Affiliation:
1. 1Department of Mechanical Engineering, Bursa Technical University, Bursa, Turkey and Department of Mechanical Engineering, University of Victoria, Victoria, BC, Canada
Abstract
AbstractDevelopments in design and technology in the engineering and medical fields necessitate the use of smart and high-performance materials to meet higher engineering specifications. The general requirements of such materials include a combination of high stiffness and strength with significant weight savings, resistance to corrosion, chemical resistance, low maintenance, and reduced costs. Over the last three decades, it has been demonstrated that auxetic materials offer a huge potential for the fields of engineering, natural sciences, and biomedical engineering, and for many other industries, including the aerospace and defense industries, through their unique deformation mechanism and measured enhancements in mechanical properties. To meet future engineering challenges, auxetic materials are increasingly being recognized as integral components of smart and advanced materials. Although materials with a negative Poisson’s ratio have been known since the early 1900s, they did not capture researchers’ attention until the late 1980s. Since 1991, these materials have been known as auxetic materials. Since then, their benefits and applications have been expanded to all major classes of materials such as metals, ceramics, polymers, and composites, and they are also now being used in engineering applications. The goal of this review was to present the development of auxetic polymers, which were first fabricated in the form of polyurethane foam approximately three decades ago and are now used in the fabrication of non-woven nano/micropolymeric structures. This review could provide useful information for the future development of auxetic polymers.
Subject
Polymers and Plastics,Physical and Theoretical Chemistry,General Chemical Engineering
Reference264 articles.
1. polyurethane foam with s ratio greater than;Lee;J Mater Sci,1997
2. Negative s ratio of microporous polyethylene in compression;Neale;J Mater Sci Lett,1993
3. Scale - up of transformation of negative s ratio foam slabs;Loureiro MA;Cell Polym,1997
4. modelling of auxetic microporous polymers;Alderson;J Mater Sci,1995
5. DJ The Young s modulus ratio of arsenic antimony bismuth;Gunton;J Mater Sci,1972
Cited by
58 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献