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1.
何宽  柳建华  余肖霄 《制冷学报》2019,40(5):118-123
本文对R290在5mm小管径内的流动沸腾换热特性进行实验研究,重点研究热流密度、质量流率及饱和温度对沸腾换热表面传热系数的影响。实验工况为:热流密度10~60 k W/m2、饱和温度15~25℃、质量流率50~200 kg/(m2·s)、干度0. 1~0. 9。结果表明:增加热流密度可实现强化换热,提高表面传热系数,使干涸现象提前发生,并加剧干涸;质量流率在低干度区间对表面传热系数的影响较小,在中干度和高干度区间表面传热系数与质量流率分别呈正相关;当热流密度较低时,在中干度区间,增大饱和温度会使表面传热系数降低;而在较高的热流密度下,增大饱和温度明显引起表面传热系数的上升。  相似文献   

2.
对R32在水平光滑管和微肋管(外径均为7mm)内的沸腾换热特性展开试验研究,测试的制冷剂质量流速为100~250 kg/(m~2·s),饱和蒸发温度为7~11℃,热流密度为3~8 kW/m~2,测试管内制冷工质平均干度值为0~0.7。试验结果表明:热流密度是影响R32沸腾换热系数的主导因素之一,质量流速的增大、饱和蒸发温度的升高、热流密度的增大均有利于提高R32的沸腾换热系数;微肋管有强化传热的效果,其平均沸腾换热系数比光管增大11.8%~33.2%;干度对R32沸腾换热系数的影响比较复杂,R32的沸腾换热系数随干度的增加先增大后减小,这是由于出现了干涸值,本文试验测得的干涸值范围为0.41~0.57,制冷剂质量流速的降低和热流密度的增大均有利于干涸值的增大。  相似文献   

3.
氨制冷剂存在可燃性和毒性,因此减少其在制冷系统中的充注量极为重要。小管径换热管通常可以提供更高的表面传热系数,这可以作为提升换热器紧凑性同时减少系统中充注量的有效方法。本文搭建了氨制冷剂管内流动沸腾换热及压降测试实验装置,测试了氨制冷剂在4 mm水平光管内的流动沸腾换热及压降,并分析了干度、质量流速及热流密度对换热及压降特性的影响。结果表明:流动沸腾换热表面传热系数随着干度的增加而增大,同时质量流速和热流密度越高,流动沸腾换热表面传热系数越大。此外,氨制冷剂在管内的两相摩擦压降也随着干度的增加而增大,在固定干度下,质量流速的升高导致压降增大。  相似文献   

4.
为实现微小空间高效散热,本文以去离子水为工质,实验研究了工质流经高度和直径均为500μm的微圆柱组成的叉排微柱群通道时的饱和沸腾换热特性,并采用高速摄像机记录了通道内不同加热功率的气液两相流型,实验参数设定质量流速为341~598.3 kg/(m~2·s),热流密度为20~160 W/cm~2,蒸气干度为0~0.2。结果表明:随着热流密度增大,局部沸腾换热表面传热系数近似单调递减。在低干度区,局部沸腾换热表面传热系数随着质量流速的增加而增大,随着蒸气干度的增加而减小;受过冷沸腾气泡影响,工质进口温度越低,局部沸腾换热表面传热系数越大;随着热流密度增大,微柱群通道流动沸腾气泡流型依次为:泡状流、环状流,且泡状流区的局部沸腾换热表面传热系数明显高于环状流区。  相似文献   

5.
R134a水平微细管内流动沸腾换热的实验研究   总被引:2,自引:0,他引:2       下载免费PDF全文
本文对R134a在水平微细管内的流动沸腾进行了实验研究。实验测试段选用了内径为1 mm、2 mm、3 mm共3种不同的水平光滑不锈钢管,实验的饱和温度为5~30℃,热流密度为2~70 k W/m2,流量范围为200~1500 kg/(m2·s)。实验结果表明:相同条件下,干涸前2 mm管较3 mm管换热系数平均增幅为11.6%,1 mm管较2 mm管换热增幅为26.3%,1 mm管径换热系数比3 mm管径平均增大40.8%。随着管径的减小,换热系数在更低的干度开始减小,质量流速和强制对流蒸发作用对换热系数的影响变小,热流密度的影响依然显著;塞状流和弹状流区域减小,泡状流和环状流区域增大。  相似文献   

6.
R404A在小管径管内流动沸腾换热特性研究   总被引:1,自引:0,他引:1       下载免费PDF全文
R404A在小管径管内的流动沸腾换热过程是一个极其复杂的物理现象。目前对R404A换热特性的研究大多集中在大管径上,对小管径换热特性的研究较少,且对不同实验现象的机理分析也不尽相同。因此R404A在小管径管内换热特性的理论研究仍需要大量具体的实验数据来支撑。本文通过搭建小管径内螺纹铜管蒸发实验台,研究R404A在小管径管内流动沸腾换热过程中不同热流密度、不同蒸发干度、不同质流密度、不同饱和温度对表面传热系数的影响,研究表明:热流密度、干度、质流密度、饱和温度均对R404A在小管径管内换热特性的影响较大,干涸现象发生前后这些因素产生的影响也不同。此外,这些因素对管内干涸现象发生的起始干度、沸腾主要换热形式以及干涸现象是否发生具有直接影响。  相似文献   

7.
本文对水平微细圆管内R290流动沸腾的流态进行了可视化研究,分析不同管径下流动沸腾换热主要流态形式及影响因素,基于理论流态图对比分析流态转变规律。实验工况:热流密度1~70 kW/m2,质量流率50~1 020 kg/(m2·s),饱和温度-10~25℃,管径1~3 mm,干度0~1。实验中共观察到8种R290微细通道内流动沸腾换热流态,其中间歇流和波状流为3 mm管的主要换热流态,弹状流和环状为1 mm管的主要换热流态;实测流态图中3 mm管的泡状流、混状流,2 mm管的泡状流,1 mm管的弹状流与D&W流态转变准则较为吻合,而2 mm管和1 mm管的离散流区域匹配性较差;管径的变化对流态有重要影响,随着管径的减小,气泡形状、流态形式、流态分布及流态转变曲线均发生变化,管径微尺度效应出现。  相似文献   

8.
冯光东  柳建华  张良  何宽 《制冷学报》2020,41(1):140-145
本文搭建了冷凝换热实验台,对R410A和R22管内冷凝换热系数性能进行对比研究,实验工况为质量流速200~800kg/(m^2·s)、饱和温度40℃、干度0~1、5 mm外径水平光滑铜管,分析了质量流速和干度对管内冷凝换热的影响,并将应用于传统管道的关联式与实验所得数据进行对比。结果表明:冷凝换热表面传热系数与质量流速和干度呈正相关,高干度区域时的冷凝换热表面传热系数增幅显著;M. M. Shah[4]关联式来预测实验数据的效果并不理想,与实际值相比偏差最大可达60%,但是预测低质量流速和低干度区的数据较为理想;当质量流速较小(G=200 kg/(m^2·s))时,R410A的冷凝换热表面传热系数要低于R22;随着质量流速的增大(G=400 kg/(m^2·s)),二者冷凝换热表面传热系数的差距减小;当达到中高质量流速(G=600kg/(m^2·s))时,R410A的冷凝换热表面传热系数与R22的相似;当质量流速继续增大(G=800 kg/(m^2·s))时,R410A的冷凝换热表面传热系数随着干度的增大开始高于R22的。  相似文献   

9.
对R32在?5 mm的水平光管内的流动沸腾换热与压降特性进行试验研究和理论分析。试验的蒸发温度为5℃,质量流量范围为100~500 kg/(m2·s),热流密度为8~24 kW/m2。结果表明,沸腾换热系数在1~8 kW/(m2·K)之间,压降在1~4 kPa/m之间。沸腾换热系数随着干度增大而增大,质量流量的增大和热流密度的增大都有利于换热系数的增加。质量流量的变化对压降的影响比较明显。与R32在?7 mm管内流动传热性能相比,换热系数提高了30%左右。将得到的沸腾换热系数和压降试验数据与多个模型的预测结果进行比较,发现多数换热经验关联式的预测误差较大,仅有Fuji-Nagata关联式的预测值与试验值较为接近;压降的预测误差相对较小。  相似文献   

10.
为研究流体物性、流动和换热过程的状态参量对微通道内沸腾换热特性的影响规律,本文采用去离子水和无水乙醇在当量直径为0.293 mm的矩形微通道进行了不同质量流量和热流密度条件下的沸腾换热实验研究,通过对实验数据的计算和处理,分析总结了流体的热物性、质量流量、热流密度、干度和Bo数等参量对沸腾换热系数的影响规律。结果表明:沸腾换热系数随着热流密度、干度和Bo数的增大而降低,核态沸腾占主导地位;相同的质量流量和热流密度条件下,去离子水的沸腾换热系数明显高于无水乙醇的沸腾换热系数,并且前者的换热系数随质量流量的增大而增大,而后者变化不明显。根据考虑了通道尺寸效应及流体物性参量总结出的换热系数关联式进行了计算,计算结果对去离子水和无水乙醇的平均绝对误差分别为14.2%和16.6%,可认为该关联式适用于微通道内沸腾换热系数的预测。  相似文献   

11.
This study investigated the effect of tube diameter on flow boiling characteristics of refrigerant R32 in horizontal small-diameter tubes with 1.0, 2.2, and 3.5 mm inner diameters. The boiling heat transfer coefficient and pressure drop were measured at 15 °C saturation temperature. The effects of mass velocity, heat flux, quality, and tube diameter were clarified. The flow pattern of R32 for adiabatic two-phase flow in a horizontal glass tube with an inner diameter of 3.5 mm at saturation temperature of 15 °C was investigated. Flow patterns such as plug, wavy, churn, and annular flows were observed. The heat transfer mechanisms of forced convection and nucleate boiling were similar to those in conventional-diameter tubes. In addition, evaporation heat transfer through a thin liquid film in the plug flow region for low quality, mass velocity, and heat flux was observed. The heat transfer coefficient increased with decreasing tube diameter under the same experimental condition. The fictional pressure drop increased with increasing mass velocity and quality and decreasing tube diameter. The experimental values of the heat transfer coefficient and frictional pressure drop were compared with the values calculated by the empirical correlations in the open literature.  相似文献   

12.
This study examined convective boiling heat transfer in horizontal minichannels using R-22, R-134a, and CO2. The local heat transfer coefficients were obtained for heat fluxes ranging from 10 to 40 kW m−2, mass fluxes ranging from 200 to 600 kg m−2 s−1, a saturation temperature of 10 °C, and quality up to 1.0. The test section was made of stainless steel tubes with inner diameters of 1.5 mm and 3.0 mm, and a length of 2000 mm. The section was heated uniformly by applying an electric current to the tubes directly. Nucleate boiling heat transfer was the main contribution, particularly at the low quality region. An increasing and decreasing heat transfer coefficient occurred at the lower vapor quality with increasing heat flux and mass flux. The mean heat transfer coefficient ratio of R-22:R-134a:CO2 was approximately 1.0:0.8:2.0. Laminar flow was observed in the minichannels. A new boiling heat transfer coefficient correlation based on the superposition model for refrigerants in minichannels was developed with a mean deviation of 11.21%.  相似文献   

13.
实验研究了填充泡沫金属的圆管内制冷剂与润滑油混合物流动沸腾换热特性。实验对象为两根分别填充5PPI、90%孔隙率与10PPI、90%孔隙率泡沫铜的圆管,以及相同管径的光管。实验工况为蒸发压力995kPa,质流密度为10~30 kg/(m2.s),热流密度为3.1~9.3kW/m2,入口干度0.175~0.775,油浓度为0~5%。实验结果表明:纯制冷剂工况下,泡沫金属的存在强化流动沸腾换热,换热系数最多提高185%;含油工况下,泡沫金属强化换热的效果弱化;相同工况下,更小的孔径可以提高流动沸腾换热系数,相比5PPI泡沫金属的实验数据,10PPI的泡沫金属可以使换热系数最多提高0.6倍。基于流型建立了填充泡沫金属的圆管内制冷剂与润滑油流动沸腾换热系数的预测模型,预测模型与98%的实验数据误差在±30%以内。  相似文献   

14.
Horizontal smooth and microfinned copper tubes with an approximate diameter of 9 mm were successively flattened in order to determine changes in flow field characteristics as a round tube is altered into a flattened tube profile. Refrigerants R134a and R410A were investigated over a mass flux range from 75 to 400 kg m−2 s−1 and a quality range from approximately 10–80%. For a given refrigerant mass flow rate, the results show that a significant reduction in refrigerant charge is possible. Pressure drop results show increases of pressure drop at a given mass flux and quality as a tube profile is flattened. Heat transfer results indicate enhancement of the condensation heat transfer coefficient as a tube is flattened. Flattened tubes with an 18° helix angle displayed the highest heat transfer coefficients. Smooth tubes and axial microfin tubes displayed similar levels of heat transfer enhancement. Heat transfer enhancement is dependent on the mass flux, quality and tube profile.  相似文献   

15.
Experiments were performed on the convective boiling heat transfer in horizontal minichannels with CO2. The test section is made of stainless steel tubes with inner diameters of 1.5 and 3.0 mm and with lengths of 2000 and 3000 mm, respectively, and it is uniformly heated by applying an electric current directly to the tubes. Local heat transfer coefficients were obtained for a heat flux range of 20–40 kW m−2, a mass flux range of 200–600 kg m−2 s−1, saturation temperatures of 10, 0, −5, and −10 °C and quality ranges of up to 1.0. Nucleate boiling heat transfer contribution was predominant, especially at low quality region. The reduction of heat transfer coefficient occurred at a lower vapor quality with a rise of heat flux, mass flux and saturation temperature, and with a smaller inner tube diameter. The experimental heat transfer coefficient of CO2 is about three times higher than that of R-134a. Laminar flow appears in the minichannel flows. A new boiling heat transfer coefficient correlation that is based on the superposition model for CO2 was developed with 8.41% mean deviation.  相似文献   

16.
对R134a在水平直管和螺旋管内的沸腾换热特性进行了实验研究.在三个不同的蒸发温度(5℃、10℃和20℃),工质R134a的质量流量范围为100~400kg/(m~2·s)和干度范围为0.1~0.8的条件下,实验得到了R134a在水平直管和螺旋管内的沸腾换热系数随其质量流量和干度的变化关系,将水平直管和螺旋管内的沸腾换热特性数据进行了比较,结果显示,在实验条件下,卧式螺旋管的传热系数比直管的平均增加13.7%.  相似文献   

17.
The purpose of this study is to experimentally investigate forced convective boiling. The heat transfer coefficients of pure refrigerant R22 and non azeotropic refrigerant mixture R407C were measured in both a smooth tube and a microfin tube. The tests have been carried out with a uniform heat flux all along the tube length. The refrigerant mass flux was varied from 100 to 300 kg m−2 s−1 and heat fluxes from 10 to 30 kW m−2. Local heat transfer coefficients depend strongly on heat flux at a low quality and on mass fluxes at a high quality. When compared to smooth tube, the microfin tubes exhibit a significant heat transfer enhancement, up to 180%. In comparison to R22, the R407C heat transfer coefficients of smooth and microfin tubes are 15 to 35% lower, respectively. The best heat transfer enhancement is obtained at low heat flux and mass flow rate.  相似文献   

18.
The flow boiling heat transfer performance in horizontal metal‐foam tubes is numerically investigated based on the flow pattern map retrieved from experimental investigations. The flow pattern and velocity profile are generally governed by vapour quality and mass flow rate of the fluid. The porous media non‐equilibrium heat transfer model is employed for modelling both vapour and liquid phase zones. The modelling predictions have been compared with experimental results. The effects of metal‐foam morphological parameters, heat flux and mass flux on heat transfer have been examined. The numerical predictions show that the overall heat transfer coefficient of the metal‐foam filled tube increases with the relative density (1‐porosity), pore density (ppi), mass and heat flux.  相似文献   

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