Developments in defining exposure classes for durability design and specification

被引:7
作者
Beushausen, Hans [1 ]
Ndawula, Joanitta [1 ]
Helland, Steinar [2 ]
Papworth, Frank [3 ]
Linger, Lionel [4 ]
机构
[1] Univ Cape Town, Dept Civil Engn, Cape Town, South Africa
[2] S Helland Konsult, Oslo, Norway
[3] Bldg & Construct Res & Consulting Pty Ltd, Lane Cove West, NSW, Australia
[4] VINCI Construct Projects, Rueil Malmaison, France
关键词
durability design; durability specification; exposure classes; exposure zones; fib Model Code 2010; fib Model Code 2020; performance‐ based design; prescriptive design; updated exposure classes; SHRINKAGE CRACKING; CHLORIDE INGRESS; FLY-ASH; CONCRETE; PERFORMANCE; PENETRATION; CARBONATION; METAKAOLIN; RESISTANCE; MORTAR;
D O I
10.1002/suco.202000792
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Durability design and service life modeling of concrete structures rely on environmental exposure classes based on the prevailing deterioration mechanisms. International standard environmental exposure classes, for example, those found in the fib Model Code 2010 and ISO 22965-1:2007 are predominantly based on European environmental conditions. Although these exposure classes are more suited to the prescriptive design for durability, they may also be adapted to performance-based design. For more complex design philosophies such as limit state design using partial factors, the generalizations of the standard exposure classes cannot be suitably employed and therefore a more rigorous characterization of the exposure environment is required. The standard exposure classes in the fib Model Code 2010 as well as various national codes from different regions of the world are critically reviewed, and their limitations highlighted. Based on the review, updates to the standard exposure classes for inclusion in the fib Model Code 2020 are proposed. This paper summarizes the work of TG8.8 WP3 (Commission 8: Durability, Task Group 8.8: Common approaches, Working Party 3: Exposure Zones) and represents the view of the Working Party members.
引用
收藏
页码:2539 / 2555
页数:17
相关论文
共 58 条
[1]  
Alexander M., 2021, J SUSTAIN RESIL INFR
[2]  
Alexander MG, 2016, WOOD PUBL SER CIVIL, V64, P1, DOI 10.1016/B978-0-08-100081-6.00001-5
[3]   Effect of mix proportions on plastic shrinkage cracking of concrete in hot environments [J].
Almusallam, AA ;
Maslehuddin, M ;
Abdul-Waris, M ;
Khan, MM .
CONSTRUCTION AND BUILDING MATERIALS, 1998, 12 (6-7) :353-358
[4]  
American Concrete Institute, 2019, 31819 ACI
[5]  
Angelucci M., 2017, Concrete Beton, V150, P12
[6]  
Angst U., 2020, RILEM TECH LETT
[7]   Present and future durability challenges for reinforced concrete structures [J].
Angst, U. M. ;
Hooton, R. D. ;
Marchand, J. ;
Page, C. L. ;
Flatt, R. J. ;
Elsener, B. ;
Gehlen, C. ;
Gulikers, J. .
MATERIALS AND CORROSION-WERKSTOFFE UND KORROSION, 2012, 63 (12) :1047-1051
[8]   Critical chloride content in reinforced concrete - A review [J].
Angst, Ueli ;
Elsener, Bernhard ;
Larsen, Claus K. ;
Vennesland, Oystein .
CEMENT AND CONCRETE RESEARCH, 2009, 39 (12) :1122-1138
[9]  
[Anonymous], 2014, Building Code Requirements for Structural Concrete (ACI 318-14) and Commentary (ACI 318R-14). ACI 318-14
[10]  
[Anonymous], 2013, UNE-EN 206: 2013+A1