Biomechanical design of a new proximal humerus fracture plate using alternative materials.

IF 2.2 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Sabrina Islam, Mitchell Dembowski, Emil H Schemitsch, Habiba Bougherara, Z Shaghayegh Bagheri, Radovan Zdero
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Abstract

Comminuted proximal humerus fractures are often repaired by metal plates, but potentially still experience bone refracture, bone "stress shielding," screw perforation, delayed healing, and so forth. This "proof of principle" investigation is the initial step towards the design of a new plate using alternative materials to address some of these problems. Finite element modeling was used to create design graphs for bone stress, plate stress, screw stress, and interfragmentary motion via three different fixations (no, 1, or 2 "kickstand" [KS] screws across the fracture) using a wide range of plate elastic moduli (EP = 5-200 GPa). Well-known design optimization criteria were used that could minimize bone, plate, and screw failure (i.e., peak stress < ultimate tensile strength), reduce bone "stress shielding" (i.e., bone stress under the new plate ≥ bone stress for an intact humerus, titanium plate, and/or steel plate "control"), and encourage callus growth leading to early healing (i.e., 0.2 mm ≤ axial interfragmentary motion ≤ 1 mm; shear/axial interfragmentary motion ratio <1.6). The findings suggest that a potentially optimal configuration involves the new plate being manufactured from a material with an EP of 5-41.5 GPa with 1 KS screw; but, using no KS screws would cause immediate bone fracture and 2 KS screws would almost certainly lead to delayed healing. A prototype plate might be fabricated using alternative materials suggested for orthopedics and other industries, like fiber-metal laminates, fiber-reinforced polymers, metal foams, pure polymers, shape memory alloys, or 3D-printed porous metals.

使用替代材料对新型肱骨近端骨折钢板进行生物力学设计。
肱骨近端粉碎性骨折通常使用金属板进行修复,但仍可能出现骨折断、骨 "应力屏蔽"、螺钉穿孔、愈合延迟等问题。这项 "原理验证 "调查是使用替代材料设计新钢板以解决其中一些问题的第一步。通过有限元建模,我们利用广泛的钢板弹性模量(EP = 5-200 GPa),通过三种不同的固定方式(无、1 或 2 个横跨骨折的 "脚架"[KS] 螺钉)创建了骨应力、钢板应力、螺钉应力和节间运动的设计图。我们采用了众所周知的优化设计标准,可以最大限度地减少骨、钢板和螺钉的失效(即使用 1 颗 KS 螺钉时,峰值应力 P 为 5-41.5 GPa;但是,不使用 KS 螺钉会导致立即骨折,而使用 2 颗 KS 螺钉几乎肯定会导致延迟愈合。可以使用骨科和其他行业建议的替代材料,如纤维金属层压板、纤维增强聚合物、金属泡沫、纯聚合物、形状记忆合金或 3D 打印多孔金属,来制造钢板原型。
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来源期刊
International Journal for Numerical Methods in Biomedical Engineering
International Journal for Numerical Methods in Biomedical Engineering ENGINEERING, BIOMEDICAL-MATHEMATICAL & COMPUTATIONAL BIOLOGY
CiteScore
4.50
自引率
9.50%
发文量
103
审稿时长
3 months
期刊介绍: All differential equation based models for biomedical applications and their novel solutions (using either established numerical methods such as finite difference, finite element and finite volume methods or new numerical methods) are within the scope of this journal. Manuscripts with experimental and analytical themes are also welcome if a component of the paper deals with numerical methods. Special cases that may not involve differential equations such as image processing, meshing and artificial intelligence are within the scope. Any research that is broadly linked to the wellbeing of the human body, either directly or indirectly, is also within the scope of this journal.
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