Resistance Welding of Thermoplastic Composites, Including Welding to Thermosets and Metals: A Review

被引:1
作者
Stankiewicz, Karolina [1 ]
Lipkowski, Adrian [1 ]
Kowalczyk, Piotr [1 ]
Gizynski, Maciej [1 ]
Wasniewski, Bartlomiej [1 ]
机构
[1] Lukasiewicz Res Network, Inst Aviat, PL-02256 Warsaw, Poland
关键词
fiber-reinforced plastic composite; thermoplastic resin; thermosetting resin; adhesion; resistance welding; joints/joining; dissimilar materials joining; MATRIX COMPOSITES; COOLING RATE; PROCESSING WINDOW; HEATING ELEMENT; WELDED-JOINTS; EPOXY-RESINS; ADHESION; STRENGTH; INDUCTION;
D O I
10.3390/ma17194797
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
This review paper presents the current progress in the development of resistance welding techniques for thermoplastic composites, with a particular emphasis on their application in hybrid joints, such as those involving thermosetting composites and metals. Resistance welding, a fusion bonding method, offers significant advantages over adhesive bonding and mechanical joining by eliminating the need for additional adhesive materials and enabling integration into automated manufacturing processes. The study highlights the unique benefits of resistance welding, including lower energy consumption compared to other methods and its compatibility with automated manufacturing, which can reduce production costs by up to 40%. Key findings from the literature indicate that resistance welding is particularly effective in achieving strong, durable joints for complex and large structures, such as those used in the aerospace industry. The review also identifies the main challenges associated with resistance welding, including temperature control, current leakage in carbon-fiber-reinforced polymers, and potential corrosion when using metal meshes. To address these challenges, various strategies are discussed, including surface treatments, the use of nanocomposites, and the integration of carbon nanotubes. The review concludes by emphasizing the need for further research to optimize welding parameters and to develop non-destructive testing methods for industrial applications, ensuring the reliability and long-term performance of welded joints.
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页数:23
相关论文
共 163 条
[51]   Temperature field evolution and thermal-mechanical interaction induced damage in drilling of thermoplastic CF/PEKK-A comparative study with thermoset CF/epoxy [J].
Ge, Jia ;
Luo, Ming ;
Zhang, Dinghua ;
Catalanotti, Giuseppe ;
Falzon, Brian G. ;
McClelland, John ;
Higgins, Colm ;
Jin, Yan ;
Sun, Dan .
JOURNAL OF MANUFACTURING PROCESSES, 2023, 88 :167-183
[52]  
Ginger Gardiner, Welding Thermoplastic Composites
[53]  
Guillén JF, 2002, J REINF PLAST COMP, V21, P749, DOI [10.1177/073168402128988472, 10.1106/073168402025752]
[54]  
Hamerton I., 2018, Thermosets, P303, DOI DOI 10.1016/B978-0-08-101021-1.00009-5
[55]  
Heimerdinger M.W., 1994, Repair Technology for Thermoplastic Aircraft Structures
[56]   Morphology of an Interface between Polyetherimide and Epoxy Prepreg [J].
Heitzmann, Michael T. ;
Hou, Meng ;
Veidt, Martin ;
Vandi, Luigi-Jules ;
Paton, Rowan .
BIOTECHNOLOGY, CHEMICAL AND MATERIALS ENGINEERING, PTS 1-3, 2012, 393-395 :184-+
[57]   Effect of Aluminum Surface State on Laser Joining between 1050 Aluminum Sheet and Polypropylene Resin Sheet Using Insert Materials [J].
Hino, Makoto ;
Mitooka, Yutaka ;
Murakami, Koji ;
Urakami, Kazuto ;
Nagase, Hiroyuki ;
Kanadani, Teruto .
MATERIALS TRANSACTIONS, 2011, 52 (05) :1041-1047
[58]   Simulation of single-lap bonded and hybrid (bolted/bonded) joints with flexible adhesive [J].
Hoang-Ngoc, Cat-Tan ;
Paroissien, Eric .
INTERNATIONAL JOURNAL OF ADHESION AND ADHESIVES, 2010, 30 (03) :117-129
[59]  
Hodgkin JH, 1998, POLYM ADVAN TECHNOL, V9, P3
[60]   An experimental study of resistance welding of carbon fibre fabric reinforced polyetherimide (CF fabric PEI) composite material [J].
Hou, M ;
Ye, L ;
Mai, YW .
APPLIED COMPOSITE MATERIALS, 1999, 6 (01) :35-49