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April 30, 2026Construction Materials0 citationsOpen Access

Effect of X-Cable Bracing on the Optimized Weight of Planar Steel Frames Under Wind Load: A Parametric Study

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MAMustafa Al-BazoonSASaba Al–RubayeFMFaten I. Mussa

Key Points

  • This research aims to examine the effect of X-cable bracing on the weight of steel frames subjected to wind loads.
  • Modeled three planar steel frames: 10-story, 20-story, and 30-story.
  • Analyzed structures using SAP2000 under wind and service load conditions.
  • Optimized frame designs utilizing differential evolution and enhanced colliding bodies optimization algorithms.
  • Cable bracing resulted in weight reductions of up to 6%, 38%, and 20% for the 10-story, 20-story, and 30-story frames, respectively.
  • Internal force distribution improved with bracing, enhancing overall structural performance.
  • Structural weight was significantly higher when considering wind loads in addition to service loads.

Abstract

In designing tall buildings, the primary concern is ensuring an effective lateral load-resisting system in addition to the gravity load system, since it largely governs the overall design. This study investigates the influence of X-cable bracing on the structural weight of tall steel frame buildings subjected to service and wind loading. Three numerical case studies, 10-story, 20-story, and 30-story planar steel frames, were modeled and analyzed using SAP2000, then optimized using Differential Evolution (DE) and Enhanced Colliding Bodies Optimization (ECBO) algorithms. These designs were evaluated under both service and wind load conditions, considering strength and drift constraints. The results indicate that the inclusion of wind loads in addition to service loads leads to a higher total structural weight than considering service loads alone, while cable bracing effectively reduces the overall mass by up to 6%, 38%, and 20% for the 10-story, 20-story, and 30-story frames, respectively, compared to unbraced structures, by improving the internal force distribution among structural components. Strength demands, reflected by the interaction ratio, governed all design cases, while lateral displacement was always less than the maximum limit according to AISC and ASCE requirements. Overall, the results highlight the potential of cable bracing systems to deliver efficient tall building designs; however, further studies are needed to generalize these findings to a broader range of building configurations.

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Cite This Study

Al-Bazoon et al. (2026) studied this question.

synapsesocial.com/papers/69f2a4da8c0f03fd67764020https://doi.org/10.3390/constrmater6030026
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