An Overview of Mechanical Properties and Material Modeling of Polylactide (PLA) for Medical Applications

被引:0
|
作者
Jörgen S. Bergström
Danika Hayman
机构
[1] Veryst Engineering,
[2] LLC,undefined
来源
关键词
PLA; PLLA; Mechanical properties; Material modeling;
D O I
暂无
中图分类号
学科分类号
摘要
This article provides an overview of the connection between the microstructural state and the mechanical response of various bioresorbable polylactide (PLA) devices for medical applications. PLLA is currently the most commonly used material for bioresorbable stents and sutures, and its use is increasing in many other medical applications. The non-linear mechanical response of PLLA, due in part to its low glass transition temperature (Tg ≈ 60 °C), is highly sensitive to the molecular weight and molecular orientation field, the degree of crystallinity, and the physical aging time. These microstructural parameters can be tailored for specific applications using different resin formulations and processing conditions. The stress–strain, deformation, and degradation response of a bioresorbable medical device is also strongly dependent on the time history of applied loads and boundary conditions. All of these factors can be incorporated into a suitable constitutive model that captures the multiple physics that are involved in the device response. Currently developed constitutive models already provide powerful computations simulation tools, and more progress in this area is expected to occur in the coming years.
引用
收藏
页码:330 / 340
页数:10
相关论文
共 50 条
  • [31] Physical and mechanical properties of PLA, and their functions in widespread applications - A comprehensive review
    Farah, Shady
    Anderson, Daniel G.
    Langer, Robert
    ADVANCED DRUG DELIVERY REVIEWS, 2016, 107 : 367 - 392
  • [32] Combination of polylactide with cellulose for biomedical applications: a recent overview
    Aneta Kopańska
    Marek Brzeziński
    Zbigniew Draczyński
    Cellulose, 2024, 31 : 101 - 145
  • [33] Physico-mechanical and thermal properties of epoxidized natural rubber/polylactide (ENR/PLA) composites reinforced with lignocellulose
    Anna Masek
    Karolina Diakowska
    Marian Zaborski
    Journal of Thermal Analysis and Calorimetry, 2016, 125 : 1467 - 1476
  • [34] Mechanical and biological properties of chitin/polylactide (PLA)/hydroxyapatite (HAP) composites cast using ionic liquid solutions
    Chakravarty, Jayashree
    Rabbi, Md Fazlay
    Chalivendra, Vijaya
    Ferreira, Tracie
    Brigham, Christopher J.
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2020, 151 (151) : 1213 - 1223
  • [35] Polylactide (PLA) and acrylonitrile butadiene rubber (NBR) blends: The effect of ACN content on morphology, compatibility and mechanical properties
    Maroufkhani, Mahshid
    Katbab, AliAsghar
    Liu, Wangcheng
    Zhang, Jinwen
    POLYMER, 2017, 115 : 37 - 44
  • [36] Physico-mechanical and thermal properties of epoxidized natural rubber/polylactide (ENR/PLA) composites reinforced with lignocellulose
    Masek, Anna
    Diakowska, Karolina
    Zaborski, Marian
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2016, 125 (03) : 1467 - 1476
  • [37] Effect of bio-based phytate (PA-THAM) on the flame retardant and mechanical properties of polylactide (PLA)
    Yang, Y. X.
    Haurie, L.
    Zhang, J.
    Zhang, X-Q
    Wang, R.
    Wang, D-Y
    EXPRESS POLYMER LETTERS, 2020, 14 (08): : 705 - 716
  • [38] Mechanical properties of polylactide wood composites
    Fabijanski, Mariusz
    PRZEMYSL CHEMICZNY, 2019, 98 (08): : 1246 - 1248
  • [39] Comparative analysis of printing parameters effect on mechanical properties of natural PLA and advanced PLA-X material
    Milovanovic, Aleksa
    Sedmak, Aleksandar
    Grbovic, Aleksandar
    Golubovic, Zorana
    Mladenovic, Goran
    Colic, Katarina
    Milosevic, Milos
    1ST VIRTUAL EUROPEAN CONFERENCE ON FRACTURE - VECF1, 2020, 28 : 1963 - 1968
  • [40] Production processes, material properties and applications of densified wood: an overview
    Paul, B. N.
    Shukla, S. R.
    Kelkar, B. U.
    Nagraik, P.
    JOURNAL OF THE INDIAN ACADEMY OF WOOD SCIENCE, 2024, 21 (02) : 235 - 254