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1
book article
Computational method for variable objectives and context aware solar envelopes generation
De Luca, Francesco
;
Voll, Hendrik
2017 Proceedings of the Symposium on Simulation for Architecture and Urban Design
2017
/
p. 335-342 : ill
http://resolver.tudelft.nl/uuid:4857e388-c354-47a3-9671-0bd8038f76bc
book article
2
book article
From envelope to layout : buildings massing and layout generation for solar access in urban environments
De Luca, Francesco
ShoCK! : Sharing of Computable Knowledge : proceedings of the 35th International Conference on Education and Research in Computer Aided Architectural Design in Europe : 20th-22nd September 2017, Rome, Italy. Volume 2
2017
/
p. 431-440 : ill
book article
3
book article
A multi-objective optimization workflow based on solar access and solar radiation for the design of building envelopes in cold climates
Sepulveda Luque, Abel
;
De Luca, Francesco
2020 Proceedings of the Symposium on Simulation for Architecture and Urban Design
2020
/
p. 131–138 : ill
http://www.simaud.org/proceedings/download.php?f=SimAUD2020_Proceedings_LowRes.pdf
book article
Seotud publikatsioonid
1
A novel workflow for early design stages to ensure daylight and summer thermal comfort in buildings = Uudne töövoog projekteerimise algfaasis, et tagada päevavalgus ja suvine soojusmugavus hoonetes
4
book article EST
/
book article ENG
A novel multi-criteria method for building massing based on energy performance and solar access : the mixed solar envelope (MSE) method
Sepulveda Luque, Abel
;
De Luca, Francesco
Co-creating the future: inclusion in and through design ; Vol. 1
2022
/
p. 649-658 : ill
https://doi.org/10.52842/conf.ecaade.2022.1.649
https://www.researchgate.net/publication/363503843
Conference Proceedings at Scopus
Article at Scopus
Article at WOS
book article EST
/
book article ENG
5
journal article EST
/
journal article ENG
A novel solar envelope method based on solar ordinances for urban planning
De Luca, Francesco
;
Dogan, Timur
Building Simulation
2019
/
p. 817 - 834
https://doi.org/10.1007/s12273-019-0561-1
Journal metrics at Scopus
Article at Scopus
Journal metrics at WOS
Article at WOS
journal article EST
/
journal article ENG
6
journal article EST
/
journal article ENG
Reverse solar envelope method. A new building form-finding method that can take regulatory frameworks into account
De Luca, Francesco
;
Dogan, Timur
;
Sepulveda Luque, Abel
Automation in construction
2021
/
art. 103518, 18 p. : ill
https://doi.org/10.1016/j.autcon.2020.103518
Journal metrics at Scopus
Article at Scopus
Journal metrics at WOS
Article at WOS
journal article EST
/
journal article ENG
7
book article
Solar collection multi-isosurface method : computational design advanced method for the prediction of direct solar access in urban environments
De Luca, Francesco
;
Voll, Hendrik
Computer-Aided Architectural Design : Future Trajectories : 17th International Conference, CAAD Futures 2017, Istanbul, Turkey, July 12-14, 2017 : selected papers
2017
/
p. 170-187 : ill
https://doi.org/10.1007/978-981-10-5197-5_10
book article
8
book article
Solar collection multi-isosurface method : computational design advanced method for the prediction of direct solar access in urban environments
De Luca, Francesco
;
Voll, Hendrik
Future Trajectories of Computation in Design : 17th International Conference, CAAD Futures 2017, Istanbul, July 12-14, 2017 : proceedings
2017
/
p. 225
http://caadfutures2017.itu.edu.tr/wp-content/uploads/2017/09/CAADFutures2017_Proceedings-updated-20092017.pdf
book article
9
book article
Solar envelope optimization method for complex urban environments
De Luca, Francesco
CAADence in architecture : back to command : proceedings of the International Conference on Computer Aided Architectural Design : 16-17 June 2016, Budapest, Hungary, Faculty of Architecture, Budapest University of Technology and Economics. 2nd ed
2016
/
p. 195-201 : ill
http://dx.doi.org/10.3311/CAADence.1657
book article
Number of records 9, displaying
1 - 9
keyword
82
1.
reverse solar envelope
2.
solar envelope
3.
solar envelopes
4.
subtractive solar envelopes
5.
airtightness of building envelope
6.
building envelope
7.
E2 envelope protein
8.
envelope design
9.
Envelope performance
10.
HCV envelope Protein E2
11.
heat loss of building envelope
12.
CdS/CdTe solar cell
13.
CdS–CdTe solar cell
14.
chalcogenide solar cells
15.
chalcopyrite solar cell
16.
chalcopyrite thin film solar cells
17.
CIGS solar cell
18.
Cu2ZnSnSe4 solar cells
19.
direct solar access
20.
electric solar wind sail
21.
Hybrid solar cell
22.
hybrid solar cells
23.
hybrid thin film solar cells
24.
inorganic nanostructured solar cell
25.
integration of solar power plants
26.
monograin layer solar cell
27.
monograin layer solar cells
28.
passive solar control
29.
Perovskite solar cells
30.
semitransparent solar cells
31.
solar
32.
solar absorbers
33.
solar access
34.
solar architecture
35.
solar cell
36.
solar cell efficiency
37.
solar cells
38.
solar cells efficiency
39.
solar collection
40.
solar collector
41.
solar collectors
42.
solar converter
43.
solar cooling
44.
solar design
45.
solar electricity production potential
46.
solar energy
47.
solar energy materials
48.
solar energy utilization
49.
Solar energymaterials
50.
solar gains
51.
solar geometry
52.
solar heat
53.
solar heat gains
54.
solar inverter
55.
solar irradiance
56.
solar irradiation
57.
solar modules
58.
solar panels
59.
solar photovoltaic
60.
solar photovoltaic (PV)
61.
solar photovoltaic energy
62.
solar photovoltaics
63.
solar physics
64.
solar power
65.
solar power forecasting
66.
solar power generation
67.
solar power plant integration
68.
solar PV
69.
solar PV energy
70.
solar radiation
71.
solar roadway
72.
solar shading
73.
solar thermal
74.
Solar thermal systems
75.
Solar tracking system
76.
solar windows
77.
space-based solar power
78.
sustainable solar cells
79.
thin film solar cell
80.
Thin film solar cells
81.
thin-film solar cells
82.
variable wind and solar energy
subject term
3
1.
Bridgestone World Solar Challenge (võistlus)
2.
Roofit.solar
3.
World Solar Challenge
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