Engineering Journal: Science and InnovationELECTRONIC SCIENCE AND ENGINEERING PUBLICATION
Certificate of Registration Media number Эл #ФС77-53688 of 17 April 2013. ISSN 2308-6033. DOI 10.18698/2308-6033
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Article

Prospects for introducing propulsion system based on the flash evaporation in the rocket and space technology

Published: 23.06.2023

Authors: Bechasnov P.M.

Published in issue: #6(138)/2023

DOI: 10.18698/2308-6033-2023-6-2282

Category: Aviation and Rocket-Space Engineering | Chapter: Design, construction and production of aircraft

The paper considers possibility of using propulsion systems based on the flash evaporation effect (steam rockets) as a simple high-thrust engine or a self-supercharged source of hot steam gas. Thermodynamic analysis, on the example of water as a working fluid, made it possible to estimate efficiency indicators of the steam rockets. Analysis results show that steam rockets on water are not inferior to the gas jet propulsion systems being able to achieve specific impulse of about 700 m/s with the mass energy return of up to 600 m/s. At the same time, steam rockets occupy half the number of the gas jet propulsion systems, and they are the only high-thrust engines providing complete safety before the launch preparations. This allows introducing steam rockets in spacecraft maneuvering, transport operations within the manned programs, launch vehicle gas generators, etc.


References
[1] Wallentowitz H., Freialdenhoven A., Olschewski I. Technologie-trends Antrieb, 2009. https://doi.org/10.1007/978-3-8348-9311-6_9
[2] Popescu D., Diaconu T. Launch Assist System. Available at: https://web.archive.org/web/20201129202928/https://www.arcaspace.com/docs/ARCA_LAS_White_Paper_January_14_2020_Issue_2.pdf (accessed February 23, 2023).
[3] Wei Q., Li Y.C. Technology of ammonia flashing jet propulsion in BX-1 satellite. Manned Spaceflight, 2012, vol. 18 (1), pp. 86–91 (in Chinese). https://doi.org/10.3969/j.issn.1674-5825.2012.01.016
[4] Adirim H., Lo R., Pilz N., Kreil M. Hot Water Propulsion Development Status for Earth and Space Applications. In: 42nd AI-AA/ASME/SAE/ASEE Joint Propulsion Conference & Exhibit, 2006. https://doi.org/10.2514/6.2006-4566
[5] Voropay P.I., Shlenov A.A. Povyshenie nadezhnosti i ekonomichnosti porshnevykh kompressorov [Raising reliability and efficiency of the piston compressors]. Moscow, Nedra Publ., 1980.
[6] Irisov A.S. Isparyaemost motornykh topliv dlya porshnevykh dvigateley i metody ee issledovaniya [Vaporization of piston engine motor fuels and methods of its research]. Moscow, Gostoptekhizdat Publ., 1955.
[7] Kappa Solid Rocket Motor. Richard Nakka’s Experimental Rocketry Web Site. Available at: https://www.nakka-rocketry.net/kappa.html (accessed February 23, 2023).
[8] Sugar Fuels. Available at: http://www.ajolleyplace.com/fuel.html (accessed February 23, 2023).
[9] Ma W., Zhai S., Zhang P., Xian Y., Zhang L., Shi R., Sheng J., Liu B., Wu Z. Research Progresses of Flash Evaporation in Aerospace Applications. International Journal of Aerospace Engineering, 2018, vol. 1-15. https://doi.org/10.1155/2018/3686802
[10] Baklastov A.M., Brodyanskiy V.M., Golubev B.P., et al. Promyshlennaya teploenergetika i teplotekhnika: Spravochnik [Industrial heat engineering and heat technology: Reference book]. Grigoriev V.L., Zorin V.M., eds. Moscow, Energoatomizdat Publ., 1983.
[11] Gudilin V.E., Slabkiy L.I. Raketno-kosmicheskie sistemy (Istoriya. Razvitie. Perspektivy) [Rocket and Space Systems (History. Development. Prospects)]. Moscow, 1996.
[12] Poiskovo-spasatelnoe obespechenie poletov MKS s PK «Soyuz» [Search and rescue support of the ISS flight with the Soyuz spacecraft]. Available at: http://www.astronaut.ru/bookcase/article/article161.htm (accessed February 23, 2023).
[13] Antonova N.P., Bryukhanov N.A., Chyotkin S.V. Sredstva posadki pilotiruemogo transportnogo korablya novogo pokoleniya [Landing equipment of the new generation manned transportation spacecraft]. Kosmicheskaya tekhnika i tekhnologii — Space Engineering and Technology, 2014, no. 4 (7). Available at: https://www.energia.ru/ktt/archive/2014/04-2014/04-03.pdf (accessed February 23, 2023).
[14] “The world is not enough” demonstrates the future of space exploration. Available at: https://www.honeybeerobotics.com/news-events/the-world-is-not-enough-demonstrates-the-future-of-space-exploration/ (accessed February 23, 2023).
[15] Miller T., Herr J. Green rocket propulsion by reaction of Al and Mg powders and water. In: 40th AIAA/ASME/SAE/ASEE Joint Propulsion Conference and Exhibit, 2004. https://doi.org/0.2514/6.2004-4037
[16] Application for special temporary authority to launch and operate an in-space transportation spacecraft. Momentus Inc. — FCC Report. Dated: June 8, 2020. Available at: https://fcc.report/IBFS/SAT-STA-20200609-00068/2462463 (accessed February 23, 2023).
[17] Application for special temporary authority. Momentus Inc. — FCC Report. Dated: August 31, 2020. Available at: https://fcc.report/IBFS/SAT-STA-20200831-00102/2692615.pdf (accessed February 23, 2023).
[18] Launch services: Vigoride. Satsearch Available at: https://satsearch.co/products/momentus-vigoride (accessed February 23, 2023).
[19] Shcheglov G.A., Shapovalov A.V. Vybor dvigatelnoy ustanovki perspektivnogo malogo razgonnogo bloka [The selection of the propulsion system of an advanced small space tug]. Inzhenerny zhurnal: nauka i innovatsii — Engineering Journal: Science and Innovation, 2022, iss. 8 (128). https://doi.org/10.18698/2308-6033-2022-8-2200
[20] Kawanami O., Suzuki T., Honda I., Kawashima Y. Development of non-combustible rocket engine by using explosive boiling of liquid nitrogen. Transactions of the Japan Society for Aeronautical and Space Sciences, Space Technology. Japan. 7. https://doi.org/10.2322/tstj.7.Ph_75. Available at: https://www.jstage.jst.go.jp/article/tstj/7/ists26/7_ists26_Ph_75/_article (accessed February 23, 2023).