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Views of TAGSI on the current position with regard to benefits of warm prestressing
Affiliation:1. Department of Civil and Structural Engineering, UMIST, Manchester, UK;2. Structural Performance Department, AEA Technology plc., Risley, UK;1. Department of Civil and Structural Engineering, University of Sheffield, Sheffield S1 3JD, UK;2. Department of Engineering, University of Cambridge, Cambridge CB2 1PZ, UK;1. School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 10083, China;2. State Key Laboratory of Advanced Metallurgy, University of Science and Technology Beijing, Beijing 10083, China;3. Shandong Shengchuan Ceramics Co, Ltd., Shandong 255100, China;1. Federal University of São Carlos, Materials Engineering Department, Rod. Washington Luiz, km 235, São Carlos, SP 13565-905, Brazil;2. RHI Magnesita, Research and Development Center, Praça Louis Ensch, 240, Contagem, MG 32210-902, Brazil;3. Institute of Ceramic, Glass and Construction Materials, TU Bergakademie Freiberg, Agricolastrasse 17, 09599 Freiberg, Germany;1. School of Civil Engineering and Architecture, Wuhan University of Technology, Wuhan, 430070, China;2. Myhome Prefabricated Building Technological Co., Ltd., Wuhan, 430202, China;3. CITIC General Institute of Architectural Design and Research Co., Ltd., Wuhan, 430010, China;1. Necmettin Erbakan University, Seydişehir Vocational High School, Turkey;2. Necmettin Erbakan University, Seydişehir Ahmet Cengiz Engineering Faculty, Dept. of Metall. and Material Eng., 42370, Seydişehir, Konya, Turkey;3. Selçuk University, Engineering Faculty, Dept. of Mechanical Eng., 42075, Konya, Turkey
Abstract:The current theories of warm prestressing are reviewed to examine the basis for continuum mechanics and micromechanistic factors and the extent to which benefits on fracture toughness at lower temperatures after warm prestressing can be quantified. The potential effects which might undermine warm prestressing are discussed.
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