仅用挖机自身传感数据,就能估算岩石碎块大小分布。
Digging for Data: Experiments in Rock Pile Characterization Using Only Proprioceptive Sensing in Excavation
- 通过挖机挖掘时的惯性响应,用小波分析提取特征。
- 实测数据表明,特征比值接近实际平均粒径比值。
- 适合矿山无人化、低成本感知场景,无需摄像头或激光雷达。
在采矿和采石行业中,破碎岩石堆的特性表征是一项基础任务,岩石经爆破后由轮式装载机运输并送至后续处理环节。本文报告了一种仅基于装载机挖掘过程中的本体感知数据,估算破碎岩石堆相对颗粒尺寸的新方法。与使用摄像头或激光雷达等外部传感器不同,该方法通过挖掘时装载机的惯性响应推断岩石破碎程度。本文扩展了此前研究中提出的利用小波分析构建与岩石破碎度成比例的特征的方法。通过大量现场实验发现,从不同粒径分布的岩石堆挖掘所得的小波特征比值,近似等于两堆岩石平均粒径的比值。实验在一家运营采石场中使用一台18吨电动负载-搬运-卸载(LHD)设备,在典型工况下完成。所提方法生成的相对粒径估计结果,与基于视觉的破碎分析工具及样品筛分结果进行了对比。
原文摘要 · Abstract (English)
Characterization of fragmented rock piles is a fundamental task in the mining and quarrying industries, where rock is fragmented by blasting, transported using wheel loaders, and then sent for further processing. This field report studies a novel method for estimating the relative particle size of fragmented rock piles from only proprioceptive data collected while digging with a wheel loader. Rather than employ exteroceptive sensors (e.g., cameras or LiDAR sensors) to estimate rock particle sizes, the studied method infers rock fragmentation from an excavator's inertial response during excavation. This paper expands on research that postulated the use of wavelet analysis to construct a unique feature that is proportional to the level of rock fragmentation. We demonstrate through extensive field experiments that the ratio of wavelet features, constructed from data obtained by excavating in different rock piles with different size distributions, approximates the ratio of the mean particle size of the two rock piles. Full-scale excavation experiments were performed with a battery electric, 18-tonne capacity, load-haul-dump (LHD) machine in representative conditions in an operating quarry. The relative particle size estimates generated with the proposed sensing methodology are compared with those obtained from both a vision-based fragmentation analysis tool and from sieving of sampled materials.
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