Analyzing the Distribution of Microencapsulated Organic Phase Change Materials Embedded in a Metallic Matrix

被引:0
|
作者
McCann, Melissa K. [1 ]
Fish, Michael C. [2 ]
Boteler, Lauren M. [2 ]
Agonafer, Damena D. [1 ]
机构
[1] Washington Univ, 1 Brookings Dr, St Louis, MO 63130 USA
[2] US Army Res Lab, 2800 Powder Mill Rd, Adelphi, MD 20783 USA
来源
PROCEEDINGS OF THE NINETEENTH INTERSOCIETY CONFERENCE ON THERMAL AND THERMOMECHANICAL PHENOMENA IN ELECTRONIC SYSTEMS (ITHERM 2020) | 2020年
关键词
phase change material composite; microencapsulated organic PCM; paraffin wax; Field's metal; manual mixing; transient thermal solution; phase change onset temperature; heating peak temperature; latent heat; THERMAL-ENERGY STORAGE;
D O I
暂无
中图分类号
O414.1 [热力学];
学科分类号
摘要
This work aims to mitigate the overdesign of steady state packaging systems by combining an organic phase change material (o-PCM) and a metallic PCM (m-PCM) to create a passive cooling composite for pulse power applications. The organic constituent, melamine microencapsulated paraffin spheres, is manually mixed into a Field's metal (32.5Bi/51In/16.5Sn wt%) matrix. Four concentrations are synthesized containing organic volumetric fractions (VF) of 21.8%, 40.3%, 50.1%, and 61.2%, with a liquid-solid melting temperature near 60 degrees C. Several tools aid in determining the physical arrangement and thermal properties of the prepared PCM composites. A scanning electron microscope (SEM) shows preliminary o-PCM orientations on the composite surface at various magnifications. For interior o-PCM sphere distribution analysis, still images are taken from time-lapse videos created from a micro-computed tomographic (micro-CT) system. Binarization and pixel counting techniques are able to determine effective internal VFs within 3-5% of the prepared bulk VF. Differential scanning calorimetry is employed to determine the phase change onset temperature, heating peak temperature, and latent heat of the PCM composites. This novel PCM fabrication approach decreases the device package size, limits the associated weight, increases the system performance, and minimizes the composite cost.
引用
收藏
页码:975 / 984
页数:10
相关论文
共 50 条
  • [31] Synthesis and properties of microencapsulated phase change materials for thermal energy storage materials
    Konuklu, Yeliz
    Paksoy, Halime O.
    BULGARIAN CHEMICAL COMMUNICATIONS, 2016, 48 : 206 - 209
  • [32] Preparation and Properties of Microencapsulated Phase Change Materials Containing Two-Phase Core Materials
    Wang, He
    Wang, Jianping P.
    Wang, Xuechen
    Li, Wei
    Zhang, Xingxiang
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2013, 52 (41) : 14706 - 14712
  • [33] High thermal storage polyurethane composite embedded with microencapsulated phase change materials and analysis of its unsteady heat transfer
    Wang, Hui
    Dang, Jia
    Zheng, Miaozi
    Yuan, Yihui
    Liu, Tao
    Wang, Ning
    ADVANCED COMPOSITES AND HYBRID MATERIALS, 2023, 6 (05)
  • [34] High thermal storage polyurethane composite embedded with microencapsulated phase change materials and analysis of its unsteady heat transfer
    Hui Wang
    Jia Dang
    Miaozi Zheng
    Yihui Yuan
    Tao Liu
    Ning Wang
    Advanced Composites and Hybrid Materials, 2023, 6
  • [35] Characterization of nanoparticles embedded phase change materials
    Alam, Parvez
    Gupta, Naveen Kumar
    Nizam, Al Rabbul
    MATERIALS TODAY-PROCEEDINGS, 2020, 26 : 2932 - 2937
  • [36] Matrix controlled structural phase transformations in embedded metallic nanoparticles
    Hung, Cain J.
    Nayak, Sanjeev K.
    Parent, Lucas R.
    Hebert, Rainer J.
    Alpay, S. Pamir
    SCRIPTA MATERIALIA, 2022, 213
  • [37] Viscoelastic characterization of multifunctional composites incorporated with microencapsulated phase change materials
    Yoo, Sanghyun
    Kandare, Everson
    Shanks, Robert
    Khatibi, Akbar A.
    MATERIALS TODAY-PROCEEDINGS, 2017, 4 (04) : 5239 - 5247
  • [38] Thermal conductivity of cementitious composites containing microencapsulated phase change materials
    Ricklefs, Alex
    Thiele, Alexander M.
    Falzone, Gabriel
    Sant, Gaurav
    Pilon, Laurent
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 104 : 71 - 82
  • [39] Review on microencapsulated phase change materials (MEPCMs): Fabrication, characterization and applications
    Zhao, C. Y.
    Zhang, G. H.
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2011, 15 (08): : 3813 - 3832
  • [40] Microencapsulated phase change materials with graphene-based materials: Fabrication, characterisation and prospects
    Su, Weiguang
    Hu, Meiyong
    Wang, Li
    Kokogiannakis, Georgios
    Chen, Jun
    Gao, Liying
    Li, Anqing
    Xu, Chonghai
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 168