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Comparative mechanical properties of spinal cable and wire fixation systems.

机译:脊髓和钢丝固定系统的比较机械性能。

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STUDY DESIGN: Surgical spinal cable and wire fixation systems were tested mechanically using standardized methodologies. OBJECTIVES: To compare the relative mechanical properties and biomechanical performances of the different commercially available spinal wire and cable fixation devices, and to provide information that will help in selecting different cables for different clinical applications. SUMMARY OF BACKGROUND DATA: Spinal cables have become extensively used for spinal fixation; however, there are few published accounts delineating their mechanical properties. No reports have compared the relative properties of different cable systems. METHODS: Nine spinal cable and wire fixation systems were mechanically tested to compare their static tensile strength, stiffness, fatigue strength, creep, conformance, and abrasion properties. Titanium and stainless steel Codman cable, Danek cable, and AcroMed cable, polyethylene Smith & Nephew cable, and 20- and 22-gauge stainless steel monofilament Ethicon wirewere tested using identical methodologies. The cable or wire was connected into loops with methods that simulated in vivo clinical applications. RESULTS: Under static tensile testing, titanium cables had 70% to 90% of the ultimate tensile strength of the comparable steel cables; the different cables were 100% to 600% stronger than monofilament wire; the ultimate strength of the polyethylene cable was similar to that of the strongest available steel cable. Fatigue testing delineated important differences among the different materials. For a given manufacturer, titanium cables were always more susceptible to fatigue than stainless steel cables of comparable diameter. Polyethylene cable withstood cyclical loading without breaking better than all of the metal cables and wires. The mechanisms of failure differed substantially among materials and types of tests. Polyethylene cables exhibited significant stretching or "creep" at loads that were much lower than the static failure loads. In contrast, no wire cable demonstrated creep. Monofilament wires demonstrated little creep. Polyethylene cables failed by elongating and loosening; wire cables failed by breaking. Monofilament wire and cables conformed least to a solid surface; polyethylene cable conformed the most and flattened out against solid surfaces. Abrasion properties depended on the surface characteristics of the implants. Polyethylene cable was abraded by (and eventually failed by wearing against) the simulated bone, a result that did not occur with any metal cables or wires. The steel and titanium cables and the monofilament wires all had an ability to abrade through simulated bone. CONCLUSIONS: Titanium, steel, and polyethylene cable systems all behave substantially differently mechanically compared with monofilament wire. The relative advantages and disadvantages of each particular products should be considered when selecting an implant for a specific clinical use.
机译:研究设计:外科脊髓和金属丝固定系统采用标准方法进行了机械测试。目的:比较不同的市售脊髓和电缆固定装置的相对机械性能和生物力学性能,并提供有助于选择用于不同临床应用的不同电缆的信息。背景技术概述:脊髓已广泛用于脊柱固定。然而,很少有公开的描述其力学性能的报告。没有报告比较过不同电缆系统的相对性能。方法:对9根脊髓和电线固定系统进行了机械测试,以比较它们的静态拉伸强度,刚度,疲劳强度,蠕变,顺应性和耐磨性。使用相同的方法测试了钛和不锈钢Codman电缆,Danek电缆和AcroMed电缆,聚乙烯Smith&Nephew电缆以及20和22号不锈钢单丝Ethicon电线。使用模拟体内临床应用的方法将电缆或电线连接成环。结果:在静态拉伸试验中,钛电缆的抗拉强度是同类钢缆的70%至90%。不同的电缆比单丝线强100%至600%;聚乙烯电缆的极限强度与现有最坚固的钢缆相似。疲劳测试描述了不同材料之间的重要差异。对于给定的制造商,钛缆线总是比同等直径的不锈钢缆线更容易疲劳。聚乙烯电缆在承受周期性载荷的情况下,其断裂性能不比所有金属电缆和电线好。失败的机制在材料和测试类型之间存在很大差异。聚乙烯电缆在比静态破坏载荷低得多的载荷下表现出明显的拉伸或“蠕变”。相反,没有电缆表现出蠕变。单丝丝几乎没有蠕变。聚乙烯电缆因伸长和松弛而失效;电缆因断裂而失效。单丝电线和电缆的贴合性最差。聚乙烯电缆最贴合,并在实心表面上展平。磨损性能取决于植入物的表面特性。聚乙烯电缆被模拟骨骼磨损(最终磨损),这是任何金属电缆或电线都不会发生的结果。钢和钛电缆以及单丝线都具有磨穿模拟骨骼的能力。结论:与单丝相比,钛,钢和聚乙烯电缆系统的机械性能都大不相同。选择特定临床用途的植入物时,应考虑每种特定产品的相对优缺点。

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