Simulation of Drilling Temperature Rise in Frozen Soil of Lunar Polar Region Based on Discrete Element Theory

Author:

Cui Jinsheng1ORCID,Kui Le1,Zhang Weiwei2,Zhao Deming3,Chang Jiaqing1ORCID

Affiliation:

1. School of Mechanical and Electric Engineering, Guangzhou University, Guangzhou 510006, China

2. School of Mechatronics Engineering, Harbin Institute of Technology, Harbin 150001, China

3. School of Mechanical Engineering, Zhejiang Sci-Tech University, Hangzhou 310018, China

Abstract

As the frozen soil in the South Pole region of the Moon is an important water resource, the operation of drilling and retrieving samples of the frozen soil in this region will be a crucial task for us to accomplish in future deep-space exploration. Thus, this paper investigated the effects of the increasing temperature and heat transfer between the drilling tools and the simulated lunar soil to minimize the degradation of the frozen soil samples during drilling due to the increased temperature. Specifically, the discrete element method was adopted and the heat transfer parameters of the discrete element particles were calibrated based on the equivalent heat transfer of the particle system. Moreover, a lunar soil particle system was developed for the simulations. Under the current working conditions with reasonable parameters, the maximum increase in the drill bit temperature was about 60 °C. Overall, the simulation results were consistent with the experimental results, and further analysis revealed that the flow of lunar soil can effectively take away thermal, which is also one of the reasons why the simulated lunar soil particles are in a high-temperature state at the front of the drilling tool.

Funder

National Natural Science Foundation of China

Science and Technology Program of Guangzhou

2021 Guangzhou University full-time graduate “Basic Innovation” project

Publisher

MDPI AG

Subject

Aerospace Engineering

Reference26 articles.

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3. Progress in in-situ development and utilization of water ice resources in lunar polar region;Wang;J. Deep Space Explor.,2020

4. A mechanistic model for the thermal conductivity of planetary regolith: 1. The effects of particle shape, composition, cohesion, and compression at depth;Stephen;Icarus,2020

5. Invariance of conveying capacity for drilling into lunar soil simulant;Chen;Adv. Space. Res.,2019

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