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正十四烷/石墨低温相变水泥基材料的制备及冻融损伤演化

于本田 陈延飞 李双洋 杨玉祥 胡柏春 刘涛

于本田, 陈延飞, 李双洋, 等. 正十四烷/石墨低温相变水泥基材料的制备及冻融损伤演化[J]. 复合材料学报, 2022, 39(6): 2864-2874. doi: 10.13801/j.cnki.fhclxb.20211110.002
引用本文: 于本田, 陈延飞, 李双洋, 等. 正十四烷/石墨低温相变水泥基材料的制备及冻融损伤演化[J]. 复合材料学报, 2022, 39(6): 2864-2874. doi: 10.13801/j.cnki.fhclxb.20211110.002
YU Bentian, CHEN Yanfei, LI Shuangyang, et al. Preparation and freeze-thaw damage evolution of n-tetradecane/graphite low-temperature phase change cement-based materials[J]. Acta Materiae Compositae Sinica, 2022, 39(6): 2864-2874. doi: 10.13801/j.cnki.fhclxb.20211110.002
Citation: YU Bentian, CHEN Yanfei, LI Shuangyang, et al. Preparation and freeze-thaw damage evolution of n-tetradecane/graphite low-temperature phase change cement-based materials[J]. Acta Materiae Compositae Sinica, 2022, 39(6): 2864-2874. doi: 10.13801/j.cnki.fhclxb.20211110.002

正十四烷/石墨低温相变水泥基材料的制备及冻融损伤演化

doi: 10.13801/j.cnki.fhclxb.20211110.002
基金项目: 中国科学院重点部署项目(ZDRW-ZS-2020-1);中国铁路总公司科技研究开发计划 (P2018G004)
详细信息
    通讯作者:

    于本田,博士,副教授,硕士生导师,研究方向为水泥混凝土材料与结构  E-mail: yubentian@mail.lzjtu.cn

  • 中图分类号: TU528

Preparation and freeze-thaw damage evolution of n-tetradecane/graphite low-temperature phase change cement-based materials

  • 摘要: 以正十四烷(C14)为相变材料,膨胀石墨(EG)为载体,通过物理吸附法制备C14/EG复合相变材料,采用SEM、DSC、FTIR对C14/EG复合相变材料的微观形貌、相变温度、相变潜热、化学结构进行了测试。开展了外掺(与水泥质量比)0%、2%、4%、6%相变材料的相变储能水泥基材料(PCESM)快速冻融循环试验,分析了冻融循环对表面损伤、质量损失、动弹模量损失、抗压强度及孔结构的影响规律,揭示了PCESM冻融循环劣化机制。试验结果表明:C14能够较好地吸附在EG孔隙中,C14与EG之间有良好的相容性,二者未发生化学反应。由于C14/EG相较于水泥基材料为弱相,因此随着C14/EG相变材料掺量的提高,PCESM的力学性能随之下降,但抗冻性能随着C14/EG相变材料掺量的提高呈现先提高后降低的规律,C14/EG相变材料掺量为4%的PCESM抗冻性最优。

     

  • 图  1  石墨 (a)、膨胀石墨(EG) (b) 和正十四烷/膨胀石墨(C14/EG)复合相变材料 (c) 的SEM图像

    Figure  1.  SEM images of graphite (a), expanded graphite (EG) (b) and n-tetradecane/expanded graphite (C14/EG) composite phase change materials (c)

    图  2  C14和C14/EG复合相变材料的DSC曲线

    Figure  2.  DSC curves of C14 and C14/EG composite phase change materials

    Tonset—Onset temperature of the phase transformation in each phase change material (PCM); Tmax-peak—Temperature at the peak of heat flow; Tcompletion—Temperature when each PCM completes the phase transformation; ∆H—Latent heat of each PCM

    图  3  EG、C14和C14/EG的FTIR图谱

    Figure  3.  FTIR spectra of EG, C14 and C14/EG

    图  4  相变储能水泥基材料(PCESM)抗压强度

    Figure  4.  Compressive strength of phase change energy storage mortar (PCESM)

    图  5  不同冻融循环次数后PCESM试件表观现象

    Figure  5.  Apparent phenomena of PCESM specimens after different freeze-thaw cycles

    图  6  PCESM质量损失率 (a) 和相对动弹性模量 (b) 与冻融循环次数之间的关系

    Figure  6.  Relationship between mass loss rate (a), relative dynamic elastic modulus (b) and freeze-thaw cycles of PCESM

    图  7  PCESM抗压强度与冻融循环次数之间的关系曲线

    Figure  7.  Relationship between compressive strength and freeze-thaw cycles of PCESM

    图  8  不同冻融循环次数下PCESM T2谱分布

    Figure  8.  T2 spectrum distributions of PCESM under different freeze-thaw cycles

    图  9  不同冻融循环次数PCESM孔隙分布

    Figure  9.  Pore distributions of PCESM with different freeze-thaw cycles

    表  1  相变储能水泥基材料(PCESM)配合比

    Table  1.   Mixture ratios of phase change energy storage cement-based materials (PCESM) kg·m−3

    SampleC14/EGCementSandWater
    JC05401278270
    2%(C14/EG)/C10.85401278270
    4%(C14/EG)/C21.65401278270
    6%(C14/EG)/C32.45401278270
    Notes: JC—Reference concrete without phase change materials; C14—n-Tetradecane; EG—Expanded graphite; C—Cement.
    下载: 导出CSV
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  • 收稿日期:  2021-08-17
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  • 录用日期:  2021-11-01
  • 网络出版日期:  2021-11-11
  • 刊出日期:  2022-06-01

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