Hot Powder Bed Compaction: A Rapid Fabrication Approach for Thermoplastic Composite Components

被引:4
作者
Bhagatji, Jimesh D. [1 ]
Kravchenko, Oleksandr G. [1 ]
机构
[1] Old Dominion Univ, Dept Mech & Aerosp Engn, Norfolk, VA 23529 USA
关键词
Thermoplastic laminate; Fusion bonding; Crystallinity; Interlaminar fusion; High-performace thermoplastic; components; BEHAVIOR;
D O I
10.1016/j.mfglet.2024.03.006
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Traditionally thermoplastic composite prepreg fabrication methods often rely on molds or costly tooling, limiting the agility and efficiency of the fabrication process. A compelling need for a high-performance thermoplastic composite prepreg fabrication approach that eliminates the dependence on molds, simplifies the fabrication process and accelerates prototyping, enabling rapid iterations in product development. The proposed hot powder bed compaction (HPBC) technique eliminates the need for specialized molds and still provides fully consolidated components. The HPBC process involved a three-step sequence comprising powder densification, heating, and consolidation stages. These stages help effectively control time-temperature-pressure parameters to achieve good fusion between the prepreg sheets. This paper showcased the HPBC process on a hinge bracket made from glass fiber-reinforced nylon prepreg sheets to illustrate its performance. Experimental mechanical characterization was carried out on treated HPBC coupons and compared with the molding process. Notably, the experimental flexural test results indicated a flexural modulus of 13.79 GPa and flexural strength of 295 MPa for HPBC-treated specimens, placing them in a comparable range with molded components. Microscopy analysis revealed the complete fusion interface of the prepreg sheets, and DSC analysis shows increases in crystalline fraction from 31.5 % to 44.1 % in PA6. Hence, the HPBC process presents a versatile and effective approach for fabricating high-performance, complex-shaped, void-free, components using thermoplastic composite prepreg. (c) 2024 Society of Manufacturing Engineers (SME). Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:113 / 117
页数:5
相关论文
共 18 条
[1]   Investigation of high temperature compaction on fracture toughness of 3D printed carbon fiber polyamide composites [J].
Barber, J. ;
Revolinsky, P. ;
Spinelli, E. ;
Jamora, V. C. ;
Eisazadeh, H. ;
Kravchenko, O. G. .
PROGRESS IN ADDITIVE MANUFACTURING, 2024, 9 (04) :1119-1134
[2]   Recycling of fiber reinforced composites with a focus on thermoplastic composites [J].
Bernatas, Rebecca ;
Dagreou, Sylvie ;
Despax-Ferreres, Auriane ;
Barasinski, Anais .
CLEANER ENGINEERING AND TECHNOLOGY, 2021, 5
[3]  
Bhagatji JD, 2018, 2018 AIAA SPACE ASTR
[4]  
Bhattacharyya D., 1997, COMPOSITE SHEET FORM
[5]   A focused review on the thermo-stamping process and simulation progresses of continuous fibre reinforced thermoplastic composites [J].
Chen, Hongda ;
Li, Shuxin ;
Wang, Jihui ;
Ding, Anxin .
COMPOSITES PART B-ENGINEERING, 2021, 224
[6]   The re-manufacture and repairability of poly(ether ether ketone) discontinuous carbon fibre composites [J].
Erland, Samuel ;
Stevens, Henry ;
Savage, Luke .
POLYMER INTERNATIONAL, 2021, 70 (08) :1118-1127
[7]   THE CRYSTAL STRUCTURE OF POLYCAPROAMIDE - NYLON-6 [J].
HOLMES, DR ;
BUNN, CW ;
SMITH, DJ .
JOURNAL OF POLYMER SCIENCE, 1955, 17 (83) :159-177
[8]   Role of annealing and isostatic compaction on mechanical properties of 3D printed short glass fiber nylon composites [J].
Jain, P. Ajith Kuma ;
Sattar, S. ;
Mulqueen, D. ;
Pedrazzoli, D. ;
Kravchenko, S. G. .
ADDITIVE MANUFACTURING, 2022, 51
[9]   Nonlinear stress relaxation behavior of ductile polymer glasses from large extension and compression [J].
Liu, Jianning ;
Lin, Panpan ;
Li, Xiaoxiao ;
Wang, Shi-Qing .
POLYMER, 2015, 81 :129-139
[10]  
Mallick PK, 2010, WOODHEAD PUBL MATER, P174, DOI 10.1533/9781845697822.1.174