The Green Structure group is dedicated to improving the environmental performance of built structure. It is open to all structural engineers who wish to explore and advance best practices in ecological design. The group is supported and managed by the SEI Sustainability Committee. Learn more here: http://www.linkedin.com/groups/Green-Structure-4892266/about
Sustainability Guidelines
Thermal Bridging Solutions in MSC
Carbon Working Group White Paper
Top 10 FAQs Answered
Sustainability Guidelines for the Structural Engineer
Learn strategies for integrating sustainability into structural design. More
Thermal Bridging Solutions in MSC
April 2012 Issue of MSC: "Thermal Bridging Solutions: Minimizing Structural Steel's Impact on Building Envelope Energy Transfer." More
Carbon Working Group White Paper
Structures and Carbon: How Materials Affect the Climate. More info.
Top 10 Structural Sustainability FAQs
The LCA working group provides answers to 10 FAQs asked by conscientious structural engineers, more
Join Green Structure Group on Linked-In
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The Green Structure group is dedicated to improving the environmental performance of built structure. It is open to all structural engineers who wish to explore and advance best practices in ecological design. The group is supported and managed by the SEI Sustainability Committee. Learn more here: http://www.linkedin.com/groups/Green-Structure-4892266/about
Sustainable Structures Symposium
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April 17-18, 2014. Learn about the intersections of architecture, structural engineering and green buildings. More about the symposium is available online at http://web.pdx.edu/~cgriffin/symposium/
This symposium may be of particular interest to structural engineers, because the organizers recognize that "the role of structural systems and materials in the overall performance of a building has been largely neglected." Structural systems are chosen early in a project and are heavily influenced by buildings codes, construction schedule, and cost. More consideration should be given to the structure considering that it contributes roughly one-quarter of the initial embodied energy in a commercial building.
This symposium promises to explore the greater role structure should have in the design, impact and operation of green buildings.
Recommended by SEI-SC committee member Kathrina Simonen.
A Personal History of Sustainability for Structures
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| Photovoltaic panel located on 13th century castle in South of France. Mt. Ventoux and Rhône River in Background |
| Grain silo repurposed as condos in Denmark |
Being part of the committee provides access to the latest information on sustainable structures and great peer group. It is empowering to know that there are such motivated individuals devoting their careers (and loads of personal time) to advancing sustainability in the structural engineering profession. I look forward to learning more about their history with sustainable structures and future aspirations.
Natural Ventilation, Cooling and Lighting
Categories :
daylighting . green roof . natural ventilation . thermal mass
Q3b: Reducing Operational Energy with Structural Innovation
Categories :
daylighting . geothermal . LCA . lighting . natural ventilation . operational performance . Structures Congress
Miscellaneous Strategies
Another Look at Embodied Versus Operational Comparison
Author: Rebecca Jones ; Contributors: Kate Simonen, Frances Yang, Steve Buonopane
Return to Top 10 Home
Q3a: Operational vs. Embodied Energy
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daylighting . geothermal . LCA . lighting . natural ventilation . operational performance . thermal mass . Working Groups
The approximate average across several case studies (Perez, 2008; Ramesh, 2010; Junilla, 2006) is 20% of the total life-cycle energy, as often cited in the building practice. However, as recorded in Figure 1, the results amongst these studies actually ranged from 5% to near 30%.
Figure 3a-1: Ranges of typical embodied and operational energy proportions found in literature
This range resulted from differences in what was included or excluded, the building life assumed, and the operational performance. Figure 2 shows the typical trend of both embodied and operational energy over a typical 60 year building life. It illustrates that arriving at a 20/80 proportion of embodied to operational is very sensitive to building life. (For more info on what structural engineers can do to account for building life in LCA, see Q4 and Q9.)
Figure 3a-3: Embodied Impact as % Total, the remainder being the energy to operate the buildings. (Credit: Basbagill et al, used with permission)
Q4: How much of total embodied impact comes from structure?
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- Structural Embodied Energy During Construction
- Structural Embodied Energy Over Building’s Single Lifespan
- Structural Embodied Energy Over Building’s Rebuilt or Repaired Lifespan
- In the embodied energy study by Kofoworola and Gheewala shows that the concrete and steel components of a 38 story reinforced concrete office tower in Thailand can be as high as 71% of embodied energy of a building through construction. (Kofoworola 2007)
- In the embodied energy study by Treloar et al shows that the concrete and steel components of a 15 story steel office tower in Australia can be as high as 90% of embodied energy of a building through construction. (Treloar 2001)
- The international building consulting firm Arup studied multiple pieces of literature and their own building designs in order to gather a data set of embodied energy that was bounded by “cradle to site”. Calculations included all impacts of the extraction of the raw material, factory production and delivery to site. Their analysis shows two interesting points;
embodied energy. Figure 4.1 shows a 50%-60% contribution independent of building type
(Arup 2010).
2) That the structural system may vary the contribution of embodied energy much more.
Figure 4.2 shows that the structural system selected produces a range between 30%-60% of
structural embodied energy compared to the entire building (Arup 2010).
- An oft-cited study by R. Cole and P. Kernan based on the Canadian construction industry estimates that a 50,000 sft, 3 story office building using steel, concrete, and timber structural systems still produces a 25% to 33% range of the building’s total embodied energy. (Cole 1996)
- The carbon consulting firm dcarbon8, in a more recent case study conducted in 2007, calculated the total cradle-to-grave embodied carbon emissions (which are indicative of embodied energy) attributable to a warehouse building’s structure to be 57% of the total. (Werner 2012)
- A similar study performed by Fernandez, N. Perez goes in depth to analyze an actual 55,000 sft, 6 story office building located in Christchurch, New Zealand. Using the actual concrete design, and alternates of steel and timber, the author concludes that the life cycle structural embodied energy accounts for 30% of the concrete and timber designs, and 44% within the steel design alternate. (Fernandez 2008)
- Taking an actual four story, 80,000 sft office building located in Chicago, IL, a group of building designers studied four different structural systems using two separate material quantity calculations within the ATHENA EcoCalculator for the purpose of determining the structural material embodied energy. By adding in non-structural components and using TRACE 2000 energy model each design assuming a 50 year life span. The total embodied energy of the structure for this low rise building was determined to be between 6%-10% of the total cradle to grave energy. This is lower than expected but remains a significant amount. (Stek 2012)
Structural Embodied Energy Over Building’s Rebuilt or Repaired Lifespan
Therefore it is relevant and altogether prudent to continue measuring and trying to decrease the environmental impact of structural materials.
Cole R., Kernan P. (1996) “Life-Cycle Energy Use in Office Buildings”, Buildings and Environment, 31 (4): 307-317
Comber, Poland, & Sinclair (2012) “Environmental Impact Seismic Assessment: Application of Performance-Based Earthquake Engineering Methodologies to Optimize Environmental Performance”, Victoria University School of Architecture, Wellington, New Zealand
dcarbon8 (2010) “Footprint Measurement and Reduction Study for Development Securities”
Fernandez, N. Perez (2008) “The Influence of Construction Materials on Life-cycle Energy Use and Carbon Dioxide Emissions of Medium Size Commercial Buildings”, Victoria University School of Architecture, Wellington, New Zealand
Hsu, S. (2010) “Life Cycle Assessment of Materials and Construction in Commercial Structures: Variability and Limitations,” Massachusetts Institute of Technology, Cambridge, Massachusetts






