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Finite Element Modeling of Transient Temperatures in a Small-Caliber Projectile | Science Publications

机译:小口径弹丸瞬态温度的有限元建模科学出版物

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> Problem statement: Future generations of intelligent munitions will use Microelectromechanical Systems (MEMS) for guidance, fuzing logic and assessment of the battlefield environment. The temperatures fund in a gun system, however, are sufficient to damage some materials used in the fabrication of MEMS. The motivation of this study is to model the dynamic temperature distribution in a typical small-caliber projectile. Approach: An axisymmetric finite-element model of a projectile is developed to simulate temperatures through internal ballistics (the projectile is in the gun barrel) and external ballistics (the projectile travels in a free trajectory towards the target). Accuracy of the simulation is confirmed through comparison to analytical models and to payloads attached to experimental projectiles. In the simulation, the exact values for some boundary conditions are unknown and/or unknowable. A sensitivity analysis determines the effect of these uncertain parameters. Results: The simulation shows that friction at the projectile-gun barrel interface is primarily responsible for elevated temperatures in a gun system. Other factors have much smaller effects. The short duration of the internal ballistics prevents the frictional heat from diffusing into the bulk of the projectile. As a result, the projectile has a shallow, high-temperature zone at its bearing surface as it leaves the gun barrel. During external ballistics, this heat will diffuse through the projectile, but most of the projectile experiences temperatures of 56
机译: > 问题陈述:未来的智能弹药将使用微机电系统(MEMS)进行制导,引信逻辑和战场环境评估。但是,喷枪系统中的温度储备足以损坏MEMS制造中使用的某些材料。这项研究的目的是为典型的小口径弹丸中的动态温度分布建模。 方法:建立了弹丸的轴对称有限元模型,以通过内部弹道(弹丸位于枪管中)和外部弹道(弹丸以自由轨迹向目标移动)来模拟温度。 。通过与分析模型以及附在实验弹丸上的有效载荷进行比较,可以确定模拟的准确性。在模拟中,某些边界条件的确切值是未知的和/或未知的。灵敏度分析确定这些不确定参数的影响。 结果:仿真表明,弹丸-炮管界面处的摩擦主要是造成炮系统温度升高的原因。其他因素的影响要小得多。内部弹道的持续时间短,可防止摩擦热扩散到弹丸中。结果,当射弹离开枪管时,在其承载面上有一个浅的高温区域。在进行外部弹道射击时,这些热量将通过弹丸扩散,但是大多数弹丸的温度为56

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