1. Dumouchel, C., "The maximum entropy formalism and the prediction of liquid spray drop-size distribution" Entropy, Vol. 11, No. 4, 2009, pp. 713-747.
2. Bodaghkhani, A., Colbourne, B. and Muzychka, Y.S., "Prediction of droplet size and velocity distribution for spray formation due to wave-body interactions," Ocean Engineering,. Vol. 155, 2018, pp. 106-114.
3. Asadollahzadeh, M. and et al., "Using maximum entropy, Gamma, Inverse Gaussian and Weibull approach for prediction of drop size distribution in a liquid–liquid extraction column," Chemical Engineering Research and Design, Vol. 117,2017, pp. 637-647.
4. Movahednejad, E., Ommi, F. and Hosseinalipour, S.M., "Prediction of droplet size and velocity distribution in droplet formation region of liquid spray," Entropy, Vol. 12, No. 6, 2010, pp. 1484-1498.
5. Hosseinalipour, S.M., Karimaei, H. and Movahednejad, E., "Droplets diameter distribution using maximum entropy formulation combined with a new energy-based sub-model," Chinese journal of chemical engineering, Vol. 24, No. 11, 2016, pp. 1625-1630.
6. Tayeb, R. and et al., "Both experimental and numerical investigation on breakup length of cylindrical falling jet," Procedia Engineering, Vol. 56, 2013, pp. 462-467.
7. Omocea, I.L. and et al., "Breakup of Liquid Jets," Energy Procedia, Vol. 85, 2016, pp. 383-389.
8. Yao, S., Zhang, J. and Fang, T., "Effect of viscosities on structure and instability of sprays from a swirl atomizer," Experimental Thermal and Fluid Science, Vol. 39, 2012, pp. 158-166.
9. Ibrahim, A. and Jog, M., "Nonlinear instability of an annular liquid sheet exposed to gas flow," International Journal of Multiphase Flow, Vol. 34, No. 7, 2008, pp. 647-664.
10. Zhao, H. and et al., "Transition Weber number between surfactant-laden drop bag breakup and shear breakup of secondary atomization," Fuel, Vol. 221, 2018, pp. 138-143.