油气藏评价与开发 ›› 2023, Vol. 13 ›› Issue (6): 726-740.doi: 10.13809/j.cnki.cn32-1825/te.2023.06.003
张育平1(),杨潇2,刘俊1,刘博洋3,汤伏蛟2(),谭忆秋2
收稿日期:
2023-03-13
出版日期:
2023-12-26
发布日期:
2024-01-03
通讯作者:
汤伏蛟(1990—),男,博士,讲师,从事能源岩土与道路工程的研究。地址:黑龙江省哈尔滨市南岗区西大直街92号哈尔滨工业大学,邮政编码:150006。E-mail: 作者简介:
张育平(1966—),男,博士,教授级高工,从事地热能开发与利用的研究。地址:陕西省西安市经开区文景路26号,邮政编码:710026。E-mail: 基金资助:
ZHANG Yuping1(),YANG Xiao2,LIU Jun1,LIU Boyang3,TANG Fujiao2(),TAN Yiqiu2
Received:
2023-03-13
Online:
2023-12-26
Published:
2024-01-03
摘要:
浅层地热可被用于路面融雪除冰,建筑供热、制冷等。闭环垂直地埋管是浅层地热资源利用最常见形式,其在终端负荷作用下与岩土体进行热量交换。单根地埋管获取地热资源能力有限,多根埋管组合形式(地埋管群)被广泛应用于地源热泵系统。然而,地下温度场受管群与岩土换热性能影响,在设计、运行等不合理条件下可导致岩土体温度场不平衡,进而造成地源热泵系统能效降低,甚至失效。因此,管群设计、运行等方案优化是解决地温场不平衡问题的必要途径。基于国内外相关研究成果,梳理管群优化设计方法、储能和去能方法、辅助热源和冷源方法、运行控制策略。其中,管群优化设计方法主要聚焦管群间距设计、排布方式等;储能和去能方法主要介绍利用太阳能、工业废热等外部热源和冷源对地下岩土体进行加热和降温等的最新研究成果;辅助热源和冷源部分重点介绍太阳能、冷却塔等在地源热泵系统中的应用;运行控制策略主要分析地源热泵系统运行控制方案,包括峰点冷热负荷运行、间歇性运行、分区运行、系统控制策略等方案。总结了管群优化设计方法、运行控制策略等,剖析了各方案的优点与不足,可为管群岩土体温度场不平衡解决方案与地源热泵系统能效提升途径提供参考。
中图分类号:
张育平, 杨潇, 刘俊, 刘博洋, 汤伏蛟, 谭忆秋. 地源热泵系统能效提升途径[J]. 油气藏评价与开发, 2023, 13(6): 726-740.
ZHANG Yuping, YANG Xiao, LIU Jun, LIU Boyang, TANG Fujiao, TAN Yiqiu. Overview of solutions to improve efficiency of ground source heat pump system[J]. Petroleum Reservoir Evaluation and Development, 2023, 13(6): 726-740.
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