农业工程学报
農業工程學報
농업공정학보
2014年
24期
193-199
,共7页
热传递%相变材料%热泵%U型地热换热器%固液相变%传热性能%蓄能特性
熱傳遞%相變材料%熱泵%U型地熱換熱器%固液相變%傳熱性能%蓄能特性
열전체%상변재료%열빙%U형지열환열기%고액상변%전열성능%축능특성
heat transfer%phase change%heat pump system%U-bend ground heat exchanger%phase change backfill materials%solid-liquid phase change%heat transfer performance%energy storage characteristics
为了探讨相变回填材料固液相变对地埋管换热器蓄能传热性能的影响,建立了带有相变的垂直U型埋管换热器传热数学模型,并利用显热容法对相变材料的相变问题进行了处理。基于模型的数值求解,分析了夏冬季运行工况下相变材料固液相变对U型埋管换热器蓄能性能及其周围土壤温度热响应特性的影响规律,结果表明:同样条件下,相变材料固液相变会减缓埋管周围土壤温度变化趋势,缩小埋管热影响区域;夏季工况采用较低相变温度、冬季采用较高相变温度的相变材料均可以明显改善其换热效果,同时相变潜热大的相变材料可以明显增加地埋管的蓄能效果。研究结论对于缓解土壤热影响区域、改善地埋管换热器的蓄能传热性能具有重要意义。
為瞭探討相變迴填材料固液相變對地埋管換熱器蓄能傳熱性能的影響,建立瞭帶有相變的垂直U型埋管換熱器傳熱數學模型,併利用顯熱容法對相變材料的相變問題進行瞭處理。基于模型的數值求解,分析瞭夏鼕季運行工況下相變材料固液相變對U型埋管換熱器蓄能性能及其週圍土壤溫度熱響應特性的影響規律,結果錶明:同樣條件下,相變材料固液相變會減緩埋管週圍土壤溫度變化趨勢,縮小埋管熱影響區域;夏季工況採用較低相變溫度、鼕季採用較高相變溫度的相變材料均可以明顯改善其換熱效果,同時相變潛熱大的相變材料可以明顯增加地埋管的蓄能效果。研究結論對于緩解土壤熱影響區域、改善地埋管換熱器的蓄能傳熱性能具有重要意義。
위료탐토상변회전재료고액상변대지매관환열기축능전열성능적영향,건립료대유상변적수직U형매관환열기전열수학모형,병이용현열용법대상변재료적상변문제진행료처리。기우모형적수치구해,분석료하동계운행공황하상변재료고액상변대U형매관환열기축능성능급기주위토양온도열향응특성적영향규률,결과표명:동양조건하,상변재료고액상변회감완매관주위토양온도변화추세,축소매관열영향구역;하계공황채용교저상변온도、동계채용교고상변온도적상변재료균가이명현개선기환열효과,동시상변잠열대적상변재료가이명현증가지매관적축능효과。연구결론대우완해토양열영향구역、개선지매관환열기적축능전열성능구유중요의의。
Ground source heat pump (GSHP) has been recognized as being among the cleanest, most energy efficient and cost effective systems for residential and commercial space’s heating and cooling applications. The main advantage of using the ground as the heat source or sink of the system is that the soil temperature at tens to hundreds of meters in depth is relatively constant and is generally lower in summer and higher in winter than that of ambient air temperature. This results in an overall improvement of the system performance and thus reduces operation costs. Therefore, GSHP systems have become increasingly popular in commercial and institutional buildings. Heat transfer around vertical ground heat exchanger (GHE) is a common problem for the design and operation of GSHP. The energy storage performance of GHE and its influences on the temperature thermal response characteristics of soil around it are important for a long-term high-efficient and steady operation of GSHP systems. Thus, to enhance energy storage performance of GHE and, at the same time, reduce the effects of thermal diffuse on soil temperature are key points for the application of GSHP. In this paper, a new type of GHE with phase change backfill materials was presented to change its thermal response characteristics and heat transfer performance. Theoretically, the thermal interference radius of soil can be reduced by the phase change of phase change materials (PCM), and the energy storage performance of GHE can be improved due to the release of phase change latent heat. In order to further investigate the influences of solid-liquid phase change of phase change backfill materials on energy storage and heat transfer performance of GHE, a quasi-three dimensional heat transfer model with phase change was developed for the vertical U-bend GHE, which couples the one-dimensional fluid heat transfer in vertical direction with the two-dimensional soil transient heat transfer in level. The model was discreted by the control volume method and solved by the apparent heat capacity method. Based on the numerical solution of the model, the influences of solid-liquid phase change of PCM on energy storage performance of GHE and thermal response characteristics of soil temperature around GHE were analyzed for winter and summer mode respectively. The effects of phase change temperature and phase change latent heat of PCM on the thermal diffusivity and energy storage characteristics of GHE were discussed. The results indicate that under same conditions, the soil temperature variations trend is slow down and the thermal interference region is reduced due to the heat extraction and release during the phase change of PCM. The heat exchange performance of GHE can be evidently improved by backfilling materials with low and high phase change temperature for summer and winter respectively. At the same time, the energy storage performance can be enhanced by grouting the materials with large latent heat. The study is significant for releasing the thermal interference region of soil and improving the energy storage and heat transfer performance of GHE.