8/1/2023 0 Comments Shade control system![]() ![]() Energy saving potential and strategies for electric lighting in future North European, low energy office buildings: A literature review. Journal of Interior Design, 37: 17–34.ĭubois M-C, Blomsterberg Å (2011). Understanding controls, behaviors and satisfaction in the daylit perimeter office: a daylight design case study. International Commission on Illumination (CIE).ĭay J, Theodorson J, Van Den Wymelenberg K (2012). Lighting and cooling energy assessment of multi-purpose control strategies for external movable shading devices by using shaded fraction. Analysis of the accuracy on PMV-PPD model using the ASHRAE Global Thermal Comfort Database II. Energy and Buildings, 92: 81–94.Ĭheung T, Schiavon S, Parkinson T, et al. A systematic method for selecting roller shade properties for glare protection. Renewable and Sustainable Energy Reviews, 47: 1016–1033.Ĭhan Y-C, Tzempelikos A, Konstantzos I (2015). A review of indices for assessing visual comfort with a view to their use in optimization processes to support building integrated design. ![]() Building and Environment, 104: 275–285.Ĭarlucci S, Causone F, De Rosa F, et al. Directionally selective shading control in maritime sub-tropical and temperate climates: Life cycle energy implications for office buildings. London: British Standards Institution.īunning ME, Crawford RH (2016). Light and Lighting-Lighting of Work Places. Adding advanced behavioural models in whole building energy simulation: A study on the total energy impact of manual and automated lighting control. Building and Environment, 78: 44–52.īourgeois D, Reinhart C, MacDonald I (2006). User satisfaction and interaction with automated dynamic facades: A pilot study. Journal of Building Engineering, 44: 102996.īakker LG, Hoes-van Oeffelen ECM, Loonen RCGM, et al. Sensitivity analysis linked to multi-objective optimization for adjustments of light-shelves design parameters in response to visual comfort and thermal energy performance. ![]() Energy and Buildings, 224: 110292.īahdad AAS, Fadzil SFS, Onubi HO, et al. ![]() Simulation-aided occupant-centric building design: A critical review of tools, methods, and applications. Solar Energy, 170: 336–351.Īzar E, O’Brien W, Carlucci S, et al. Integrating illuminance and energy evaluations of cellular automata controlled dynamic shading system using new hourly-based metrics. Atlanta, GA, USA: American Society of Heating, Refrigerating and AirConditioning Engineers.Īyoub M (2018). Thermal Environment Conditions for Human Occupancy. Dynamic shading systems: A review of design parameters, platforms and evaluation strategies. The research provides novel insights and potential future integrations for facade designers and building operators.Īl-Masrani S, Al-Obaidi K (2019). The developed control system could perform effectively to provide a glare-free view and higher thermally comfortable indoor environment by 99% for the occupant across the year, while improving the heating and cooling loads. Furthermore, the controller’s performance was compared to multiple fixed controls and another multi-agent control scenario from visual and thermal comfort and energy performance perspectives. The developed system aims to improve both occupant’s visual and thermal comfort considering daylight level, potential glare at occupant’s field of view, view to outdoor satisfaction, and Fanger PMV method, and then, managing the HVAC system in favor of enhancing building energy efficiency. Therefore, this research proposed an integrated simulation-based workflow using EnergyPlus and Python-based package, OpyPlus, to adjust a roller shade for single occupied office space in a hot and arid climate. However, in the literature, there is still a lack of multi-purpose control strategies which can balance diverse and antagonistic aspects of occupant comfort while keeping the building energy consumption under control. Building envelope is the sole interface with outdoors that can lie in the level of integrating control strategies to enhance occupant’s comfort and building performance. ![]()
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