Publication Cover
Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 45, 2004 - Issue 7
713
Views
33
CrossRef citations to date
0
Altmetric
Original Articles

NUMERICAL SOLUTIONS OF FLOWS IN ROCKET ENGINES WITH REGENERATIVE COOLING

, , &
Pages 699-717 | Received 01 Apr 2003, Accepted 01 Nov 2003, Published online: 17 Aug 2010

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (6)

Yanlin Xie & Daxiang Deng. (2023) Development and performace evaluation of a combustor with silicon carbide microchannel cooling. Experimental Heat Transfer 36:3, pages 344-357.
Read now
Tae Seon Park. (2013) Effects of Aspect Ratio on the Turbulent Heat Transfer of Regenerative Cooling Passage in a Liquid Rocket Engine. Numerical Heat Transfer, Part A: Applications 64:9, pages 710-728.
Read now
M. Pizzarelli, S. Carapellese & Francesco Nasuti. (2011) A Quasi-2-D Model for the Prediction of the Wall Temperature of Rocket Engine Cooling Channels. Numerical Heat Transfer, Part A: Applications 60:1, pages 1-24.
Read now
Tien-Mo Shih, Chandrasekhar Thamire, Chao-Ho Sung & An-Lu Ren. (2010) Literature Survey of Numerical Heat Transfer (2000–2009): Part I. Numerical Heat Transfer, Part A: Applications 57:3-4, pages 159-296.
Read now
H. W. Zhang, Y. L. He & W. Q. Tao. (2007) Numerical Study of Film and Regenerative Cooling in a Thrust Chamber at High Pressure. Numerical Heat Transfer, Part A: Applications 52:11, pages 991-1007.
Read now
Jun-Wei Li, Yu Liu & Li-Zi Qin. (2007) Numerical Simulation of Flow and Heat Transfer in Round-to-Rectangular Nozzles. Numerical Heat Transfer, Part A: Applications 51:3, pages 267-291.
Read now

Articles from other publishers (27)

Giuseppe Gallo, Landon Kamps, Shota Hirai, Carmine Carmicino & Harunori Nagata. (2023) One-dimensional modelling of the nozzle cooling with cryogenic oxygen flowing through helical channels in a hybrid rocket. Acta Astronautica 210, pages 176-196.
Crossref
Muhammad Qadeer, Maryam Ahmed Alyami, Umar Khan, Mansour F. Yassen, Sharifah E. Alhazmi & Basharat Ullah. (2022) Irreversibility analysis for flow of carbon nanotubes with varying length and radius: Applications in rocket engine. International Journal of Modern Physics B 37:18.
Crossref
V. R. Adarsh, M. Deepu & A. Salih. (2022) The Effect of Curvature on the Heat Transfer Performance of Regenerative Cooling Passages for a High-Area-Ratio Nozzle. Journal of Thermal Science and Engineering Applications 14:10.
Crossref
Shamoon Jamshed, Mukkarum Husain & Imran Afzal. (2022) Numerical Analysis and Validation of Regenerative Cooling in Liquid Engines. Numerical Analysis and Validation of Regenerative Cooling in Liquid Engines.
Umar Farooq, Hassan Waqas, Muhammad Imran, Metib Alghamdi & Taseer Muhammad. (2021) On melting heat transport and nanofluid in a nozzle of liquid rocket engine with entropy generation. Journal of Materials Research and Technology 14, pages 3059-3069.
Crossref
Daxiang Deng, Yanlin Xie, Liang Chen, Guang Pi & Yue Huang. (2019) Experimental investigation on thermal and combustion performance of a combustor with microchannel cooling. Energy 181, pages 954-963.
Crossref
Pengyong Xie & Xiaobing Zhang. (2019) A method of rib-bed plate enhancing heat transfer in hydrogen rocket engine chamber wall. International Journal of Hydrogen Energy 44:36, pages 20504-20515.
Crossref
A. Lai, S. S. Wei, C. H. Lai, J. L. Chen, Y. H. Liao, J. S. Wu & Y. S. Chen. (2018) Comparison of the Propulsion Performance of Aerospike and Bell-Shaped Nozzle Using Hydrogen Peroxide Monopropellant Under Sea-Level Condition. Journal of Mechanics 35:3, pages 427-440.
Crossref
Inyoung Yang. (2018) Regenerative Cooling Channel Design of a Supersonic Combustor Considering High-Temperature Property of Fuel. Journal of the Korean Society of Propulsion Engineers 22:6, pages 37-46.
Crossref
Luisa Cabrera Maynez, Ahsan Choudhuri & Norman Love. (2018) Heat Transfer Characterization Methodology for an Oxy-Fuel Direct Power Extraction Combustion System. Journal of Propulsion and Power 34:5, pages 1313-1322.
Crossref
B. J. Gireesha, P. B. Sampath Kumar, B. Mahanthesh, S. A. Shehzad & F. M. Abbasi. (2018) Nonlinear Gravitational and Radiation Aspects in Nanoliquid with Exponential Space Dependent Heat Source and Variable Viscosity. Microgravity Science and Technology 30:3, pages 257-264.
Crossref
Luciano Kiyoshi Araki & Carlos Henrique Marchi. (2017) Verification and validation of numerical solutions of two-dimensional reactive flow in rocket engine nozzles. Applied Mathematical Modelling 52, pages 544-557.
Crossref
Bianca De Angelo & Mark A. Ricklick. (2016) Computational Investigation of Impingement Cooling for Regeneratively Cooled Rocket Nozzles. Computational Investigation of Impingement Cooling for Regeneratively Cooled Rocket Nozzles.
F. I. Barbosa, E. L. Zaparoli & C. R. Andrade. (2016) Unified approach for conjugate heat-transfer analysis of high speed air flow through a water-cooled nozzle. The Aeronautical Journal 120:1224, pages 355-373.
Crossref
Mohammad Shafiey Dehaj, Reza Ebrahimi & Hassan Karimi. (2015) Mathematical modeling and analysis of cutoff impulse in a liquid-propellant rocket engine. Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering 229:13, pages 2358-2374.
Crossref
Manikanda Rajagopal. (2015) Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines. Journal of Thermal Science and Engineering Applications 7:1.
Crossref
Masoud Kharati-Koopaee & Iman Khaef. (2014) Numerical study of wall cooling effects on transition between shock structures in a rocket propulsion nozzle. Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering 229:1, pages 172-184.
Crossref
Barbara Betti, Marco Pizzarelli & Francesco Nasuti. (2014) Coupled Heat Transfer Analysis in Regeneratively Cooled Thrust Chambers. Journal of Propulsion and Power 30:2, pages 360-367.
Crossref
Wei Yang & Bing Sun. (2013) Numerical simulation of liquid film and regenerative cooling in a liquid rocket. Applied Thermal Engineering 54:2, pages 460-469.
Crossref
Marco Pizzarelli, Francesco Nasuti & Marcello Onofri. (2013) Coupled Wall Heat Conduction and Coolant Flow Analysis for Liquid Rocket Engines. Journal of Propulsion and Power 29:1, pages 34-41.
Crossref
Barbara Betti, Marco Pizzarelli & Francesco Nasuti. (2012) Coupled Heat Transfer Analysis in Regeneratively Cooled Thrust Chambers. Coupled Heat Transfer Analysis in Regeneratively Cooled Thrust Chambers.
Mo Bai & J. N. Chung. (2012) Enhanced Cooling of a Liquid-Fueled Rocket Thrust Chamber by Metal Foams. Journal of Propulsion and Power 28:2, pages 434-443.
Crossref
Mo Bai & J. N. Chung. (2012) Enhanced Cooling of a Liquid-Fueled Rocket Thrust Chamber by Metal Foams. Journal of Propulsion and Power 28:2, pages 434-443.
Crossref
Marco Pizzarelli, Francesco Nasuti & Marcello Onofri. (2011) Coupled Numerical Simulation of Wall Heat Conduction and Coolant Flow in Liquid Rocket Engines. Coupled Numerical Simulation of Wall Heat Conduction and Coolant Flow in Liquid Rocket Engines.
Tao Nie & Wei Qiang Liu. (2011) Numerical Study on 3D Coupled Heat Transfer of Thrust Chamber with Regenerative Cooling. Applied Mechanics and Materials 52-54, pages 1057-1061.
Crossref
Yu-Dong Kang & Bing Sun. (2011) Numerical Simulation of Liquid Rocket Engine Thrust Chamber Regenerative Cooling. Journal of Thermophysics and Heat Transfer 25:1, pages 155-164.
Crossref
Wen Bao, Jiang Qin, Weixing Zhou & Daren Yu. (2009) Performance limit analysis of Recooled Cycle for regenerative cooling systems. Energy Conversion and Management 50:8, pages 1908-1914.
Crossref

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.