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用纤维素纳米晶体增强立体光刻树脂进行快速原型制作。

Reinforcement of stereolithographic resins for rapid prototyping with cellulose nanocrystals.

机构信息

Adolphe Merkle Institute, University of Fribourg, Route de l'Ancienne Papeterie, 1723 Marly, Switzerland.

出版信息

ACS Appl Mater Interfaces. 2012 Oct 24;4(10):5399-407. doi: 10.1021/am301321v. Epub 2012 Oct 4.

DOI:10.1021/am301321v
PMID:22992164
Abstract

We report on the mechanical properties of optically curable stereolithographic resins (SLRs) which were reinforced through the addition of small amounts of cellulose nanocrystals (CNCs). The resin/filler mixtures are readily accessible via simple mixing processes. A detailed rheological investigation of such mixtures and the successful processing of these materials on a commercial SLR machine show that at low filler concentrations (below 5%) the processability of the materials is barely impacted. The storage modulus, E', increased steadily with increasing CNC content in the regimes below and above the glass transition. A remarkable modulus enhancement was observed in the rubbery regime, where E' increased by 166, 233, and 587% for CNC/SLR nanocomposites with 0.5, 1.0, and 5.0% w/w CNC, respectively. The modulus increase was less pronounced in the glassy state, where E' increased by 21, 32 and 57%, for the same compositions. The increase in tensile strength was of similar magnitude. In comparison to previously reported CNC and carbon-nanofiller based nanocomposites, the presently investigated nanocomposites display a comparably large increase of stiffness and strength, which appear to originate from the high level of dispersion and the intimate contact of the CNCs with the SLR matrix. Through the fabrication of 3-dimensional parts, it was shown that the CNC-filled resins can be processed with standard equipment in a stereolithographic process that is widely used for rapid prototyping and rapid manufacturing.

摘要

我们报告了光固化立体光刻树脂(SLR)的机械性能,这些性能通过添加少量纤维素纳米晶体(CNC)得到增强。通过简单的混合工艺,可以很容易地获得树脂/填充剂混合物。对这些混合物的详细流变学研究以及在商用 SLR 机上成功加工这些材料表明,在低填充浓度(低于 5%)下,材料的加工性能几乎没有受到影响。在玻璃化转变以下和以上的区域,储能模量 E'随着 CNC 含量的增加而稳步增加。在橡胶态下观察到显著的模量增强,其中含有 0.5、1.0 和 5.0% w/w CNC 的 CNC/SLR 纳米复合材料的 E'分别增加了 166、233 和 587%。在玻璃态下,模量的增加不那么明显,对于相同的组成,E'分别增加了 21、32 和 57%。拉伸强度的增加也具有相似的幅度。与之前报道的 CNC 和碳纳米填充剂基纳米复合材料相比,目前研究的纳米复合材料显示出相当大的刚度和强度的增加,这似乎源于 CNC 与 SLR 基质的高度分散和紧密接触。通过制造 3 维零件,表明可以在广泛用于快速原型制作和快速制造的立体光刻工艺中加工填充有 CNC 的树脂。

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