矿井辅助风机采用智能机电模块的形式

V. Tauger, L. Kochneva, E. Volkov
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引用次数: 0

摘要

介绍。地下工场的高质量通风是保证安全、无事故开采的重要条件。工作区域的风情控制研究正在进行中,但尽管取得了进展,但为矿井和矿山创建可靠的自适应通风系统的问题仍然迫切需要解决。在开挖过程中,地平线上的工作系统形成了一个高度复杂的结构。辅助通风往往是实现工作区域高质量空气交换的唯一途径。研究方法。为了持续向工作区域提供估计数量的新鲜空气,并在有毒污染物浓度增加时加强通风,使用了矿井辅助风机(MAF)。提高MAF环境和经济效率的最佳途径是自动控制风机容量。结果和分析。可编程逻辑控制器(PLC)中嵌入的程序提供了比较变送器读数和参数允许的气象情况以及决定改变风扇容量的功能。如果需要改变,PLC向控制器发送适当的命令来调整风扇引擎转速。如果盲漂移是直线的,因为发射器在接收器的视线内,并且不需要中继器,那么MAF方案就简化了。当矿井为直线作业且控制任务仅限于确保向井底区域提供恒定气流时,UMP设计的复杂性最小。在所有的数据设备中,只有流量变送器留在电路中,而中继器和PLC则被排除在外。还需要注意的是,在整个掘进过程中,非调节MAF的风扇会产生多余的功耗,因此比智能机电模块(IMM)的风扇消耗更多的电量。结论。将MAF转换为IMM将为井底区域提供所需的新鲜空气,增加了矿工的安全。IMM容量的实时控制将显著降低能耗,为按照“性价比”标准优化通风创造有利条件。
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Mine auxiliary fan in the form of an intelligent mechatronic module
Introduction. High-quality ventilation of underground workings is an important condition for safe and accident-free mining. Research on aerological situation control in work areas is ongoing, but the problem of creating reliable adaptive ventilation systems for shafts and mines remains urgent despite the progress made. In course of excavation, the system of workings on the horizon develops a highly complex structure. Auxiliary ventilation is often the only way to achieve high-quality air exchange in the working area. Methods of research. To continuously provide the working area with an estimated amount of fresh air, as well as to intensify ventilation if the concentration of toxic contaminants is increased, mine auxiliary fans (MAF) are used. The best way to improve MAF environmental and economic efficiency is to automatically control the fan capacity. Results and analysis. The program embedded in the programmable logic controller (PLC) provides for comparing the transmitters readings and the aerological situation allowed by the parameters as well as making a decision on changing the fan capacity. If the change is required, the PLC sends an appropriate command to the controller to adjust the fan engine speed. The MAF scheme is simplified if the blind drift is straight because the transmitter is in the line of sight of the receiver and there is no need for a repeater. The UMP design is of a minimal complexity when the mine working is straight and the control task is limited to ensuring constant air flow supplied to the bottom-hole zone. Out of all the data devices, only the flow transmitter remains in the circuit, while the repeater and PLC are excluded. It should also be noted that during the entire period of tunneling, the fan of an unregulated MAF creates an excess power consumption, therefore consuming more electricity than the fan of an intelligent mechatronic module (IMM). Conclusions. Conversion of MAF to IMM will provide the required amount of fresh air to the bottom-hole zone increasing the safety of miners. Real-time control of IMM capacity will significantly reduce energy consumption and create favorable conditions for optimizing ventilation according to the “price-quality” criterion.
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