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Volume 56 Issue 4
Apr.  2026
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Article Contents
YU Long, WANG Peng, SU Weijiang, ZHANG Shiqian, LYU Zhenyuan, XIAO Xuwen, ZHU Tong. Design and Performance Study of Assembled Vertical-Horizontal Integrated Tool-Type Support System[J]. INDUSTRIAL CONSTRUCTION, 2026, 56(4): 110-121. doi: 10.3724/j.gyjzG24093003
Citation: YU Long, WANG Peng, SU Weijiang, ZHANG Shiqian, LYU Zhenyuan, XIAO Xuwen, ZHU Tong. Design and Performance Study of Assembled Vertical-Horizontal Integrated Tool-Type Support System[J]. INDUSTRIAL CONSTRUCTION, 2026, 56(4): 110-121. doi: 10.3724/j.gyjzG24093003

Design and Performance Study of Assembled Vertical-Horizontal Integrated Tool-Type Support System

doi: 10.3724/j.gyjzG24093003
  • Received Date: 2024-09-30
    Available Online: 2026-06-06
  • Publish Date: 2026-04-20
  • Efficient and safe temporary installation and fixing of prefabricated components has become a key issue in construction, with the continuous growth rate of the development of construction industrialization. This paper analyses the shortcomings of the existing support system in the installation of multi-category prefabricated components, pointing out its limitations in terms of adaptability to working conditions, convenience of adjustment, and reliability of support. Subsequently, through the introduction of adjustable support technology and modular design concepts, the fixed support system is optimized based on the form characteristics of precast components, to meet the needs of different precast component sizes, weights and installation locations, and to provide higher support stability. The application of actual engineering cases shows that the optimized support system shows significant advantages in improving installation efficiency, reducing the consumption of support materials and enhancing construction safety. It can not only effectively reduce the construction period, but also reduce the construction cost, and further enhance the flexibility and safety of on-site construction. This provides a new idea for the development of complex working conditions installation, and modular rapid construction of prefabricated components.
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