一个有效的途径,以添加制造机械梯度的高分子聚合物纳米复合材料结构的增材制造
Sara Salimi1, Aaron M Graham2, Yuyang Wu3
1Department of Chemistry, University of Reading, Whiteknights, Reading, RG6 6AD, UK; Department of Chemistry and Chemical Biology, McMaster University, 1280 Main St. W., Hamilton, Ontario, L8S 4M1, Canada.
Journal of the mechanical behavior of biomedical materials
|January 3, 2024
概括
研究人员开发了一种3D打印方法,通过结合高分子聚合物和有机填充剂来创建渐变复合材料. 这种技术允许量身定制的机械性能和生物材料的潜在应用.
科学领域:
- 材料科学 材料科学 材料科学
- 增材制造 增材制造 增材制造
- 聚合物科学 聚合物科学
背景情况:
- 3D打印提供了几何自由和多材料功能,以提供定制的功能.
- 增材制造使得从数字设计中创建复杂结构成为可能.
- 超分子聚合物通过非共价相互作用提供动态和可调节的特性.
研究的目的:
- 为了证明3D打印梯度复合材料的概念验证,具有空间分布的机械性能.
- 研究使用双挤压工艺来制造具有不同度填充剂的材料.
- 通过控制超分子相互作用来探索调整机械性能的潜力.
主要方法:
- 使用双挤出3D打印工艺,使用超分子聚合物和有机填充剂.
- 通过改变聚合物与填料的比率,制造的复合样本具有梯度组成.
- 在动态拉力负荷下使用数字图像相关性分析材料变形.
主要成果:
- 成功生产了具有明显机械性质的分级标本,与设计的组成变化相对应.
- 数字图像相关性揭示了不同料度的区域的局部变形差异.
- 证明了在单个打印件内空间分布机械性能的能力.
结论:
- 开发的3D打印方法为制造具有梯度机械性质的材料提供了一种新的方法.
- 这种技术允许精确控制材料组成和由此产生的功能.
- 该方法具有很大的潜力,可以转化为基于生物材料的复合材料,具有可调节的机械梯度.
关键词:
A. 聚合物-矩阵复合材料B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. C. C. D. D. D. D. A. B. D. A. B. B. C D. B. D. A. B. A. B. A. B. B. A. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. B. 机械性质 机械性质E. 3D打印是一种3D打印.E. 挤出方式相关概念视频
Step-Growth Polymerization: Overview
3.5K
Step-growth or condensation polymerization is a stepwise reaction of bi or multifunctional monomers to form long-chain polymers. As all the monomers are reactive, most of the monomers are consumed at the early stages of the reaction to form small chains of reactive oligomers, which then combine to form long polymer chains in the late stages. Hence, the reaction has to proceed for a long time to achieve high molecular weight polymers.
Many natural and synthetic polymers are produced by...
Many natural and synthetic polymers are produced by...
3.5K
Molecular Weight of Step-Growth Polymers
2.2K
Step growth polymerization involves bi or multifunctional monomers. Bifunctional monomers react to form linear step growth polymers, whereas multifunctional monomers react to form non-linear or branched polymers.
As the step-growth polymerization involves step-wise condensation of monomers, the molecular weight also builds up eventually. Consequently, high molecular weight polymers are obtained at the late stages of the polymerization, where 99% of monomers have been consumed.
The extent of the...
As the step-growth polymerization involves step-wise condensation of monomers, the molecular weight also builds up eventually. Consequently, high molecular weight polymers are obtained at the late stages of the polymerization, where 99% of monomers have been consumed.
The extent of the...
2.2K
Ziegler–Natta Chain-Growth Polymerization: Overview
3.3K
Ziegler–Natta polymerization is another form of addition or chain‐growth polymerization used for synthesizing linear polymers over branched polymers. The catalyst used for polymerization is the Ziegler–Natta catalyst, named after Karl Ziegler and Giulio Natta, who developed it in 1953. This catalyst is an organometallic complex of titanium tetrachloride and triethyl aluminum, with the active form of the catalyst being an alkyl titanium compound. Using the Ziegler–Natta...
3.3K
Anionic Chain-Growth Polymerization: Overview
2.1K
The polymerization process that involves carbanion as an intermediate is called anionic polymerization. It is also a type of addition or chain-growth polymerization. Anionic polymerization gets initiated by a strong nucleophile such as an organolithium or a Grignard reagent. The most commonly used initiator for anionic polymerization is butyl lithium. Monomers involved in anionic polymerization must possess a vinyl group bonded to one or two electron-withdrawing groups. For instance,...
2.1K


