Mathematical Modelling for Bone Cement MMA Free Radical Polymerization Process

H. M. Ahmed, Reda Abdelbaset, Asmaa A. R. Awad, I. Mustafa
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引用次数: 1

Abstract

For more than 50 years, artificial joints are fastened efficiently by bone cements. Bone cements play an important role in the elastic zone. In human hip joint, about ten to twelve times of the body weight acts upon the hip joint. This gives rise to the need of the bone cement to absorb the forces acting upon the human hip joint. Plexiglas, which is Poly Methyl Methacrylate (PMMA) is the material of choice for obtaining bone cements. Three methods are conducted to produce PMM4; namely, the emulsion polymerization, solution polymerization and bulk polymerization. From these methods; in-situ and in-vivo extremely exothermic reactions of free radical bulk polymerization are used to produce PMM4 bone cements. Radical polymerization gives atactic and amorphous PMM4. Also, aseptic loosening is caused by residual monomer which remains unreacted in the body. Free radical polymerization models can describe the bone cement production effectively and are used for quantitative analysis of its synthesis. In this research, bone cement production is mathematically investigated based on multi-cell reactor. Solubility of the pre-polymer powder in the liquid monomer has shown to be the most important variable during the preparation process and that it should be tuned to control the real operation of bone cement production.
骨水泥MMA自由基聚合过程的数学建模
50多年来,人工关节是通过骨水泥有效固定的。骨水泥在弹性区起着重要的作用。在人类的髋关节中,大约有体重的10到12倍作用于髋关节。这就需要骨水泥来吸收作用在人体髋关节上的力。有机玻璃,即聚甲基丙烯酸甲酯(PMMA),是获得骨水泥的首选材料。采用三种方法制备PMM4;即乳液聚合、溶液聚合和本体聚合。从这些方法中;原位和体内自由基本体聚合的极度放热反应被用于生产PMM4骨水泥。自由基聚合得到无规和无定形PMM4。此外,无菌性松动是由体内未反应的残留单体引起的。自由基聚合模型可以有效地描述骨水泥的生产过程,并可用于骨水泥合成的定量分析。在本研究中,基于多细胞反应器对骨水泥生产进行了数学研究。预聚体粉末在液体单体中的溶解度已被证明是制备过程中最重要的变量,应该调整它以控制骨水泥生产的实际操作。
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