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Ti-24Nb-4Zr-8Sn Alloy Pedicle Screw Improves Internal Vertebral Fixation by Reducing Stress-Shielding Effects in a Porcine Model

机译:Ti-24Nb-4Zr-8Sn合金椎弓根螺钉可通过减少猪模型中的应力屏蔽效应来改善椎骨内部固定

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摘要

To ensure the biomechanical properties of Ti-24Nb-4Zr-8Sn, stress-shielding effects were compared between Ti-24Nb-4Zr-8Sn and Ti-6Al-4V fixation by using a porcine model. Twelve thoracolumbar spines (T12–L5) of 12-month-old male pigs were randomly divided into two groups: Ti-24Nb-4Zr-8Sn (EG, n = 6) and Ti-6Al-4V (RG, n = 6) fixation. Pedicle screw was fixed at the outer edge of L4-5 vertebral holes. Fourteen measuring points were selected on the front of transverse process and middle and posterior of L4-5 vertebra. Electronic universal testing machine was used to measure the strain resistance of measuring points after forward and backward flexion loading of 150 N. Meanwhile, stress resistance was compared between both groups. The strain and stress resistance of measurement points 1, 2, 5, 6, 9, and 10–14 in Ti-24Nb-4Zr-8Sn fixation was lower than that of Ti-6Al-4V fixation after forward and backward flexion loading (P < 0.05). The strain and stress resistance of measurement points 3, 4, 7, and 8 was higher in Ti-24Nb-4Zr-8Sn fixation than that of Ti-6Al-4V fixation (P < 0.05). Stress-shielding effects of Ti-24Nb-4Zr-8Sn internal fixation were less than that of Ti-6Al-4V internal fixation. These results suggest that Ti-24Nb-4Zr-8Sn elastic fixation has more biomechanical goals than conventional Ti-6Al-4V internal fixation by reducing stress-shielding effects.
机译:为了确保Ti-24Nb-4Zr-8Sn的生物力学性能,使用猪模型比较了Ti-24Nb-4Zr-8Sn和Ti-6Al-4V固定的应力屏蔽效果。将12个月大的雄性猪的十二个胸腰椎脊椎(T12–L5)随机分为两组:Ti-24Nb-4Zr-8Sn(EG,n = 6)和Ti-6Al-4V(RG,n = 6)固定。椎弓根螺钉固定在L4-5椎骨孔的外边缘。在横突前,L4-5椎骨的中,后选择14个测量点。用电子万能试验机测量150 N前后屈曲载荷后各测量点的抗应变能力,同时比较两组的抗应力能力。在向前和向后屈曲载荷下,Ti-24Nb-4Zr-8Sn固定中测量点1、2、5、6、9和10-14的应变和抗应力低于Ti-6Al-4V固定(P <0.05)。在Ti-24Nb-4Zr-8Sn固定中,测量点3、4、7和8的应变和抗应力性高于Ti-6Al-4V固定(P <0.05)。 Ti-24Nb-4Zr-8Sn内固定的应力屏蔽作用小于Ti-6Al-4V内固定的应力屏蔽作用。这些结果表明,与传统的Ti-6Al-4V内固定相比,Ti-24Nb-4Zr-8Sn弹性固定通过降低应力屏蔽效应具有更多的生物力学目标。

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