煤炭工程 ›› 2025, Vol. 57 ›› Issue (10): 115-122.doi: 10. 11799/ ce202510014

• 生产技术 • 上一篇    下一篇

基于实测数据驱动的煤矿制冷机房水系统能效优化研究

罗炜   

  1. 中煤西安设计工程有限责任公司,陕西 西安 710000
  • 收稿日期:2025-06-16 修回日期:2025-08-20 出版日期:2025-10-10 发布日期:2025-11-12
  • 通讯作者: 罗炜 E-mail:1072090037@qq.com

Energy-saving and consumption-reduction method for modeling and optimization of the water system in a coal mine refrigeration plant based on measured data

  • Received:2025-06-16 Revised:2025-08-20 Online:2025-10-10 Published:2025-11-12

摘要:

为解决制冷机房水系统运行能耗高及设备参数难以动态调节的问题,提出了一种基于实测数据驱动的建模与优化方法。首先,利用TRNSYS软件构建包含螺杆式冷水机组、冷冻水泵、冷却塔及管网等关键设备的制冷机房水系统运行模型。随后,通过实验测量某煤矿制冷机房冷冻水系统的实际流量数据,对TRNSYS模型进行校准与调整, 确保仿真模型精确反映实际运行状况。接着,采用粒子群优化算法(PSO)对系统中的关键运行参数(包括冷冻水供水温度、冷冻水泵的运行台数及转速比等)进行迭代搜索与优化,实现能耗最小化和系统能效优化。研究结果显示,应用粒子群优化算法后,系统在不同负荷区间的总体能耗平均降低了13.97%,验证了所提方法的有效性。该方法不仅显著降低了制冷机房水系统的运行能耗,提升了系统能效,还为类似系统的能效优化提供了可行的技术手段,具有重要的节能减排和可持续发展意义。

关键词: 能耗优化 , TRNSYS 建模 , 粒子群优化算法 , 制冷机房 , 冷水机组

Abstract:

This study aims to address the issues of high energy consumption and the difficulty in dynamically adjusting equipment parameters in the operation of water systems in refrigeration plants. A modeling and optimization method driven by measured data is proposed. First, the TRNSYS software is used to build an operational model of the refrigeration plant’s water system, incorporating key equipment such as screw-type chillers, chilled water pumps, cooling towers, and the piping network. Then, the TRNSYS model is calibrated and adjusted using experimentally measured flow data from the chilled water system of a coal mine refrigeration plant, ensuring that the simulation accurately reflects real operating conditions. Next, the Particle Swarm Optimization (PSO) algorithm is employed to iteratively search and optimize key operational parameters of the system—including chilled water supply temperature, the number of operating chilled water pumps, and pump speed ratios—with the goal of minimizing energy consumption and optimizing system efficiency. The results show that after applying the PSO algorithm, the overall energy consumption of the system across different load ranges was reduced by an average of 13.97%, demonstrating the effectiveness of the proposed method. The conclusion indicates that this method not only significantly reduces the operational energy consumption of the refrigeration plant’s water system and enhances system efficiency, but also provides a feasible technical approach for energy efficiency optimization of similar systems, holding great significance for energy conservation, emission reduction, and sustainable development.

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