• ISSN 0258-2724
  • CN 51-1277/U
  • EI Compendex
  • Scopus
  • Indexed by Core Journals of China, Chinese S&T Journal Citation Reports
  • Chinese S&T Journal Citation Reports
  • Chinese Science Citation Database
Volume 61 Issue 2
Apr.  2026
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Article Contents
HAO Jing, YANG Na. An Improved Isolated Substructure Method and Its Application in Dynamic Analysis of an Ancient Architecture[J]. Journal of Southwest Jiaotong University, 2026, 61(2): 595-603. doi: 10.3969/j.issn.0258-2724.20250152
Citation: HAO Jing, YANG Na. An Improved Isolated Substructure Method and Its Application in Dynamic Analysis of an Ancient Architecture[J]. Journal of Southwest Jiaotong University, 2026, 61(2): 595-603. doi: 10.3969/j.issn.0258-2724.20250152

An Improved Isolated Substructure Method and Its Application in Dynamic Analysis of an Ancient Architecture

doi: 10.3969/j.issn.0258-2724.20250152
  • Received Date: 01 Apr 2025
  • Rev Recd Date: 05 Nov 2025
  • Publish Date: 20 Nov 2025
  • Obtaining the vibrational characteristics of independent substructures from global structures is crucial. The conventional isolated substructure method with time series (SIM-TS) suffers from increased computational errors due to excessively small singular values under noisy conditions. To address this, an improved SIM-TS method named ISIM-TS is proposed, aiming to achieve higher accuracy in substructure modal parameter identification. First, based on SIM-TS, an adaptive truncated singular value decomposition technique was introduced, optimizing the decomposition results by dynamically adjusting the truncation threshold. The ISIM-TS was combined with the covariance-driven stochastic subspace method (SSI-COV) to establish a new substructure modal identification framework, termed ISIM-TS-SSI-COV. Then, the feasibility of the proposed framework was verified via a classical five-degree-of-freedom (5-DOF) numerical simulation. Finally, this method was applied to identify the dynamic characteristics of a substructure in a Tibetan ancient architecture. The numerical results demonstrate that the improved method enhances the identification accuracy of the substructure, particularly reducing the identification error of the second-order frequency by 71.4%, under 1% noise. Furthermore, based on response data acquired under ambient excitation, the proposed method successfully identifies the first two natural frequencies of the substructure as 12.18 Hz and 13.31 Hz, respectively. The results provide an important data foundation for structural model updating and damage identification in the future.

     

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