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2021 | OriginalPaper | Buchkapitel

8. Ventilative Cooling in Combination with Other Natural Cooling Solutions: Direct Evaporative Cooling—DEC

verfasst von : Giacomo Chiesa, David Pearlmutter

Erschienen in: Innovations in Ventilative Cooling

Verlag: Springer International Publishing

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Abstract

This chapter analyses the potential combination of ventilative cooling solutions with direct evaporative cooling (DEC) systems. The focus is on passive downdraught evaporative cooling (PDEC) towers, whose performance is described based on the analysis of monitored results. The main design aspects of PDEC towers are explained, including basic relationships and support tools for system optimization. A series of case studies is reported, illustrating different integration strategies and providing a series of examples for designers. Finally, a simulation-based approach to analysing the local potential of PDEC to reduce thermal discomfort in naturally ventilated buildings is introduced, providing a method by which DEC systems can be integrated in building projects from the early-design phases.

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Literatur
1.
Zurück zum Zitat Erell E (2007) Evaporative cooling. In: Santamouris M (ed) Advances in passive cooling. Earthscan, London, pp 228–261 Erell E (2007) Evaporative cooling. In: Santamouris M (ed) Advances in passive cooling. Earthscan, London, pp 228–261
2.
Zurück zum Zitat Bahadori MN (1978) Passive cooling systems in Iranian architecture. Sci Am 238:144–154CrossRef Bahadori MN (1978) Passive cooling systems in Iranian architecture. Sci Am 238:144–154CrossRef
3.
Zurück zum Zitat Chiesa G (2019) Early design strategies for passive cooling of buildings: lesson learned from Italian archetypes. In: Sayigh A (ed) Sustainable vernacular architecture. How the past can enrich the future. Springer, Cham, pp 377–408CrossRef Chiesa G (2019) Early design strategies for passive cooling of buildings: lesson learned from Italian archetypes. In: Sayigh A (ed) Sustainable vernacular architecture. How the past can enrich the future. Springer, Cham, pp 377–408CrossRef
4.
Zurück zum Zitat Cook J (ed) (1989) Passive cooling. The MIT Press, Cambridge Cook J (ed) (1989) Passive cooling. The MIT Press, Cambridge
5.
Zurück zum Zitat Watt JR (1986) History of evaporative cooling, In Watt JR (ed) Evaporative air conditioning handbook, 2nd edn, Springer, New York, pp 5–11 Watt JR (1986) History of evaporative cooling, In Watt JR (ed) Evaporative air conditioning handbook, 2nd edn, Springer, New York, pp 5–11
6.
Zurück zum Zitat Carrier WH (1911) Rational psychrometric formulae. ASME Ann Meet Trans ASME 33:1005–1027 Carrier WH (1911) Rational psychrometric formulae. ASME Ann Meet Trans ASME 33:1005–1027
8.
Zurück zum Zitat Henning HM (2007) Solar assisted air conditioning of buildings—an overview. Appl Therm Eng 27:1734–1749CrossRef Henning HM (2007) Solar assisted air conditioning of buildings—an overview. Appl Therm Eng 27:1734–1749CrossRef
9.
Zurück zum Zitat Givoni B (1994) Passive and low energy cooling of buildings. Van Nostrand Reinhold, New York Givoni B (1994) Passive and low energy cooling of buildings. Van Nostrand Reinhold, New York
10.
Zurück zum Zitat Pearlmutter D, Berliner P (2017) Experiments with a ‘psychrometric’ roof pond system for passive cooling in hot-arid regions. Energy Build 144:295–302CrossRef Pearlmutter D, Berliner P (2017) Experiments with a ‘psychrometric’ roof pond system for passive cooling in hot-arid regions. Energy Build 144:295–302CrossRef
11.
Zurück zum Zitat Simonetti M, Chiesa G, Grosso M, Fracastoro GV (2016) NAC wall: an open cycle solar-DEC with naturally driven ventilation. Energy Build 129:357–366CrossRef Simonetti M, Chiesa G, Grosso M, Fracastoro GV (2016) NAC wall: an open cycle solar-DEC with naturally driven ventilation. Energy Build 129:357–366CrossRef
12.
Zurück zum Zitat Watson D, Labs K (1983) Climatic design. Energy-efficient building principles and practices. McGraw-Hill, New York Watson D, Labs K (1983) Climatic design. Energy-efficient building principles and practices. McGraw-Hill, New York
13.
Zurück zum Zitat Genskow LR, Beimesch WE, Hecht JP, Kemp I, Langrish T, Schwartzbach C, Smith FL (2007) Section 12 Psychrometry, evaporative cooling, and solids drying, In Perry HR, Green DW (eds), Perry’s Chemical Engineers’ Handbook, 8ed., McGraw-Hill, New York, pp 12.1–12.109 Genskow LR, Beimesch WE, Hecht JP, Kemp I, Langrish T, Schwartzbach C, Smith FL (2007) Section 12 Psychrometry, evaporative cooling, and solids drying, In Perry HR, Green DW (eds), Perry’s Chemical Engineers’ Handbook, 8ed., McGraw-Hill, New York, pp 12.1–12.109
14.
Zurück zum Zitat Pearlmutter D, Erell E, Meir IA, Etzion Y, Rofe Y (2010) Design manual for bioclimatic building in Israel. Israel Ministry of National Infrastructures, Jerusalem, p 144p Pearlmutter D, Erell E, Meir IA, Etzion Y, Rofe Y (2010) Design manual for bioclimatic building in Israel. Israel Ministry of National Infrastructures, Jerusalem, p 144p
15.
Zurück zum Zitat Milne M, Givoni B (1979) Architectural design based on climate. In: Watson D (ed) Energy conservation through building design. Mc Graw Hill, New York, pp 96–119 Milne M, Givoni B (1979) Architectural design based on climate. In: Watson D (ed) Energy conservation through building design. Mc Graw Hill, New York, pp 96–119
16.
Zurück zum Zitat Givoni B (1976) Man, climate and architecture, 2nd edn. Applied Science Publisher Ltd, London Givoni B (1976) Man, climate and architecture, 2nd edn. Applied Science Publisher Ltd, London
17.
Zurück zum Zitat Bowman NT, Eppel H, Lomas KJ, Robinson D, Cook JM (2000) Passive downdraught evaporative cooling: I. Concept Precedents Indoor Built Environ 9(5):284–290CrossRef Bowman NT, Eppel H, Lomas KJ, Robinson D, Cook JM (2000) Passive downdraught evaporative cooling: I. Concept Precedents Indoor Built Environ 9(5):284–290CrossRef
18.
Zurück zum Zitat Pearlmutter D, Erell E, Etzion Y, Meier HD (1996) Refining the use of evaporation in an experimental down-draft cool tower. Energy Build 23:191–197CrossRef Pearlmutter D, Erell E, Etzion Y, Meier HD (1996) Refining the use of evaporation in an experimental down-draft cool tower. Energy Build 23:191–197CrossRef
19.
Zurück zum Zitat Ford B, Schiano-Phan R, Francis E (eds) (2010) The architecture & engineering of Downdraught cooling. A design sourcebook. PHDC Press, London Ford B, Schiano-Phan R, Francis E (eds) (2010) The architecture & engineering of Downdraught cooling. A design sourcebook. PHDC Press, London
20.
Zurück zum Zitat Cunningham W, Thompson T (1986) Passive cooling with natural draft cooling towers in combination with solar chimneys. In Proceedings of PLEA 1986, Passive and Low Energy Architecture, Pecs, Hungary, September 1–5 Cunningham W, Thompson T (1986) Passive cooling with natural draft cooling towers in combination with solar chimneys. In Proceedings of PLEA 1986, Passive and Low Energy Architecture, Pecs, Hungary, September 1–5
21.
Zurück zum Zitat Chalfoun NV (1997) Design and application of natural down-draft evaporative cooling devices. In Proceedings of the 26th American solar energy society Chalfoun NV (1997) Design and application of natural down-draft evaporative cooling devices. In Proceedings of the 26th American solar energy society
22.
Zurück zum Zitat Chalfoun NV (1998) Implementation of natural down-draft evaporative cooling devices in commercial buildings: the international experience. In proceedings of energy efficiency in a competitive environment, the 1998 ACEEE summer study on energy efficiency in buildings, CD format, pp 3.63–3.72 Chalfoun NV (1998) Implementation of natural down-draft evaporative cooling devices in commercial buildings: the international experience. In proceedings of energy efficiency in a competitive environment, the 1998 ACEEE summer study on energy efficiency in buildings, CD format, pp 3.63–3.72
23.
Zurück zum Zitat Erell E, Pearlmutter D, Etzion E (2008) A multistage down-draft evaporative cool tower for semi-enclosed spaces: aerodynamic performance. Sol Energy 82:420–429CrossRef Erell E, Pearlmutter D, Etzion E (2008) A multistage down-draft evaporative cool tower for semi-enclosed spaces: aerodynamic performance. Sol Energy 82:420–429CrossRef
24.
Zurück zum Zitat Chiesa G (2014) M.E.T.R.O. (Monitoring Energy and Technological Real time data for Optimization) innovative responsive conception for cityfutures, PhD Thesis, Politecnico di Torino, Turin Chiesa G (2014) M.E.T.R.O. (Monitoring Energy and Technological Real time data for Optimization) innovative responsive conception for cityfutures, PhD Thesis, Politecnico di Torino, Turin
25.
Zurück zum Zitat Alvarez S, Rodriguez E, Molina JL (1991) The Avenue of Europe at Expo’92: Application of cool towers, Architecture and Urban Space, 9th PLEA conference, Seville, Spain 24–27 September Alvarez S, Rodriguez E, Molina JL (1991) The Avenue of Europe at Expo’92: Application of cool towers, Architecture and Urban Space, 9th PLEA conference, Seville, Spain 24–27 September
26.
Zurück zum Zitat Bogni A, Garavaglia G (2015) Raffrescamento evaporativo degli edifici. Master Degree thesis, rel. Proff. M. Grosso, G. Chiesa, Politecnico di Torino, Turin, Italy Bogni A, Garavaglia G (2015) Raffrescamento evaporativo degli edifici. Master Degree thesis, rel. Proff. M. Grosso, G. Chiesa, Politecnico di Torino, Turin, Italy
27.
Zurück zum Zitat Chiesa G, Grosso M, Bogni A, Garavaglia G (2017) Passive downdraught evaporative cooling system integration in existing residential building typologies: a case study. Energy Proc 111:599–608CrossRef Chiesa G, Grosso M, Bogni A, Garavaglia G (2017) Passive downdraught evaporative cooling system integration in existing residential building typologies: a case study. Energy Proc 111:599–608CrossRef
28.
Zurück zum Zitat Stull R (2011) Wet-bulb temperature from relative humidity and air temperature. J Appl Meteorol Climatol 50:2267–2269CrossRef Stull R (2011) Wet-bulb temperature from relative humidity and air temperature. J Appl Meteorol Climatol 50:2267–2269CrossRef
29.
Zurück zum Zitat Kang D, Strand RK (2013) Modelling of simultaneous heat and mass transfer within passive down-draft evaporative cooling (PDEC) towers with spray in FLUENT. Energy Build 62:196–209CrossRef Kang D, Strand RK (2013) Modelling of simultaneous heat and mass transfer within passive down-draft evaporative cooling (PDEC) towers with spray in FLUENT. Energy Build 62:196–209CrossRef
30.
Zurück zum Zitat Chiesa G, Grosso M (2019) Python-based calculation tool of wind-pressure coefficients on building envelopes, under publication in CISBAT Special Issue of Journal of Physics: Conference Series Chiesa G, Grosso M (2019) Python-based calculation tool of wind-pressure coefficients on building envelopes, under publication in CISBAT Special Issue of Journal of Physics: Conference Series
31.
Zurück zum Zitat Chiesa G, Grosso M (2015) Direct evaporative passive cooling of building. A comparison amid simplified simulation models based on experimental data. Build Environ 94:263–272CrossRef Chiesa G, Grosso M (2015) Direct evaporative passive cooling of building. A comparison amid simplified simulation models based on experimental data. Build Environ 94:263–272CrossRef
32.
Zurück zum Zitat Givoni B (1993) Semiempirical model of a building with a passive evaporative cool tower. Sol Energy 50(5):425–434CrossRef Givoni B (1993) Semiempirical model of a building with a passive evaporative cool tower. Sol Energy 50(5):425–434CrossRef
33.
Zurück zum Zitat Givoni B (1991) Modelling a passive evaporative cooling tower, In Proceedings, solar World Congress, Denver, pp. 3067–3071 Givoni B (1991) Modelling a passive evaporative cooling tower, In Proceedings, solar World Congress, Denver, pp. 3067–3071
35.
Zurück zum Zitat Givoni B (1997) Experimental performance of the shower cooling tower in different climates. Renew Energy 10(2–3):179–182 Givoni B (1997) Experimental performance of the shower cooling tower in different climates. Renew Energy 10(2–3):179–182
36.
Zurück zum Zitat Kang D, Strand RK (2009) Simulation of passive down-draught evaporative cooling (PDEC) systems in ENERGYPLUS. In: 11th IBPSA conference, glasgow, Scotland, July 27–30, pp 369–376 Kang D, Strand RK (2009) Simulation of passive down-draught evaporative cooling (PDEC) systems in ENERGYPLUS. In: 11th IBPSA conference, glasgow, Scotland, July 27–30, pp 369–376
37.
Zurück zum Zitat Chiesa G (2016) Geo-climatic applicability of evaporative and ventilative cooling in China. Int J Vent 15(3–4):205–219 Chiesa G (2016) Geo-climatic applicability of evaporative and ventilative cooling in China. Int J Vent 15(3–4):205–219
38.
Zurück zum Zitat Bowman N, Lomas K, Cook M, Eppel H, Ford B, Herwitt M, Cucinella M, Francis E, Rodriguez E, Gonzales R, Alvarez S, Galata A, Lanarde P, Belarbi R (1997) Application of passive downdraught evaporative cooling (PDEC) to non-domestic buildings. Renew Energy 10(2–3):191–196CrossRef Bowman N, Lomas K, Cook M, Eppel H, Ford B, Herwitt M, Cucinella M, Francis E, Rodriguez E, Gonzales R, Alvarez S, Galata A, Lanarde P, Belarbi R (1997) Application of passive downdraught evaporative cooling (PDEC) to non-domestic buildings. Renew Energy 10(2–3):191–196CrossRef
39.
Zurück zum Zitat Soutullo S, Sanchez MN, Olmedo R, Heras MR (2011) Theoretical model to estimate the thermal performance of an evaporative wind tower placed in an open space. Renew Energy 36:3023–3030CrossRef Soutullo S, Sanchez MN, Olmedo R, Heras MR (2011) Theoretical model to estimate the thermal performance of an evaporative wind tower placed in an open space. Renew Energy 36:3023–3030CrossRef
40.
Zurück zum Zitat Matthews EH, Kleingeld M, Grobler LJ (1994) Integrated simulation of buildings and evaporative cooling systems. Build Environ 29(2):197–206CrossRef Matthews EH, Kleingeld M, Grobler LJ (1994) Integrated simulation of buildings and evaporative cooling systems. Build Environ 29(2):197–206CrossRef
41.
Zurück zum Zitat Chalfoun N (1992) CoolT, V. 1.4, Copyright Cool Tower Performance Program, Environmental Research Laboratory, University of Arizona, Tucson, Arizona Chalfoun N (1992) CoolT, V. 1.4, Copyright Cool Tower Performance Program, Environmental Research Laboratory, University of Arizona, Tucson, Arizona
42.
Zurück zum Zitat Guyer EC, Golay MW (2004) Mathematical models for predicting the thermal performance of closed-cycle waste heat dissipation systems. Department of Nuclear Engineering Report, MIT, Boston Guyer EC, Golay MW (2004) Mathematical models for predicting the thermal performance of closed-cycle waste heat dissipation systems. Department of Nuclear Engineering Report, MIT, Boston
43.
Zurück zum Zitat Cook M, Robinson D, Lomas K, Bowman N, Eppel H (2000) Passive down-draft evaporative cooling: airflow modelling. Indoor Build Environ 9:325–334 Cook M, Robinson D, Lomas K, Bowman N, Eppel H (2000) Passive down-draft evaporative cooling: airflow modelling. Indoor Build Environ 9:325–334
44.
Zurück zum Zitat Belarbi R, Ghiaus C, Allard F (2006) Modelling of water spray evaporation: application to passive cooling of buildings. Sol Energy 80:1540–1552CrossRef Belarbi R, Ghiaus C, Allard F (2006) Modelling of water spray evaporation: application to passive cooling of buildings. Sol Energy 80:1540–1552CrossRef
45.
Zurück zum Zitat Guetta R (1993) Energy from Dry Air: A mathematical model describing airflow and evaporation of water drops in vertical tubes, PhD thesis, Technion, Israel Guetta R (1993) Energy from Dry Air: A mathematical model describing airflow and evaporation of water drops in vertical tubes, PhD thesis, Technion, Israel
46.
Zurück zum Zitat Holzer P, Psomas T (eds) (2018) Ventilative cooling sourcebook, IEA EBC ANNEX 62. Aalborg University, Aalborg Holzer P, Psomas T (eds) (2018) Ventilative cooling sourcebook, IEA EBC ANNEX 62. Aalborg University, Aalborg
47.
Zurück zum Zitat Zuazua Ros A (2019) Characterization and assessment of a hybrid cooling system integrated in buildings, PhD thesis, Universidad de Navarra, Pamplona, Spain Zuazua Ros A (2019) Characterization and assessment of a hybrid cooling system integrated in buildings, PhD thesis, Universidad de Navarra, Pamplona, Spain
48.
Zurück zum Zitat ASHRAE (2018) Legionellosis: risk management for buidling water systems, ANSI/ASHRAE, Standard 188–2018 ASHRAE (2018) Legionellosis: risk management for buidling water systems, ANSI/ASHRAE, Standard 188–2018
49.
Zurück zum Zitat Ford B, Diaz C (2003) Passive downdraft cooling: hybrid cooling in the Malta stock exchange. In: Proceedings of the 20th PLEA international conference, Santiago, Chile 9–12 November Ford B, Diaz C (2003) Passive downdraft cooling: hybrid cooling in the Malta stock exchange. In: Proceedings of the 20th PLEA international conference, Santiago, Chile 9–12 November
50.
Zurück zum Zitat AAVV (2000) Legionnaires’ disease: the control of legionella bacteria in water systems. In: Approved code of practice and guidance, 3rd ed, HSE, London AAVV (2000) Legionnaires’ disease: the control of legionella bacteria in water systems. In: Approved code of practice and guidance, 3rd ed, HSE, London
52.
Zurück zum Zitat Bentham RH, Broadbent CR (1995) Field trial of biocides for control of Legionella in cooling towers. Curr Mircobiol 30(3):167–172 Bentham RH, Broadbent CR (1995) Field trial of biocides for control of Legionella in cooling towers. Curr Mircobiol 30(3):167–172
53.
Zurück zum Zitat Brundrett G (2003) Controlling Legionnaire’s disease. Indoor Built Environ 12(1–2):19–23CrossRef Brundrett G (2003) Controlling Legionnaire’s disease. Indoor Built Environ 12(1–2):19–23CrossRef
54.
Zurück zum Zitat Moura R, Ford B (2000) Part 1—Market assessment of the potential application of passive downdraught evaporative cooling in Southern Europe, in ALTENER Final report: solar passive heating and cooling, Cluster 9, European Commission DG Research Moura R, Ford B (2000) Part 1—Market assessment of the potential application of passive downdraught evaporative cooling in Southern Europe, in ALTENER Final report: solar passive heating and cooling, Cluster 9, European Commission DG Research
55.
Zurück zum Zitat Chiesa G (2017) Potenzialità di raffrescamento da scambio evaporativo diretto. In: Grosso M (ed) Il raffrescamento passivo degli edifici in zone a clima temperato, 4th edn. Maggioli, Sant’Arcangelo di Romagna, pp 353–364 Chiesa G (2017) Potenzialità di raffrescamento da scambio evaporativo diretto. In: Grosso M (ed) Il raffrescamento passivo degli edifici in zone a clima temperato, 4th edn. Maggioli, Sant’Arcangelo di Romagna, pp 353–364
56.
Zurück zum Zitat Kolokotroni M, Heiselberg P (eds) (2015) Ventilative cooling state-of-the-art review, IEA EBC ANNEX 62. Aalborg University, Aalborg Kolokotroni M, Heiselberg P (eds) (2015) Ventilative cooling state-of-the-art review, IEA EBC ANNEX 62. Aalborg University, Aalborg
57.
Zurück zum Zitat Grosso M (ed) (2017) Il raffrescamento passivo degli edifici in zone a clima temperato, 4th edn. Maggioli, Sant’Arcangelo di Romagna Grosso M (ed) (2017) Il raffrescamento passivo degli edifici in zone a clima temperato, 4th edn. Maggioli, Sant’Arcangelo di Romagna
58.
Zurück zum Zitat Chiesa G, Grosso M (2017) Environmental and Technological Design: a didactical experience towards a sustainable design approach. In: Gambardella C (ed) World heritage and disaster. knowledge, culture and representation, proceedings of the XV international forum Le vie dei Mercanti, Naples 15—Capri 16, 17 June, La Scuola di Pitagora, Naples, pp 944–953 Chiesa G, Grosso M (2017) Environmental and Technological Design: a didactical experience towards a sustainable design approach. In: Gambardella C (ed) World heritage and disaster. knowledge, culture and representation, proceedings of the XV international forum Le vie dei Mercanti, Naples 15—Capri 16, 17 June, La Scuola di Pitagora, Naples, pp 944–953
59.
Zurück zum Zitat Santamouris M (ed) (2007) Advances in passive cooling. Earthscan, London Santamouris M (ed) (2007) Advances in passive cooling. Earthscan, London
60.
Zurück zum Zitat Artmann N, Manz H, Heiselberg P (2007) Climatic potential for passive cooling of buildings by night-time ventilation in Europe. Appl Energy 84(2):187–201CrossRef Artmann N, Manz H, Heiselberg P (2007) Climatic potential for passive cooling of buildings by night-time ventilation in Europe. Appl Energy 84(2):187–201CrossRef
63.
Zurück zum Zitat Salmeron JM, Sànchez FJ, Sànchez J, Alvarez S, Molina LJ, Salmeron R (2012) Climatic applicability of downdraught cooling in Europe. Architect Sci Rev 55(4):259–272CrossRef Salmeron JM, Sànchez FJ, Sànchez J, Alvarez S, Molina LJ, Salmeron R (2012) Climatic applicability of downdraught cooling in Europe. Architect Sci Rev 55(4):259–272CrossRef
64.
Zurück zum Zitat Xuan H, Ford B (2012) Climatic applicability of downdraught cooling in China. Archit Sci Rev 55(4):273–286CrossRef Xuan H, Ford B (2012) Climatic applicability of downdraught cooling in China. Archit Sci Rev 55(4):273–286CrossRef
65.
Zurück zum Zitat Aparicio-Ruiz P, Schiano-Phan R, Salmeron JM (2018) Climatic applicability of downdraught evaporative cooling in the United States of America. Build Environ 136:162–176CrossRef Aparicio-Ruiz P, Schiano-Phan R, Salmeron JM (2018) Climatic applicability of downdraught evaporative cooling in the United States of America. Build Environ 136:162–176CrossRef
66.
Zurück zum Zitat Chiesa G, Huberman N, Pearlmutter D, Grosso M (2017) Summer discomfort reduction by direct evaporative cooling in Southern Mediterranean areas. Energy Proc 111:588–598CrossRef Chiesa G, Huberman N, Pearlmutter D, Grosso M (2017) Summer discomfort reduction by direct evaporative cooling in Southern Mediterranean areas. Energy Proc 111:588–598CrossRef
67.
Zurück zum Zitat Chiesa G, Huberman N, Pearlmutter D (2019) Geo-climatic potential of direct evaporative cooling in the Mediterranean region: a comparison of key performance indicators. Build Environ 151:318–337CrossRef Chiesa G, Huberman N, Pearlmutter D (2019) Geo-climatic potential of direct evaporative cooling in the Mediterranean region: a comparison of key performance indicators. Build Environ 151:318–337CrossRef
68.
Zurück zum Zitat Chiesa G, Grosso M (2015) Geo-climatic applicability of natural ventilative cooling in the Mediterranean Area. Energy Build 107:376–391CrossRef Chiesa G, Grosso M (2015) Geo-climatic applicability of natural ventilative cooling in the Mediterranean Area. Energy Build 107:376–391CrossRef
69.
Zurück zum Zitat Chiesa G (2019) Calculating the geo-climatic potential of different low-energy cooling techniques. Build Simul J 12:157–168CrossRef Chiesa G (2019) Calculating the geo-climatic potential of different low-energy cooling techniques. Build Simul J 12:157–168CrossRef
70.
Zurück zum Zitat International Organisation for Standardization (2007) Hygrothermal Performance of Buildings—Calculation and Presentation of Climatic Data Accumulated Temperature Differences (Degree-days), ISO, Geneva, ISO 15927-6:2007 International Organisation for Standardization (2007) Hygrothermal Performance of Buildings—Calculation and Presentation of Climatic Data Accumulated Temperature Differences (Degree-days), ISO, Geneva, ISO 15927-6:2007
71.
Zurück zum Zitat Heiselberg P (ed) (2018) Ventilative cooling design guidelines, International Energy Agency, EBC, Annex 62 Ventilative Cooling. Aalborg University, Aalborg Heiselberg P (ed) (2018) Ventilative cooling design guidelines, International Energy Agency, EBC, Annex 62 Ventilative Cooling. Aalborg University, Aalborg
72.
Zurück zum Zitat Büyükalaca O, Bulut H, Yilmaz T (2001) Analysis of variable-base heating and cooling degree-days for Turkey. Appl Energy 69:269–283CrossRef Büyükalaca O, Bulut H, Yilmaz T (2001) Analysis of variable-base heating and cooling degree-days for Turkey. Appl Energy 69:269–283CrossRef
73.
Zurück zum Zitat Lee K, Baek H-J, Cho CH (2014) The estimation of base temperature for heating and cooling degree-days for South Korea. J Appl Meteorol Climatol 53:300–309CrossRef Lee K, Baek H-J, Cho CH (2014) The estimation of base temperature for heating and cooling degree-days for South Korea. J Appl Meteorol Climatol 53:300–309CrossRef
74.
Zurück zum Zitat Day T et al (2006) Degree-days: theory and application TM41: 2006. CIBSE, London Day T et al (2006) Degree-days: theory and application TM41: 2006. CIBSE, London
75.
Zurück zum Zitat Olgyay V (1963) Design with climate. Bioclimatic approach to architectural regionalism. Princeton University Press, Princeton Olgyay V (1963) Design with climate. Bioclimatic approach to architectural regionalism. Princeton University Press, Princeton
76.
Zurück zum Zitat Meteotest (2017) Meteteonorm handbook part I, Meteotest, Bern Meteotest (2017) Meteteonorm handbook part I, Meteotest, Bern
77.
Zurück zum Zitat Kottek M, Grieser J, Beck C, Rudolf B, Rubel F (2006) World map of the Koppen-Geiger climate classification updated. Meteorol Z 15(3):259–263CrossRef Kottek M, Grieser J, Beck C, Rudolf B, Rubel F (2006) World map of the Koppen-Geiger climate classification updated. Meteorol Z 15(3):259–263CrossRef
78.
Zurück zum Zitat Chiesa G (2019) Climatic potential maps of ventilative cooling techniques in Italian climates including resilience to climate changes, under publication in IAQVEC Conference Series Chiesa G (2019) Climatic potential maps of ventilative cooling techniques in Italian climates including resilience to climate changes, under publication in IAQVEC Conference Series
79.
Zurück zum Zitat Campaniço H, Soares PMM, Hollmuller P, Cardoso RM (2016) Climatic cooling potential and building cooling demand savings: high resolution spatiotemporal analysis of direct ventilation and evaporative cooling for the Iberian Peninsula. Renew Energy 85:766–776CrossRef Campaniço H, Soares PMM, Hollmuller P, Cardoso RM (2016) Climatic cooling potential and building cooling demand savings: high resolution spatiotemporal analysis of direct ventilation and evaporative cooling for the Iberian Peninsula. Renew Energy 85:766–776CrossRef
80.
Zurück zum Zitat Bom GJ, Foster R, Dijkstra E, Tummers M (1999) Evaporative air-conditioning. Application for environmentally friendly cooling, world bank technical paper No. 421, The World Bank, Washington Bom GJ, Foster R, Dijkstra E, Tummers M (1999) Evaporative air-conditioning. Application for environmentally friendly cooling, world bank technical paper No. 421, The World Bank, Washington
Metadaten
Titel
Ventilative Cooling in Combination with Other Natural Cooling Solutions: Direct Evaporative Cooling—DEC
verfasst von
Giacomo Chiesa
David Pearlmutter
Copyright-Jahr
2021
DOI
https://doi.org/10.1007/978-3-030-72385-9_8