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Improved utilisation and energy performance of a mine cooling system through the control of auxiliary systems

机译:通过辅助系统的控制,提高了矿井冷却系统的利用率和能源性能

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Surface cooling and ventilation systems on deep level mines are energy intensive. The electricity price increase over the previous few years has been greater than the increase in the Rand price of gold. Mine cooling and ventilation systems are designed for a maximum thermal load. The maximum thermal load is encountered on the hottest and most humid days with the mine consuming as much water as possible. The refrigeration system is designed to maintain a temperature safety barrier when operating conditions are below the maximum thermal load. The temperature safety barrier is converted into energy saving through flow reduction. Worker safety and mine production may not be affected. Energy savings are achieved by implementing various strategies at constant boundary conditions. Implementation of these strategies results in improved utilisation and performance of the mine cooling system. A comparison was made between the performance of existing infrastructure with temperature safety barriers and the implementation of new equipment and instrumentation. An average demand saving of 1.8 MW was achieved with a case study.
机译:深层煤矿的地表冷却和通风系统耗能大。在过去几年中,电价的上涨幅度大于黄金的兰德价格涨幅。矿井的冷却和通风系统设计用于最大的热负荷。在最热和最潮湿的日子里,矿井会消耗尽可能多的水,从而会遇到最大的热负荷。制冷系统设计为在运行条件低于最大热负荷时保持温度安全屏障。温度安全屏障通过减少流量转化为节能。工人安全和矿山生产可能不会受到影响。通过在恒定边界条件下实施各种策略来实现节能。这些策略的实施可以提高矿井冷却系统的利用率和性能。在具有温度安全壁垒的现有基础设施的性能与新设备和仪器的实施之间进行了比较。通过案例研究,平均需求节省了1.8兆瓦。

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