Design strategy for low-energy ventilation and cooling within an urban heat island

Short, C A; Lomas, K J and Woods, A (2004) Design strategy for low-energy ventilation and cooling within an urban heat island. Building Research & Information, 32(3), pp. 187-206. ISSN 0961-3218

Abstract

Natural ventilation is a proven strategy for maintaining thermal comfort in non-domestic buildings in the UK. The energy consumption and thus the carbon dioxide emissions that contribute to global warming are lower than in conventional air-conditioned buildings. However, the ambient temperatures in the UK have risen over the last decade and new climatic data for use in the design of naturally ventilated buildings has been published. Using these data and dynamic thermal modelling, it is shown that passive stack ventilation alone was unlikely to maintain summertime comfort in a proposed University College London building within an urban heat island. The stack ventilation strategy was evolved by the introduction of passive downdraught cooling. This low-energy technique enables cooled air to be distributed throughout the building without mechanical assistance. The underlying principles of the technique were explored using physical models and the anticipated performance predicted using thermal modelling. The architectural integration is illustrated and the control strategy described. The resulting building is believed to be the first large-scale application of the passive downdraught cooling technique; construction began in late 2003.

Item Type: Article
Uncontrolled Keywords: alternative technology; climate change; energy; innovation; natural ventilation; sustainability; thermal modelling; urban heat island
Index terms: physical model, integration, energy consumption, urban heat island, thermal modelling, strategy, comfort, non-domestic building, design strategy, alternative technology, ambient temperature, natural ventilation, thermal comfort, London, climate change, global warming, carbon dioxide emission, ventilation
Subjects: design methods, climate science, construction type, modelling and simulation, air quality, manufacturing engineering, energy systems, management, organizational analysis, occupational health and safety management, environmental engineering, factor and component analysis, Geography
Topics: Sustainability, Organizational Design, Engineering Principles, Construction Technology, Business Strategy, Health and Safety, Geographical Context, Design Practice
Descriptive scope: 2 PC

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