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Mechanical and fracture behavior of calcium phosphate cements.

机译:磷酸钙水泥的力学性能和断裂性能。

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摘要

Apatite-based calcium phosphate cements are currently employed to a limited extent in the biomedical and dental fields. They present significant potential for a much broader range of applications, particularly as a bone mineral substitute for fracture fixation. Specifically, hydroxyapatite (HA) is known for its biocompatibility and non-immunogenicity, attributed to its similarity to the mineral phase of natural bone. The advantages of a cement-based HA include injectability, greater resorbability and osteoconductivity compared to sintered HA, and an isothermal cement-forming reaction that avoids necrosis during cement setting. Although apatite cements demonstrate good compressive strength, tensile properties are very weak compared to natural bone. Applications involving normal weight-bearing require better structural integrity than apatite cements currently provide. A more thorough understanding of fracture behavior can elucidate failure mechanisms and is essential for the design of targeted strengthening methods.; This study investigated a hydroxyapatite cement using a fracture mechanics approach, focusing on subcritical crack growth properties. Subcritical crack growth can lead to much lower load-bearing ability than critical strength values predict. Experiments show that HA cement is susceptible to crack growth under both cyclic fatigue-crack growth and stress corrosion cracking conditions, but only environmental, not mechanical, mechanisms contribute to crack extension. This appears to be the first evidence ever presented of stress corrosion crack growth behavior in calcium phosphate cements.; Stress corrosion cracking was examined for a range of environmental conditions. Variations in pH have surprisingly little effect. Behavior in water at elevated temperature (50°C) is altered compared to water at ambient temperature (22°C), but only for crack-growth velocities below 10-7 m/s. However, fracture resistance of dried HA cement in air increases significantly compared to in water. Based on observed trends, mechanisms of stress corrosion cracking are considered.; Strengthening methods using proteins as second phase additions to HA cement were also investigated. Critical flexure strength of these composites increases to a limited extent, primarily due to bridging of the fracture surfaces by organic phases. Despite the increase for critical values, stress corrosion crack growth of cement-albumin composites remains similar to unreinforced cement. This discrepancy between critical and subcritical behavior is discussed.
机译:磷灰石基磷酸钙水泥目前在生物医学和牙科领域中的使用是有限的。它们具有广阔的应用前景,尤其是作为骨折固定的骨矿物质替代品。具体而言,羟基磷灰石(HA)因其与天然骨矿相的相似性而具有生物相容性和非免疫原性,因此众所周知。与烧结HA相比,水泥基HA的优势包括可注射性,更高的可吸收性和骨传导性,以及等温水泥形成反应,可避免水泥凝固过程中的坏死。尽管磷灰石水泥显示出良好的抗压强度,但与天然骨相比,拉伸性能非常弱。涉及正常承重的应用需要比目前提供的磷灰石水泥更好的结构完整性。对断裂行为的更透彻理解可以阐明失效机理,这对于设计定向加固方法至关重要。这项研究使用断裂力学方法研究了羟基磷灰石水泥,重点研究了亚临界裂纹的扩展性能。亚临界裂纹的增长可能导致承载能力大大低于临界强度值的预测。实验表明,在循环疲劳裂纹扩展和应力腐蚀开裂条件下,HA水泥均易受裂纹扩展的影响,但只有环境而非机械机制才有助于裂纹扩展。这似乎是有史以来有关磷酸钙水泥应力腐蚀裂纹扩展行为的第一个证据。在一定范围的环境条件下检查了应力腐蚀开裂。 pH值的变化令人惊讶地几乎没有影响。与室温(22°C)的水相比,在高温(50°C)的水中的行为发生了变化,但仅在裂纹生长速度低于10-7 m / s时才发生变化。但是,与水中相比,干燥的HA水泥在空气中的抗断裂性显着提高。根据观察到的趋势,考虑应力腐蚀开裂的机理。还研究了使用蛋白质作为HA水泥第二相添加剂的强化方法。这些复合材料的临界弯曲强度有限程度地增加,这主要是由于断裂相被有机相桥接所致。尽管临界值有所增加,但水泥-白蛋白复合材料的应力腐蚀裂纹增长仍与未增强的水泥相似。讨论了关键行为和次关键行为之间的差异。

著录项

  • 作者

    Jew, Victoria Chou.;

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Engineering Materials Science.; Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 148 p.
  • 总页数 148
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;生物医学工程;
  • 关键词

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