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- W2088582235 abstract "Fission cross sections have been measured for the following reactions: $^{12}mathrm{C}$(at ${E}_{b}=95, 122, 186, 245, mathrm{and} 291$ MeV) on $^{174}mathrm{Yb}$, $^{198}mathrm{Pt}$, and $^{238}mathrm{U}$; $^{16}mathrm{O}$ (at ${E}_{b}=140, 175, 216, 250, mathrm{and} 315$ MeV) on $^{142}mathrm{Nd}$, $^{170}mathrm{Er}$, $^{192}mathrm{Os}$, and $^{238}mathrm{U}$; $^{32}mathrm{S}$ (at ${E}_{b}=350, 500, mathrm{and} 700$ MeV) on $^{126}mathrm{Te}$, $^{144}mathrm{Nd}$, and $^{238}mathrm{U}$; and $^{58}mathrm{Ni}$ (at ${E}_{b}=352 mathrm{and} 875$ MeV) on $^{96}mathrm{Zr}$, $^{116}mathrm{Cd}$, and $^{238}mathrm{U}$. We find that use of statistical model calculations with the Bass heavy-ion potential, which fit the data below 10 MeV/nucleon, do not fit fission cross sections at higher energies. Invoking dynamical limitations to fusion such as extra-push model calculations improves the fit to most of the data. For $^{12}mathrm{C}$ and $^{16}mathrm{O}$ projectiles on lighter targets, the fission cross section at higher energies is significantly below the value obtained from the rotating liquid drop angular momentum limit, indicating that incomplete fusion reactions may be limiting the fusion process. For S and Ni projectiles, the cross section implies the existence of a composite system sustaining angular momenta far above the limit beyond which, on the basis of liquid drop model predictions, compound nuclei are not expected to have a finite fission barrier. The angular distribution of fission fragments in $^{12}mathrm{C}$ and $^{16}mathrm{O}$-induced reactions has been measured and compared to calculated values. Discrepancies between the measurements and calculated values infer conditions for the breakdown of the transition state model." @default.
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- W2088582235 date "1984-11-01" @default.
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- W2088582235 title "Fission cross sections up to 20 MeV/nucleon" @default.
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- W2088582235 doi "https://doi.org/10.1103/physrevc.30.1550" @default.
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