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Can J Vet Res. 2022 Jan;86(1):35-39.

本文引用的文献

1
In vitro biomechanical testing of different configurations of acrylic external skeletal fixator constructs.丙烯酸酯外骨骼固定器结构不同构型的体外生物力学测试
Vet Comp Orthop Traumatol. 2015;28(4):227-33. doi: 10.3415/VCOT-14-07-0102. Epub 2015 May 22.
2
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Vet Surg. 2003 Nov-Dec;32(6):507-14. doi: 10.1111/j.1532-950x.2003.00507.x.
3
Recent advances in external skeletal fixation.外骨骼固定术的最新进展
J Small Anim Pract. 2001 Mar;42(3):103-12. doi: 10.1111/j.1748-5827.2001.tb02006.x.
4
Relative stiffness and stress of type I and type II external fixators: acrylic versus stainless-steel connecting bars--a theoretical approach.I型和II型外固定器的相对刚度和应力:丙烯酸与不锈钢连接杆——一种理论方法
Vet Surg. 2000 Jan-Feb;29(1):59-69. doi: 10.1111/j.1532-950x.2000.00059.x.
5
Ex vivo biomechanics of Kirschner-Ehmer external skeletal fixation applied to canine tibiae.应用于犬胫骨的克氏-埃默尔外骨骼固定术的体外生物力学研究
Vet Surg. 1993 May-Jun;22(3):194-207. doi: 10.1111/j.1532-950x.1993.tb00382.x.
6
Biomechanical evaluation of acrylic external skeletal fixation in dogs and cats.犬猫丙烯酸外骨骼固定术的生物力学评估
J Am Vet Med Assoc. 1991 Dec 1;199(11):1590-3.
7
Instrumentation for external fixation.外固定器械
Vet Clin North Am Small Anim Pract. 1992 Jan;22(1):19-43. doi: 10.1016/s0195-5616(92)50003-1.

固定针对角形丙烯酸连接杆生物力学性能的影响。

The effect of transfixation pins on the biomechanical properties of angled acrylic connecting bars.

作者信息

Montasell Xavier, Herndon Gregory, Szwec David, Beauchamp Guy

机构信息

Faculty of Veterinary Medicine, Ringgold Standard Institution - Clinical Sciences, University of Montreal, Saint Hyacinthe, Quebec (Montasell, Herndon, Szwec); Faculty of Veterinary Medicine, University of Montreal, Saint Hyacinthe, Quebec (Beauchamp).

出版信息

Can J Vet Res. 2019 Jan;83(1):17-23.

PMID:30670898
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6318828/
Abstract

With acrylic external-fixation frames for fracture repair the acrylic columns can be contoured to allow greater versatility in the placement of transfixation pins, thus minimizing damage to the surrounding soft tissue and making mandibular and transarticular fixation easier. However, contouring affects the stiffness and ultimate strength of the construct under axial compression. In this study, polymethylmethacrylate columns 21 mm in diameter angled at 0°, 30°, 45°, 60°, or 90° with clamps were constructed. For each angulation group, pins 3.2-mm long were placed in 6 columns, 2 pins at each end, 1.5 cm from each other, and 6 columns had no pins. Each column was allowed to polymerize for a minimum of 10 min, then was placed in a biomechanical-testing machine, the load cell at the bottom end of the column and the actuator on top, with a preload of 10 to 12 N to prevent slippage. The columns underwent axial loading at a rate of 8 mm/s until catastrophic failure occurred. Data on force and deformation were collected every 0.025 s. Both stiffness and ultimate strength of the column decreased significantly ( < 0.01), up to 77% and 70%, respectively, with each increase of angulation. The columns with pins were significantly less stiff ( < 0.05) than those without pins at angulations of 45° and 60°. However, the columns with pins did not show significant differences in ultimate strength from the columns without pins at any of the angulations. The point of failure was always at the angle of the column, demonstrating that in axial compression the weakest point is not the pin-acrylic interface when pins are eccentrically located within the column.

摘要

使用用于骨折修复的丙烯酸外固定架时,丙烯酸柱可以进行塑形,以便在穿针固定时具有更大的灵活性,从而将对周围软组织的损伤降至最低,并使下颌骨和经关节固定更加容易。然而,塑形会影响轴向压缩状态下结构的刚度和极限强度。在本研究中,构建了直径21 mm、与夹具呈0°、30°、45°、60°或90°角的聚甲基丙烯酸甲酯柱。对于每个角度组,将3.2 mm长的针放置在6根柱中,两端各2根,彼此相距1.5 cm,还有6根柱不放置针。每根柱至少聚合10分钟,然后放入生物力学测试机中,柱底端的测力传感器和顶端的致动器,施加10至12 N的预载荷以防止滑动。柱以8 mm/s的速率进行轴向加载,直至发生灾难性破坏。每0.025 s收集一次力和变形数据。随着角度的每次增加,柱的刚度和极限强度均显著降低(<0.01),分别高达77%和70%。在4