综合智慧能源 ›› 2026, Vol. 48 ›› Issue (6): 16-33.doi: 10.3969/j.issn.2097-0706.2026.06.002

• 储热材料与技术 • 上一篇    下一篇

混凝土储能电池研究进展

时传淇(), 熊亚选*(), 撖超然(), 郑浩()   

  1. 北京建筑大学 低碳储用能技术研发中心北京 102616
  • 收稿日期:2026-03-23 修回日期:2026-04-17 出版日期:2026-06-05
  • 通讯作者: *熊亚选(1977),男,教授,博士,从事低碳储能和供热系统精准节能方面的研究,xiongyaxuan@bucea.edu.cn
  • 作者简介:时传淇(2003),男,硕士生,从事混凝土储电方面的研究,shichuanqi2025@126.com
    撖超然(2005),男,从事混凝土储电方面的研究,18519510711@163.com
    郑浩(2001),男,硕士生,从事固体颗粒储热方面的研究,3343502251@qq.com
  • 基金资助:
    国家重点研发计划项目(2025YFE0118800)

Research progress on concrete-based energy storage batteries

SHI Chuanqi(), XIONG Yaxuan*(), HAN Chaoran(), ZHENG Hao()   

  1. Low-Carbon Energy Storage and Utilization R&D CenterBeijing University of Civil Engineering and ArchitectureBeijing 102616, China
  • Received:2026-03-23 Revised:2026-04-17 Published:2026-06-05
  • Supported by:
    National Key R&D Program of China(2025YFE0118800)

摘要:

混凝土储能电池将电化学储能单元嵌入水泥基材料,使建筑构件在承重之外兼具电能存储功能,为建筑节能、可再生能源消纳和基础设施能源化提供了新的材料方案。结合混凝土超级电容器和混凝土基二次电池研究,归纳其材料组成、结构形式、性能评价与应用进展,重点讨论储能性能与结构性能之间的协调问题。现有研究主要从电极、电解质、隔膜、集流体和构件结构几个层面展开。电极方面,炭黑、碳纤维、碳纳米管和石墨烯等碳基材料可在水泥基体中形成导电网络,适合构建双电层电容体系;金属氧化物、金属氢氧化物、金属氮化物及导电聚合物可提供赝电容或电池型反应,有助于提高容量,但需解决碱性孔溶液和潮湿环境下的界面稳定问题;制备工艺上,原位复合法便于与混凝土浇筑过程结合,电化学沉积可提高电极表面活性,模板辅助法有利于形成多孔传输通道,3D打印则为电极和承载区的定向布设提供了条件。电解质方面,液态电解质离子电导率高但易流失,固态水泥基电解质安全性和承载能力较好但传输效率不足,凝胶态电解质在保水、抗泄漏和界面润湿方面表现较均衡。隔膜材料也由普通多孔隔膜向水泥基、聚合物-水泥复合隔膜发展,以同时满足电极隔离、离子传输和力学支撑需求。相关研究已在墙体储能、LED供电、路面无线充电、结构健康监测等场景中完成初步验证,但多数成果仍停留在小尺寸试件或实验室装置阶段。混凝土储能电池的关键限制在于导电相和孔隙结构有利于电化学性能,却可能削弱基体密实性和力学强度;金属部件在高碱、潮湿环境中的耐久性仍不充分;器件能量密度、循环稳定性和工程尺度一致性尚难满足长期服役要求。后续研究应围绕耐碱导电骨架、聚合物-水泥复合电解质、工业固废基功能骨料、梯度孔隙设计和3D打印定向成型展开,并建立面向服役环境的长期测试方法。通过合理区分储能功能区与承载功能区,可逐步提高该类材料在建筑构件和智能基础设施中的工程适用性。

关键词: 混凝土电池, 电容器, 电极, 电解质, 隔膜, 墙体储电

Abstract:

Concrete-based energy storage batteries embed electrochemical energy storage units into cement-based materials, enabling structural components to have electrical energy storage function in addition to their load-bearing role. It offers a novel material solution for building energy saving, renewable energy consumption, and infrastructure energization. Recent studies on concrete-based supercapacitors and concrete-based secondary batteries are summarized, covering material composition, structural configuration, performance evaluation, and application progress. The focus is placed on the coordination between energy storage performance and structural performance. Existing studies mainly focus on electrodes, electrolytes, separators, current collectors, and component structures. For electrodes, carbon black, carbon fibers, carbon nanotubes, and graphene can form conductive networks in cement matrices and are suitable for constructing electric double-layer capacitance systems. Metal oxides, metal hydroxides, metal nitrides, and conductive polymers can provide pseudocapacitive or battery-type reactions, contributing to increased capacity. However, their interfacial stability in alkaline pore solution and humid environments remains a challenge that needs to be addressed. In terms of fabrication, in-situ compounding facilitates integration with the concrete casting process. Electrochemical deposition can improve electrode surface activity. Template-assisted methods are beneficial for forming porous transport channels, and 3D printing enables the directional arrangement of electrodes and load-bearing regions. For electrolytes, liquid electrolytes have high ionic conductivity but are prone to leakage. Solid cement-based electrolytes provide better safety and load-bearing capacity but have insufficient transport efficiency. Gel electrolytes show relatively balanced performance in water retention, leakage resistance, and interfacial wetting. Separator materials also evolve from ordinary porous membranes toward cement-based and polymer-cement composite separators to simultaneously meet the requirements of electrode isolation, ion transport, and mechanical support. Related studies have been preliminarily validated in scenarios such as wall-integrated energy storage, LED power supply, pavement wireless charging, and structural health monitoring. However, most of the existing results remain at the stage of small-sized specimens or laboratory-scale devices. The key limitations of concrete-based energy storage batteries are as follows. Conductive phases and pore structures are beneficial for electrochemical performance but may compromise matrix compactness and mechanical strength. The durability of metal components in highly alkaline and moist environments remains insufficient. The energy density, cycling stability, and engineering-scale consistency of the devices are still insufficient to meet long-term service requirements. Future research should focus on alkali-resistant conductive frameworks, polymer-cement composite electrolytes, functional aggregates derived from industrial solid waste, gradient pore design, and directional forming by 3D printing. Long-term testing methods for service environments should also be established. By rationally distinguishing energy storage functional zones from load-bearing functional zones, the engineering applicability of such materials in building components and intelligent infrastructure can be gradually enhanced.

Key words: concrete-based batteries, capacitors, electrodes, electrolytes, separators, wall-integrated energy storage

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