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A novel lunar soil coring approach based on particle unidirectional flow effect to reduce drag and increase efficiency

机译:基于粒子单向流动效应的新型月球土壤芯片方法,减少阻力和提高效率

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摘要

Low disturbance lunar soil profile samples play an important role in the study of the evolution of the Moon and the exploration of lunar mineral resources. At present, two methods have been applied to collect lunar soil profile samples, namely drill coring (including rotary drilling and rotary-percussive drilling) and impact penetration coring. Among them, the impact penetration coring has little disturbance to the sample, but the high resistance and low filling rate limit its application prospects. In this study, the cause of the above problems was discussed and a method of reducing resistance and increasing efficiency based on the particle unidirectional flow effect was proposed. The particle unidirectional behavior was analyzed by employing the numerical simulation based on the discrete element method (DEM). Then the feasibility of this drag reduction and efficiency enhancement method was verified experimentally. The results show that the asymmetric wedge-shaped arrays on the inner and outer walls of the coring tube and the simultaneous application of a simple harmonic vibration (with a frequency of 50 Hz and amplitude of 0.6 mm) significantly improved the coring performance. Compared with the impact penetration coring, the specific energy consumption was reduced by 38.5%, the coring rate was increased by 16.4%, and the force required removing the coring tube after sampling was reduced by 84%. When the wedge-shaped arrays were replaced with the wheat awn arrays whose height was close to the median size of the simulated lunar soil particles, more particles were discharged. Compared with the impact penetration coring as well, the specific energy consumption was reduced by 48.6%, the coring rate was increased by 22.2%, and the force required removing the coring tube was reduced by 86.7%.
机译:低扰动月球土壤剖面样本在研究月亮演变和月球矿产资源的探索中起重要作用。目前,已经应用了两种方法来收集月球土壤轮廓样品,即钻孔芯(包括旋转钻孔和旋转冲击钻井)和冲击渗透芯。其中,冲击渗透芯对样品造成的干扰很小,但高抗性和低灌装速率限制其应用前景。在这项研究中,讨论了上述问题的原因,提出了一种基于粒子单向流动效果的降低抗性和提高效率的方法。通过采用基于离散元素法(DEM)的数值模拟来分析粒子单向行为。然后通过实验验证该减阻和效率增强方法的可行性。结果表明,芯管内壁和外壁上的不对称楔形阵列和同时施加简单的谐波振动(具有50Hz的频率和0.6mm的幅度)显着提高了取芯性能。与冲击渗透芯相比,特定能量消耗降低了38.5%,芯片率提高了16.4%,取样后除去牙管所需的力减少了84%。当楔形阵列被楔形阵列被小麦AWN阵列所替换,其高度接近模拟月球土壤颗粒的中值尺寸时,排出了更多的颗粒。与冲击渗透胶相比也相比,具体的能量消耗降低了48.6%,取芯率提高了22.2%,除去牙管所需的力减少了86.7%。

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