首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >SELF-POWERED AND BIO-INSPIRED DYNAMIC SYSTEMS: RESEARCH AND EDUCATION
【24h】

SELF-POWERED AND BIO-INSPIRED DYNAMIC SYSTEMS: RESEARCH AND EDUCATION

机译:自动和生物启发动态系统:研究和教育

获取原文

摘要

Animals are products of nature and have evolved over millions of years to perform better in their activities. Engineering research and development can benefit greatly by looking into nature and finding engineering solutions by learning from animals' evolution and biological systems. Another relevant factor in the present context is highlighted by the statement of the Nobel laureate Richard Smalley: "Energy is the single most important problem facing humanity today." This paper focuses on how the research and education in the area of Dynamic Systems can be geared towards these two considerations. In particular, recent advances in self-powered dynamic systems and bio-inspired dynamic systems are highlighted. Self-powered dynamic systems benefit by capturing wasted energy in a dynamic system and converting it into useful energy in the mode of a regenerative system, possibly in conjunction with renewable energies. Examples of solar-powered vehicles, regenerative vibration control, and energy harvesting are presented in the paper. Particularly, development of solar-powered quadrotor, octocopter, and tricopter airships are presented, a self-powered vibration control of a mass-spring system using electromagnetic actuators/generators, and piezoelectric flutter energy harvesting using bi-stable material are discussed. As examples of bio-inspired dynamic systems, flapping wing flying robots, vertical axis wind turbines inspired by fish schooling, propulsion inspired by jellyfish, and Psi Intelligent Control are given. In particular, various design and developments of bird-inspired and insect-inspired flapping wings with the piezoelectric and electromagnetic actuation mechanisms, a scaled vertical axis wind turbine farm consist of 4 turbines and the corresponding wind tunnel testing, jellyfish-inspired pulsing jet and experimenting the increase in efficiency of energy consumption, and a multi-agent/robotic based predictive control scheme inspired by Psi precognition (event or state not yet experienced). Examples of student projects and research carried out at Brunel University and the experimental rigs built (in all the mentioned areas) are discussed, as an integrated research and educational activity. For the analysis and understanding of the behavior of self-powered and bio-inspired systems, Optimal Uncertainty Quantification (OUQ) is used. OUQ establishes a unified analysis framework in obtaining optimized solutions of the dynamic systems responses, which takes into account uncertainties and incomplete information in the simulation of these systems.
机译:动物是大自然的产品,并在数百万年中发展,在他们的活动中表现更好。通过从动物的演变和生物系统中学习,工程研究和发展可以大大受益,并通过学习动物的进化和生物系统来寻找工程解决方案。目前背景下的另一个相关因素是诺贝尔·劳特(Richard Smalley)的说法突出了:“能量是人类今天面临的最重要的问题。”本文重点介绍,动态系统领域的研究和教育如何朝着这两种考虑因素而努力。特别是,突出了自动动态系统和生物启发动态系统的最新进展。通过在动态系统中捕获浪费的能量并将其转换为再生系统的模式,可以与可再生能源一起转换为有用的能量,使自动动态系统受益。纸张中提出了太阳能车辆,再生振动控制和能量收集的例子。特别地,讨论了使用电磁致动器/发电机的核心弹簧系统的自动振动控制,以及使用双稳态材料的压电颤动能量收获的升高的旋转轮廓仪,八峰孔和三级飞行器的开发。作为生物启发动态系统的示例,扑振翼飞机,垂直轴风力涡轮机,受到鱼类教育的推动,推进,由水母的启发,以及PSI智能控制。特别地,各种设计和发展鸟启发和昆虫启发扑与压电和电磁致动机构,一个经过缩放的垂直轴风力涡轮机农场由4个涡轮机翼和相应的风洞测试,水母启发脉冲喷射和试验能耗效率的提高,以及由PSI前瞻(尚未经历的事件或州)启发的多代理/机器人/机器人的预测控制方案)。在布鲁内尔大学进行的学生项目和研究的例子和建造的实验钻机(在所有提到的地区)是一项综合的研究和教育活动。对于分析和理解自我支持和生物启发系统的行为,使用最佳的不确定性量化(OUQ)。 OUQ在获得动态系统响应的优化解决方案方面建立了一个统一的分析框架,这考虑了这些系统模拟中的不确定性和不完整的信息。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号