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March 21, 2026Civil Engineering and Architecture0 citationsOpen Access

Optimising Base Plate Design for Embodied Carbon Reduction in Steel-Framed Structures

RSRiza SuwondoMSMade SuanggaMKMilitia Keintjem

Key Points

  • The study aims to analyze how concrete pedestal compression impacts the embodied carbon and design efficiency of steel base plate assemblies.
  • Conducted parametric analysis using concrete strengths of 21–35 MPa.
  • Assessed three typical column sizes: H300, H250, and H200.
  • Used the AISC Design Guide to determine base plate sizes.
  • Calculated embodied carbon using the cradle-to-gate approach in BS EN 15978.
  • Increasing concrete strength from 21 MPa to 28–32 MPa led to a 30-40% reduction in base plate areas.
  • Carbon emissions associated with steel decreased due to smaller plate sizes.
  • Beyond 32 MPa, further reductions in plate size were minimal, but carbon in concrete increased.
  • Sensitivity analysis confirmed consistent trends despite changes in the carbon factor.

Abstract

The construction of buildings and other infrastructure contributes to climate change. Over time, reducing the embodied carbon in structural materials, such as steel, has become a primary target for meeting climate change goals within this sector. Steel column base plate assemblies, which include steel plates, anchor systems, and concrete pedestals, are critical components of load transfer mechanisms; however, they remain quasi-ignored in environmental impact assessments. This study assessed the impact of concrete pedestal compression on the design efficiency and embodied carbon of steel base plate assemblies. Concrete with a compression range of 21–35 MPa was used in the parametric analysis of three typical column sizes: H300, H250, and H200. The AISC Design Guide was used to determine the base plate sizes, whereas the cradle-to-gate approach in BS EN 15978 was used to calculate the embodied carbon. The study results indicated that when the concrete strength was increased from 21 MPa to 28–32 MPa, there was a notable reduction in the base plate areas, ranging from 30-40%, and the associated embodied carbon decreased principally owing to the reduction in carbon-intensive steel. However, beyond 32 MPa concrete, further reductions in plate size are insignificant, whereas the concrete embodies more carbon. Sensitivity analysis confirmed that these trends remained steady despite changes in the carbon factor. Steel continues to be the main contributor to the total embodied carbon. This study provides practical advice for structural engineers. Selecting a concrete strength between 28 and 32 MPa and properly sizing the base plates can significantly improve the design of low-carbon-steel-framed buildings.

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Cite This Study

Suwondo et al. (2026) studied this question.

synapsesocial.com/papers/69be35f96e48c4981c6747eehttps://doi.org/10.13189/cea.2026.140231
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