Arnon Yosef-Hai
Ben-Gurion University of the Negev
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Publication
Featured researches published by Arnon Yosef-Hai.
26th European Conference on Laser Interaction with Matter (ECLIM 2000) | 2001
O. Sadot; Dan Oron; Daniela Kartoon; Lior Arazi; Arnon Yosef-Hai; Y. Elbaz; Uri Alon; D. Shvarts
Using a statistical mechanics bubble competition model, Alon et al, have shown that the 2D Rayleigh-Taylor (RT) mixing zone bubble and spike fronts evolves. The Richtmyer-Mechkov mixing zone fronts have been found to evolve also.
Proceedings of SPIE - The International Society for Optical Engineering | 2001
O. Sadot; Arnon Yosef-Hai; Dan Oron; A. Rikanati; Daniela Kartoon; Lior Arazi; Y. Elbaz; Eli Sarid; Gabi Ben-Dor; D. Shvarts
In order to verify the predictions of the 2D high Atwood number potential flow model for the evolution of the shock wave induced Richtmyer-Meshkov instability, shock-tube experiments were performed with a single-mode perturbation and two competing bubbles as the initial conditions. The experimental results were compared to theoretical model and to numerical simulation. In the present work the dependence of the instability on the Atwood number and the dimensionality of the instability were investigated in a shock tube apparatus. A high speed schlieren photography system were used to monitor the evolution of the unstable contact surface. Different Atwood numbers were achieved by using different gases. The results of those experiments were found to be in very good agreement with the predictions of theoretical model and numerical simulation. These results verify the key elements of the Atwood number scaling of the bubble-merger model used for the prediction of the multi-mode bubble and spike front evolution at all Atwood numbers. The dimensionality investigation of the instability evolution was done using a pyramid like initial perturbation. The results reveal the same two key elements of the bubble-merger model to describe the bubble and spike front evolution as in the 2D case except for different scaling constants.
Bulletin of the American Physical Society | 2017
Vitaly Paris; Amitay Cohen; Elkana Porat; Pinhas Fridman; Zvi Harpenes; Arnon Yosef-Hai; David Levi-Hevroni
Bulletin of the American Physical Society | 2017
Amitay Cohen; Vitaly Paris; Arnon Yosef-Hai; Eli Gudinetsky; Eitan Tiferet
Bulletin of the American Physical Society | 2017
Eli Gudinetsky; Arnon Yosef-Hai; Eitan Eidelstein; Gabi Bialolenker; Vitaly Paris; Alex Fedotov-Gefen; Meir Werdiger; Yossef Horovitz; Avi Ravid
Bulletin of the American Physical Society | 2017
Arnon Yosef-Hai; Gabi Bialolenker; Eitan Eidelstein; Rafi Hevroni; Daniela Kartoon; Ela Moshe; Meir Werdiger; Yossef Horovitz; Moris Sudai; Lior Perlmuter; Elkana Porat
Bulletin of the American Physical Society | 2017
Eli Gudinetsky; Arnon Yosef-Hai; Eitan Eidelstein; Vitaly Paris; Gabi Bialolenker; Alex Fedotov-Gefen; Meir Werdiger; Yossef Horovitz; Avi Ravid
Archive | 2000
Eli Sarid; O. Sadot; Dan Oron; Gabi Ben-Dor; Arnon Yosef-Hai; A. Rikanati; D. Shvarts
Archive | 1999
O. Sadot; Arnon Yosef-Hai; A. Rikanati; Daniela Kartoon; Dan Oron; Lior Arazi; Arthur L. Levin; Eli Sarid; Gabi Ben-Dor; D. Shvarts
Archive | 1999
Arnon Yosef-Hai; O. Sadot; A. Rikanati; Daniela Kartoon; Dan Oron; Lorenz Arye Levin; Gabi Ben-Dor; D. Shvarts