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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Compressive fatigue and fracture toughness behavior of injectable, settable bone cements
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Compressive fatigue and fracture toughness behavior of injectable, settable bone cements

机译:可注射的可固化骨水泥的压缩疲劳和断裂韧性行为

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摘要

Bone grafts used to repair weight-bearing tibial plateau fractures often experience cyclic loading, and there is a need for bone graft substitutes that prevent failure of fixation and subsequent morbidity. However, the specific mechanical properties required for resorbable grafts to optimize structural compatibility with native bone have yet to be established. While quasi-static tests are utilized to assess weight-bearing ability, compressive strength alone is a poor indicator of in vivo performance. In the present study, we investigated the effects of interfacial bonding on material properties under conditions that re-capitulate the cyclic loading associated with weight-bearing fractures. Dynamic compressive fatigue properties of polyurethane (PUR) composites made with either unmodified (U-) or polycaprolactone surface-modified (PCL-) 4555 bioactive glass (BG) particles were compared to a commercially available calcium sulfate and phosphate-based (CaS/P) bone cement at physiologically relevant stresses (5-30 MPa). Fatigue resistance of PCL-BG/polymer composite was superior to that of the U-BG/polymer composite and the CaS/P cement at higher stress levels for each of the fatigue failure criteria, related to modulus, creep, and maximum displacement, and was comparable to human trabecular bone. Steady state creep and damage accumulation occurred during the fatigue life of the PCL-BG/polymer and CaS/P cement, whereas creep of U-BG/polymer primarily occurred at a low number of loading cycles. From crack propagation testing, fracture toughness or resistance to crack growth was significantly higher for the PCL-BG composite than for the other materials. Finally, the fatigue and fracture toughness properties were intermediate between those of trabecular and cortical bone. These findings highlight the potential of PCL-BG/polyurethane composites as weight-bearing bone grafts. Published by Elsevier Ltd.
机译:用于修复负重胫骨平台骨折的骨移植物经常承受周期性负荷,因此需要防止固定失败和随后发病的骨移植替代物。但是,可吸收移植物优化与天然骨的结构相容性所需的特定机械性能尚未确定。虽然使用准静态测试来评估承重能力,但仅抗压强度是体内性能的不良指标。在本研究中,我们调查了界面结合对材料性能的影响,该条件重新概括了与承重裂缝相关的循环载荷。将未改性(U-)或聚己内酯表面改性(PCL-)4555生物活性玻璃(BG)颗粒制成的聚氨酯(PUR)复合材料的动态压缩疲劳性能与市售的硫酸钙和磷酸盐基(CaS / P )在生理相关应力(5-30 MPa)下的骨水泥。对于每种与疲劳强度,模量,蠕变和最大位移有关的疲劳破坏准则,PCL-BG /聚合物复合材料的疲劳强度均优于U-BG /聚合物复合材料和CaS / P水泥的较高应力水平。与人类的小梁骨相当在PCL-BG /聚合物和CaS / P水泥的疲劳寿命期间,发生稳态蠕变和损伤累积,而U-BG /聚合物的蠕变主要发生在少量的加载循环中。根据裂纹扩展测试,PCL-BG复合材料的断裂韧性或抗裂纹扩展性明显高于其他材料。最后,疲劳和断裂韧性介于小梁和皮质骨之间。这些发现突出了PCL-BG /聚氨酯复合材料作为承重骨移植物的潜力。由Elsevier Ltd.发布

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