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具有高比强度和耐高温性能的轻质聚酰亚胺蜂窝的3D打印

3D Printing of Lightweight Polyimide Honeycombs with the High Specific Strength and Temperature Resistance.

作者信息

Wang Chengyang, Ma Shengqi, Li Dandan, Zhao Junyu, Zhou Hongwei, Wang Dezhi, Zhou Dongpeng, Gan Tenghai, Wang Daming, Liu Changwei, Qu Chunyan, Chen Chunhai

机构信息

Key Laboratory of High Performance Plastics (Jilin University), Ministry of Education, National & Local Joint Engineering Laboratory for Synthesis Technology of High Performance Polymer, College of Chemistry, Jilin University, Changchun 130012, China.

Institute of Petro chemistry, Heilongjiang Academy of Science, Harbin 150040, China.

出版信息

ACS Appl Mater Interfaces. 2021 Apr 7;13(13):15690-15700. doi: 10.1021/acsami.1c01992. Epub 2021 Mar 10.

Abstract

Lightweight structures are often used for applications requiring higher strength-to-weight ratios and lower densities, such as in aircraft, vehicles, and various engine components. Three-dimensional (3D) printing technology has been widely used for lightweight polymer structures because of the superior flexibility, personalized design, and ease of operation offered by it. However, synthesis of lightweight polymeric structures that possess both high specific strength and glass transfer temperature () remains an elusive goal, because 3D printed polymers with these properties are still very few in the market. For example, 3,3',4,4'-biphenyl tetracarboxylic dianhydride (BPDA) and -phenylenediamine (PDA)-type (UPILEX-S type) polyimides show exceptional thermal stability ( up to ≈400 °C) and mechanical properties (tensile strength exceeding 500 MPa) and are the first choice if extremely high temperatures of 400 °C or even higher (depending on the duration) are required, which hampers their processing using existing 3D printing techniques. However, their processing using existing 3D printing techniques is hampered due to their thermal resistance. Herein, a 3D printing approach was demonstrated for generating complex lightweight BPDA-PDA polyimide geometries with unprecedented specific strength and thermal resistance. The simple aqueous polymerization reaction of BPDA with water-soluble PDA and triethylamine (TEA) afforded the poly(amic acid) ammonium salt (PAAS) hydrogels. These PAAS solutions showed clear shear thinning and thermo-reversibility, along with high ' gel-state moduli, which ensured self-supporting features and shape fidelity in the gel state. Postprinting thermal treatment transformed the PAAS precursor to BPDA-PDA polyimide (UPILEX-S type). The resulting layer-by-layer deposition onto lightweight polyimide honeycombs in the form of triangular, square, and hexagonal structures showed tailorable mechanical strength, exceptional compressive strength-to-weight ratio (highest up to 0.127 MPa (kg m)), and remarkable thermoresistance ( approximately 380 °C). These high-performance 3D printed polyimide honeycombs and unique synthetic techniques with general structures are potentially useful in fields ranging from automotive to aerospace technologies.

摘要

轻质结构常用于需要更高强度重量比和更低密度的应用中,例如飞机、车辆和各种发动机部件。三维(3D)打印技术因其具有卓越的灵活性、个性化设计和易于操作的特点,已被广泛用于制造轻质聚合物结构。然而,合成兼具高比强度和玻璃化转变温度()的轻质聚合物结构仍然是一个难以实现的目标,因为市场上具有这些性能的3D打印聚合物仍然很少。例如,3,3',4,4'-联苯四甲酸二酐(BPDA)和对苯二胺(PDA)型(UPILEX-S型)聚酰亚胺具有出色的热稳定性(高达约400°C)和机械性能(拉伸强度超过500 MPa),如果需要400°C甚至更高的极端温度(取决于持续时间),它们是首选材料,但这阻碍了使用现有3D打印技术对其进行加工。然而,由于它们的耐热性,使用现有3D打印技术对其进行加工受到了阻碍。在此,展示了一种3D打印方法,用于生成具有前所未有的比强度和耐热性的复杂轻质BPDA-PDA聚酰亚胺几何结构。BPDA与水溶性PDA和三乙胺(TEA)的简单水相聚合反应得到聚(酰胺酸)铵盐(PAAS)水凝胶。这些PAAS溶液表现出明显的剪切变稀和热可逆性,以及高的“凝胶态模量”,这确保了在凝胶态下的自支撑特性和形状保真度。打印后热处理将PAAS前体转化为BPDA-PDA聚酰亚胺(UPILEX-S型)。以三角形、正方形和六边形结构形式逐层沉积到轻质聚酰亚胺蜂窝上,显示出可定制的机械强度

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