diff --git a/openmc/plotter.py b/openmc/plotter.py index 6669d6c878..9e356b1eda 100644 --- a/openmc/plotter.py +++ b/openmc/plotter.py @@ -359,7 +359,7 @@ def _calculate_cexs_nuclide(this, types, temperature=294., sab_name=None, if strT in nuc.temperatures: nucT = strT else: - delta_T = np.array(nuc.kTs) - T*openmc.data.K_BOLTZMANN + delta_T = np.array(nuc.kTs) - T * openmc.data.K_BOLTZMANN closest_index = np.argmin(np.abs(delta_T)) nucT = nuc.temperatures[closest_index] @@ -370,19 +370,11 @@ def _calculate_cexs_nuclide(this, types, temperature=294., sab_name=None, if strT in sab.temperatures: sabT = strT else: - data_Ts = sab.temperatures - for t in range(len(data_Ts)): - # Take off the "K" and convert to a float - data_Ts[t] = float(data_Ts[t][:-1]) - min_delta = np.finfo(np.float64).max - closest_t = -1 - for t in data_Ts: - if abs(data_Ts[t] - T) < min_delta: - closest_t = t - sabT = "{}K".format(int(round(data_Ts[closest_t]))) + delta_T = np.array(sab.kTs) - T * openmc.data.K_BOLTZMANN + closest_index = np.argmin(np.abs(delta_T)) + sabT = sab.temperatures[closest_index] - # Create an energy grid composed the S(a,b) and - # the nuclide's grid + # Create an energy grid composed the S(a,b) and the nuclide's grid grid = nuc.energy[nucT] sab_Emax = 0. sab_funcs = []