Heating patterns and temperature distribution of projectile surface in lunar regolith penetration

IF 3.1 2区 物理与天体物理 Q1 ENGINEERING, AEROSPACE
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Abstract

During penetration, a large quantity of friction-induced heat is generated, significantly increasing the projectile surface temperature. Considering that the temperature variation depends on the physical properties of the target being penetrated, understanding this relationship can aid in extraterrestrial material behavior for detection and analysis efforts. The study investigated the patterns of heat generation and the distribution of temperature on the surface of a projectile as it penetrates lunar regolith. For discrete medium penetration, large deviations appear in temperature prediction due to particle extrusion flow. Thus, a heat flux density model on the projectile surface by introducing a relative velocity factor (RVF) for correction was established. The particle flow characteristics simulation and fitting model of the introduced factor were also obtained. We constructed a theoretical relationship between the resistance and stress model parameters using dynamic modeling. Experimental projectiles recording penetration acceleration and temperature at the points of interest on the projectile surface were designed and tested to obtain recorded data. The temperature field in this process was simulated in COMSOL software to calculate the projectile surface's heat flux density and temperature distribution. The results indicate that the developed model is effective. This research infers the physical characteristics of the penetrating target under specified penetration conditions and provides more dimensional information for lunar regolith exploration.

Abstract Image

月球碎屑穿透中弹丸表面的加热模式和温度分布
在穿透过程中,会产生大量摩擦热,从而显著提高弹丸表面温度。考虑到温度变化取决于被穿透目标的物理特性,了解这种关系有助于地外物质行为的探测和分析工作。该研究调查了射弹穿透月球碎屑岩时的发热模式和表面温度分布。对于离散介质穿透,由于粒子挤压流,温度预测会出现较大偏差。因此,通过引入相对速度因子(RVF)进行修正,建立了弹丸表面的热流密度模型。同时还获得了粒子流动特性模拟和引入因子的拟合模型。我们利用动态模型构建了阻力和应力模型参数之间的理论关系。设计并测试了记录穿透加速度和弹丸表面相关点温度的实验弹丸,以获得记录数据。在 COMSOL 软件中模拟了这一过程中的温度场,以计算弹丸表面的热通量密度和温度分布。结果表明,所开发的模型是有效的。这项研究推断了特定穿透条件下穿透目标的物理特性,为月球碎屑岩探测提供了更多的维度信息。
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来源期刊
Acta Astronautica
Acta Astronautica 工程技术-工程:宇航
CiteScore
7.20
自引率
22.90%
发文量
599
审稿时长
53 days
期刊介绍: Acta Astronautica is sponsored by the International Academy of Astronautics. Content is based on original contributions in all fields of basic, engineering, life and social space sciences and of space technology related to: The peaceful scientific exploration of space, Its exploitation for human welfare and progress, Conception, design, development and operation of space-borne and Earth-based systems, In addition to regular issues, the journal publishes selected proceedings of the annual International Astronautical Congress (IAC), transactions of the IAA and special issues on topics of current interest, such as microgravity, space station technology, geostationary orbits, and space economics. Other subject areas include satellite technology, space transportation and communications, space energy, power and propulsion, astrodynamics, extraterrestrial intelligence and Earth observations.
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