Radiant spectral energy for simulation in the built environment

被引:0
|
作者
Del Rocco, Joseph [1 ]
Kider, Joseph T., Jr. [1 ]
机构
[1] Univ Cent Florida, Sch Modeling Simulat & Training, Orlando, FL 32816 USA
关键词
MODEL;
D O I
10.26868/25222708.2021.30753
中图分类号
学科分类号
摘要
Fast and accurate daylighting and energy performance simulations are crucial for real-time control systems (RCS) in the built environment. RCS include adaptive and responsive facades, adaptive smart glass, film, and HVAC control systems. State-of-the-art building monitoring systems driving such RCS require spectral input in order to take advantage of the visible light and thermal infrared energy of solar and sky radiation. Building designers also require spectral energy for early-stage building and fenestration design and material decisions relating to circadian rhythm daylighting. Unfortunately, modern daylighting and energy simulations often neglect spectral energy in efforts to reduce computation time. We present an accurate, interactive physically-based approach for building performance simulation that utilizes spectral radiance and a radiosity engine to compute a spectral visualization solution in real-time. This approach demonstrates the feasibility of using radiant spectral energy from modern skylight models given real sky viewer captures or sky conditions for daylighting and thermal building performance simulations. This method is intended for building performance simulation, building adaptation, circadian daylighting consideration, and real-time control systems in the built environment.
引用
收藏
页码:1967 / 1974
页数:8
相关论文
共 50 条
  • [2] RADIANT ENERGY AND LIGHT ENVIRONMENT OF CROPS
    KANEMASU, ET
    ARKIN, GF
    AGRICULTURAL METEOROLOGY, 1974, 14 (1-2): : 211 - 225
  • [3] Monte Carlo simulation of indoor radiant environment
    Omori, Toshiaki
    International Journal for Numerical Methods in Engineering, 1990, 30 (04): : 615 - 627
  • [4] THE ULTRAVIOLET SPECTRAL RADIANT ENERGY FROM THE MOON
    STAIR, R
    JOHNSTON, R
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1953, 43 (04) : 328 - 328
  • [5] Thermal environment and thermal comfort built by decoupled radiant cooling units with low radiant cooling temperature
    Liang, Yuying
    Zhang, Nan
    Wu, Huijun
    Xu, Xinhua
    Du, Ke
    Yang, Jianming
    Sun, Qin
    Dong, Kaijun
    Huang, Gongsheng
    BUILDING AND ENVIRONMENT, 2021, 206 (206)
  • [6] Experimental evaluation of thermal environment built by decoupled radiant cooling system with low radiant cooling temperature
    Guo, Yanling
    Du, Ke
    Wu, Huijun
    Li, Xuemei
    Huang, Huakun
    Liu, Jia
    Huang, Gongsheng
    Xu, Xinhua
    JOURNAL OF BUILDING ENGINEERING, 2024, 92
  • [7] The SMART sensor: fully characterizing radiant heat transfer in the built environment
    Houchois, Nicholas
    Teitelbaum, Eric
    Chen, Kian Wee
    Rucewicz, Sean
    Meggers, Forrest
    CLIMATE RESILIENT CITIES - ENERGY EFFICIENCY & RENEWABLES IN THE DIGITAL ERA (CISBAT 2019), 2019, 1343
  • [8] Energy efficiency in the built environment
    Glicksman, Leon R.
    PHYSICS TODAY, 2008, 61 (07) : 35 - 40
  • [9] Briefing: Energy and the built environment
    Rydin, Y.
    Thomas, S.
    Beddington, J.
    PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-URBAN DESIGN AND PLANNING, 2010, 163 (03) : 95 - 99
  • [10] Review of Energy in the Built Environment
    Lampropoulos, Ioannis
    Alskaif, Tarek
    Schram, Wouter
    Bontekoe, Eelke
    Coccato, Simone
    van Sark, Wilfried
    SMART CITIES, 2020, 3 (02): : 248 - 288