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碳化柚子皮基复合相变材料的制备及性能

李绍伟 傅彬彬 李静

李绍伟, 傅彬彬, 李静. 碳化柚子皮基复合相变材料的制备及性能[J]. 复合材料学报, 2022, 39(6): 2885-2893. doi: 10.13801/j.cnki.fhclxb.20210906.004
引用本文: 李绍伟, 傅彬彬, 李静. 碳化柚子皮基复合相变材料的制备及性能[J]. 复合材料学报, 2022, 39(6): 2885-2893. doi: 10.13801/j.cnki.fhclxb.20210906.004
LI Shaowei, FU Binbin, LI Jing. Preparation and properties of phase change composites based on carbonized pomelo peel[J]. Acta Materiae Compositae Sinica, 2022, 39(6): 2885-2893. doi: 10.13801/j.cnki.fhclxb.20210906.004
Citation: LI Shaowei, FU Binbin, LI Jing. Preparation and properties of phase change composites based on carbonized pomelo peel[J]. Acta Materiae Compositae Sinica, 2022, 39(6): 2885-2893. doi: 10.13801/j.cnki.fhclxb.20210906.004

碳化柚子皮基复合相变材料的制备及性能

doi: 10.13801/j.cnki.fhclxb.20210906.004
基金项目: 国家自然科学基金 (51606017);中央高校基础研究经费 (2020CDJQY-A055);中国博士后科学基金 (2017M612906)
详细信息
    通讯作者:

    李静,博士,讲师,硕士生导师,研究方向为复合相变材料储能  E-mail: lj202740@cqu.edu.cn

  • 中图分类号: TB332

Preparation and properties of phase change composites based on carbonized pomelo peel

  • 摘要: 低品位热能如太阳辐射热能是能源利用和转化中的重要组成部分,由于总量大且往往未被有效利用而散发到环境中造成浪费和能源利用效率低等问题。基于相变材料的光热转化储热成为利用太阳辐射能的重要方式之一,因此针对相变材料聚乙二醇易泄露的问题,关注于废弃生物质柚子皮,通过简单的碳化过程将其转化为骨架支撑和光吸收双功能材料,并进一步电沉积处理增强其吸光性能。真空浸渍聚乙二醇后得到无泄漏的形状稳定复合相变材料,具有高的负载量、高相变焓保留、优异的循环稳定性,100次循环质量损失最多仅为2.2%,光热转化储热效率达87.5%。基于废弃的柚子皮制得无泄漏的相变复合材料不仅成本低廉,制备操作简单,实现了废物利用,而且为进一步高效和综合利用低品位热能提供了新的选择。

     

  • 图  1  碳化柚子皮(CPP)、聚吡咯(PPy)/CPP和对应的复合材料的SEM图像

    Figure  1.  SEM images of carbonized pomelo peel (CPP)、polypyrrole (PPy)/CPP and corresponding composites

    PEG—Polyethylene glycol

    图  2  CPP和PPy/CPP的数码照片

    Figure  2.  Digital photos of CPP and PPy/CPP

    图  3  CPP和PPy/CPP的UV测试

    Figure  3.  UV test of CPP and PPy/CPP

    图  4  CPP、PPy/CPP (a)以及PEG、PEG/CPP和PEG-PPy/CPP (b) 的FTIR图谱

    Figure  4.  FTIR spectra of CPP, PPy/CPP (a) and PEG, PEG/CPP, PEG-PPy/CPP (b)

    图  5  CPP的N2吸附/脱附曲线 (a)和孔径分布曲线 (b)

    Figure  5.  N2 adsorption/desorption curve (a) and pore diameter distribution curve of CPP (b)

    图  6  PEG4000、PEG/CPP和PEG-PPy/CPP的DSC曲线

    Figure  6.  DSC curves of PEG4000, PEG/CPP and PEG-PPy/CPP

    图  7  PEG4000、PEG/CPP和PEG-PPy/CPP的XRD图谱

    Figure  7.  XRD patterns of PEG4000, PEG/CPP and PEG-PPy/CPP

    图  8  PEG/CPP和PEG-PPy/CPP的负载量

    Figure  8.  Load capacity of PEG/CPP and PEG-PPy/CPP

    图  9  PEG/CPP和PEG-PPy/CPP的泄漏测试照片

    Figure  9.  Leak testing photos of PEG/CPP and PEG-PPy/CPP

    图  10  PEG4000、PEG/CPP和PEG-PPy/CPP的TG曲线

    Figure  10.  TG curves of PEG4000 and PEG/CPP and PEG-PPy/CPP

    图  11  PEG/CPP、PEG-PPy/CPP多次加热冷却循环后的质量变化

    Figure  11.  Mass variation of PEG/CPP, PEG-PPy/CPP after multiple heating and cooling cycles

    图  12  PEG/CPP、PEG-PPy/CPP的光热转化储热过程中温度随时间变化曲线

    Figure  12.  Temperature variation curves with time in the process of photo-thermal conversion and heat storage of PEG/CPP and PEG-PPy/CPP

    表  1  PEG4000、PEG/CPP和PEG-PPy/CPP升降温过程的相变温度及相变焓

    Table  1.   Phase change temperature and enthalpy of PEG4000, PEG/CPP and PEG-PPy/CPP during melting and cooling process

    SampleTm/℃Hm/(J·g−1)Tc/℃Hc/(J·g−1)ψ/%
    PEG400061.3181.240.4171.8
    PEG/CPP61.5162.438.9152.693.9
    PEG-PPy/PCC60.5164.539.1149.694.8
    PEG/CPP-10060.5158.539.3145.591.7
    PEG-PPy/PCC-10060.0158.140.6143.591.1
    Notes: Tm, Tc—Temperature of melting and crystallization, respectively; Hm, Hc—Enthalpy of melting and crystallization; ψ—Relative enthalpy efficiency.
    下载: 导出CSV
  • [1] ALVAREZ-HERRANZ A, BALSALOBRE L D, SHAHBAZ M, et al. Energy innovation and renewable energy consumption in the correction of air pollution levels[J]. Energy Policy,2017,105:386-397. doi: 10.1016/j.enpol.2017.03.009
    [2] MAYE S, GIRAULT H H, PELJO P. Thermally regenerative copper nanoslurry flow batteries for heat-to-power conversion with low-grade thermal energy[J]. Energy & Environmental Science,2020,13(7):2191-2199.
    [3] LI Dachang, WANG Jihong, DING Yulong, et al. Dynamic thermal management for industrial waste heat recovery based on phase change material thermal storage[J]. Applied Energy,2019,236:1168-1182. doi: 10.1016/j.apenergy.2018.12.040
    [4] SHI Y R, GERKMAN M A, QIU Q F, et al. Sunlight-activated phase change materials for controlled heat storage and triggered release[J]. Journal of Materials Chemistry A,2021,9(15):9798-9808. doi: 10.1039/D1TA01007G
    [5] ANEKE Mathew, WANG Meihong. Energy storage technol-ogies and real life applications–A state of the art review[J]. Applied Energy,2016,179:350-377. doi: 10.1016/j.apenergy.2016.06.097
    [6] LIU Yuan, TAN Qinliang, HAN Jian, et al. Energy-water-carbon nexus optimization for the path of achieving carbon emission peak in China considering multiple uncertainties: A case study in inner mongolia[J]. Energies,2021,14(4):1067. doi: 10.3390/en14041067
    [7] ZHANG Shuai, FENG Daili, SHI Lei, et al. A review of phase change heat transfer in shape-stabilized phase change materials (ss-PCMs) based on porous supports for thermal energy storage[J]. Renewable and Sustainable Energy Reviews,2021,135:110127. doi: 10.1016/j.rser.2020.110127
    [8] FAN Xiaoqiao, LIU Lu, JIN Xin, et al. MXene Ti3C2Tx for phase change composite with superior photothermal storage capability[J]. Journal of Materials Chemistry A,2019,7(23):14319-14327. doi: 10.1039/C9TA03962G
    [9] ZHAO Jinliang, LUO Wenjun, KIM Jangkyo, et al. Graphene oxide aerogel beads filled with phase change material for latent heat storage and release[J]. Acs Applied Energy Materials,2019,2(5):3657-3664. doi: 10.1021/acsaem.9b00374
    [10] CHEN Luying, LV Jingchun, DING Lei, et al. A shape-stable phase change composite prepared from cellulose nano-fiber/polypyrrole/polyethylene glycol for electric-thermal energy conversion and storage[J]. Chemical Engineering Journal,2020,400:125950. doi: 10.1016/j.cej.2020.125950
    [11] FENG Zhicheng, LI Yongsheng, HE Fangfang, et al. Experimental and numerical simulation of phase change process for paraffin in three-dimensional graphene aerogel[J]. Applied Thermal Engineering,2020,167:114773. doi: 10.1016/j.applthermaleng.2019.114773
    [12] TANG Zhaodi, GAO Hongyi, CHEN Xiao, et al. Advanced multifunctional composite phase change materials based on photo-responsive materials[J]. Nano Energy,2021,80:105454. doi: 10.1016/j.nanoen.2020.105454
    [13] CHEN Xiao, TANG Zhaodi, GAO Hongyi, et al. Phase change materials for electro-thermal conversion and storage: From fundamental understanding to engineering design[J]. iScience,2020,23(6):101208. doi: 10.1016/j.isci.2020.101208
    [14] REN Qinlong, GUO Penghua, ZHU Jianjun. Thermal management of electronic devices using pin-fin based cascade microencapsulated PCM/expanded graphite composite[J]. International Journal of Heat and Mass Transfer,2020,149:119199. doi: 10.1016/j.ijheatmasstransfer.2019.119199
    [15] DE Gracia Alvaro, TARRAGONA Joan, CRESPO Alicia, et al. Smart control of dynamic phase change material wall system[J]. Applied Energy,2020,279:115807. doi: 10.1016/j.apenergy.2020.115807
    [16] ABDEALI Golnoosh, BAHRAMIAN Ahmad Reza, ABDOLLAHI Mahdi. Review on nanostructure supporting material strategies in shape-stabilized phase change materials[J]. Journal of Energy Storage,2020,29:101299. doi: 10.1016/j.est.2020.101299
    [17] AFTAB Waseem, HUANG Xinyu, WU Wenhao, et al. Nanoconfined phase change materials for thermal energy applications[J]. Energy & Environmental Science,2018,11(6):1392-1424.
    [18] CHEN Xiao, CHENG Piao, TANG Zhaodi, et al. Carbon-based composite phase change materials for thermal energy storage, transfer, and conversion[J]. Advanced Science,2021,8(9):2001274. doi: 10.1002/advs.202001274
    [19] LI Chuanchang, ZHAO Xinbo, ZHANG Bo, et al. Stearic acid/copper foam as composite phase change materials for thermal energy storage[J]. Journal of Thermal Science,2020,29(2):492-502. doi: 10.1007/s11630-020-1272-8
    [20] LIU Dingyao, LEI Chuxin, WU Kai, et al. A multidirectionally thermoconductive phase change material enables high and durable electricity via real-environment solar-thermal-electric conversion[J]. ACS Nano,2020,14(11):15738-15747. doi: 10.1021/acsnano.0c06680
    [21] AHMADI Younes, KIM Kihyun, KIM Sumin, et al. Recent advances in polyurethanes as efficient media for thermal energy storage[J]. Energy Storage Materials,2020,30:74-86. doi: 10.1016/j.ensm.2020.05.003
    [22] WU Si, LI Tingxian, TONG Zhen, et al. High-performance thermally conductive phase change composites by large-size oriented graphite sheets for scalable thermal energy harvesting[J]. Advanced Materials,2019,31(49):1905099. doi: 10.1002/adma.201905099
    [23] KOU Yan, SUN Keyan, LUO Jipeng, et al. An intrinsically flexible phase change film for wearable thermal managements[J]. Energy Storage Materials,2021,34:508-514. doi: 10.1016/j.ensm.2020.10.014
    [24] YANG Haiyue, WANG Siyuan, WANG Xin, et al. Wood-based composite phase change materials with self-cleaning superhydrophobic surface for thermal energy storage[J]. Applied Energy, 2020, 261: 114481.
    [25] WANG Chengjun, LIANG Weidong, YANG Yueyue, et al. Biomass carbon aerogels based shape-stable phase change composites with high light-to-thermal efficiency for energy storage[J]. Renewable Energy,2020,153:182-192. doi: 10.1016/j.renene.2020.02.008
    [26] WU Bangyao, LYU Sha, HAN He, et al. Biomass-based shape-stabilized phase change materials from artificially cultured ship-shaped diatom frustules with high enthalpy for thermal energy storage[J]. Composites Part B: Engineering,2021,205:108500. doi: 10.1016/j.compositesb.2020.108500
    [27] ATINAFU D G, WI S, YUN B Y, et al. Engineering biochar with multiwalled carbon nanotube for efficient phase change material encapsulation and thermal energy storage[J]. Energy,2021,216:119294. doi: 10.1016/j.energy.2020.119294
    [28] JEON Jisoo, PARK Jihun, WI Seunghwan, et al. Latent heat storage biocomposites of phase change material-biochar as feasible eco-friendly building materials[J]. Environmental Research,2019,172:637-648. doi: 10.1016/j.envres.2019.01.058
    [29] WAN Yechao, CHEN Yan, CUI Zhixing, et al. A promising form-stable phase change material prepared using cost effective pinecone biochar as the matrix of palmitic acid for thermal energy storage[J]. Scientific Reports,2019,9(1):11535. doi: 10.1038/s41598-019-47877-z
    [30] SHENG Xinxin, DONG Dexuan, LU Xiang, et al. MXene-wrapped bio-based pomelo peel foam/polyethylene glycol composite phase change material with enhanced light-to-thermal conversion efficiency, thermal energy storage capability and thermal conductivity[J]. Composites Part A: Applied Science and Manufacturing,2020,138:106067. doi: 10.1016/j.compositesa.2020.106067
    [31] GENG Yang, SUN Wan, YING Peijin, et al. Bioinspired fractal design of waste biomass-derived solar-thermal materials for highly efficient solar evaporation[J]. Advanced Functional Materials,2020,31(3):2007648.
    [32] ZHANG Y, GURZADYAN G G, UMAIR M M, et al. Ultrafast and efficient photothermal conversion for sunlight-driven thermal-electric system[J]. Chemical Engineering Journal,2018,344:402-409. doi: 10.1016/j.cej.2018.03.098
    [33] LU Xiang, HUANG Haowei, ZHANG Xinya, et al. Novel light-driven and electro-driven polyethylene glycol/two-dimensional MXene form-stable phase change material with enhanced thermal conductivity and electrical conductivity for thermal energy storage[J]. Composites Part B: Engineering,2019,177:107372. doi: 10.1016/j.compositesb.2019.107372
    [34] ATINAFU D G, CHANG S J, KIM K H, et al. Tuning surface functionality of standard biochars and the resulting uplift capacity of loading/energy storage for organic phase change materials[J]. Chemical Engineering Journal,2020,394:125049. doi: 10.1016/j.cej.2020.125049
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出版历程
  • 收稿日期:  2021-05-19
  • 修回日期:  2021-08-02
  • 录用日期:  2021-08-25
  • 网络出版日期:  2021-09-06
  • 刊出日期:  2022-06-01

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