References
[1]. Ande, R., & Yerraboina, V. N. K. (2018). Numerical
investigation on effect of divergent angle in convergentdivergent
rocket engine nozzle. Chemical Engineering
Transactions, 66, 787-792. https://doi.org/10.3303/CET1866132
[2]. Belega, B. A., & Nguyen, T. D. (2015, May). Analysis of
flow in convergent-divergent rocket engine nozzle using
computational fluid dynamics. In International
Conference of Scientific Paper (Vol. 6).
[3]. Budiyanto, M. A., Novri, J., Alhamid, M. I., &
Ardiyansyah. (2019, January). Analysis of convergent
and divergent-convergent nozzle of waterjet propulsion
by CFD simulation. In AIP Conference Proceedings,
2062(1), pp. 020066. https://doi.org/10.1063/1.5086613
[4]. Ekanayake, S., Gear, J. A., & Ding, Y. (2009). Flow
simulation of a two dimensional rectangular supersonic
convergent divergent nozzle. ANZIAM Journal, 51, 377-392. https://doi.org/10.21914/anziamj.v51i0.2577
[5]. Gamble, E., Terrell, D., & DeFrancesco, R. (2004,
July). Nozzle selection and design criteria. In 40th
AIAA/ASME/SAE/ASEE Joint Propulsion Conference and
Exhibit (p. 3923).
[6]. Hussain, M. A., Prasad, M. S., & Nagakalyan, S.
(2019). Design and flow analysis of various convergentdivergent
nozzles by using computational fluid dynamics
(Cfd). International Journal of Innovative Research in
Advanced Engineering, 6(5), 372-379. https://doi.org/10.26562/IJIRAE.2019.MYAE10087
[7]. Khan, A., Aabid, A., & Khan, S. A. (2018). CFD analysis
of convergent-divergent nozzle flow and base pressure control using micro-JETS. International Journal of
Engineering & Technology, 7(3.29), 232-235.
[8]. Kotteda, V. K., & Mittal, S. (2017). Flow in a planar
convergent–divergent nozzle. Shock Waves, 27(3), 441-455. https://doi.org/10.1007/s00193-016-0694-4
[9]. Kumaar, R. K., & kesavan, M. (2016). Design and
CFD analysis of shock wave over supersonic CD nozzle.
International Journal of Latest Trends in Engineering
and Technology, 7(1), 502-510. http://dx.doi.org/10.21172/1.71.072
[10]. Madhu, B. P., Sameer, S., Kalyana, K. M., &
Mahendra, M. G. (2017). CFD analysis of
convergentdivergent and contour nozzle. International
Journal of Mechanical Engineering and Technology,
8(8), 670-677.
[11]. Noh, M. H. M., Hamid, A. H. A., Atan, R., & Rashid, H.
(2011). Numerical investigation of chocked convergingdiverging
nozzles for thruster application. IIUM Engineering
Journal, Special Issue, Mechanical Engineering, 12(3), 10-18. https://doi.org/10.31436/iiumej.v12i3.67
[12]. Pandey, K. M., & Kumar, V. (2010). CFD analysis of
four jet flow at mach 1.74 with fluent software.
International Journal of Chemical Engineering and
Applications, 1(4), 302-308.
[13]. Pandey, K. M., & Yadav, S. K. (2010). CFD analysis of
a rocket nozzle with four inlets at Mach 2.1. International
Journal of Chemical Engineering and Applications, 1(4),
319-325.
[14]. Prasad, S. S., Satish, G., & Ranga G. P. (2015).
Comparison of flow analysis sudden contraction and
enlargement of pipe by providing smooth corners.
International Journal of Engineering Trends and
Technology, 25(4)-205-211. https://doi.org/10.14445/22315381/IJETT-V25P238
[15]. Pujowidodo, H., Siswantara, A. I., Gunadi, G. G. R., &
Daryus, A. (2018, December). The study of convergingdiverging
nozzle for improving the impulse momentum of
cross flow turbine in a bio-micro power plant. In IOP
Conference Series: Earth and Environmental Science,
209(1), 012054. http://dx.doi.org/10.1088/1755-1315/209/1/012054
[16]. Raja, C. J. S., Akella, S. R. D., Challa, S. S., & Jalli, S.
C. (2021). Study of flow characteristics in a convergent
and divergent nozzle using computational fluid
dynamics. International Journal of Scientific Research
and Engineering Development, 4(3), 1526-1533.
[17]. Satish, G., & Yuvaraj, M. A. (2019). Flow behavior on
elbow with various geometries of nozzle. i-manager's
Journal on Mechanical Engineering, 9(2), 43-51.
https://doi.org/10.26634/jme.9.2.15851
[18]. Satish, G., Kumar, K. A., Prasad, V. V., & Pasha, S. M.
(2013). Comparison of flow analysis of a sudden and
gradual change of pipe diameter using fluent software.
International Journal of Research in Engineering and
Technology, 2(12), 41-45.
[19]. Yuvaraj, M. A., & Satish, G. (2020). Comparative
study of different pipe geometries using CFD. Materials
Today: Proceedings, 33, 5384-5391. https://doi.org/10.1016/j.matpr.2020.03.120