硅酸盐通报 ›› 2024, Vol. 43 ›› Issue (10): 3865-3877.
李靖威1, 向恒1, 王晨2
收稿日期:
2024-03-14
修订日期:
2024-05-13
出版日期:
2024-10-15
发布日期:
2024-10-16
通信作者:
向 恒,工程师。E-mail:xiangheng-2007@163.com
作者简介:
李靖威(1993—),男,工程师。主要从事核安全级电气设备鉴定工作。E-mail:jingweili@163.com
LI Jingwei1, XIANG Heng1, WANG Chen2
Received:
2024-03-14
Revised:
2024-05-13
Published:
2024-10-15
Online:
2024-10-16
摘要: 胶黏材料作为核电站关键材料之一,在核电应用中扮演着至关重要的角色。相较于传统的有机胶,无机胶因优异的高温稳定性、耐辐照性、耐候性及低成本效益,在核电领域的应用中显示出独特的优势。本文首先概述了无机胶的组成、结构、分类及基本特性,随后详细探讨了磷酸盐无机胶与硅酸盐无机胶的粘接机理、改性策略及性能增强方法。研究表明:通过优化填料、引入交联剂和调整固化剂等方法,可以有效提高无机胶的耐高温性能;而通过调整固化工艺、进行界面优化和引入抗氧化剂等措施,则能显著提升无机胶的耐辐照性。此外,文章还介绍了无机胶应用技术的创新,如预加载技术、固化温度的调控及粘接界面的特殊处理。本文为无机胶在核电系统中的应用提供了新的视角和策略参考,有助于核电领域胶黏技术的发展。
中图分类号:
李靖威, 向恒, 王晨. 核电系统用无机胶的研究进展[J]. 硅酸盐通报, 2024, 43(10): 3865-3877.
LI Jingwei, XIANG Heng, WANG Chen. Research Progress on Inorganic Adhesives for Nuclear Power System[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2024, 43(10): 3865-3877.
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