论文标题
互锁尖峰在颗粒材料上的牵引力
Traction of Interlocking Spikes on a Granular Material
论文作者
论文摘要
互锁驱动系统通过将狭窄的清晰尖峰插入地面,并利用土壤的强度抵抗水平草稿力来产生牵引力。该系统承诺在低重力环境中轮胎缺乏重量的牵引力很少。在地球和太空2021年,我们报告了这种尖峰在粉质粘土壤土(粘性土壤)上的性能。我们发现,在这样的土壤中,临界深度以下的牵引力是由侧向土壤衰竭带提供的。我们还发现,表达式将水平的草稿力转化为足够强大的垂直穿透力,可以将狭窄的尖峰穿透到一个深度,土壤以一种自我调节的方式可以维持草稿力量。可以想象的是,像岩石或没有粘性强度的颗粒物材料相比,垂直渗透力和对水平径流力的耐药性较小,而对水平射击力的抵抗力较小,而对水平的土壤的阻力较小,这导致了一个问题,即互锁是否可以在粒状材料上产生互锁的尖峰。在这里,我们报告了现场试验,这些试验研究了干燥和不饱和湿砂中的不同尖峰设计。结果表明,松散的颗粒材料需要比凝聚力的土壤更大的尖峰,即这些较大的尖峰可靠地穿透干燥和湿润的沙子,并且它们承诺良好的牵引效率。试验表明,在沙子上,较大的尖峰直径可以提高拉动/重量比而不会损失拖流性能。
The interlock drive system generates traction by inserting narrow articulated spikes into the ground and by leveraging the soil's strength to resist horizontal draft forces. The system promises high tractive performance in low gravity environments where tires have little traction for lack of weight. At Earth and Space 2021 we reported the performance of such spikes on a silty clay loam, a cohesive soil. We found that in such soil, traction below a critical depth is provided by a zone of lateral soil failure. We also found that the articulation translates a horizontal draft force into a vertical penetration force strong enough to penetrate a narrow spike to a depth where the soil can sustain the draft force, in a self-regulating way. It is conceivable that a granular material like regolith or sand with little to no cohesive strength provides less vertical penetration resistance and less resistance to a horizontal draft force than a cohesive soil, which leads to the question of whether and how much tractive force an interlocking spike can generate on a granular material. Here we report on field trials that study different spike designs in dry and unsaturated moist sand. The results demonstrate that a loose granular material requires larger spikes than a cohesive soil, that these larger spikes penetrate dry and moist sand reliably, and that they promise good tractive efficiency. The trials indicate that on sand, a larger spike diameter can improve the pull/weight ratio without a loss of tractive performance.