Structural design of precast-prestressed concrete U-beam road bridges based on embodied energy
暂无分享,去创建一个
[1] Víctor Yepes,et al. Hybrid harmony search for sustainable design of post-tensioned concrete box-girder pedestrian bridges , 2015 .
[2] Ana Guerrero,et al. Energy and environmental savings via optimisation of the production process at a Spanish cement factory , 2015 .
[3] Víctor Yepes,et al. Cost and CO2 emission optimization of precast–prestressed concrete U-beam road bridges by a hybrid glowworm swarm algorithm , 2015 .
[4] Vivian W. Y. Tam,et al. The costs and benefits of combining recycled aggregate with steel fibres as a sustainable, structural material , 2016 .
[5] Moacir Kripka,et al. Optimization of reinforced concrete columns according to different environmental impact assessment parameters , 2014 .
[6] Endong Wang,et al. A hybrid Data Quality Indicator and statistical method for improving uncertainty analysis in LCA of complex system – application to the whole-building embodied energy analysis , 2013 .
[7] Vikas Khanna,et al. Life Cycle Energy Consumption and Environmental Impact , 2008 .
[8] Barbara C. Lippiatt,et al. Selecting Cost-Effective Green Building Products: BEES Approach , 1999 .
[9] Cheonghoon Baek,et al. Life cycle CO2 evaluation on reinforced concrete structures with high-strength concrete , 2011 .
[10] José V. Martí,et al. Design of prestressed concrete precast pedestrian bridges by heuristic optimization , 2010, Adv. Eng. Softw..
[11] Miloš Stanić,et al. Multicriteria optimization of natural and recycled aggregate concrete for structural use , 2015 .
[12] Víctor Yepes,et al. Appraisal of infrastructure sustainability by graduate students using an active-learning method , 2016 .
[13] C. D. Gelatt,et al. Optimization by Simulated Annealing , 1983, Science.
[14] Jeung-Hwan Doh,et al. Concrete slab comparison and embodied energy optimisation for alternate design and construction techniques , 2015 .
[15] Ashley P. Thrall,et al. Balancing energy efficiency and structural performance through multi-objective shape optimization: Case study of a rapidly deployable origami-inspired shelter , 2014 .
[16] Víctor Yepes,et al. Memetic Algorithm Approach to Designing Precast-Prestressed Concrete Road Bridges with Steel Fiber Reinforcement , 2015 .
[17] DongHun Yeo,et al. Sustainable design of reinforced concrete structures through embodied energy optimization , 2011 .
[18] Justo Garcia Navarro,et al. Assessment of the decrease of CO2 emissions in the construction field through the selection of materials: Practical case study of three houses of low environmental impact , 2006 .
[19] Víctor Yepes,et al. CO2-Optimization Design of Reinforced Concrete Retaining Walls Based on a VNS-Threshold Acceptance Strategy , 2012, J. Comput. Civ. Eng..
[20] Tatiana García-Segura,et al. Optimization of concrete I-beams using a new hybrid glowworm swarm algorithm , 2014 .
[21] Julian Alcala,et al. Life cycle greenhouse gas emissions of blended cement concrete including carbonation and durability , 2013, The International Journal of Life Cycle Assessment.
[22] Julián Alcalá,et al. Design of prestressed concrete precast road bridges with hybrid simulated annealing , 2013 .
[23] Zafer Bingul,et al. Hybrid genetic algorithm and simulated annealing for two-dimensional non-guillotine rectangular packing problems , 2006, Eng. Appl. Artif. Intell..
[24] David Thorpe,et al. Optimizing embodied energy of building construction through bioclimatic principles , 2012 .
[25] Xia Wei,et al. An Improved Genetic Algorithm-Simulated Annealing Hybrid Algorithm for the Optimization of Multiple Reservoirs , 2008 .
[26] Peng Wu,et al. Economic sustainability, environmental sustainability and constructability indicators related to concrete- and steel-projects , 2015 .
[27] M. E. Khan,et al. Energy and environment , 2004 .
[28] José María Moreno-Jiménez,et al. A cognitive approach for the multi-objective optimization of RC structural problems , 2015 .
[29] Eul-Bum Lee,et al. Life cycle energy consumption and GHG emission from pavement rehabilitation with different rolling resistance , 2012 .
[30] P. Börjesson,et al. Greenhouse gas balances in building construction : wood versus concrete from life-cycle and forest land-use perspectives , 2000 .
[31] Charles V. Camp,et al. CO2 and cost optimization of reinforced concrete footings using a hybrid big bang-big crunch algorithm , 2013 .
[32] John H. Holland,et al. Adaptation in Natural and Artificial Systems: An Introductory Analysis with Applications to Biology, Control, and Artificial Intelligence , 1992 .
[33] Gonzalo Fernández-Sánchez,et al. Applying life cycle thinking to reduce greenhouse gas emissions from road projects , 2013 .
[34] Paolo Foraboschi,et al. Sustainable structural design of tall buildings based on embodied energy , 2014 .
[35] Hyo Seon Park,et al. Cost and CO 2 Emission Optimization of Steel Reinforced Concrete Columns in High-Rise Buildings , 2013 .