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1.
岩土热物理性质是影响地源热泵系统设计和运营的关键因素,对位于武汉市洪山区的2口不同深度的同轴地埋管换热孔分别进行48 h的热响应试验,并对同轴地埋管换热器内外管之间环形空间中的平均流体温度进行测试.根据同轴地埋管换热器的几何特性,以简便实用的方式测量同轴地埋管换热器环状空间传热流体的平均温度,结合同轴地埋管换热器钻孔热...  相似文献   

2.
为了研究中深层地热地埋管运行期间和热恢复过程中周围岩土温度变化趋势以及热恢复后岩土对竖直地埋管运行稳定性的影响。基于关中地区地质岩层数据,结合西咸新区中深层地热地埋管供暖系统实际工程应用,利用有限元仿真软件模拟分析了中深层地埋管换热器对周围岩土影响规律。结果表明: 四个月的取暖运行,在岩土上层,由于流体温度较高出现逆向换热区;在岩土下层,温度随着深度的增加降幅较大,并且在深度方向表现为线性增势;在不考虑地下水渗流的情况下,岩土取热后经过八个月的热恢复,恢复后最大温差为3.02℃,恢复后平均温差为1.30℃。岩土热恢复温差对地埋管的长期运行无显著影响,可长期持续稳定运行。实践表明,由于地层结构、地层压力、放射性衰变、地层导热等多方面因素的影响,2 000 m以下地层温度恢复迅速,并未出现明显的温度衰减,充分体现了地球恒温体的特性。  相似文献   

3.
当前我国各行业均关注“碳中和”目标,电动汽车作为新能源材料和器件在交通行业实现节能环保目标的代表性载体之一,对我国实现碳中和目标有着重要意义。动力电池是电动汽车的重要组成部分,迫切需要解释其“碳中和”特性。将锂离子电池组在生产阶段的各类环境影响作为研究对象,采用生命周期评价方法,分析生产锂离子电池的过程中,成分组成对环境的综合影响。结果表明,硫化铁固态电池组(FeS2SS)在足迹家族、资源耗竭和毒性损害的11类三级指标中环境潜值都较小,说明FeS2SS电池组在生产阶段产生的综合环境影响较小,而磷酸铁锂-石墨电池(LFPy-C)、三元锂-硅纳米管电池(NMC-SiNT)、三元锂-硅纳米线电池(NMC-SiNW)在各项环境影响值中贡献程度均较高。为实现碳中和目标,减少碳排放,NMC-SiNW、LFPy-C、NMC-C三种电池组的生产应进行优化。  相似文献   

4.
以工程场地测试孔内岩土体垂直分布的热物性参数为研究对象。在传统热物性测试仪器中加入分布式光纤测温系统,进行岩土体初温测试和热物性测试,测定不同深度岩土体初温和加热试验中不同深度循环流体平均温度,并与传统测试结果进行对比分析。结果显示,分层热物性测试结果较为准确,可分析岩土体垂直方向温度分布,进而得出地埋管换热器在垂直方向上导热系数和传热系数。  相似文献   

5.
目前中深层地热能受到了广泛的关注,文章基于有限差分法建立双管中深层换热器数值模型,并通过FLUENT软件对模型进行校验。利用双管模型研究了埋管间距、岩土热物性等因素对双管换热器换热性能的影响。计算结果表明:增大埋管间距可以有效缓解地下岩土冷量堆积的现象,埋管间距较小时,埋管中心点处温度更低;当埋管间距大于50 m时,双管换热器的换热特性与单管近似;当埋管深度增加时,可以适当减小埋管间距;岩土导热系数较大时,需要加大埋管间距;岩土体积比热对换热器影响较大,实际工程中需要根据岩土体积比热大小调整埋管间距。  相似文献   

6.
王君  王矗垚  季杰 《新能源进展》2021,9(4):300-310
针对新徽派民居中存在的建筑能耗大、热舒适性差及室内空气品质低等问题,探索在保持建筑典型特点的前提下,将太阳能光伏光热建筑一体化(BIPV/T)新技术和新方法在新徽派民居中综合运用。文章主要基于作者团队最新的研究,探讨了兼顾“黛瓦”的光伏瓦技术、兼顾“粉壁”的集热-除甲醛多效墙体技术、兼顾“马头墙”的通风-除菌杀毒多效太阳能烟囱技术、兼顾“青砖”的光伏装饰技术、兼顾“门楼”的平板型PV/T技术、兼顾“花格窗”的碲化镉光伏通风窗技术在新徽派民居中应用的可行性。通过一典型案例设计,基于Energyplus软件对其全年发电量、热水、室温、房间冷热负荷及通风性能进行模拟研究。结果表明,BIPV/T技术可以在发电的同时降低空调负荷、改善室内环境,节能效果显著。  相似文献   

7.
高天飞  韩旭  耿一超  张华  范子豪 《节能》2023,(11):25-28
在管壳式换热器中并联填充多级相变材料或填充单相变材料,比较两种传热装置的传热性能,分析相变材料在两种换热器的换热过程中的熔化特性、换热速率。结果显示:对于相变材料三级并联填充的换热器,相变材料完全熔化时间沿换热内管(热工质流体)轴心往外逐渐增加;在所有相变材料均完成相变之前,其三级并联相变材料的熔融前沿呈曲线状;相变材料三级并联填充的换热器的最高换热速率是单相变材料填充的1.03倍;热工质流体入口温度不变时,增加热工质流体流量可以在一定限度上增加相变材料三级并联填充的换热器的换热效率;但热工质流体流量过大会在一定限度上降低相变材料三级并联填充的换热器的换热效率。  相似文献   

8.
罗婷婷  王林  裴鹏  杨斌  邹行 《太阳能学报》2022,43(7):485-492
通过设计“量筒法”代替环刀法和选用热重法,分别测量地下水渗入换热孔内回填材料的饱和含水率和残余含水率,用滤纸法测量基质吸力与含水率数据,然后基于含水率计算出不同深度下回填材料热特性参数。结果表明,高吸力值时材料的含水率更低,假设饱水带最高点为地下水位线0点,在距地下水位线100 m处仅有3.6%含水率;对比软件模拟数据与实测点,发现所选用的设计方法与拟合结果相近;与干实回填材料相比,受地下水渗入的换热孔下段靠近水位线处蓄热能力更强,温度变化相对延迟,但导热能力和热扩散能力都有所减弱,中上段蓄热和导热能力减弱,但热扩散能力增强。  相似文献   

9.
针对弃风严重以及传统供暖方式存在难以“热电解耦”的问题,提出一种将蓄热式电锅炉、燃气锅炉、吸收式制冷机相结合的“电气互补-冷热联供”弃风消纳模式。首先,根据弃风和冷热负荷特性建立“电气互补-冷热联供”模型;然后,考虑供暖与制冷成本,构建“电气互补-冷热联供”经济性模型;最后,通过算例分析与传统“燃气锅炉-空调”供暖制冷模型的经济性进行对比。结果表明:所提模式可在消纳弃风的同时减少碳排放量,达到提升系统收益的目的。  相似文献   

10.
针对热电联产机组供热期发电负荷受供热量限制,机组调峰能力下降、电力系统弃风弃光现象严重的问题,设计了一种新型蓄热式管壳换热器。利用相变材料蓄/放热过程中温度接近恒定、释放潜热量大等优点,选取石蜡为相变材料,换热器相变区作为换热单元,采用控制变量法,针对传热流体流速、相变材料导热系数及相变层厚度等关键因素,对换热单元的蓄/放热过程进行数值模拟。结果表明:提高传热流体流速可增强换热单元蓄热能力,缩短相变材料完全熔化时间,放热过程中为保证换热器输出端热量,应适当选取传热流体流速;使用复合材料提高相变材料导热系数能够增强换热单元的换热能力,在相同传热流体流速下使换热单元平均传热系数较纯石蜡工况提升2倍以上;增加相变层厚度在放热过程中可延长传热流体出口温度维持的时间。  相似文献   

11.
This article presents a quantitative analysis of the effects of sand–bentonite backfill materials on the thermal performance of borehole heat exchangers (BHEs). Laboratory thermal probe tests were conducted to measure the thermal conductivity of sand–bentonite mixtures under different mixed ratios. Based on microscopic observations, the mechanism of bentonite affecting heat conduction between the sand grains was analyzed. Then field tests were carried out to compare the thermal performance of two double U-shaped BHEs with different backfill materials. Test results showed that the thermal conductivity of sand–bentonite mixtures first increased with increasing percentage of bentonite by dry mass, then reached a peak at the range from 10% to 12%, beyond which the thermal conductivity decreased quickly. For the BHE with an optimal sand–bentonite backfill material, the heat injection and heat extraction rate were enhanced on average by 31.1% and 22.2%, respectively, compared with the case with a common sand–clay material. These results can provide helpful guide for the design of ground source heat pump systems.  相似文献   

12.
The system performance of a ground source heat pump (HP) system is determined by the HP characteristics itself and by the thermal interaction between the ground and its borehole heat exchanger (BHE). BHE performance is strongly influenced by the thermal properties of the ground formation, grouting material, and BHE type. Experimental investigations on different BHE types and grouting materials were carried out in Belgium. Its performances were investigated with in situ thermal response tests to determine the thermal conductivity (λ) and borehole resistance (Rb). The line‐source method was used to analyze the results, and the tests showed the viability of the method. The main goal was to determine the thermal borehole resistance of BHEs, including the effect of the grouting material. The ground thermal conductivity was measured as 2.21 W m?1 K?1, a high value for the low fraction of water‐saturated sand and the high clay content at the test field. The borehole resistance for a standard coaxial tube with cement–bentonite grouting varied from 0.344 to 0.162 K W?1 m for the double U‐tube with cement–bentonite mixture (52% reduction). Grouting material based on purely a cement–bentonite mixture results in a high thermal borehole resistance. Addition of sand to the mixture leads to a better performance. The use of thermally enhanced grouts did not improve the performance significantly in comparison with only a low‐cost grouting material as sand. Potential future applications are possible in our country using a mobile testing device, such as characteristics, standardization, quality control, and certification for drilling companies and ground source HP applications, and in situ research for larger systems. Copyright © 2011 John Wiley & Sons, Ltd.  相似文献   

13.
竖直U型埋管地热换热器热短路现象的影响参数分析   总被引:6,自引:0,他引:6  
沈国民  张虹 《太阳能学报》2007,28(6):604-607
通过引入换热器出口最高流体温度的概念,对地源热泵竖直U型埋管地热换热器的热短路现象进行了量化,基于竖直U型埋管周围的瞬时有限元模型,对影响热短路现象的主要参数(支管间距和回填料导热系数)进行了模拟分析,得出了量化结果。结果表明,增大支管间距可降低换热器出口最高流体温度,减小由热短路现象引起的热损失;回填料的导热系数对热短路现象的影响较大,当回填料导热系数小于周围土壤的导热系数时,增大回填料导热系数对减小热短路损失有较大作用,而当回填料导热系数大于土壤导热系数时则作用不大,推荐使用导热系数与周围土壤导热系数接近的回填材料。  相似文献   

14.
以深层地源热泵地埋管换热器为研究对象,对其换热特性进行数值模拟和实验研究。建立考虑轴向地温梯度的深层地埋管换热器传热模型并进行模拟计算,通过示范工程现场测试数据验证该模型的正确性。对深层地埋管换热器换热的性能稳定性进行研究,发现深层地埋管换热器连续长期运行及间歇长期运行下换热性能基本稳定。当按不同运停比运行时,岩土温度恢复效果良好。研究结果表明深层地源热泵有较好的换热性能及运行稳定性,为深层地热能的开发利用提供了新思路。  相似文献   

15.
In this study, a series of computational fluid dynamics (CFD) numerical analyses was performed in order to evaluate the performance of six full‐scale closed‐loop vertical ground heat exchangers constructed in a test bed located in Wonju, South Korea. The high‐density polyethylene pipe, borehole grouting and surrounding ground formation were modeled using FLUENT, a finite‐volume method program, for analyzing the heat transfer process of the system. Two user‐defined functions accounting for the difference in the temperatures of the circulating inflow and outflow fluid and the variation of the surrounding ground temperature with depth were adopted in the FLUENT model. The relevant thermal properties of materials measured in laboratory were used in the numerical analyses to compare the thermal efficiency of various types of the heat exchangers installed in the test bed. The numerical simulations provide verification for the in‐situ thermal response test (TRT) results. The numerical analysis with the ground thermal conductivity of 4.0 W/m?K yielded by the back‐analysis was in better agreement with the in‐situ TRT result than with the ground thermal conductivity of 3.0 W/m?K. From the results of CFD back‐analyses, the effective thermal conductivities estimated from both the in‐situ TRT and numerical analysis are smaller than the ground thermal conductivity (=4.0 W/m?K) that is input in the numerical model because of the intrinsic limitation of the line source model that simplifies a borehole assemblage as an infinitely long line source in the homogeneous material. However, the discrepancy between the ground thermal conductivity and the effective thermal conductivity from the in‐situ TRT decreases when borehole resistance decreases with a new three pipe‐type heat exchanger leads to less thermal interference between the inlet and outlet pipes than the conventional U‐loop type heat exchanger. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献   

16.
This paper proposed a transient numerical model for a coaxial borehole heat exchanger, which considered the impact of borehole specific heat capacity. The fluid vertical temperature distribution inside the coaxial borehole heat exchanger (BHE) had been predicted based on MATLAB and compared with other transient models. Validated by measured data from a thermal response test, the built model agreed better than other models, especially in short times, with a relative error of 3.63% in 2 hours. Then, the quantitative influences of borehole specific heat capacity and other parameters on thermal performance of borehole heat exchangers were specified.  相似文献   

17.
An experimental study is performed to determine the performance of a ground source heat pump (GSHP) system in the heating mode in the city of Erzurum, Turkey. The GSHP system using R‐134a as refrigerant has a single U‐tube ground heat exchanger (GHE) made of polyethylene pipe with a 16 mm inside diameter. The GHE was placed in a vertical borehole with 55 m depth and 203.2 mm diameter. The average coefficients of performance (COP) of the GSHP system and heat pump in heating mode are calculated as 2.09 and 2.57, respectively. The heat extraction rate per meter of the borehole is determined as 33.60 W m?1. Considering the current gas and electric prices in Erzurum city, the equivalent COP of the GSHP system should be 2.92 for the same energy cost comparing with natural gas. The virgin ground in Erzurum basin has high permeability and low thermal conductivity. In order to improve the thermal efficiency of GHE and thus improve COP of a GSHP in the basin, the borehole should be backfilled with sand as low‐cost backfill material and a 1 to 2 m thick surface plug of clay should be inserted. Copyright © 2007 John Wiley & Sons, Ltd.  相似文献   

18.
为探究相变温度对相变材料回填地埋管换热器传热性能的影响,建立管内流体换热、回填区域相变换热及土壤换热的三维耦合传热数值模型,利用焓-多孔介质模型对相变区域相变问题进行处理,研究夏季间歇运行工况下不同相变温度回填材料对埋管换热器传热性能的影响。结果表明:添加PCM,可有效提高换热量,短期内缓解埋管周围热积聚,利用相变温度18℃的PCM回填,单位井深换热量至少比普通材料回填提高49.54%;在间歇运行初期,换热量随相变温度的升高逐渐减小,低相变温度的PCM可明显改善埋管换热量,但随着时间的进行,较高相变温度PCM回填对换热器换热量的改善效果优于前期低相变温度。此外,在运行期间,不同相变温度的PCM表现出不同的熔化、凝固特性,当PCM的熔化、凝固过程交替进行时,可减缓土壤温度在运行期间内波动幅度。  相似文献   

19.
Seasonal energy storage is an important component to cope with the challenges resulting from fluctuating renewable energy sources and the corresponding mismatch of energy demand and supply. The storage of heat via medium deep borehole heat exchangers is a new approach in the field of Borehole Thermal Energy Storage. In contrast to conventional borehole storages, fewer, but deeper borehole heat exchangers tap into the subsurface, which serves as the storage medium. As a result, the thermal impact on shallow aquifers is strongly reduced mitigating negative effects on the drinking water quality. Furthermore, less surface area is required. However, there are no operational experiences, as the concept has not been put into practice so far. In this study, more than 250 different numerical storage models are compared. The influence of the characteristic design parameters on the storage system's behaviour and performance is analysed by variation of parameters like borefield layout, fluid inlet temperatures and properties of the reservoir rocks. The results indicate that especially larger systems have a high potential for efficient seasonal heat storage. Several GWh of thermal energy can be stored during summertime and extracted during the heating period with a high recovery rate of up to 83%. Medium deep borehole heat exchanger arrays are suitable thermal storages for fluctuating renewable energy sources and waste heat from industrial processes. Copyright © 2016 John Wiley & Sons, Ltd.  相似文献   

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