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For pin-by-pin radial power distributions, all codes give acceptable results, with maximum discrepancies on C/E − 1 of the order of 3 4% for very heterogeneous bundles where Pmax/Pmin reaches 4, 2. These values are within 2 standard deviations of the experimental uncertainty.
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Maximum discrepancies of only one second between the recordings on all endpoints were found, and we consider this part of the study reproducible.
The theoretical predictions are compared with the experimental results: within the range of the study, a maximum discrepancy of 10% on surface roughness values between the two was found.
Results of this comparison showed a maximum discrepancy of 3·63percentt.
The model displayed good agreement with the experimental findings with maximum discrepancy of 8%.
The model was able to predict well the experimental data with a maximum discrepancy of ±5.0%.
The interpolated ZWD values match the estimated ZWD values quite well with a maximum discrepancy of approximately 3 cm and an average discrepancy of 1.55 cm.
The simulation results showed good agreement with the experimental data with the maximum discrepancy of about 5.4%.
The SED method successfully estimates the load at fracture of nanoscale notched specimens with a maximum discrepancy of 4.7%.
Predictability of the modified LMTD method has a maximum discrepancy of ±8% when compared to experimental data.
The maximum discrepancies between the simulated and measured results are 0.14, 0.42 and 1.13 mV, respectively.
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