A truly self-starting composite isochronous integration analysis framework for first/second-order transient systems

Computers & Structures(2023)

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摘要
Due to the lack of and limited work done for first/second-order systems useful for multidisciplinary prob-lems, this paper proposes a new and novel composite isochronous integration ([i-Integration]) analysis framework to solve first/second-order transient systems via a single computational framework. The main contributions are summarized as follows: (1) The p.-Bathe method is newly reformed to an identical truly self-starting representation with the absence of acceleration and is more efficient for practical appli-cations; (2) The novel [i-Integration] process is applied to automatically generate a family of time inte-gration algorithms for first/second-order transient systems, whilst preserving features of second-order time accuracy, unconditional stability, controllable numerical dissipation in high-frequency, and truly self-starting; (3) The newly proposed algorithms design framework provides a unified toolkit to solve first/second-order transient systems in a single analysis and hence is more effective for coupled problems and numerical analysis of fluid/heat transfer/structure-type transient simulations. Numerical examples encompassing a manufactured example, the C-F heat conduction model, and the thermal stress wave problem are demonstrated to validate the proposed algorithms. (c) 2022 Elsevier Ltd. All rights reserved.
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关键词
Composite time integration,Isochronous integration,Time -dependent problems,Generalized single-step single -solve,algorithms
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