Expanded graphite@octadecanol composite phase change material with photothermal conversion interface

被引:23
作者
Huo, Yingjie [1 ,2 ]
Yan, Ting [1 ,2 ]
Chang, Xiaole [1 ,2 ]
Pan, Weiguo [1 ,2 ]
机构
[1] Shanghai Univ Elect Power, Coll Energy & Mech Engn, Shanghai 200090, Peoples R China
[2] Key Lab Clean Power Generat & Environm Protect Tec, Shanghai 200090, Peoples R China
关键词
Photothermal conversion; Solar energy; Thermal energy storage; Phase change material (PCM); Expanded graphite; 1-Octadecanol;
D O I
10.1016/j.solener.2023.111922
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In this study, a CuS with a flower ball shape was synthesized and loaded onto cotton yarn to develop a photosensitive interfacial material with excellent photothermal conversion properties. Four composite phase change materials were prepared by compounding different ratios of expanded graphite (EG) with 1-octadecanol (OC). Finally, four sandwich-shaped photothermal CPCMs with different parameters (6 wt%EG-OC, 12 wt%EG-OC, 18 wt%EG-OC and 24 wt%EG-OC) were prepared by constant pressure molding with cotton yarn loaded with CuS as the outer layer and expanded graphite-octadecane as the sandwich layer. As a safe and stable low-temperature phase change material, OC has great potential for applications such as energy saving in buildings, domestic hot water supply and body heat management. The photothermal CPCMs developed in this study have good thermal storage performance, photothermal conversion efficiency, and thermal stability. The experimental results showed that the enthalpy of melting of 6 wt% EG-OC was 337.8 J/g, the thermal conductivity of solid 24 wt% EG-OC could reach 3.43 WGreek ano teleiam � 1Greek ano teleiaK- 1, and the photothermal conversion efficiency of 24 wt% EG-OC was 75.92%. A typical daily amount of solar radiation can be stored using 27.19 g (58.01 m3) of 18 wt% EG-OC. This work provides a valuable reference for the study of solar thermal storage applications.
引用
收藏
页数:12
相关论文
共 22 条
[1]   Shape stabilized phase change materials based on different support structures for thermal energy storage applications-A review [J].
Chinnasamy, Veerakumar ;
Heo, Jaehyeok ;
Jung, Sungyong ;
Lee, Hoseong ;
Cho, Honghyun .
ENERGY, 2023, 262
[2]   Heat transfer enhancement of phase change materials embedded with metal foam for thermal energy storage: A review [J].
Cui, Wei ;
Si, Tianyu ;
Li, Xiangxuan ;
Li, Xinyi ;
Lu, Lin ;
Ma, Ting ;
Wang, Qiuwang .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 169
[3]   Dopamine-Decorated Ti3C2Tx MXene/Cellulose Nanofiber Aerogels Supported Form-Stable Phase Change Composites with Superior Solar-Thermal Conversion Efficiency and Extremely High Thermal Storage Density [J].
Du, Xiaosheng ;
Wang, Jiuao ;
Jin, Linzhao ;
Deng, Sha ;
Dong, Yi ;
Lin, Shaojian .
ACS APPLIED MATERIALS & INTERFACES, 2022, 14 (13) :15225-15234
[4]   Investigation of physico-mechanical, thermal properties and solar thermoregulation performance of shape-stable attapulgite based composite phase change material in foam concrete [J].
Gencel, Osman ;
Ustaoglu, Abid ;
Benli, Ahmet ;
Hekimoglu, Gokhan ;
Sari, Ahmet ;
Erdogmus, Ertugrul ;
Sutcu, Mucahit ;
Kaplan, Gokhan ;
Bayraktar, Oguzhan Yavuz .
SOLAR ENERGY, 2022, 236 :51-62
[5]   D-mannitol@silica/graphene oxide nanoencapsulated phase change material with high phase change properties and thermal reliability [J].
He, Lijuan ;
Mo, Songping ;
Lin, Pengcheng ;
Jia, Lisi ;
Chen, Ying ;
Cheng, Zhengdong .
APPLIED ENERGY, 2020, 268
[6]   Flexible phase change composite based on loading paraffin into cross-linked CNT/SBS network for thermal management and thermal storage [J].
Hu, Die ;
Han, Liang ;
Zhou, Weiqing ;
Li, Peng ;
Huang, Ya ;
Yang, Zhou ;
Jia, Xilai .
CHEMICAL ENGINEERING JOURNAL, 2022, 437
[7]   Thermal characteristics of the multilayered structural MOF-EG/OC composite phase change material in thermal energy storage [J].
Kuai, Z. H. ;
Yan, Ting ;
Huo, Y. J. ;
Wang, Kai ;
Pan, W. G. .
ENERGY AND BUILDINGS, 2022, 260
[8]   Recent advances on thermal energy storage using metal-organic frameworks (MOFs) [J].
Makhanya, Nokubonga ;
Oboirien, Bilainu ;
Ren, Jianwei ;
Musyoka, Nicholas ;
Sciacovelli, Adriano .
JOURNAL OF ENERGY STORAGE, 2021, 34
[9]   Effect of carbonization temperatures on biochar formation of bamboo leaves [J].
Pattnaik, D. ;
Kumar, S. ;
Bhuyan, S. K. ;
Mishra, S. C. .
7TH NATIONAL CONFERENCE ON PROCESSING AND CHARACTERIZATION OF MATERIALS (NCPCM 2017), 2018, 338
[10]   Nano-enhanced organic form stable PCMs for medium temperature solar thermal energy harvesting: Recent progresses, challenges, and opportunities [J].
Paul, John ;
Pandey, A. K. ;
Mishra, Yogeshwar Nath ;
Said, Zafar ;
Mishra, Yogendra Kumar ;
Ma, Zhenjun ;
Jacob, Jeeja ;
Kadirgama, K. ;
Samykano, M. ;
Tyagi, V. V. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 161