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Acta Armamentarii ›› 2023, Vol. 44 ›› Issue (5): 1288-1295.doi: 10.12382/bgxb.2022.0063

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Study on Strength Degradation Mechanism of Material on Inner Bore Surface of Gun Barrel

XU Yaofeng1, YANG Diao1,2,*(), LIU Pengke1, CHEN Qi1, GUO Junhang1, WANG Jun1   

  1. 1 Northwest Institute of Mechanical & Electrical Engineering, Xianyang 712099, Shaanxi, China
    2 College of Aerospace Engineering,Chongqing University, Chongqing 400044, China
  • Received:2022-09-15 Online:2022-10-31
  • Contact: YANG Diao

Abstract:

In the process of gun firing, the inner diameter of the barrel increases by several microns under the action of heat, chemistry and force, which is the main reason for the termination of barrel life. Therefore, it is of great significance to study the change of material properties of the inner bore surface to reveal the barrel life mechanism. The microstructure, thickness and mechanical properties of the inner bore surface materials at different parts of the barrel were obtained by microanalysis of the 155mm barrel that has reached its life end. Through the analysis of barrel temperature gradient and ablation simulation experiment, the degradation mechanism of the bore surface material and its relationship with projectile firing number were revealed. The results showed that: the hardened layer was formed on the surface of the inner bore under the action of gunpowder gas in the early barrel life; the thickness of the hardened layer was related to the temperature and action time of gunpowder gas; barrel ablation and wear occur on the surface of the hardened layer; the strength of the hardened layer was twice as high as that of the barrel at room temperature, and the strength decreased rapidly at high temperatures, resulting in the increase of the inner barrel diameter under rotating band friction and airflow scouring.

Key words: gun barrel bore, hardened layer, material property degradation, phase transformation, ablation and erosion