PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
June 5, 2026Materials & Design0 citationsOpen Access

Thermal cycling-driven microstructural changes of eutectic Al–Si phase change materials in SS304 containers revealed by multi-modal imaging

View Full Paper
IHInsung HanJMJohn S. MangumYZYouyang Zhao

Key Points

  • This work aims to explore the degradation behavior of eutectic Al–Si phase change materials in contact with SS304 containers during thermal cycling. The focus is on understanding how these interactions affect microstructural changes.
  • Employed multimodal characterization framework including high-resolution electron microscopy, 3D X-ray fluorescence imaging, and differential scanning calorimetry.
  • Analyzed spatially resolved compositional and microstructural evolution due to thermal cycling of Al–Si PCMs in SS304 containers.
  • Elemental leaching of Fe, Cr, and Ni from SS304 into the PCM leads to formation of intermetallic compounds, causing compositional heterogeneity.
  • DSC measurements show a decrease in melting temperature and latent heat of fusion with thermal cycling, indicating reduced phase-transforming fraction.

Abstract

Aluminum-based Al–Si alloys are widely used as phase change materials (PCMs) in thermal energy storage (TES) systems owing to their high volumetric latent heat and superior thermal conductivity. However, their long-term reliability is limited by degradation processes that remain insufficiently understood. In this work, we employ a multimodal, correlative characterization framework to systematically resolve the degradation behavior of eutectic Al–Si PCMs in contact with SS304 containers under repeated thermal cycling. By integrating high-resolution electron microscopy, three-dimensional X-ray fluorescence (3D XRF) imaging, and differential scanning calorimetry (DSC), we directly link spatially resolved compositional and microstructural evolution to changes in thermophysical properties. The correlative analysis reveals that elemental leaching of Fe, Cr, and Ni from the stainless-steel container into the PCM drives the formation of intermetallic compounds (IMCs) both at the interface and within the bulk PCM, leading to pronounced compositional heterogeneity. These interfacial reactions and diffusion-induced transformations progressively destabilize the Al–Si eutectic, reducing the effective phase-transforming fraction. Consistent with these observations, DSC measurements show a decrease in melting temperature and latent heat of fusion with thermal cycling. These results underscore the critical influence of interfacial reactions and materials compatibility on the stability, durability, and overall performance of Al–Si-based TES systems.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Han et al. (2026) studied this question.

synapsesocial.com/papers/6a22672f763171746d545e5fhttps://doi.org/10.1016/j.matdes.2026.116325
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Formation of a Diffusion Barrier-Like Intermetallic Compound to Suppress the Formation of Micro-voids at the Sn-0.7Cu/Cu Interface by Optimal Ga Additions2020 · 9 citations
  2. 2Thermal reliability test of Al–34%Mg–6%Zn alloy as latent heat storage material and corrosion of metal with respect to thermal cycling2006 · 139 citations
  3. 3py4DSTEM: A Software Package for Four-Dimensional Scanning Transmission Electron Microscopy Data Analysis2021 · 345 citations
  4. 4Condensation and Growth of Kirkendall Voids in Intermetallic Compounds2009 · 43 citations
  5. 5Real-time 3D analysis during electron tomography using tomviz2022 · 56 citations