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Outcomes of the Landmark Longwall Automation Project with Reference to Ground Control Issues

机译:具有里程碑意义的长城自动化项目的成果,涉及地面控制问题

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Inertial navigation technology has, for the first time, allowed the position of a longwall shearer to be mapped in three dimensions Following the success of the technology in highwall mining and successful trials on a longwall face, the Australian Coal Association Research Program (ACARP) commissioned a three year "Landmark" project that aimed to advance longwall automation to the level of "on-face observation" by the end of 2004 This project has been completed with the following successful technical outcomes:1. Automatic face alignment was achieved, using an inertial navigation-based sensor on the shearer, to accurately measure face geometry and feedback signals used to move OEM (Original Equipment Manufacturer) roof supports. 2. Operational on-line measurement of creep with creep information incorporated into face alignment corrections. 3. Inertial Navigation System (INS)-based enhanced horizon control was bench-tested. 4. Operational broadband communications system to shearer using wireless Ethernet on a commercial-product basis. 5. Acquisition of located coal-face features for use in thermal infrared-based horizon control. 6. Automated Longwall Information System (LIS) developed which integrates information from multiple systems and sensors and provides high quality visualisation and control interfaces. 7. Automatic roadway and face convergence monitoring tools successfully tested. 8. Condition monitoring tools developed and demonstrated for improved face reliability. This paper summarises the outcomes of the project and describes the work being undertaken for the 2 year Landmark Extension project approved in April 2005 Consistent with the conference theme, the paper focuses on the ground control aspects of the project.
机译:惯性导航技术首次允许在三个维度上绘制长壁采煤机的位置。随着该技术在高壁采矿中的成功应用以及在长壁工作面上的成功试验之后,澳大利亚煤炭协会研究计划(ACARP)进行了委托一个为期三年的“地标”项目,旨在到2004年底将长壁自动化提高到“现场观察”水平。该项目已经完成,取得了以下成功的技术成果: 1.使用采煤机上的基于惯性导航的传感器,实现了自动面部对齐,可以精确测量面部几何形状和用于移动OEM(原始设备制造商)屋顶支架的反馈信号。 2.将蠕变信息合并到面对齐校正中,进行蠕变的操作在线测量。 3.基于惯性导航系统(INS)的增强水平控制系统进行了台架测试。 4.以商业产品为基础,使用无线以太网的采煤机的操作性宽带通信系统。 5.采集已定位的煤层特征,以用于基于红外的热能水平控制。 6.开发的自动长壁信息系统(LIS)集成了来自多个系统和传感器的信息,并提供了高质量的可视化和控制界面。 7.成功测试了自动巷道和工作面收敛监控工具。 8.开发并演示了状态监测工具,以提高人脸的可靠性。 本文总结了该项目的成果,并描述了为期2年,于2005年4月获得批准的地标扩展项目的工作。与会议主题一致,本文着重讨论了该项目的地面控制方面。

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