日本约束混凝土研究活动

F. Watanabe
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引用次数: 0

摘要

延性框架抗震设计的关键是为潜在塑性铰区提供足够的抗弯延性。这是通过限制受拉钢筋指标的量,提供横向钢筋等来实现的。对于柱来说,在潜在塑性铰区施加横向钢筋是必不可少的,即提高混凝土的抗压延性,从而获得更大的抗弯延性。在20世纪80年代,一项新的钢筋混凝土(RC)项目作为日本国家项目进行,以建立高达200米的高层建筑的设计和施工指南。对于高层建筑下部的柱,要求使用高强混凝土。然而,HSC以脆性方式破坏,导致潜在塑性铰链的弯曲延性较小。因此,新的钢筋混凝土项目提供了一个机会,重新认识到混凝土的侧向约束的重要性。本文介绍了近年来日本对约束混凝土的研究工作,主要是对高强度混凝土的研究。介绍了约束混凝土应力-应变曲线的一些实验工作和理想化。本文所涵盖的最大抗压强度为176 MPa。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research Activities on Confined Concrete in Japan
A key of seismic design of ductile frame is to provide the adequate flexural ductility to potential plastic hinge regions. This is realized by limiting the amount of tension reinforcement index, providing transverse reinforcement and others. For columns, the application of transverse reinforcement to potential plastic hinge region is essential, that is, the compressive ductility of concrete is improved and results in larger flexural ductility. In the 1980s, a new reinforced concrete (RC) project was carried out as a Japanese National Project to establish the design and construction guidelines for high-rise buildings, up to 200 meters high. For columns at the lower part of high-rise buildings, the use of high-strength (HSC) concrete is required. However, HSC fails in brittle manner and results in small flexural ductility of potential plastic hinges. Therefore the new RC project gave an opportunity to re-recognize the importance of lateral confinement to concrete. This paper presents the recent research works on confined concrete in Japan, mainly for HSC. Some experimental works and idealizations of stress-strain curve of confined concrete are introduced. Maximum compressive strength covered in this paper is 176 MPa.
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