Dynamic Life Cycle Assessments of a Conventional Green Building and a Net Zero Energy Building: Exploration of Static, Dynamic, Attributional, and Consequential Electricity Grid Models

Author:

Collinge William O.1,Rickenbacker Harold J.1,Landis Amy E.2,Thiel Cassandra L.3,Bilec Melissa M.1ORCID

Affiliation:

1. Department of Civil and Environmental Engineering, University of Pittsburgh, 153 Benedum Hall, 3700 O’Hara Street, Pittsburgh, Pennsylvania 15261, United States

2. Department of Civil & Environmental Engineering, Colorado School of Mines, 206 Coolbaugh Hall, 1012 14th Street, Golden, Colorado 80401, United States

3. Department of Population Health, New York University School of Medicine, 227 East 30th Street #609, New York, New York 10016, United States

Funder

Mascaro Center for Sustainable Innovation, University of Pittsburgh

Directorate for Engineering

Division of Emerging Frontiers in Research and Innovation

U.S. Environmental Protection Agency

Publisher

American Chemical Society (ACS)

Subject

Environmental Chemistry,General Chemistry

Reference44 articles.

1. USGBC. LEED Version 4 (V4). http://www.usgbc.org/leed-v4 (accessed May 19, 2018).

2. ILFI. Living Building Challenge 3.1. http://living-future.org/lbc (accessed May 19, 2018).

3. EN, Sustainability of Construction Works—Environmental Product Declarations—Core Rules for the Product Category of Construction Products. EN 15804:2012+A1; European Committee for Standardization: Brussels, Belgium, 2013.

4. Exploration of life cycle data calculation: Lessons from a Passivhaus case study

5. Methodological challenges and developments in LCA of low energy buildings: Application to biogenic carbon and global warming assessment

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