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THE JOINING TECHNIQUES FOR THERMOPLASTICS MATERIALS IN AUTOMOTIVE INDUSTRIES: A COMPREHENSIVE LITERATURE REVIEW

机译:汽车产业热塑性材料的连接技术:全面的文学评论

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Nowadays the use of thermoplastic materials has been increasing steadily, especially in automotive industries because of its positive effects on vehicle weight which is directly related to fuel consumption. These materials also provide a cost reduction for companies comparing with the steel or other similar materials. The other benefits of the thermoplastic materials are their high stiffness, excellent crashworthiness due to their energy-absorption characteristics, strength-to-weight ratios, fatigue and optimum design. Through their structure occurred by the polymer resins, thermoplastic materials can physically become a homogenized liquid when heated and hard when cooled. The thermoplastic materials are able to reheat, remolded and have good thermal and chemical stability. Also, these materials can be easily recycled which provides a lower environmental impact on the automotive industry. Due to the advantages of the thermoplastic materials, automotive industries have been using these technology in vehicle parts such as door panels, seat backs, load floor, engine cover, front end module, airbag housing, crash boxes, bumpers, instrument panel, air intake manifold, air duck, cross car beam, pedal brackets, gas tank carrier, etc. In order to produce the thermoplastic materials, a number of different methods (i.e. mechanical fastenings, ultrasonic assembly, metal inserts, snap fits, electromagnetic and heat welding, solvent/adhesive bonding) are proposed in the literature and most of them are successfully carried out in industrial applications. However, the identifying the joining technique according to the application area is an important issue to obtain appropriate material. Therefore, this paper presents a literature review of joining methods for thermoplastic materials and classifies the methods according to the structure of the joining technique. Within this context, more than 50 studies about joining techniques for thermoplastic materials are considered the methods are grouped into three main categories: chemical joining techniques, mechanical joining techniques, and thermal joining techniques. Chemical joining methods melt the surfaces of the materials by using a chemical solvent. By using the solvent, one plastic material is joined to itself or the material is joined to another type plastic that dissolves in the same solvent. In mechanical joining techniques, the materials are bonded by using some physical methods such as clipping, clamping, screwing, riveting, etc. Similarly, in thermal joining techniques the surface of the materials to be joined are heated and a pressure is applied until the thermoplastic material is formed. As a result of the review, the differences and efficiency of the joining methods are pointed out in the study with paired comparisons. Moreover, the real life applications of joining methods for thermoplastic materials in the automotive industry are presented. In this paper, effects of the joining techniques on pedestrian and occupant safety are also reviewed by taking into account the high-stress concentration factor, the inconvenient manufacturing process and, the reaction force peaks. Finally, the future challenges of the three categorized are summarized.
机译:如今,使用热塑性材料稳步增加,特别是在汽车行业中,因为它对与燃料消耗直接相关的载体重量的积极影响。这些材料还为与钢或其他类似材料进行比较的公司提供成本降低。热塑性材料的其他益处是它们的高刚度,由于它们的能量吸收特性,强度重量比,疲劳和最佳设计而具有优异的耐用性。通过它们的结构由聚合物树脂发生,热塑性材料在冷却时在加热和硬时物理地成为均质化的液体。热塑性材料能够再加热,重新折叠和具有良好的热和化学稳定性。此外,这些材料可以很容易地再循环,为汽车行业提供较低的环境影响。由于热塑性材料的优点,汽车工业已经在车辆部件中使用这些技术,如门板,座椅靠背,装载楼层,发动机盖,前端模块,安全气囊外壳,碰撞箱,保险杠,仪表板,进气口歧管,空气鸭,交叉车束,踏板,储气罐载体等,以生产热塑性材料,多种不同的方法(即机械紧固件,超声波组件,金属刀片,扣环,电磁和热焊接,溶剂/粘合剂粘合)在文献中提出,其中大部分是在工业应用中成功进行的。然而,根据应用区域的识别技术是获得适当材料的重要问题。因此,本文提出了对热塑性材料的连接方法的文献回顾,并根据连接技术的结构对方法进行分类。在这种情况下,将关于热塑性材料的连接技术的50多项研究被认为是将方法分为三个主要类别:化学连接技术,机械连接技术和热接合技术。化学连接方法通过使用化学溶剂熔化材料表面。通过使用溶剂,将一个塑料材料自身连接,或者将材料连接到另一种溶解在相同溶剂中的另一种塑料。在机械连接技术中,通过使用一些物理方法粘合,例如诸如剪切,夹紧,螺纹,铆接等,类似地,在热连接技术中,加热待连接的材料的表面并施加压力直至热塑性塑料材料形成。由于审查,与配对比较的研究中指出了加入方法的差异和效率。此外,介绍了在汽车工业中加入热塑性材料的现实寿命应用。在本文中,还通过考虑到高应力浓度因子,不方便的制造过程,反应力峰值,还审查了加入技术对行人和乘员安全性的影响。最后,总结了三个分类的未来挑战。

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