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September 16, 2025Buildings1 citationsOpen Access

Towards a Generative Frame System of Ancient Chinese Timber Architecture: Structural Generation and Optimization of “Column Reduction” and “Column Relocation”

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TLTonghao LiuBZBinyue ZhangYZYamin Zhao

Key Points

  • The framework yields lower maximum displacements while improving axial-force participation and reducing bending.
  • Structural evaluation using Karamba3D showed clearer load paths and performance ranking aligned with authenticity loss.
  • Generative design approaches enhance modeling efficiency and decision support in culturally sensitive architectural projects.
  • Limitations include idealization of line-models and simplified timber behavior under solely gravity-induced loading.

Abstract

In traditional Chinese timber architecture, “column reduction” (Jian Zhu Zao) and “column relocation” (Yi Zhu Zao) enhances spatial continuity, yet often produces bending-dominated, material-intensive frames. This study develops a generative frame system that encodes raised beam logic into a parametric line-model workflow and couples it with simulation-based optimization. Informed by case analysis, the tool implements three lateral strategies—ridge-support revision, insertion of inclined members, and inclination of originally horizontal members—and one longitudinal strategy—longitudinal truss formation—whose use is governed by a user-defined historical authenticity parameter. Structural responses were evaluated using Karamba3D, and cross-section sizing was searched using Wallacei under gravity-dominant loading. The results indicate clearer load paths, greater axial-force participation, and reduced bending, yielding lower maximum displacements at comparable self-weight; moreover, the performance ranking aligns with the calibrated authenticity loss schedule, suggesting that the authenticity controller also acts as a practical proxy for expected stiffness gains. The framework improves design and modeling efficiency while offering quantitative decision support for culturally sensitive conservation and imitation design. Limitations include line-model idealization, simplified timber and joint behavior, gravity-only loading, and a modest historical corpus. The approach is extensible to other traditional systems via parameter and rule adaptation.

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Cite This Study

Liu et al. (2025) studied this question.

synapsesocial.com/papers/68d4506b31b076d99fa5797fhttps://doi.org/10.3390/buildings15183329
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