A Methodological Analysis Approach to Assess Solar Energy Potential at the Neighborhood Scale
暂无分享,去创建一个
Gabriele Lobaccaro | Francesco Frontini | Pierluigi Bonomo | Erika Saretta | Malgorzata Maria Lisowska | F. Frontini | G. Lobaccaro | E. Saretta | P. Bonomo | Małgorzata Lisowska
[1] Alessandra Scognamiglio,et al. Solar energy systems in architecture - Integration criteria and guidelines , 2013 .
[2] J. Kanters,et al. Solar energy as a design parameter in urban planning , 2012 .
[3] Miguel Brito,et al. Modelling solar potential in the urban environment: State-of-the-art review , 2015 .
[4] Ronald Fergle. Building-Integrated Solar Technology: Architectural Design with Photovoltaics and Solar Thermal Energy , 2019 .
[5] S. Carlucci,et al. Boosting solar accessibility and potential of urban districts in the Nordic climate: A case study in Trondheim , 2017 .
[6] Eugenio Morello,et al. Solar Energy Potential Assessment on Rooftops and Facades in Large Built Environments Based on LiDAR Data, Image Processing, and Cloud Computing. Methodological Background, Application, and Validation in Geneva (Solar Cadaster) , 2018, Front. Built Environ..
[7] Ki-Hyun Kim,et al. Solar energy: Potential and future prospects , 2018 .
[8] Meng Wang,et al. A Review of the Energy Performance and Life-Cycle Assessment of Building-Integrated Photovoltaic (BIPV) Systems , 2018, Energies.
[9] Alessandra Scognamiglio,et al. A cross-country perspective on solar energy in urban planning: Lessons learned from international case studies , 2019, Renewable and Sustainable Energy Reviews.
[10] A. D. Jones,et al. A thermal model for photovoltaic systems , 2001 .
[11] Francesco Frontini,et al. bFAST: a methodology for assessing the solar potential of façades in existing building stocks , 2018 .
[12] Francesco Frontini,et al. A calculation method for the BIPV potential of Swiss façades at LOD2.5 in urban areas: A case from Ticino region , 2020 .
[13] D. Vettorato,et al. A holistic approach to assess the exploitation of renewable energy sources for design interventions in the early design phases , 2018, Energy and Buildings.
[14] Miguel P. Amado,et al. Solar Energy Integration in Urban Planning: GUUD Model☆ , 2014 .
[15] Maria Cristina Munari Probst,et al. Criteria and policies to master the visual impact of solar systems in urban environments: The LESO-QSV method , 2019, Solar Energy.
[16] Maria Wall,et al. Experiences from the urban planning process of a solar neighbourhood in Malmö, Sweden , 2018 .
[17] Clara Good,et al. Optimization of Solar Energy Potential for Buildings in Urban Areas – A Norwegian Case Study , 2014 .
[18] Tilmann E. Kuhn,et al. A method for predicting the economic potential of (building-integrated) photovoltaics in urban areas based on hourly Radiance simulations , 2015 .
[19] Francesco Frontini,et al. Active BIPV glass facades: current trends of innovation , 2017 .
[20] Reidun Dahl Schlanbusch,et al. A Norwegian ZEB Definition Guideline , 2016 .
[21] Gabriele Lobaccaro,et al. SolarPW: A New Solar Design Tool to Exploit Solar Potential in Existing Urban Areas , 2012 .
[22] Anne Grete Hestnes,et al. Building Integration Of Solar Energy Systems , 1999 .
[23] Alberto Susini,et al. Solar Cadaster of Geneva: A Decision Support System for Sustainable Energy Management , 2017, EnviroInfo.
[24] C. Reinhart,et al. A method for predicting city-wide electricity gains from photovoltaic panels based on LiDAR and GIS data combined with hourly Daysim simulations , 2013 .
[25] M. Brito,et al. Solar energy potential on roofs and facades in an urban landscape , 2013 .
[26] Robert Schubert,et al. No Compromise , 2006 .
[27] Maria Wall,et al. The Solar Map as a Knowledge Base for Solar Energy Use , 2014 .