首页> 外文期刊>Journal of computer sciences >Educational Challenges in Computer-based Finite Element Analysis and Design of Structures
【24h】

Educational Challenges in Computer-based Finite Element Analysis and Design of Structures

机译:基于计算机的有限元分析和结构设计中的教育挑战

获取原文
           

摘要

Computer simulations and computational methods, such as the Finite Element Analysis (FEA) have become essential methodologies in science and engineering during the last decades, in a wide variety of academic fields. Six decades after the invention of the digital computer, advanced FE simulations are used to enhance and leapfrog theoretical and experimental progress, at different levels of complexity. Particularly in Civil and Structural Engineering, significant research work has been made lately on the development of FE simulation codes, methodologies and validation techniques for understanding the behavior of large and complex structures such as buildings, bridges, dams, offshore structures and others. These efforts are aimed at designing structures that are resilient to natural excitations (wind loads, earthquakes, floods) as well as human-made threats (impact, fire, explosion and others). The skill set required to master advanced FEA is inherently interdisciplinary, requiring in-depth knowledge of advanced mathematics, numerical methods and their computational implementation, as well as engineering sciences. In this paper, we focus on the importance of sound and profound engineering education and knowledge about the theory behind the Finite Element Method to obtain correct and reliable analysis results for designing real-world structures. We highlight common mistakes made by structural engineers while simulating complex structures and the risk of structural damage because of human-made mistakes or errors in the model assumptions. The event of the collapse and eventual sinking of a concrete offshore platform in the North Sea is presented as a case study where a serious error in the finite element analysis played a crucial role leading to structural failure and collapse.
机译:在过去的几十年中,计算机模拟和计算方法(例如有限元分析(FEA))已成为科学和工程学中各种学术领域中必不可少的方法论。在数字计算机发明六十年后,先进的有限元仿真被用于增强和超越理论和实验的进展,并且具有不同的复杂性。特别是在土木和结构工程中,近来在有限元仿真代码,方法和验证技术的开发方面进行了大量研究工作,以理解大型复杂结构(例如建筑物,桥梁,水坝,海上结构等)的行为。这些努力旨在设计对自然激发(风荷载,地震,洪水)以及人为威胁(撞击,火灾,爆炸等)具有弹性的结构。掌握高级有限元分析所需要的技能本质上是跨学科的,需要对高级数学,数值方法及其计算实现以及工程科学有深入的了解。在本文中,我们将重点放在进行良好而深入的工程教育以及了解有限元方法背后的理论的重要性上,以获取正确和可靠的分析结果,以设计实际结构。我们将重点介绍结构工程师在模拟复杂结构时出现的常见错误以及由于人为错误或模型假设中的错误而导致的结构损坏风险。作为案例研究,介绍了北海一个混凝土海上平台坍塌和最终下沉的事件,其中有限元分析中的严重错误在导致结构破坏和坍塌中起着至关重要的作用。

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