Characterisation and energy storage performance of 3D printed-photocurable resin/microencapsulated phase change material composite

被引:3
|
作者
Er, Yusuf [1 ]
Guler, Onur [2 ]
Ustaoglu, Abid [3 ]
Hekimoglu, Gokhan [2 ]
Sari, Ahmet [2 ,4 ]
Subasi, Serkan [5 ]
Gencel, Osman [6 ]
Marasli, Muhammed [7 ]
机构
[1] Firat Univ, Dept Airframes & Powerplants, Elazig, Turkiye
[2] Karadeniz Tech Univ, Dept Met & Mat Engn, TR-61080 Trabzon, Turkiye
[3] Bartin Univ, Fac Engn Architecture & Design, Dept Mech Engn, TR-74100 Bartin, Turkiye
[4] King Fahd Univ Petr & Minerals, Interdisciplinary Res Ctr Renewable Energy & Power, Dhahran 31261, Saudi Arabia
[5] Duzce Univ, Fac Engn, Civil Engn Dept, TR-81620 Duzce, Turkiye
[6] Bartin Univ, Fac Engn Architecture & Design, Civil Engn Dept, TR-74100 Bartin, Turkiye
[7] Fibrobeton Inc, TR-34810 Istanbul, Turkiye
关键词
Stereolithography; Photocurable resin; 3D Printing; Microencapsulated phase change material; Thermal energy storage; MICROENCAPSULATED PCM;
D O I
10.1016/j.tsep.2023.102381
中图分类号
O414.1 [热力学];
学科分类号
摘要
The 3D fabrication of microencapsulated phase change material (MEPCM) doped resin polymer composites enables the creation of complex shapes and customized designs, opening doors for many applications in fields. This investigation fabricated a range of resin/MEPCM (20 %, 30 %, and 40 % by volume) composites using a mechanical mixing technique. This study investigates how the addition of MEPCM impacts resin matrix composite's mechanical strength, latent heat storage characteristics, and ability to regulate temperature effectively. With a 40 % MEPCM additive ratio, a pure resin porosity value of approximately 0.4 % increased to around 17 %. Thanks to the production of homogeneously dispersed MEPCM added resins with production with stereolithography (SLA), 40 % MEPCM additive enabled characteristic FTIR peaks of both MEPCM and resin to appear and, melting and solidification enthalpy values reached 87.15 j/g and 86.25 j/g, respectively. MEPCM addition enhanced the thermoregulatory properties of resin by absorbing or releasing heat during temperature fluctuations. On hotter days, 8 mm-thick composites create temperature differences exceeding 11 C, while this difference exceeds 6 C in the room center case. The produced 3D printed MEPCM/resin composite can be a potential material to effectively regulate the temperature of electronic devices, food packets, building materials, and electronic devices and automotive components.
引用
收藏
页数:17
相关论文
共 50 条
  • [21] Preparation and Thermal Performance of Silica/n-Tetradecane Microencapsulated Phase Change Material for Cold Energy Storage
    Fang, Yutang
    Wei, Hao
    Liang, Xianghui
    Wang, Shuangfeng
    Liu, Xin
    Gao, Xuenong
    Zhang, Zhengguo
    ENERGY & FUELS, 2016, 30 (11) : 9652 - 9657
  • [22] 3D structure fungi-derived carbon stabilized stearic acid as a composite phase change material for thermal energy storage
    Li, Chuanchang
    Xie, Baoshan
    He, Zhangxing
    Chen, Jian
    Long, Yi
    RENEWABLE ENERGY, 2019, 140 : 862 - 873
  • [23] Experimental investigation of rigid polyurethane foam/microencapsulated phase change material composite for thermal energy storage in electronic component
    Amol Naikwadi
    Asit Samui
    Prakash Mahanwar
    Polymer Bulletin, 2022, 79 : 10095 - 10114
  • [24] Fabrication and Performance of Microencapsulated Phase-Change Material/Gypsum Plaster Tile for Thermal Energy-Storage Building Material
    Enteshari, Ghazal
    Kani, Ebrahim Najafi
    JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2022, 34 (05)
  • [25] Experimental investigation of rigid polyurethane foam/microencapsulated phase change material composite for thermal energy storage in electronic component
    Naikwadi, Amol
    Samui, Asit
    Mahanwar, Prakash
    POLYMER BULLETIN, 2022, 79 (11) : 10095 - 10114
  • [26] Microencapsulated phase change material/wood fiber-starch composite as novel bio-based energy storage material for buildings
    Ozturk, Guliz
    Temiz, Ali
    Hekimoglu, Gokhan
    Aslan, Mustafa
    Demirel, Gaye Kose
    Erdeyer, Ozge Nur
    Sari, Ahmet
    Gencel, Osman
    Subasi, Serkan
    JOURNAL OF ENERGY STORAGE, 2024, 84
  • [27] Phase change material infiltrated 3D porous carbon interconnected composites for thermal energy storage
    Sattar, Rabia
    Ishaq, Tehmeena
    Afzal, Anam
    Mukhtar, Rubina
    Naz, Asima
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2022, 44 (01) : 2133 - 2152
  • [28] Microencapsulated phase change material in 3D-printable mortars
    Rahemipoor, Sahand
    Bayat, Mohamad
    Hasany, Masoud
    Mehrali, Mohammad
    Almdal, Kristoffer
    Ranjbar, Navid
    Mehrali, Mehdi
    ENERGY CONVERSION AND MANAGEMENT, 2024, 321
  • [29] Thermal Energy Storage Capability of Polyurethane Foams Incorporated with Microencapsulated Phase Change Material
    Qu, Lijie
    Li, Aiming
    Gu, Jinjia
    Zhang, Chunling
    CHEMISTRYSELECT, 2018, 3 (11): : 3180 - 3186
  • [30] A NEW COMPOSITE PHASE CHANGE MATERIAL FOR THERMAL ENERGY STORAGE
    Su, Che-Fu
    Xiang, Xinrui
    Esmaeilzadeh, Hamed
    Wang, Jirui
    Fratto, Edward
    Charmchi, Majid
    Gu, Zhiyong
    Sun, Hongwei
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2019, VOL 6, 2019,