury. As the properties needed for these mechanisms to be effective are temperature and frequency dependent, the specific aim of this study was to provide a comprehensive thermal characterization of commercial mouthguard materials. Methods. Five commercially representative thermoplastic mouthguard materials (Essix™ Resin, Erkoflex™, Proform™-regular, Proform™-laminate, and Polyshok™) were tested. Differential scanning calorimetry (DSC) and dynamic mechanical analysis (DMA) techniques were implemented to measure thermal transitions and mechanical properties. Measurements were conducted three times per sample. One-way ANOVA and one-sample t-tests were used to test for differences between commercial products on selected mean thermal property values.rnResults. The DSC measurements indicated no differences between commercial materials for mean glass transition (p = 0.053), onset melt (p = 0.973), or peak melt (p = 0.436) temperatures. Likewise, DMA measurements revealed no differences between commercial materials for the mean glass transition (p = 0.093), storage modulus (p = 0.257), or loss modulus (p = 0.172) properties, respectively. The one-sample t-tests revealed that glass transition temperatures were different from intra-oral temperature (p < 0.005) for all materials. Significance. Commercialized mouthguard materials are sensitive to repetitive heating and cooling cycles, prolonged thermal treatment, and have glass transitions well below their end-use intra-oral temperature. As such, these materials are functioning as elastomers and not optimal mechanical damping materials. Dental clinicians, healthcare practitioners, or end-users should be aware that these materials are at best problematic with respect to this protective mechanism.
机译:目标。据称有几种机制描述了护齿器如何保护口腔复合物免受伤害。由于这些机制有效起作用所需的特性取决于温度和频率,因此本研究的特定目的是提供商用护齿材料的全面热特性。方法。测试了五种具有商业代表性的热塑性护齿材料(Essix™树脂,Erkoflex™,常规的Proform™,层压的Proform™和Polyshok™)。实施差示扫描量热法(DSC)和动态力学分析(DMA)技术来测量热转变和力学性能。每个样品进行三次测量。单向方差分析和一样本t检验用于测试商品之间在选定的平均热性能值上的差异。 DSC测量结果表明,商品材料的平均玻璃化转变温度(p = 0.053),起始熔融温度(p = 0.973)或峰值熔融温度(p = 0.436)之间没有差异。同样,DMA测量显示,商业材料之间的平均玻璃化转变温度(p = 0.093),储能模量(p = 0.257)或损耗模量(p = 0.172)之间没有差异。一次样本t检验表明,所有材料的玻璃化转变温度均不同于口腔内温度(p <0.005)。意义。商业化的护齿材料对重复的加热和冷却周期,长时间的热处理很敏感,并且玻璃化转变温度远低于其最终使用的口腔内温度。因此,这些材料起着弹性体的作用,而不是最佳的机械阻尼材料。牙科临床医生,卫生保健从业人员或最终用户应注意,这些材料相对于这种保护机制充其量是有问题的。

著录项

  • 来源
    《Dental materials》 |2009年第12期|1593-1602|共10页
  • 作者单位

    School of Human Performance, University of Southern Mississippi, Hattiesburg, MS, USA Sport and High Performance Materials Program, The University of Southern Mississippi, The School of Human Performance, 118 College Drive, #5142, Hattiesburg, MS 39406, USA;

    School of Human Performance, University of Southern Mississippi, Hattiesburg, MS, USA;

    School of Polymers and High Performance Materials, University of Southern Mississippi, Hattiesburg, MS, USA;

    School of Polymers and High Performance Materials, University of Southern Mississippi, Hattiesburg, MS, USA;

    School of Polymers and High Performance Materials, University of Southern Mississippi, Hattiesburg, MS, USA;

    School of Polymers and High Performance Materials, University of Southern Mississippi, Hattiesburg, MS, 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

    mouthguard materials; differential scanning calorimetry; dynamic mechanical analysis; ethylene vinyl acetate; dental materials; material characterization;

    机译:护齿材料;差示扫描量热法;动态力学分析;乙烯乙酸乙烯酯;牙科材料;材料表征;

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