摩擦攪拌接合が鋼製装甲を強化する仕組みを中性子で解明(Neutrons reveal how friction stir welding could strengthen steel armor)

2026-07-30 オークリッジ国立研究所(ORNL)

米国オークリッジ国立研究所(ORNL)の研究チームは、中性子回折を用いて**摩擦攪拌接合(Friction Stir Welding:FSW)**した装甲用鋼板内部の残留応力を詳細に可視化し、接合強度を高める新たな設計指針を示した。FSWは材料を溶融させずに接合するため、従来のアーク溶接より熱影響部(HAZ)が小さく、装甲鋼の硬さや耐弾性能を維持しやすい。本研究では均質圧延装甲鋼(RHA)、高硬度装甲鋼(HHA)、および異種鋼接合を対象に、中性子回折で残留応力分布を解析した結果、攪拌部では圧縮応力が支配的である一方、軟化した熱影響部では引張応力が生じることを確認した。また、残留応力は最高加熱温度ではなく、相変態による体積膨張と焼戻しによる応力緩和の競合によって決まることを解明した。これらの知見により、熱入力や接合条件を最適化して熱影響部を制御することで、装甲鋼だけでなく高強度鋼全般の接合信頼性や耐久性を向上できる可能性が示された。

<関連情報>

摩擦攪拌接合された装甲鋼における微細構造と残留応力形成の相関関係を中性子回折によって解析した Correlation between microstructure and residual stress formation in friction stir welded armor steels characterized by neutron diffraction

Jhoan Guzman, Kaue C. Riffel, Martin McDonnell, Jeffrey Bunn, Andrew Payzant, Doug Kyle, Antonio J. Ramirez
Journal of Materials Processing Technology  Available online: 5 January 2026
DOI:https://doi.org/10.1016/j.jmatprotec.2026.119198

摩擦攪拌接合が鋼製装甲を強化する仕組みを中性子で解明(Neutrons reveal how friction stir welding could strengthen steel armor)

Highlights

  • Residual stresses in FSW result from competition between transformation-induced expansion and tempering relaxation.
  • The width of the softened heat-affected zone determines the extent of tensile residual stresses, and heat input can be adjusted to control them.
  • HHA steel retains fresh martensite with compressive stir-zone cores, while RHA steel overtempers and forms wider tensile regions.
  • Maximum longitudinal tensile stresses in the softened heat-affected zone reach about 70 % of the yield strength.
  • Results establish a framework for transformation-hardening steels to optimize solid-state joining and tailor residual stress.

Abstract

Friction stir welding (FSW) is a solid-state joining process that minimizes the heat-affected zone (HAZ) compared with fusion-based arc welding, making it well suited for joining martensitic armor steels where hardness and ballistic resistance are critical. This study investigates residual stress formation in three defect-free FSW butt-joint configurations relevant to armored-vehicle fabrication: similar rolled homogeneous armor (RHA–RHA, Case 1), similar high-hardness armor (HHA–HHA, Case 2), and dissimilar HHA–RHA (Case 3) joints produced under temperature-controlled conditions (770 °C). Neutron diffraction was employed to quantify the magnitude and spatial distribution of residual stresses in the longitudinal, transverse, and normal directions and to correlate them with weld microstructure and hardness. Tensile residual stresses were concentrated in the softened HAZ, reaching approximately 300 MPa for Case 2 and 400 MPa for Case 1 (≈50–70 % of the base-metal yield strength; ∼581 MPa for RHA and ∼566 MPa for HHA), while compressive residual stresses dominated the stir zone. The spatial extent of tensile stresses scaled with the width of the softened HAZ, which was largest in the dissimilar HHA–RHA joint and smallest in the HHA–HHA joint. Full-width-at-half-maximum (FWHM) analysis revealed low microstrain in overtempered HAZ regions and high microstrain in the stir zone associated with severe plastic deformation and fresh martensite formation. This work demonstrates that residual stress evolution in FSW of martensitic armor steels is governed not primarily by peak temperature or thermal contraction, as inferred from fusion-welding analogies, but by the competition between transformation-induced volumetric expansion and tempering-induced stress relaxation. The relative dominance of these mechanisms is shown to depend on alloy hardenability and local thermal history, leading to more extensive HAZ softening and broader tensile stress regions in the lower-hardenability RHA steel. These findings establish a transferable mechanistic framework for optimizing solid-state joining strategies in high-strength steels and other transformation-hardening alloys beyond armor applications.

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