Thermal Bridge Mitigation in Army Buildings

被引:0
|
作者
Pagan-Vazquez, A. [1 ]
Yu, J. [1 ]
Chu, D. [1 ]
Lux, S. [1 ]
Staube, J. [2 ,3 ]
Lawton, M. [4 ]
Ryan, B. [5 ]
机构
[1] US Army, Construct Engn Res Lab, Champaign, IL 61824 USA
[2] Bldg Sci Consulting Inc, Bldg Sci Labs, Concord, ON, Canada
[3] Univ Waterloo, Dept & Sch Architecture, Bldg Sci Civil Engn, Waterloo, ON, Canada
[4] Morrison Hershfield, Vancouver, BC, Canada
[5] Pass House Acad, Wicklow, Ireland
来源
关键词
D O I
暂无
中图分类号
O414.1 [热力学];
学科分类号
摘要
High-performance buildings are becoming more prevalent in new Army construction projects. Unfortunately, these new designs often do not take into account preventive procedures to avoid thermal bridging elects, which are localized heat flow between the building interior and exterior. These effects become much more significant as buildings are designed to be highly insulated and better sealed against air leakage. Researchers from the US. Army Engineer Research and Development Center-Construction Engineering Research Laboratory (ERDC-CERL) visited several Army installations and used infrared imaging to survey buildings to identify places in the building envelope where thermal bridging commonly occurs. Characteristic construction sections were selected for heat transfer modeling to quantify and qualify the thermal bridging impact and develop general mitigation solutions. This manuscript presents examples of the developed US. Army ERDC-CERL Thermal Bridge Mitigation Catalog, which includes architectural details thermal bridge modeling values (Psi-values and U-factors), and schematics of good construction practices to improve the building envelope performance of typical Army facilities. In addition, this work highlights specific and simple-to-follow mitigation strategies plus visual step-by-step sequencing examples to be used by the construction practitioner for the assembly of a properly mitigated thermal bridge detail in the building envelope.
引用
收藏
页码:300 / 314
页数:15
相关论文
共 50 条
  • [21] A REVIEW OF RADON MITIGATION IN LARGE BUILDINGS IN THE US
    CRAIG, AB
    RADIATION PROTECTION DOSIMETRY, 1994, 56 (1-4) : 29 - 32
  • [23] Magnetic field mitigation in large commercial buildings
    Du, Y.
    Burnett, John
    HKIE Transactions Hong Kong Institution of Engineers, 2002, 9 (01): : 37 - 41
  • [24] Aerodynamic Mitigation and Shape Optimization of Buildings: Review
    Mooneghi, Maryam Asghari
    Kargarmoakhar, Ramtin
    JOURNAL OF BUILDING ENGINEERING, 2016, 6 : 225 - 235
  • [25] Extremely Low Energy Design for Army Buildings: Barracks
    Liesen, Richard
    Ellis, Peter
    Zhivov, Alexander
    Herron, Dale
    ASHRAE TRANSACTIONS 2012, VOL 118, PT 1, 2012, 118 : 767 - 789
  • [26] AN INTERIM PROTOCOL FOR THE MITIGATION OF RADON IN NONRESIDENTIAL BUILDINGS
    WILSON, DL
    DUDNEY, CS
    GAMMAGE, RB
    RADIATION PROTECTION DOSIMETRY, 1994, 56 (1-4) : 9 - 11
  • [27] Mechanisms of Diffusion of Radon in Buildings and Mitigation Techniques
    Baltrocchi, Alberto Pietro Damiano
    Maggi, Lucrezia
    Dal Lago, Bruno
    Torretta, Vincenzo
    Szabo, Marta
    Nasirov, Muhtor
    Kabilov, Ergash
    Rada, Elena Cristina
    SUSTAINABILITY, 2024, 16 (01)
  • [28] Wooden buildings as carbon storages - Mitigation or oration?
    Herajarvi, Henrik
    WOOD MATERIAL SCIENCE & ENGINEERING, 2019, 14 (05) : 291 - 297
  • [29] THERMAL INSULATION IN BUILDINGS
    CHURTON, J
    ROYAL SOCIETY OF HEALTH JOURNAL, 1959, 79 (06): : 797 - 806
  • [30] Evaluation of 2 Heat-Mitigation Methods in Army Trainees
    Sefton, JoEllen M.
    McAdam, J. S.
    Pascoe, David D.
    Lohse, K. R.
    Banda, Robert L.
    Henault, Corbin B.
    Cherrington, Andrew R.
    Adams, N. E.
    JOURNAL OF ATHLETIC TRAINING, 2016, 51 (11) : 936 - 945