化工学报 ›› 2018, Vol. 69 ›› Issue (S2): 101-108.DOI: 10.11949/j.issn.0438-1157.20181116
王皓显1, 李剑锐1, 胡海涛1, 丁国良1, 武春林2, 陈慧3, 邢占洋2
收稿日期:
2018-10-08
修回日期:
2018-10-20
出版日期:
2018-12-31
发布日期:
2018-12-31
通讯作者:
胡海涛
WANG Haoxian1, LI Jianrui1, HU Haitao1, DING Guoliang1, WU Chunlin2, CHEN Hui3, XING Zhanyang2
Received:
2018-10-08
Revised:
2018-10-20
Online:
2018-12-31
Published:
2018-12-31
摘要:
海上纵荡工况下,板翅式换热器通道内两相流体相变流动特性会发生变化,从而影响换热器性能。为了明确纵荡对换热特性的影响机理,建立了纵荡工况下板翅式换热器通道内两相流动沸腾换热性能预测模型。首先对板翅式换热器内流型变化和传热传质机理进行分析,建立了陆基非晃荡工况下的流动与传热过程的数值模型;然后将纵荡加速度模型嵌入模型中,从而实现晃荡工况下换热特性的模拟;通过陆基工况下的实验数据对模型进行了验证。基于建立的模型,分析了不同干度下纵荡幅度和纵荡频率对传热性能的影响。结果显示:纵荡幅度增大,传热系数增大;纵荡频率提高,传热系数降低;随着干度的增大,纵荡对换热的影响逐渐由恶化变为加强;在0.2~0.8干度之间,纵荡对传热系数的影响因子范围为87.9%~110.0%;晃荡对传热系数时均值影响随工况不同而变化,最大恶化5.0%,最大强化2.0%。
中图分类号:
王皓显, 李剑锐, 胡海涛, 丁国良, 武春林, 陈慧, 邢占洋. 纵荡对板翅式换热器通道内液化天然气流动沸腾换热特性的影响分析[J]. 化工学报, 2018, 69(S2): 101-108.
WANG Haoxian, LI Jianrui, HU Haitao, DING Guoliang, WU Chunlin, CHEN Hui, XING Zhanyang. Analysis of influence of surging on heat transfer characteristics of liquified natural gas flow boiling in channel of plate-fin heat exchanger[J]. CIESC Journal, 2018, 69(S2): 101-108.
[1] | 凌祥, 涂善东, 陆卫权.板翅式换热器的研究与应用进展[J].石油机械, 2000, 28(5):54-58.LING X, TU S D, LU W Q.Advances in development and application of plate-fin heat exchangers[J].China Petroleum Machinery, 2000, 28(5):54-58. |
[2] | WANG Z, LI Y Z.Layer pattern thermal design and optimization for multistream plate-fin heat exchangers-a review[J].Renewable and Sustainable Energy Reviews, 2016, 53:500-514. |
[3] | CHEN T, WANG J, PENG W.Flow and heat transfer analyses of a plate-fin heat exchanger in an HTGR[J].Annals of Nuclear Energy, 2017, 108:316-328. |
[4] | 陈俊.板翅式换热器在天然气处理装置中的应用与故障诊断[J].石油化工设备, 2008, (2):64-67.CHEN J.The application and failure analysis of plate-fin heat exchanger in gas processing[J].Petro-chemical Equipment, 2008, (2):64-67. |
[5] | CAO L, LIU J P, LI R X, et al.Experimental study on the mixed refrigerant heat transfer performance in a plate-fin heat exchanger during a single-stage cryogenic cycle[J].Applied Thermal Enginee-ring, 2016, 93:1074-1090. |
[6] | MA H Q, HOU C Q, YANG R X, et al.The influence of structure parameters on stress of plate-fin structures in LNG heat exchanger[J].Journal of Natural Gas Science and Engineering, 2016, 34:85-99. |
[7] | MA H Q, CAI W H, YAO Y, et al.Investigation on stress characteristics of plate-fin structures in the heat-up process of LNG heat exchanger[J].Journal of Natural Gas Science and Engineering, 2016, 30:256-267. |
[8] | 宋岩.中国天然气资源分布特征与勘探方向[J].天然气工业,2003,(1):1-4+12.SONG Y.Distribution characteristics and exploration trend of natural gas resources in China[J].Natural Gas Industry, 2003, (1):1-4+12. |
[9] | 张光学, 梁金强, 陆敬安, 等.南海东北部陆坡天然气水合物藏特征[J].天然气工业, 2014, 34(11):1-10.ZHANG G X, LIANG J Q, LU J A, et al.Characteristics of natural gas hydrate reservoirs on the northeastern slope of the South China Sea[J].Natural Gas Industry, 2014, 34(11):1-10. |
[10] | 贾承造, 张永峰, 赵霞.中国天然气工业发展前景与挑战[J].天然气工业, 2014, 34(2):8-18.JIA C Z, ZHANG Y F, ZHAO X.Prospects and challenges to natural gas industry development in China[J].Natural Gas Industry, 2014, 34(2):8-18. |
[11] | 曹寅, 姚斌.天然气热电联产系统在上海地区的应用[J].制冷技术, 2003, 4:26-29.CAO Y, YAO B.Application of NG cogeneration system in Shanghai area[J].Chinese Journal of Refrigeration Technology, 2003, 4:26-29. |
[12] | 龚梦洁, 李惠民, 齐晔.煤制天然气发电对中国碳排放和区域环境的影响[J].中国人口资源与环境, 2015, 25(1):83-89.GONG M J, LI H M, QI Y.Impact of coal-based synthetic natural gas to electricity on carbon emissions and regional environment in China[J].China Population Resources and Environment, 2015, 25(1):83-89. |
[13] | 庞军, 吴健, 马中, 等.我国城市天然气替代燃煤集中供暖的大气污染减排效果[J].中国环境科学, 2015, 35(1):55-61.PANG J, WU J, MA Z, et al.Air pollution abatement effects of replacing coal with natural gas for central heating in cities of China[J].China Environmental Science, 2015, 35(1):55-61. |
[14] | JIANG Z A, WANG F P, DUAN Y Z, et al.China's gas market under new situations:trends and countermeasures-taking Sichuan and Chongqing gas provinces as an example[J].Natural Gas Industry B, 2016, 3(3):187-194. |
[15] | 陆家亮, 赵素平.中国能源消费结构调整与天然气产业发展前景[J].天然气工业, 2013, 33(11):9-15.LU J L, ZHAO S P.Optimization of energy consumption structure and natural gas industry development prospect in China[J].Natural Gas Industry, 2013, 33(11):9-15. |
[16] | FAHEEMULLAH S, JI Q, FAN Y.Evaluating China's natural gas supply security based on ecological network analysis[J].Journal of Cleaner Production, 2016, 139:1196-1206. |
[17] | 陈杰.中国南海FLNG液化技术与关键设备方案研究[J].化工学报, 2015, 66(S2):300-310.CHEN J.Scheme research of FLNG liquefaction technology and key device in the South China Sea[J].CIESC Journal, 2015, 66(S2):300-310. |
[18] | 谢彬, 喻西崇, 韩旭亮, 等.FLNG研究现状及在中国南海深远海气田开发中的应用前景[J].中国海上油气,2017,29(2):127-134.XIE B, YU X C, HAN X L, et al.Research status of FLNG and its application prospect for deep water gas field development in South China Sea[J].China Offshore Oil and Gas, 2017, 29(2):127-134. |
[19] | 汪建平.探讨利用FLNG开发中国南海边际气田[J].资源节约与环保,2017,(6):19-22.WANG J P.Research of FLNG application prospect for gas field development in South China Sea[J].Resources Economization & Environmental Protection, 2017, (6):19-22. |
[20] | 俞华, 陈观豪, 汪建平, 等.FLNG开发中国南海边际气田的机遇[J].资源节约与环保, 2015, (6):8-14.YU H, CHEN G H, WANG J P, et al.Prospect of FLNG application for gas field development in South China Sea[J].Resources Economization & Environmental Protection, 2015, (6):8-14. |
[21] | BUKOWSKI J, LIU Y N, BOCCELLA M S, et al.Innovations in natural gas liquefaction technology for future LNG plants and floating LNG facilities[C]//International Gas Union Research Conference.Seoul:2011. |
[22] | 贾荣, 宋阳, 林文胜.混合制冷剂重烃组分对PRICO液化流程的影响[J].制冷技术, 2016, 148(3):15-18.JIA R, SONG Y, LIN W S.Influence of heavy hydrocarbon in mixed refrigerant on PRICO liquefaction process[J].Chinese Journal of Refrigeration Technology, 2016, 148(3):15-18.。 |
[23] | 李秋英, 巨永林.适合海上油田伴生气的液化流程设计与分析[J].制冷技术, 2008, 28(4):26-28.LI Q Y, JU Y L.Design and analysis of liquefaction process for the offshore associated-gas resources[J].Chinese Journal of Refrigeration Technology, 2008, 28(4):26-28. |
[24] | 陈东升.液化天然气管内两相流动与传热特性研究[D].上海:上海交通大学,2014.CHEN D S.Study on the two-phase flow and heat transfer characteristics of liquefied natural gas in tubes[D].Shanghai:Shanghai Jiao Tong University, 2014. |
[25] | 陈东升, 石玉美.0.5MPa下液化天然气在竖直圆管中饱和流动沸腾传热[J].化工学报, 2014, 65(4):1199-1207.CHEND S, SHI Y M.Flow boiling heat transfer of LNG in vertical smooth tube at 0.5 MPa[J].CIESC Journal, 2014, 65(4):1199-1207. |
[26] | 郑银银.竖直矩形小通道内上升流饱和沸腾换热规律的研究[D].哈尔滨:哈尔滨工业大学, 2015.ZHENG Y Y.The mechanism of saturated two-phase upflow boiling heat transfer and pressure drop in a vertical rectangular minichannel[D].Harbin:Harbin Institute of Technology, 2015. |
[27] | 李军,曾志平,张世义,等.波形对波纹翅片散热器散热能力及阻力性能的影响[J].机械设计与制造,2015,(10):76-79+83.LI J, ZENG Z P, ZHANG S Y, et al.Influence of waveforms on wavy fin radiator heat dissipation capability and resistance performance[J].Machinery Design & Manufacture, 2015, (10):76-79+83. |
[28] | 李媛,凌祥.板翅式换热器翅片表面性能的三维数值模拟[J].石油机械, 2006, (7):10-14+85.LI Y, LING X.Three dimensional numerical simulation on surface performance of a plate-fin heat exchanger[J].China Petroleum Machinery, 2006, (7):10-14+85. |
[29] | 李海凤.板翅换热器倾斜波纹翅片传热与流动特性研究[D].济南:山东大学, 2006.LI H F.Research of heat transfer and flow characteristics of inclined corrugated fins in plate fin heat exchanger[D].Jinan:Shandong University, 2006. |
[30] | 李剑锐,王皓显,武春林,等.板翅式换热器微通道内汽化相变过程的数值模型[J].制冷技术,2017,37(6):21-25.LI J R, WANG H X, WU C L, et al.Numerical model of flow boiling process of refrigerant in microchannel of plate-fin heat exchanger[J].Chinese Journal of Refrigeration Technology, 2017, 37(6):21-25. |
[31] | 李秋英, 巨永林.适合海上油田伴生气的液化流程设计与分析[J].制冷技术, 2008, 28(4):26-28.LI Q Y, JU Y L.Design and analysis of liquefaction process for the offshore associated-gas resources[J].Chinese Journal of Refrigeration Technology, 2008, 28(4):26-28. |
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