Frequency response analysis and in vitro verification of 3D-printed ossicular replacement materials

IF 6.8 3区 医学 Q1 ENGINEERING, BIOMEDICAL International Journal of Bioprinting Pub Date : 2024-02-05 DOI:10.36922/ijb.2040
Jingbin Hao, Yin Zhu, Ding Shen, Md Thowfiqure Rahman, Yinxin Kou, Houguang Liu
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Abstract

As a bridge that transmits airborne sound signals to the auditory receptors of the inner ear, the eardrum and ossicular chain of the middle ear convert sound through two types of conversions: gas–solid (airborne sound signal–eardrum and ossicular chain) and solid–liquid (eardrum and ossicular chain–internal and external lymphatic fluid in the cochlea). This process concentrates and amplifies the sound to the inner ear through the lever principle structure formed by the three ossicles. However, diseases, hereditary factors, or trauma can reduce the sound transmission function of the middle ear. The effectiveness of middle ear replacement prostheses depends on their vibration response to the human auditory perception frequency, from the eardrum to the stapes plate. This response is influenced by the materials, geometry, and design of the replacement prosthesis and eardrum. This study explores the effects of different materials on hearing after artificial ossicular replacement. Usually, human temporal bone models are used for testing and validating numerical results. However, obtaining specimens from living humans is not always feasible. Therefore, we used three-dimensional printing technology to build a model of the middle ear to test the ossicular bone. Titanium alloy TC4, stainless steel 316L, and composite HA/PCL are chosen as materials for ossicular replacement. Using f‍inite element analysis and an in vitro verification experiment, individual replacements of the ossicles and three bone material replacements were conducted for frequency response analysis. The combination of the malleus made of TC4, the incus made of TC4, and the stapes made of HA/PCL were found to bear higher resemblance to a real normal ear ossicular model.
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三维打印听骨替代材料的频率响应分析和体外验证
作为将空气中的声音信号传递到内耳听觉感受器的桥梁,中耳的鼓膜和听骨链通过气-固(空气中的声音信号-鼓膜和听骨链)和固-液(鼓膜和听骨链-耳蜗中的内外淋巴液)两种转换方式将声音进行转换。这一过程通过三个听小骨形成的杠杆原理结构将声音集中并放大到内耳。然而,疾病、遗传因素或外伤都会降低中耳的传声功能。中耳替代假体的有效性取决于其对从鼓膜到镫骨板的人类听觉感知频率的振动响应。这种响应受替代假体和鼓膜的材料、几何形状和设计的影响。本研究探讨了人工听骨置换后不同材料对听力的影响。通常,人类颞骨模型用于测试和验证数值结果。然而,从活人身上获取标本并不总是可行的。因此,我们利用三维打印技术制作了一个中耳模型来测试听骨。我们选择了钛合金 TC4、不锈钢 316L 和复合 HA/PCL 作为听骨替代材料。通过有限元分析和体外验证实验,对单个听小骨替代物和三种骨材料替代物进行了频率响应分析。结果发现,由 TC4 制成的耳骨、由 TC4 制成的门骨和由 HA/PCL 制成的镫骨组合与真实的正常耳听骨模型的相似度较高。
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来源期刊
CiteScore
6.90
自引率
4.80%
发文量
81
期刊介绍: The International Journal of Bioprinting is a globally recognized publication that focuses on the advancements, scientific discoveries, and practical implementations of Bioprinting. Bioprinting, in simple terms, involves the utilization of 3D printing technology and materials that contain living cells or biological components to fabricate tissues or other biotechnological products. Our journal encompasses interdisciplinary research that spans across technology, science, and clinical applications within the expansive realm of Bioprinting.
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