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力学测试装置会影响脊柱节段骨折的结果。

Mechanical testing setups affect spine segment fracture outcomes.

机构信息

Department of Physiology and Biomedical Engineering, Mayo Clinic, Rochester, MN, USA; Department of Orthopedic Surgery, Mayo Clinic, Rochester, MN, USA.

Department of Biomedical Engineering, University of Texas at San Antonio, San Antonio, TX, USA.

出版信息

J Mech Behav Biomed Mater. 2019 Dec;100:103399. doi: 10.1016/j.jmbbm.2019.103399. Epub 2019 Aug 17.

Abstract

The purpose of the work presented here was to establish an experimental testing configuration that would generate a bending compression fracture in a laboratory setting. To this end, we designed and fabricated a fixture to accommodate a three level spine segment and to be able to perform mechanical testing by applying an off-centric compressive loading to create a flexion-type motion. Forces and moments occurring during testing were measured with a six-channel load cell. The initial testing configuration (Fixture A) included plates connected to the superior potted vertebral body and to the ball-socket joint of the testing system ram. Surprisingly, while all cadaveric specimens underwent a similar off-centric compressive loading, most of the specimens showed extension outcomes as opposed to the intended pure-flexion motion. The extension was due to fixture size and weight; by applying an off-centric load directly on the top plate, unintended large shear forces were generated. To resolve the issue, several modifications were made to the original fixture configuration. These modifications included the removal of the superior plates and the implementation of wedges at the superior surface of the fixture (Fixture B). A synthetic sample was used during this modification phase to minimize the number of cadaveric specimens while optimizing the process. The best outcomes were consistently observed when a 15°-wedge was used to provide flexion-type loading. Cadaveric specimens were then experimentally tested to fracture using the modified testing configuration (Fixture B). A comparison between both fixtures, A and B, revealed that almost all biomechanical parameters, including force, moment, and displacement data, were affected by the testing setup. These results suggest that fixture design and implementation for testing is of extreme importance, and can influence the fracture properties and affect the intended motion.

摘要

本研究旨在建立一种实验测试配置,以在实验室环境中产生弯曲压缩骨折。为此,我们设计并制造了一种夹具,以容纳三个水平的脊柱节段,并能够通过施加偏心压缩载荷来进行机械测试,以产生弯曲型运动。测试过程中发生的力和力矩用六通道称重传感器测量。初始测试配置(夹具 A)包括连接到上盆骨椎体和测试系统 ram 球窝关节的板。令人惊讶的是,虽然所有尸体标本都经历了类似的偏心压缩加载,但大多数标本显示出伸展结果,而不是预期的纯弯曲运动。伸展是由于夹具的大小和重量造成的;通过直接在上部板上施加偏心载荷,会产生意想不到的大剪切力。为了解决这个问题,对原始夹具配置进行了多次修改。这些修改包括去除上部板,并在上部夹具表面安装楔块(夹具 B)。在修改阶段使用合成样本来最小化尸体标本的数量,同时优化过程。当使用 15°楔形物提供弯曲加载时,始终观察到最佳结果。然后使用修改后的测试配置(夹具 B)对尸体标本进行实验性断裂测试。对两种夹具(A 和 B)进行比较后发现,几乎所有生物力学参数,包括力、力矩和位移数据,都受到测试设置的影响。这些结果表明,测试夹具的设计和实施非常重要,会影响断裂特性并影响预期的运动。

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Mechanical testing setups affect spine segment fracture outcomes.力学测试装置会影响脊柱节段骨折的结果。
J Mech Behav Biomed Mater. 2019 Dec;100:103399. doi: 10.1016/j.jmbbm.2019.103399. Epub 2019 Aug 17.

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