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Interdisciplinary Review of Advances in Micro Nuclear Reactor Technology: Design & Deployment, Radiation-Tolerant Materials, Electromagnetic Systems, And Therapeutic Applications
Subject area: Science,Engineering and Technology · Area of research: Micro Nuclear Reactor Technology
DOI: 10.64388/IREV9I10-1715890
Abstract
This review synthesizes and critically evaluates four scholarly works spanning the full technological breadth of contemporary micro nuclear reactor (MNR) research. The first work provides a comprehensive general overview of MNR classification, design principles, fuel technologies, safety philosophy, global development programs, and economic considerations, establishing the contextual framework for all subsequent studies. The second study presents the conceptual design of the ZAN4e — a 10 MW(thermal) lead-cooled, graphite-moderated, Stirling-engine microreactor developed for Canadian Arctic communities — and demonstrates its neutronic and thermal-hydraulic viability through analytical and computational analysis. The third study characterizes the micro-mechanical response of four Gen-IV candidate structural alloys to high-dose ion irradiation, establishing that nanocrystalline and oxide-dispersion-strengthened microstructures confer exceptional radiation tolerance through grain-boundary and nanocluster defect sinking. The fourth contribution, encompassing two interconnected papers, addresses the component-level engineering challenges of the MicroURANUS small modular reactor and a research reactor, analyzing electromagnetic pump thermal management and a novel remote-controlled fuel locking mechanism respectively. Together these works chart a coherent trajectory from macro-level technology assessment to system-level reactor design, materials qualification, and precision therapeutic application of nuclear reactions. This review examines the scientific context, methodological rigor, principal findings, limitations, and cross-cutting engineering implications of each contribution, and identifies priority directions for future research.
Keywords
micro nuclear reactor; small modular reactor; ZAN4e; lead-cooled reactor; HALEU; TRISO fuel; structural alloys; irradiation hardening; ODS steel; nanocrystalline T91; MicroURANUS; electromagnetic pump; LBE coolant; fuel locking mechanism; BNCT; CBE factor; passive safety; Gen-IV reactors
References
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[3] Prasitthipayong, A., et al. (2018). Micro mechanical testing of candidate structural alloys for Gen-IV nuclear reactors. Nuclear Materials and Energy, 16, 34–45. https://doi.org/10.1016/j.nme.2018.05.018
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How to cite this paper
@article{1715890,
author = {Divyansh Mishra, Dr. Vikas Bansal, Dr. Rohit Misra, Dr. Doraj Kamal Jamuwa},
title = {Interdisciplinary Review of Advances in Micro Nuclear Reactor Technology: Design & Deployment, Radiation-Tolerant Materials, Electromagnetic Systems, And Therapeutic Applications},
journal = {Iconic Research And Engineering Journals},
year = {2026},
volume = {9},
number = {10},
pages = {60-71},
issn = {2456-8880},
url = {https://www.irejournals.com/formatedpaper/1715890.pdf},
abstract = {This review synthesizes and critically evaluates four scholarly works spanning the full technological breadth of contemporary micro nuclear reactor (MNR) research. The first work provides a comprehensive general overview of MNR classification, design principles, fuel technologies, safety philosophy, global development programs, and economic considerations, establishing the contextual framework for all subsequent studies. The second study presents the conceptual design of the ZAN4e — a 10 MW(thermal) lead-cooled, graphite-moderated, Stirling-engine microreactor developed for Canadian Arctic communities — and demonstrates its neutronic and thermal-hydraulic viability through analytical and computational analysis. The third study characterizes the micro-mechanical response of four Gen-IV candidate structural alloys to high-dose ion irradiation, establishing that nanocrystalline and oxide-dispersion-strengthened microstructures confer exceptional radiation tolerance through grain-boundary and nanocluster defect sinking. The fourth contribution, encompassing two interconnected papers, addresses the component-level engineering challenges of the MicroURANUS small modular reactor and a research reactor, analyzing electromagnetic pump thermal management and a novel remote-controlled fuel locking mechanism respectively. Together these works chart a coherent trajectory from macro-level technology assessment to system-level reactor design, materials qualification, and precision therapeutic application of nuclear reactions. This review examines the scientific context, methodological rigor, principal findings, limitations, and cross-cutting engineering implications of each contribution, and identifies priority directions for future research.},
keywords = {micro nuclear reactor; small modular reactor; ZAN4e; lead-cooled reactor; HALEU; TRISO fuel; structural alloys; irradiation hardening; ODS steel; nanocrystalline T91; MicroURANUS; electromagnetic pump; LBE coolant; fuel locking mechanism; BNCT; CBE factor; passive safety; Gen-IV reactors},
month = {April},
doi = {https://doi.org/10.64388/IREV9I10-1715890}
}