3D-Printed Mineral Limestone Structures for Calcium Looping Thermochemical Energy Storage (2025-10)¶
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Journal Article - Journal of Energy Storage, Vol. 138, No. 118603
Abstract
This work presents a proof of concept for the use of 3D-printed CaCO₃ structures, prepared from low-cost and widely available mineral limestone, as an innovative approach for thermochemical energy storage (TCES) via the calcium looping (CaL) process in a fixed-bed reactor. These structures offer significant advantages in terms of reaction efficiency, gas flow control, structural stability, and maintenance. These factors are critical for achieving uniform reaction surface distribution and effective thermal management. The 3D structures were fabricated by robocasting and subjected to various debinding and calcination conditions. They maintained their structural integrity and exhibited high reactivity over multiple carbonation-calcination cycles. Under scheme 1 conditions (calcinations in nitrogen), the printed structures retained a CaO conversion of 0.44 after 50 cycles, corresponding to an energy density of 1.39 MJ kg−1 CaO, outperforming the powdered sample, which reached a conversion of 0.32. Advanced characterization techniques, including thermography, scanning electron microscopy, and X-ray computed tomography, highlight the internal structural advantages of the 3D structures. Overall, this study demonstrates the potential of 3D-printed CaCO₃ structures as scalable and efficient TCES materials, offering a promising route toward improving the performance and practical deployment of solid-state thermochemical energy storage systems.
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4 References
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A Critical Review of 3D Printing and Digital Manufacturing in Construction Engineering - Hiremath Shivashankarayya, Mathapati Gururaj, Chiniwar Dundesh, Vishwanatha H. (2025-05)
Performance Evaluation of Cementitious Composites by Designing an Extrusion System for Construction 3D Printing - Lamnini Soukaina, Elsayed Hamada, Lakhdar Yazid, Baino Francesco et al. (2022-09)
Robocasting of Advanced Ceramics:
Ink-Optimization and Protocol to Predict the Printing Parameters - Lin Wenyu, Wang Li, Li Zhijian, Bai Gang et al. (2025-06)
Multi-Scale Fabrication and Challenges in 3D Printing of Special -Shaped Concrete Structures
0 Citations
BibTeX
@article{cast_ivor_pere_sanc.2025.3PMLSfCLTES,
author = "Ana Castro-Chincho and Juan Ivorra-Martinez and Antonio Perejón and Pedro E. Sánchez-Jiménez and Diego Lascano and Joaquín Ramírez-Rico and Luis A. Pérez-Maqueda",
title = "3D-Printed Mineral Limestone Structures for Calcium Looping Thermochemical Energy Storage: Reactivity and Performance Across Cycles",
doi = "10.1016/j.est.2025.118603",
year = "2025",
journal = "Journal of Energy Storage",
volume = "138",
pages = "118603",
}
Formatted Citation
A. Castro-Chincho, “3D-Printed Mineral Limestone Structures for Calcium Looping Thermochemical Energy Storage: Reactivity and Performance Across Cycles”, Journal of Energy Storage, vol. 138, p. 118603, 2025, doi: 10.1016/j.est.2025.118603.
Castro-Chincho, Ana, Juan Ivorra-Martinez, Antonio Perejón, Pedro E. Sánchez-Jiménez, Diego Lascano, Joaquín Ramírez-Rico, and Luis A. Pérez-Maqueda. “3D-Printed Mineral Limestone Structures for Calcium Looping Thermochemical Energy Storage: Reactivity and Performance Across Cycles”. Journal of Energy Storage 138 (2025): 118603. https://doi.org/10.1016/j.est.2025.118603.