Computer Models of Biomaterials Used for the Manufacture of the Leaflet Apparatus of Heart Valve Prostheses

IF 0.5 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Inorganic Materials: Applied Research Pub Date : 2024-05-23 DOI:10.1134/s2075113324010222
P. S. Onishchenko, T. V. Glushkova, A. E. Kostyunin, M. A. Rezvova, T. N. Akentyeva, L. S. Barbarash
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Abstract

The physical and mechanical characteristics of the component materials of bioprosthetic heart valves presented in clinical practice in Russia were obtained and generalized for subsequent adaptation of the properties for numerical modeling problems. It was shown that all materials studied have pronounced nonlinearity and can be represented only in the form of polynomial models. A comparison of the results of computer modeling based on the obtained material coefficients did not demonstrate any differences with the data of full-scale bench tests, which made it possible to verify the computer models.

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用于制造心脏瓣膜假体瓣叶装置的生物材料计算机模型
摘要 研究人员获得了俄罗斯临床实践中生物人工心脏瓣膜组件材料的物理和机械特性,并对其进行了归纳,以便随后将这些特性用于数值建模问题。研究表明,所研究的所有材料都具有明显的非线性,只能以多项式模型的形式表示。根据获得的材料系数对计算机建模结果进行比较后发现,与全尺寸台架试验的数据没有任何差异,因此可以对计算机模型进行验证。
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来源期刊
Inorganic Materials: Applied Research
Inorganic Materials: Applied Research Engineering-Engineering (all)
CiteScore
0.90
自引率
0.00%
发文量
199
期刊介绍: Inorganic Materials: Applied Research  contains translations of research articles devoted to applied aspects of inorganic materials. Best articles are selected from four Russian periodicals: Materialovedenie, Perspektivnye Materialy, Fizika i Khimiya Obrabotki Materialov, and Voprosy Materialovedeniya  and translated into English. The journal reports recent achievements in materials science: physical and chemical bases of materials science; effects of synergism in composite materials; computer simulations; creation of new materials (including carbon-based materials and ceramics, semiconductors, superconductors, composite materials, polymers, materials for nuclear engineering, materials for aircraft and space engineering, materials for quantum electronics, materials for electronics and optoelectronics, materials for nuclear and thermonuclear power engineering, radiation-hardened materials, materials for use in medicine, etc.); analytical techniques; structure–property relationships; nanostructures and nanotechnologies; advanced technologies; use of hydrogen in structural materials; and economic and environmental issues. The journal also considers engineering issues of materials processing with plasma, high-gradient crystallization, laser technology, and ultrasonic technology. Currently the journal does not accept direct submissions, but submissions to one of the source journals is possible.
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