轴向梯度阻抗增强碳/芳纶复合材料管的动态能量吸收

Saijod Tze Way Lau, Chee Kuang Kok, Md. Injamum Ul Haque, Abdul Rahman Adenan, Sajid Abdullah Alam, Sivakumar Dhar Malingam, Purwo Kadarno, Kia Wai Liew
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引用次数: 0

摘要

研究了碳-芳纶排列方式和应变速率对压碎管能量吸收的影响。圆形复合管由三层织物组成,采用四种不同的碳-芳纶杂交方案制成。制作工艺采用手工铺层和压缩气囊成型。在两种杂化方案中,碳-芳纶织物排列,以评估相对于管冲击端轴向梯度阻抗的影响。进行了静态挤压和低速冲击(LVI)试验,比较了其力-位移响应、能量吸收特性和破坏模式。试验结果表明,无论杂交方案如何,低速冲击试验的能量吸收比静态挤压试验高20%至60%。在这两项测试中,材料排列在能量吸收方面发挥了惊人的重要作用,可与管碳含量相媲美。在引发端阻抗低、冲击端阻抗增大的杂化方案中,比能吸收最大可达26.21 kJ/kg。这种比能量吸收的量几乎相当于其他杂交方案,具有两倍的碳纤维含量。这种方案促进了初始损伤模式,有利于管的其余部分的渐进折叠。本文提出了采用轴向梯度阻抗材料布置提高碰撞箱耐撞性的思路。建议对这个想法进行更多的验证和潜在的商业化测试。
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Enhanced Dynamic Energy Absorption in Carbon/Aramid Composite Tubes with Axially Graded Impedance
This study investigated the effects of carbon-aramid arrangement and strain rate on crush tube energy absorption. Round composite tubes, each consisting of three layers of fabric, were made using four different carbon-aramid hybridization schemes. Hand lay-up and compression bladder molding were used in the fabrication process. In two hybridization schemes, carbon-aramid fabrics were arranged to evaluate the effect of axially graded impedance relative to the tube impact end. Static crush and low-velocity impact (LVI) tests were conducted, and the force-displacement responses, energy absorption characteristics, and failure modes were compared. Test results revealed that energy absorption was 20% to 60% higher in the low-velocity impact test than in static crush, regardless of the hybridization schemes. In both tests, material arrangement played a surprisingly important role that was comparable to the tube carbon content in energy absorption. Maximum specific energy absorption of 26.21 kJ/kg was obtained in the hybridization scheme with the low impedance at the initiator end, with increasing impedance towards the impact end. This amount of specific energy absorption is almost equivalent to the other hybridization scheme that has twice the carbon fiber content. This scheme facilitated initial damage modes that favored progressive folding in the rest of the tube. This study presents the idea of enhancing the crashworthiness of crash boxes using axially graded impedance material arrangement. It is recommended that the idea be subjected to more testing for verification and potential commercialization.
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来源期刊
International Journal on Advanced Science, Engineering and Information Technology
International Journal on Advanced Science, Engineering and Information Technology Agricultural and Biological Sciences-Agricultural and Biological Sciences (all)
CiteScore
1.40
自引率
0.00%
发文量
272
期刊介绍: International Journal on Advanced Science, Engineering and Information Technology (IJASEIT) is an international peer-reviewed journal dedicated to interchange for the results of high quality research in all aspect of science, engineering and information technology. The journal publishes state-of-art papers in fundamental theory, experiments and simulation, as well as applications, with a systematic proposed method, sufficient review on previous works, expanded discussion and concise conclusion. As our commitment to the advancement of science and technology, the IJASEIT follows the open access policy that allows the published articles freely available online without any subscription. The journal scopes include (but not limited to) the followings: -Science: Bioscience & Biotechnology. Chemistry & Food Technology, Environmental, Health Science, Mathematics & Statistics, Applied Physics -Engineering: Architecture, Chemical & Process, Civil & structural, Electrical, Electronic & Systems, Geological & Mining Engineering, Mechanical & Materials -Information Science & Technology: Artificial Intelligence, Computer Science, E-Learning & Multimedia, Information System, Internet & Mobile Computing
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