航天推进技术研究院主办
ZHANG Yelei,ZHAO Jian,MA Ting,et al.Thermal design method and performance of printed circuit helium heater[J].Journal of Rocket Propulsion,2023,49(01):36-43.
印刷电路板式氦加热器热力设计方法与性能
- Title:
- Thermal design method and performance of printed circuit helium heater
- 文章编号:
- 1672-9374(2023)01-0036-08
- Keywords:
- printed circuit heat exchanger helium heater thermal design flow and heat transfer characteristics
- 分类号:
- TK124
- 文献标志码:
- A
- 摘要:
- 印刷电路板换热器作为一种新型的微通道换热器,具有紧凑高效、耐温耐压、可模块化等优势,在火箭发动机中具有很好的应用前景,但目前将印刷电路板换热器应用于火箭发动机的研究很少。对火箭发动机氦加热器提出了印刷电路板换热器的设计思路,开发了热力设计程序,并对其进行了数值模拟。结果表明:印刷电路板式氦加热器芯体具有较小的体积和质量,冷热侧温降的模拟值与计算值最大相对误差为1.33,冷热侧压降的模拟值与计算值之间的最大相对误差为18.51,证明了所开发的分段热力设计方法用于印刷电路板式氦加热器具有较高的准确性。氦加热器的冷端换热能力最强,热侧流体流动更加剧烈,换热能力更强,但同时也有更大的压降。
- Abstract:
- As a new type of micro-channel heat exchanger, the printed circuit heat exchanger has the advantages of compactness and efficiency, temperature resistance and pressure resistance, and modularity.It has a good application prospect in rocket engines, but there are few researches on the application of printed circuit heat exchanger in rocket engines.The design idea of printed circuit heat exchanger for helium heater applied to rocket engines was proposed, the thermal design program was developed and the numerical simulation was carried out.The results show that the printed circuit helium heater core has a small volume and mass, the maximum relative error between the calculated value and the simulated value of the temperature drop in the hot side and cold side of the helium heater is 1.33, and the maximum relative error between the calculated value and the simulated value of the pressure drop in the hot side and cold side of the helium heater is 18.51.It is demonstrated that the developed segmented thermal design method has high accuracy for printed circuit helium heater.The cold end of the helium heater has the strongest heat transfer capacity.The fluid flow on the hot side is more intense, and has a greater heat transfer capacity, but at the same time, there is a larger pressure drop.
参考文献/References:
[1] LI X Q,PIERRES R L,DEWSON S J.Heat exchangers for the next generation of nuclear reactors[EB/OL].https://www.researchgate.net/publication/255259531_Heat_Exchangers_for_the_Next_Generation_of_Nuclear_Reactors,2006.
[2] REAY D A.Compact heat exchangers:A review of current equipment and R&D in the field[J].Heat Recovery Systems and CHP,1994,14(5):459-474.
[3] BAEK S,HWANG G,KIM J,et al.Development of compact heat exchanger for LNG FPSO[C]//International Offshore and Polar Engineering Conference.[S.l.:s.n.],2011.
[4] KIM D E.Numerical investigation on thermal-hydraulic performance of new printed circuit heat exchanger model[J].Nuclear Engineering and Design,2008,238(12):3269-3276.
[5] UTAMURA M,TAMAURA Y.A solar gas turbine cycle with super-critical carbon dioxide as a working fluid[C]// ASME Turbo Expo 2006:Power for Land,Sea,and Air.Barcelona:ASME,2006.
[6] LI S L,ZHAO Z,ZHANG Y R,et al.Experimental and numerical analysis of condensation heat transfer and pressure drop of refrigerant R22 in minichannels of a printed circuit heat exchanger[EB/OL].https://www.semanticscholar.org/paper/Experimental-and-Numerical-Analysis-of-Conden sation-Li-Zhao/9d2859184222acf8723426bda8b3c462c2a1 4c0a,2020.
[7] YOON S H.Assessment of straight,zigzag,S-shape,and airfoil PCHEs for intermediate heat exchangers of HTGRs and SFRs[J].Nuclear Engineering and Design,2014,270:334-343.
[8] CHU W X.Study on hydraulic and thermal performance of printed circuit heat transfer surface with distributed airfoil fins[J].Applied Thermal Engineering,2017,114:1309-1318.
[9] LEE S M,KIM K Y.Optimization of zigzag flow channelsof a printed circuit heat exchanger for nuclear power plant application[J].Journal of Nuclear Science and Technology,2012,49(3):343-351.
[10] LEE S M,KIM K Y.Comparative study on performance of a zigzag printed circuit heat exchanger with various channel shapes and configurations[J].Heat and Mass Transfer,2013,49(7):1021-1028.
[11] GUPTA R.Thermohydraulic performance of a periodic trapezoidal channel with a triangular cross-section[J].International Journal of Heat and Mass Transfer,2008,51(11/12):2925-2929.
[12] YOON S J.Development and validation of Nusselt number and friction factor correlations for laminar flow in semi-circular zigzag channel of printed circuit heat exchanger[J].Applied Thermal Engineering,2017,123:1327-1344.
[13] SUROTO B J,INDARTA K A,NURMAWATI A.Analysis of printed circuit heat exchanger(PCHE)for small modular molten salt reactor(MSR)[J].IOP Conference Series:Earth and Environmental Science,2021,753(1):012046.
[14] SAEED M,ALAWADI K,KIM S C.Performance of supercritical CO2 power cycle and its turbomachinery with the printed circuit heat exchanger with straight and zigzag channels[J].Energies,2020,14(1):62.
[15] MA T.Thermal-hydraulic characteristics of printed circuit heat exchanger used for floating natural gas liquefaction[J].Renewable and Sustainable Energy Reviews,2021,137:110606.
[16] 肖欣悦,曹蕾,杨欢,等.非连续肋印刷电路板换热器流动换热特性研究[J].技术与市场,2021,28(3):5-8.
[17] 吕义高,李庆,文哲希.正弦波纹流道印刷电路板换热器热工水力性能[J].化工学报,2020,71(S2):142-151.
[18] 张洪飞,王轩,石凌峰,等.不同流道结构的印刷电路板烟气换热器性能对比研究[J].热力发电,2020,49(10):157-163.
[19] YANG S,ZHAO Z C,ZHANG Y,et al.Effects of fin arrangements on thermal hydraulic performance of supercritical nitrogen in printed circuit heat exchanger[J].Processes,2021,9(5):861.
[20] MA T,ZHANG P,LIAN J,et al.Numerical study on flow and heat transfer performance of natural gas in a printed circuit heat exchanger during transcritical liquefaction[J].Journal of Fluids Engineering,2021,143(4):040901.
[21] LAO J W,FU Q M,WANG W L,et al.Heat transfer characteristics of printed circuit heat exchanger with supercritical carbon dioxide and molten salt[J].Journal of Thermal Science,2021,30(3):880-891.
[22] 刘凯,明杨,胡朝营,等.印刷电路板换热器中S-CO2换热特性数值分析[J].哈尔滨工程大学学报,2021,42(12):1777-1785.
[23] 杨光,邵卫卫.印刷电路板换热器结构及传热关联式研究进展[J].化工进展,2021,40(S1):13-26.
[24] HUANG C Y.Review on the characteristics of flow and heat transfer in printed circuit heat exchangers[J].Applied Thermal Engineering,2019,153:190-205.
[25] KIM I H.Thermal hydraulic performance analysis of the printed circuit heat exchanger using a helium test facility and CFD simulations[J].Nuclear Engineering and Design,2009,239(11):2399-2408.
[26] GNIELINSKI V.New equations for heat and mass transfer in turbulent pipe and channel flow[EB/OL].https://www.semanticscholar.org/paper/New-equations-for-heat-and-mass-transfer-in-pipe-Gnielinski/47764632bbcc7f797 d3bc65c2ed997a31a723a26,1976.
[27] FILONENKO G K.Hydraulic resistance in pipes[J].Teploenergetika,1954,4(4):15-21.
[28] MESHRAM A.Modeling and analysis of a printed circuit heat exchanger for supercritical CO2 power cycle applications[J].Applied Thermal Engineering,2016,109:861-870.
备注/Memo
收稿日期:2022-03-25 修回日期:2022-04-13
基金项目:国家科技重大专项(J2019-III-0021-0065)
作者简介:张业雷(1995—),男,硕士,研究领域为强化换热以及换热器设计。
通信作者:王秋旺(1969—),男,博士,教授,研究领域为传热传质与强化。