• 11111
  • 首页
  • 期刊介绍
  • 编委会
  • 征稿启事
  • 期刊订阅
  • 相关下载
  • Email alert
  • 联系我们
引用本文:王立成,张磊.混凝土内养护技术研究进展[J].建筑材料学报,2020,23(6):1471-1478
【打印本页】   【下载PDF全文】   查看/发表评论  【EndNote】   【RefMan】   【BibTex】
←前一篇|后一篇→ 过刊浏览    高级检索
本文已被:浏览 325次   下载 0 本文二维码信息
码上扫一扫!
分享到: 微信 更多
混凝土内养护技术研究进展
王立成, 张磊
大连理工大学海岸和近海工程国家重点实验室,辽宁大连116024
摘要:
高强混凝土水胶比低、渗透性差,外部养护水难以进入混凝土内部,造成传统外部养护效果变差,由此产生的自收缩会导致材料的开裂敏感性提高.通过在混凝土配合比中引入高吸水性材料来实现内养护是解决此问题的有效途径.综述了目前混凝土常用的内养护材料及其物理力学特征和用量,阐述了混凝土内养护理论基础、自收缩产生机理和内养护减缩机制,总结了不同内养护材料对减少混凝土收缩和影响力学性能的规律:一般来说,内养护可以减少自收缩,但对干燥收缩的影响与引入水量有关,对混凝土强度和弹性模量则会产生不利影响.最后,提出了当前混凝土内养护技术研究存在的问题及未来可能的研究方向.
关键词:  混凝土  内养护  作用机理  收缩  强度
DOI:103969/j.issn.1007 9629202006028
分类号:
基金项目:辽宁省自然科学基金资助项目(2020 MS 100);绿色建筑材料国家重点实验室开放基金资助项目(2018)
Research Progress on Concrete Internal Curing Technology
WANG Licheng, ZHANG Lei
State Key Laboratory of Coastal and Offshore Engineering, Dalian University of Technology, Dalian 116024, China
Abstract:
High strength concrete has low water binder ratio and poor permeability, so it is difficult for external curing water to enter the interior zone of concrete, leading to the worse effect of traditional external curing, and faces the risk of cracking caused by autogenous shrinkage. An effective method to solve the problem is to add super absorbent material to concrete mix proportion to realize internal curing. The physical and mechanical characteristics and dosage of concrete of internal curing material were reviewed. And the theoretical basis of concrete internal curing was explained. Furthermore, the mechanism of autogenous shrinkage and the mechanism of internal curing shrinkage reduction were discussed. In general, internal curing can reduce autogenous shrinkage, but the effect on drying shrinkage was related to the extra water. It has a negative effect on the strength and elastic modulus of concrete. Finally, the existing problems and possible future research directions for the current internal curing technology of concrete were discussed.
Key words:  concrete  internal curing  mechanism of action  shrinkage  strength