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基于聚类的双温度优化控制基站空调节能算法
信息技术与网络安全 3期
代凯旋1,曾献辉1,2,詹 麟1
(1.东华大学 信息科学与技术学院,上海201620;2.数字化纺织服装技术教育部工程研究中心,上海201620)
摘要: 基站空调的节能是电信行业节能减排十分重要的一环,通过数据挖掘方法从空调系统运行数据中找到提升运行性能的规则和手段,具有重要的现实意义和研究价值。针对基站空调的节能减排问题,对基站实时采集到的数据流,首先建立空调节能模型找到目标约束条件下最优控制温度;随后针对空调启停次数频繁的问题继续提出双温度控制模型,减少空调启动次数的同时进一步降低了空调能耗;最后为了应对室外温度、设备能耗等一些不确定因素的变化,提出了基于聚类的空调温度分段控制算法并加以改进,通过聚类结果分析得到对应的用电模式,对不同用电模式分别设计相应控制策略,最终实现了基站空调能耗降低25%的效果,为企业空调节能控制提供了可靠依据。
中图分类号: TK01+8;TP301.6
文献标识码: A
DOI: 10.19358/j.issn.2096-5133.2022.03.008
引用格式: 代凯旋,曾献辉,詹麟. 基于聚类的双温度优化控制基站空调节能算法[J].信息技术与网络安全,2022,41(3):44-49.
An energy saving algorithm of base station air conditioning based on clustering for dual temperature optimization control
Dai Kaixuan1,Zeng Xianhui1,2,Zhan Lin1
(1.College of Information Science and Technology,Donghua University,Shanghai 201620,China; 2.Engineering Research Center of Digitized Textile & Apparel Technology,Ministry of Education,Shanghai 201620,China)
Abstract: he energy saving of base station air conditioning is a very important part of energy saving and emission reduction in telecom industry. It has important practical significance and research value to find rules and means to improve operation performance from the operation data of air conditioning system through data mining method. Aiming at the problem of energy saving and emission reduction of base station air conditioning, based on the real-time data stream collected by base station, this paper firstly established the air conditioning energy saving model to find the optimal control temperature under the target constraint conditions. Then, aiming at the problem of frequent start and stop times of air conditioning, a dual-temperature control model was proposed to reduce the number of air conditioning starts and further reduce the energy consumption of air conditioning. Finally,in order to deal with outdoor temperature, the change of some uncertain factors such as equipment energy consumption, the segmentation control algorithm of air conditioning temperature was proposed based on clustering algorithm and improved, and the corresponding mode of power was obtained by analyzing the clustering results. The corresponding control strategies were designed for different power modes,finally achieved the effect of base station air conditioning energy consumption reduced by 25%. It provides a reliable basis for enterprise air conditioning energy saving control.
Key words : air conditioning energy saving;dual temperature control;electricity consumption mode;clustering algorithm

0 引言

通信行业作为国民经济重要的组成部分,一直保持着持续发展的态势。随着5G时代的到来,用户和数据需求的指数增长,每年将会有12万个新的基站被部署[1]。基站通信设备运行过程中产生的热量将直接导致机房温度升高,而过高的温度又会影响通信设备的稳定性、安全性和使用寿命,因此机房基本都是采取常年不间断运行空调的措施来降低机房温度,所带来的能源消耗巨大。据权威统计表明,目前在我国通信行业中,基站空调的耗电量约占基站总能耗的20%~40%[2],每年耗电高达70亿千瓦时。因此,在保证通信设备正常运行的前提下,挖掘基站空调的节能潜力对电信行业具有十分重要的意义。




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作者信息:

代凯旋1,曾献辉1,2,詹  麟1

(1.东华大学 信息科学与技术学院,上海201620;2.数字化纺织服装技术教育部工程研究中心,上海201620)


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