融合煤量损失模型与装备空间约束的采煤机过断层方法

Shearer fault-crossing method integrating coal loss model and equipment spatial constraints

  • 摘要: 现有的采煤机过断层方法很少顾及综采装备在顶底板、工作面推进与截割方向的空间约束及留煤量等情况,导致采煤机过断层时截割效率低、煤量损失大、经济效益差。针对该问题,提出一种融合煤量损失模型与装备空间约束的采煤机过断层方法。首先,基于断层、煤层、设备等参数信息,构建了考虑煤层厚度、断层落差、设备调整能力的采煤机过断层煤量损失模型,为精准评估煤炭损失提供了有效工具;然后,根据综采工作面开采工艺要求,建立了以采煤机、刮板输送机、液压支架姿态为约束条件的综采装备空间约束模型;最后,基于综采装备空间约束模型和过断层煤量损失模型,以高采出率、低割岩率、高通过性为优化目标,采用面积控制法规划采煤机过断层底板截割控制点,利用边界追踪算法规划采煤机过断层的顶板截割控制点,并对截割路径上的异常点进行修正,生成采煤机过断层全局最优自主截割路径。模拟试验结果表明,相同煤层厚度和设备参数下,断层落差越小、设备调整能力越强,损失煤量越少,通过性越好。现场应用验证了所提方法可以保证采煤机安全通过断层且损失煤量较小。

     

    Abstract: Existing methods for shearers to cross faults seldom account for spatial constraints on fully mechanized mining equipment with respect to the roof and floor and the working-face advance and cutting directions, or the amount of retained coal, resulting in low cutting efficiency, high coal loss, and poor economic benefits during fault crossing. To address this problem, a shearer fault-crossing method integrating a coal loss model and equipment spatial constraints was proposed. First, based on fault, coal-seam, and equipment parameters, a coal loss model for shearer fault crossing was developed that considered coal-seam thickness, fault throw, and equipment adjustment capability, providing an effective tool for accurately assessing coal loss. Then, according to the mining process requirements of a fully mechanized mining face, a spatial constraint model for fully mechanized mining equipment was established using the attitudes of the shearer, scraper conveyor, and hydraulic supports as constraints. Finally, based on the spatial constraint model for fully mechanized mining equipment and the coal loss model for fault crossing, floor cutting control points for shearer fault crossing were planned using the area control method, roof cutting control points were planned using a boundary-tracking algorithm, and anomalous points on the cutting path were corrected, with a high recovery rate, low rock-cutting rate, and high passability as the optimization objectives. A globally optimal autonomous cutting path for shearer fault crossing was then generated. Simulation results showed that, for the same coal-seam thickness and equipment parameters, a smaller fault throw and greater equipment adjustment capability corresponded to less coal loss and better passability. Field application verified that the proposed method could ensure safe shearer passage through a fault with relatively little coal loss.

     

/

返回文章
返回