Long-range artillery projectiles can feature a hybrid design that integrates a base bleed unit and a solid rocket motor, offering substantial improvements in ballistic performance. These improvements are accompanied by significant increases in the launch stresses experienced by the projectile body. The paper evaluates the structural integrity of a 155 mm long-range artillery projectile body through a combined approach of analytical calculations and finite element analysis. The projectile body includes three components arranged from the base to the nose: the base bleed unit body, the solid rocket motor body, and the warhead body. An analytical method was used to select the required geometric configuration of the projectile body. A 3D finite element (FE) analysis was performed to validate the structural integrity of the selected configuration under loading conditions from two firing cases. Both quasistatic and transient dynamic analyses were applied to the FE model via a high-quality mesh. The projectile body materials were modelled as linear elastic with the von Mises failure criterion. The structural response of the projectile body, in terms of stress and strain, was analysed and discussed. The results reveal that the entire projectile body is capable of withstanding the applied loading conditions in both firing cases, with the base bleed unit body experiencing the highest stress levels. The results also reveal good agreement in the stress state predicted by both quasistatic and transient dynamic analyses. The methodology presented in this study can be applied to evaluate the structural integrity of various artillery ammunition types.
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نویسنده: مهندس نقوی