Influence of Initial Microstructure on Cold Drawing Damage in LX82A High‐Carbon Steel Wires

To suppress the damage accumulation and reduce the wire breakage rate of high‐carbon wire during the drawing process, this study investigates the influence of initial microstructure, specifically pearlitic lamellar morphology and inclusion characteristics, on the damage evolution during the cold drawing of LX82A high‐carbon steel wires. With increasing strain, cementite lamellae that are favorably aligned with the drawing direction undergo elongation and thinning into fibrous morphologies, while unfavorably oriented lamellae are prone to bend or kink. At high‐strain levels, the steel with lower strength (82AL) with coarser pearlite lamellae shows significantly less cementite twisting and fragmentation compared with the high‐strength steel (82A). Finite element simulations suggest drawing deformation induced less damage in the 82AL steel than its higher strength counterpart, 82A. Experimental observations and corresponding finite element simulations further reveal that hard inclusions act as local stress concentrators during drawing, promoting damage accumulation and void formation. These voids are shorter and less severe in 82AL steel, correlating with less local damage values, resulting in a lower wire breakage rate during cold drawing. This microstructural strategy offers a promising approach for improving the defect tolerance and drawability of high‐strength steel wires.

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Journal
steel research international
Published
2026-09-25
DOI
https://doi.org/10.1002/srin.70718
Primary Topic
Microstructure and Mechanical Properties of Steels
Type
article
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Influence of Initial Microstructure on Cold Drawing Damage in LX82A High‐Carbon Steel Wires

Feng Fang, Ao Ma, Yinfei Ju, Lichu Zhou et al.
steel research international
Microstructure and Mechanical Properties of Steels
article

Influence of Initial Microstructure on Cold Drawing Damage in LX82A High‐Carbon Steel Wires

Feng Fang, Ao Ma, Yinfei Ju, Lichu Zhou, 沈奎, Bo Li, Zonghan Xie, Xianjun Hu, Han Ma
article en

Abstract

To suppress the damage accumulation and reduce the wire breakage rate of high‐carbon wire during the drawing process, this study investigates the influence of initial microstructure, specifically pearlitic lamellar morphology and inclusion characteristics, on the damage evolution during the cold drawing of LX82A high‐carbon steel wires. With increasing strain, cementite lamellae that are favorably aligned with the drawing direction undergo elongation and thinning into fibrous morphologies, while unfavorably oriented lamellae are prone to bend or kink. At high‐strain levels, the steel with lower strength (82AL) with coarser pearlite lamellae shows significantly less cementite twisting and fragmentation compared with the high‐strength steel (82A). Finite element simulations suggest drawing deformation induced less damage in the 82AL steel than its higher strength counterpart, 82A. Experimental observations and corresponding finite element simulations further reveal that hard inclusions act as local stress concentrators during drawing, promoting damage accumulation and void formation. These voids are shorter and less severe in 82AL steel, correlating with less local damage values, resulting in a lower wire breakage rate during cold drawing. This microstructural strategy offers a promising approach for improving the defect tolerance and drawability of high‐strength steel wires.

steel research international
Southwest University of Science and Technology (CN), Institute of Research of Iron and Steel Shasteel (CN), Jiangsu Yonggang Group (China) (CN), Adelaide University (AU), The University of Adelaide (AU), Southeast University (CN)
Openalex Percentile: Top 21%
Microstructure and Mechanical Properties of Steels
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Influence of Initial Microstructure on Cold Drawing Damage in LX82A High‐Carbon Steel Wires — Feng Fang, Ao Ma, et al. · steel research international (2026) | TGRS Research Map | TGRS