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Innovative Production of Composites with Through Plane Alignment of Fi-bers

Innovative Production of Composites with Through Plane Alignment of Fi-bers
纤维平面排列的复合材料的创新生产
批准号:
RGPIN-2017-06422
负责人:
Rizvi, Ghaus
金额:
$1.6万
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2022
资助国家:
加拿大
项目状态:
已结题
起止时间:
2022-01-01 至 2023-12-31

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中文摘要
翻译
短纤维复合材料(SFC)依靠增强纤维相的特殊性能来增强基体的性能。根据所需的产品应用,纤维必须以特定的方向排列,平面内或穿过平面等。由于成本和批量生产的考虑,通常不追求通过平面的光纤定向。该提案旨在开发具有通平面排列(TPA)纤维的复合材料,因为它们可以显着改善sfc的性能,用于许多现有应用。此外,许多新的和创新的应用可以设想,如果通过平面排列的光纤可以适当地控制。控制平面内对齐最常见的方法是应用剪切流场,这可以在挤出或注射成型过程中固有地产生。垂直于平面(通过面)的纤维对齐比较困难,因为在控制剪切流场方面存在挑战。许多技术都是基于利用电磁力作用于流体悬浮液中的颗粒,然后固化。机械方法不适合大规模生产。可能的应用包括导电和导热涂层,耐磨表面,渗透膜,散热片和创新传感器等。因此,本研究计划的目标是开发创新的制造技术,用于高通量生产TPA sfc,这比随机sfc更适合某些应用。这样做的成功将对证监会开放一些目前甚至尚未考虑的申请产生巨大影响。两种不同的方法将研究通过平面排列的纤维。A) SFC薄板发泡,基体中的气泡被迫进行双轴拉伸,破裂形成开孔,使大量纤维横向排列。B)挤压后进行后处理折叠和固化。本研究建议首先使用挤压将纤维沿刨床方向排列,然后进行类似折叠的操作和固化,以改善折叠层的表面粘合。这两种方法都需要大量的设计和开发工作以及创新方法的应用来解决设计挑战。初始阶段将侧重于上面提出的第一种方法。通过平面光纤对准的工作很少,在sfc中实现高通量通过平面对准的技术有可能大大增加复合材料的有用性,并产生许多新颖和创新的应用,这将有利于加拿大的塑料制造业。它也将成为该行业HQP培训和创新经验的来源。
英文摘要
Short-fiber composites (SFC) rely on the exceptional properties of the reinforcing fiber phase to enhance the properties of the matrix. Depending on the product application required, the fibers must be arranged in a particular orientation, either in-plane, through-plane, etc. Due to cost and mass-production concerns, through-plane fiber orientation is usually not pursued. This proposal seeks to develop composites with through-plane aligned (TPA) fibers, as they can significantly improve properties of SFCs for use in a number of existing applications. Moreover, many new and innovative applications can be envisaged if through-plane alignment of fibers can be properly controlled. The most common way of controlling the in-plane alignments is by applying a shear flow field, which can be inherently generated in extrusion or injection molding processes. Aligning fibers perpendicular to the plane (through-plane) is more difficult because of the challenges in controlling the shear flow field. Many techniques are based on utilizing electromagnetic forces on particles in fluid suspensions and then solidification. Mechanical methods are not suitable for large scale production. Possible applications include electrically and thermally conductive coatings, wear resistant surfaces, permeable membranes, heat sinks, and innovative sensors etc.Therefore, the objective of this research program is to develop innovative manufacturing techniques for high throughput production of TPA SFCs, which are more suited for certain applications than random SFCs. Success in doing so will have a dramatic effect in opening up a number of applications which are not even being considered at present for SFCs. Two distinct methodologies will be investigated for through plane alignment of fibers. A) Foaming in SFC thin sheets, where the bubbles in matrix are forced to undergo biaxial stretching, rupture and form open pores which will align large number of fibers laterally. B) Extrusion followed by post-processing folding and curing. This research proposes to first align the fibers in the planer direction using extrusion and followed by folding like operations and curing to improve the surface to surface bonding of the folded layers. Both the methods require extensive design and development efforts and application of innovative approaches to solve design challenges. The initial phase will focus on the first methodology proposed above.Work on through-plane fiber alignment is sparse and achieving technology for high throughput through plane alignment in SFCs has the potential to dramatically increase the usefulness of composite materials and generate many novel and innovative applications, which will be beneficial for the plastics manufacturing industry of Canada. It will also be a source of training and innovation experience for HQP in this industry.
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Innovative Production of Composites with Through Plane Alignment of Fi-bers
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