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首页> 外文期刊>Computer Methods in Applied Mechanics and Engineering >A novel and simple a posteriori error estimator for LMS methods under the umbrella of GSSSS framework: Adaptive time stepping in second-order dynamical systems
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A novel and simple a posteriori error estimator for LMS methods under the umbrella of GSSSS framework: Adaptive time stepping in second-order dynamical systems

机译:GSSSS框架下用于LMS方法的新颖,简单的后验误差估计器:二阶动力系统中的自适应时间步长

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摘要

A novel general purpose a posteriori error estimator that is agnostic to selection of time integration schemes arising under the umbrella of "Generalized Single Step Single Solve" (GSSSS) framework and family of algorithms is proposed to foster adaptive time stepping; it encompasses the entire class of LMS methods for second order dynamical systems. Unlike several error estimators that have been applied to a limited selection of known time integration methods found in the literature, the proposed estimator offers a significant deviation and difference - that is, it is totally unconstrained from dependence upon algorithmic parameters and is general purpose. Consequently, it can be used for a wide class of numerically dissipative and non-dissipative algorithms for the general class of LMS methods without any modifications; the GSSSS family of algorithms encompasses most existing algorithms developed over the past 50 years or so as subsets, in addition to several new design developments and optimal algorithms arising from this framework. In addition, the proposed estimator is shown to possess the same order of convergence and error constant as the exact local error, which demonstrates its accuracy. The applicability of the proposed estimator to several but selected existing time integration algorithms including the well known schemes like the Newmark method, HHT-alpha, Classical midpoint rule and in addition, new algorithms and designs as well is demonstrated with single and multi-degree of freedom, linear and nonlinear dynamical problems. In addition, an adaptive time stepping procedure is employed to further demonstrate efficient implementation for multi-degree of freedom, linear and nonlinear dynamical systems. (C) 2018 Elsevier B.V. All rights reserved.
机译:提出了一种新颖的通用后验误差估计器,该估计器与在“通用单步单求解”(GSSSS)框架和算法系列的保护下产生的时间积分方案的选择无关,旨在促进自适应时间步长;它涵盖了用于二阶动力学系统的整个LMS方法类。与已经应用于文献中发现的已知时间积分方法的有限选择的几种误差估计器不同,所提出的估计器提供了显着的偏差和差异-也就是说,它完全不受算法参数的依赖,是通用的。因此,无需进行任何修改,它就可以用于一般LMS方法的大量数值耗散和非耗散算法。除了一些新的设计开发和由此框架产生的最佳算法外,GSSSS算法家族还包含了过去50年来开发的大多数现有算法的子集。另外,所提出的估计器显示出与精确的局部误差具有相同阶数的收敛性和误差常数,这证明了其准确性。拟议的估计器适用于几种但已选定的现有时间积分算法,包括众所周知的方案,如Newmark方法,HHT-alpha,Classic中点法则,此外,新算法和设计也通过单次和多次次数证明。自由,线性和非线性动力学问题。另外,采用自适应时间步长程序进一步证明了多自由度,线性和非线性动力学系统的有效实现。 (C)2018 Elsevier B.V.保留所有权利。

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