Temperature response model of finned tube for latent heat storage based on thermal network
-
摘要:
为了解决空载高能武器储能冷却设备出口温度的快速计算问题,提出了一种二维热网络模型,用于翅片管式储能换热器在储能阶段的温度响应预测。建立了等效热阻模型,并引入了等效导热系数来考虑自然对流对相变材料融化的影响。在不同体积流量、入口温度、翅片结构和相变材料下与焓-多孔介质法模拟结果进行了对比,验证了热网络模型的准确性,石蜡类相变材料平均出口温度最大误差为0.634 K。热网络模型相比焓-多孔介质法节约了99%的计算时间,可以有效地用于复杂翅片管式储能系统的设计和优化。
Abstract:To solve the problem of fast calculation of the outlet temperature response of the latent heat storage cooling equipment for airborne high-energy weapons, a two-dimensional thermal network model was proposed to predict the temperature response of the finned tube heat exchanger during the energy storage stage. An equivalent thermal resistance model was established, and equivalent thermal conductivity was introduced to consider the influence of natural convection on the melting of phase change materials. The results were compared with the enthalpy-porous method simulation results under different flow rates, inlet temperatures, fin structures and phase change materials, which verified the accuracy of the thermal network model. The maximum error of the average outlet temperature of paraffin phase change materials was 0.634 K. Compared with the enthalpy-porous method, the thermal network model saved 99% of the calculation time, and can be effectively used in the design and optimization of complex finned tube latent heat storage systems.
-
表 1 相变材料热物性参数
Table 1. PCM thermophysical parameters
参数 数值 PCM0[32] RT27[33-34] RT35[35-36] RT42[37-38] RT58[39-40] ρsolidus/(kg/m3) 910 880 860 880 900 ρliquidus/(kg/m3) 1000 760 770 760 760 cp/(J/(kg∙K)) 4190 2000 2000 2000 2100 L/(kJ/kg) 334 189 170 165 180 k/(W/(K∙m)) 0.6 0.2 0.2 0.2 0.2 Tsolidus/K 273 298 302 311 321 Tliquidus/K 273 300 309 315 335 μ /(Pa∙s) 0.001 0.02 0.023 0.02351 0.269 β/(1/K) 0.0002 0.0005 0.0006 0.0005 0.00011 -
[1] KABIR M,GEMEDA T,PRELLER E,et al. Design and development of a PCM-based two-phase heat exchanger manufactured additively for spacecraft thermal management systems[J]. International Journal of Heat and Mass Transfer,2021,180: 121782. doi: 10.1016/j.ijheatmasstransfer.2021.121782 [2] TATSIDJODOUNG P,LE PIERRÈS N,LUO Lingai. A review of potential materials for thermal energy storage in building applications[J]. Renewable and Sustainable Energy Reviews,2013,18: 327-349. doi: 10.1016/j.rser.2012.10.025 [3] WANG Shisong,XING Yuming,HAO Zhaolong,et al. Experimental study on the thermal performance of PCMs based heat sink using higher alcohol/graphite foam[J]. Applied Thermal Engineering,2021,198: 117452. doi: 10.1016/j.applthermaleng.2021.117452 [4] HOU Xu,XING Yuming,HAO Zhaolong. Multi-objective optimization of a composite phase change material-based heat sink under non-uniform discrete heating[J]. Applied Thermal Engineering,2021,197: 117435. doi: 10.1016/j.applthermaleng.2021.117435 [5] JÄCKEL R,TAPIA F,GUTIÉRREZ-URUETA G,et al. Design of an aeronautic pitot probe with a redundant heating system incorporating phase change materials[J]. Flow Measurement and Instrumentation,2020,76: 101817. doi: 10.1016/j.flowmeasinst.2020.101817 [6] SHANMUGASUNDARAM V, RAMALINGAM M, DONOVAN B, et al. Aircraft based pulsed power system thermal management options with energy storage[R]. AIAA 2006-4025, 2006. [7] SHANMUGASUNDARAM V, RAMALINGAM M, DONOVAN B. Thermal management system with energy storage for an airborne laser power system application[R]. AIAA 2007-4817, 2007. [8] VELRAJ R,SEENIRAJ R,HAFNER B,et al. Heat transfer enhancement in a latent heat storage system[J]. Solar Energy,1999,65: 171-180. doi: 10.1016/S0038-092X(98)00128-5 [9] BABAPOOR A,AZIZI M,KARIMI G. Thermal management of a Li-ion battery using carbon fiber-PCM composites[J]. Applied Thermal Engineering,2015,82: 281-290. doi: 10.1016/j.applthermaleng.2015.02.068 [10] OPOLOT M,ZHAO Chunrong,LIU Ming,et al. Influence of cascaded graphite foams on thermal performance of high temperature phase change material storage systems[J]. Applied Thermal Engineering,2020,180: 115618. doi: 10.1016/j.applthermaleng.2020.115618 [11] ZHANG Hao,LI Xinyi,LIU Liqing,et al. Experimental investigation on paraffin melting in high porosity copper foam under centrifugal accelerations[J]. Applied Thermal Engineering,2020,178: 115504. doi: 10.1016/j.applthermaleng.2020.115504 [12] ALGARNI S,MELLOULI S,ALQAHTANI T,et al. Experimental investigation of an evacuated tube solar collector incorporating nano-enhanced PCM as a thermal booster[J]. Applied Thermal Engineering,2020,180: 115831. doi: 10.1016/j.applthermaleng.2020.115831 [13] XU Hongtao,WANG Ning,ZHANG Chenyu,et al. Optimization on the melting performance of triplex-layer PCMs in a horizontal finned shell and tube thermal energy storage unit[J]. Applied Thermal Engineering,2020,176: 115409. doi: 10.1016/j.applthermaleng.2020.115409 [14] MAHDI J M,LOHRASBI S,GANJI D D,et al. Accelerated melting of PCM in energy storage systems via novel configuration of fins in the triplex-tube heat exchanger[J]. International Journal of Heat and Mass Transfer,2018,124: 663-676. doi: 10.1016/j.ijheatmasstransfer.2018.03.095 [15] KATESHIA J,LAKHERA V J. Analysis of solar still integrated with phase change material and pin fins as absorbing material[J]. Journal of Energy Storage,2021,35: 102292. doi: 10.1016/j.est.2021.102292 [16] SHEIKHOLESLAMI M,LOHRASBI S,GANJI D D. Numerical analysis of discharging process acceleration in LHTESS by immersing innovative fin configuration using finite element method[J]. Applied Thermal Engineering,2016,107: 154-166. doi: 10.1016/j.applthermaleng.2016.06.158 [17] LIU Honglei,LI Baotong,ZHANG Lukuan,et al. Optimizing heat-absorption efficiency of phase change materials by mimicking leaf vein morphology[J]. Applied Energy,2020,269: 114982. doi: 10.1016/j.apenergy.2020.114982 [18] AGYENIM F,HEWITT N,EAMES P,et al. A review of materials, heat transfer and phase change problem formulation for latent heat thermal energy storage systems (LHTESS)[J]. Renewable and Sustainable Energy Reviews,2010,14(2): 615-628. doi: 10.1016/j.rser.2009.10.015 [19] MAZHAR A R,SHUKLA A,LIU Shuli. Numerical analysis of rectangular fins in a PCM for low-grade heat harnessing[J]. International Journal of Thermal Sciences,2020,152: 106306. doi: 10.1016/j.ijthermalsci.2020.106306 [20] GIL A,PEIRÓ G,ORÓ E,et al. Experimental analysis of the effective thermal conductivity enhancement of PCM using finned tubes in high temperature bulk tanks[J]. Applied Thermal Engineering,2018,142: 736-744. doi: 10.1016/j.applthermaleng.2018.07.029 [21] HUANG Yongping,LIU Xiangdong. Charging and discharging enhancement of a vertical latent heat storage unit by fractal tree-shaped fins[J]. Renewable Energy,2021,174: 199-217. doi: 10.1016/j.renene.2021.04.066 [22] MOZAFARI M,LEE A,MOHAMMADPOUR J. Thermal management of single and multiple PCMs based heat sinks for electronics cooling[J]. Thermal Science and Engineering Progress,2021,23: 100919. doi: 10.1016/j.tsep.2021.100919 [23] JOURABIAN M,ALI RABIENATAJ DARZI A,ALI AKBARI O,et al. The enthalpy-based lattice Boltzmann method (LBM) for simulation of NePCM melting in inclined elliptical annulus[J]. Physica A:Statistical Mechanics and Its Applications,2020,548: 123887. doi: 10.1016/j.physa.2019.123887 [24] GAO Jiajia,YAN Tian,XU Tao,et al. Development and experiment validation of variable-resistance-variable-capacitance dynamic simplified thermal models for shape-stabilized phase change material slab[J]. Applied Thermal Engineering,2019,146: 364-375. doi: 10.1016/j.applthermaleng.2018.09.124 [25] LING Ziye,LIN Wenzhu,ZHANG Zhengguo,et al. Computationally efficient thermal network model and its application in optimization of battery thermal management system with phase change materials and long-term performance assessment[J]. Applied Energy,2020,259: 114120. doi: 10.1016/j.apenergy.2019.114120 [26] NEUMANN H,GAMISCH S,GSCHWANDER S. Comparison of RC-model and FEM-model for a PCM-plate storage including free convection[J]. Applied Thermal Engineering,2021,196: 117232. doi: 10.1016/j.applthermaleng.2021.117232 [27] VOGEL J,FELBINGER J,JOHNSON M. Natural convection in high temperature flat plate latent heat thermal energy storage systems[J]. Applied Energy,2016,184: 184-196. doi: 10.1016/j.apenergy.2016.10.001 [28] TAY N H S,BELUSKO M,BRUNO F. An effectiveness-NTU technique for characterising tube-in-tank phase change thermal energy storage systems[J]. Applied Energy,2012,91(1): 309-319. doi: 10.1016/j.apenergy.2011.09.039 [29] TIAN Shen,BAI Haozhi,HUI Na,et al. A dynamic analytical model to predict and parametrically analyze charging and discharging process of tube-in-tank PCM systems[J]. Thermal Science and Engineering Progress,2021,22: 100866. doi: 10.1016/j.tsep.2021.100866 [30] AMIN N A M,BRUNO F,BELUSKO M. Effective thermal conductivity for melting in PCM encapsulated in a sphere[J]. Applied Energy,2014,122: 280-287. doi: 10.1016/j.apenergy.2014.01.073 [31] TAY N H S,BELUSKO M,CASTELL A,et al. An effectiveness-NTU technique for characterising a finned tubes PCM system using a CFD model[J]. Applied Energy,2014,131: 377-385. doi: 10.1016/j.apenergy.2014.06.041 [32] SALIMZADEH S, PALUSZNY A, ZIMMERMAN R. Thermal effects during hydraulic fracturing in low-permeability brittle rocks[R]. Houston, US: 50th U.S. Rock Mechanics Geomechanics Symposium, 2016. [33] DURAKOVIC B,TORLAK M. Experimental and numerical study of a PCM window model as a thermal energy storage unit[J]. International Journal of Low-Carbon Technologies,2017,12(3): 272-280. [34] GÜRBÜZ H,ATEŞ D. A numerical study on processes of charge and discharge of latent heat energy storage system using RT27 paraffin wax for exhaust waste heat recovery in a SI engine[J]. International Journal of Automotive Science and Technology,2020,4(4): 314-327. doi: 10.30939/ijastech..800856 [35] BEJAN A S,LABIHI A,CROITORU C V,et al. Experimental investigation of the charge/discharge process for an organic PCM macroencapsulated in an aluminium rectangular cavity[J]. E3S Web of Conferences,2018,32: 01004. doi: 10.1051/e3sconf/20183201004 [36] SHAHSAVAR A,ALI H M,MAHANI R B,et al. Numerical study of melting and solidification in a wavy double-pipe latent heat thermal energy storage system[J]. Journal of Thermal Analysis and Calorimetry,2020,141(5): 1785-1799. doi: 10.1007/s10973-020-09864-9 [37] QIN Zhen,JI Chenzhen,LOW Z,et al. Effect of fin location on the latent heat storage: a numerical study[J]. Energy Procedia,2017,143: 320-326. doi: 10.1016/j.egypro.2017.12.691 [38] DUKHAN W A,DHAIDAN N S,AL-HATTAB T A. Experimental investigation of the horizontal double pipe heat exchanger utilized phase change material[J]. IOP Conference Series:Materials Science and Engineering,2020,671(1): 012148. doi: 10.1088/1757-899X/671/1/012148 [39] BUONOMO B,ERCOLE D,MANCA O,et al. Numerical investigation on thermal behaviors of two-dimensional latent thermal energy storage with PCM and aluminum foam[J]. Journal of Physics:Conference Series,2017,796: 012031. doi: 10.1088/1742-6596/796/1/012031 [40] AGYENIM F,HEWITT N. Experimental investigation and improvement in heat transfer of paraffin PCM RT58 storage system to take advantage of low peak tariff rates for heat pump applications[J]. International Journal of Low-Carbon Technologies,2013,8(4): 260-270. doi: 10.1093/ijlct/cts041 [41] MAHDI M S,HASAN A F,MAHOOD H B,et al. Numerical study and experimental validation of the effects of orientation and configuration on melting in a latent heat thermal storage unit[J]. Journal of Energy Storage,2019,23: 456-468. doi: 10.1016/j.est.2019.04.013 [42] DAN Dan,YAO Chengning,ZHANG Yangjun,et al. Dynamic thermal behavior of micro heat pipe array-air cooling battery thermal management system based on thermal network model[J]. Applied Thermal Engineering,2019,162: 114183. doi: 10.1016/j.applthermaleng.2019.114183 [43] BERGMAN T L, INCROPERA F P. Fundamentals of heat and mass transfer[M]. 7th ed. Hoboken, US: John Wiley, 2011. [44] BARAN G,SARI A. Phase change and heat transfer characteristics of a eutectic mixture of palmitic and stearic acids as PCM in a latent heat storage system[J]. Energy Conversion and Management,2003,44(20): 3227-3246. doi: 10.1016/S0196-8904(03)00104-3 [45] JONES B J,SUN Dawei,KRISHNAN S,et al. Experimental and numerical study of melting in a cylinder[J]. International Journal of Heat and Mass Transfer,2006,49(15/16): 2724-2738. [46] AKHILESH R,NARASIMHAN A,BALAJI C. Method to improve geometry for heat transfer enhancement in PCM composite heat sinks[J]. International Journal of Heat and Mass Transfer,2005,48(13): 2759-2770. doi: 10.1016/j.ijheatmasstransfer.2005.01.032 [47] HOLMAN J P. Heat transfer[M]. 10th ed. New York, US: McGraw-Hill, 2010. [48] SCANLAN J A,BISHOP E H,POWE R E. Natural convection heat transfer between concentric spheres[J]. International Journal of Heat and Mass Transfer,1970,13(12): 1857-1872. doi: 10.1016/0017-9310(70)90089-X [49] JIJI L M,GAYE S. Analysis of solidification and melting of PCM with energy generation[J]. Applied Thermal Engineering,2006,26(5/6): 568-575. -

下载: