1 Introduction
11
52. Pyeon CH, Yamanaka M, Endo T et al (2017) Experimental benchmarks on kinetic parameters
in accelerator-driven system with 100 MeV protons at Kyoto University Critical Assembly.
Ann Nucl Energy 105:346
53. Van Rooijen WFG, Endo T, Chiba G et al (2017) Analysis of the KUCA ADS benchmarks
with diffusion theory. Prog Nucl Energy 101:243
54. Pyeon CH, Yamanaka M, Kim SH et al (2017) Benchmarks of subcriticality in acceleratordriven system experiments at Kyoto University Critical Assembly. Nucl Eng Technol 49:1234
55. Talamo A, Gohar Y, Gabrielli F et al (2017) Coupling Sjostrand and Feynman methods in
prompt neutron decay constant analyses. Prog Nucl Energy 101:299
56. Kim SH, Yamanaka M, Pyeon CH (2018) Kinetics solution with iteration scheme of historybased neutron source in accelerator-driven system. Ann Nucl Energy 112:337
57. Pyeon CH, Vu TM, Yamanaka M et al (2018) Reaction rate analyses of accelerator-driven
system experiments with 100 MeV protons at Kyoto University Critical Assembly. J Nucl Sci
Technol 55:190
58. Endo T, Chiba G, Van Rooijen WFG et al (2018) Experimental analysis and uncertainty quantification using random sampling technique for ADS experiments at KUCA. J Nucl Sci Technol
55:450
59. Kong CD, Choe JW, Yum SP et al (2018) Application of advanced Rossi-alpha technique to
reactivity measurements at Kyoto University Critical Assembly. Ann Nucl Energy 118:92
60. Pyeon CH, Yamanaka M, Oizumi A et al (2018) Experimental analyses of bismuth sample
reactivity worth at Kyoto University Critical Assembly. J Nucl Sci Technol 55:1324
61. Yamanaka M, Jang KW, Shin SH et al (2019) Proton beam characteristics with wavelength
shifting fiber detector at Kyoto University Critical Assembly. Jpn J Appl Phys 58:036002
62. Endo T, Yamamoto A, Yamanaka M et al (2019) Experimental validation of unique combination
numbers for the third- and fourth-order neutron correlation factors in the zero power reactor
noise. J Nucl Sci Technol 56:322
63. Talamo A, Gohar Y, Yamamoto T et al (2019) Calculation of the prompt neutron decay constant
from the cross and auto power spectrum densities of pulse mode detectors. Ann Nucl Energy
131:138
64. Aizawa N, Yamanaka M, Iwasaki T et al (2019) Effect of neutron spectrum on subcritical
multiplication factor in accelerator-driven system. Prog Nucl Energy 116:158
65. Pyeon CH, Yamanaka M, Sano T et al (2019) Integral experiments on critical irradiation of
237 Np and 241 Am foils at Kyoto University Critical Assembly. Nucl Sci Eng 193:1023
66. Pyeon CH, Yamanaka M, Oizumi A et al (2019) First nuclear transmutation of 237 Np and 241 Am
by accelerator-driven system at Kyoto University Critical Assembly. J Nucl Sci Technol 56:684
67. Katano R, Yamanaka M, Pyeon CH (2019) Application of linear combination method to pulsedneutron source measurement at Kyoto University Critical Assembly. Nucl Sci Eng 193:1394
68. Pyeon CH, Talamo A, Fukushima M (2020) Special issue on accelerator-driven system
benchmarks at Kyoto University Critical Assembly. J Nucl Sci Technol 57:133
69. Watanabe K, Endo T, Yamanaka M et al (2020) Real-time subcriticality monitoring system
based on a highly sensitive optical fiber detector in an accelerator-driven system at the Kyoto
University Critical Assembly. J Nucl Sci Technol 57:136
70. Talamo A, Gohar Y, Yamanaka M et al (2020) Calculation of the prompt neutron decay constant
of the KUCA facility configurations driven by a californium of spallation external neutron
sources. J Nucl Sci Technol 57:145
71. Talamo A, Gohar Y, Yamanaka M et al (2020) Paralyzable and non-paralyzable dead-time
corrections for the neutron detectors of the KUCA facility using external neutron sources. J
Nucl Sci Technol 57:157
72. Katano R, Yamanaka M, Pyeon CH (2020) Measurement of prompt neutron decay constant with
spallation neutrons at Kyoto University Critical Assembly using linear combination method. J
Nucl Sci Technol 57:169
73. Shim HJ, Kim DH, Yamanaka M et al (2020) Estimation of kinetics parameters by Monte Carlo
fixed-source calculations for accelerator-driven system. J Nucl Sci Technol 57:177
11
52. Pyeon CH, Yamanaka M, Endo T et al (2017) Experimental benchmarks on kinetic parameters
in accelerator-driven system with 100 MeV protons at Kyoto University Critical Assembly.
Ann Nucl Energy 105:346
53. Van Rooijen WFG, Endo T, Chiba G et al (2017) Analysis of the KUCA ADS benchmarks
with diffusion theory. Prog Nucl Energy 101:243
54. Pyeon CH, Yamanaka M, Kim SH et al (2017) Benchmarks of subcriticality in acceleratordriven system experiments at Kyoto University Critical Assembly. Nucl Eng Technol 49:1234
55. Talamo A, Gohar Y, Gabrielli F et al (2017) Coupling Sjostrand and Feynman methods in
prompt neutron decay constant analyses. Prog Nucl Energy 101:299
56. Kim SH, Yamanaka M, Pyeon CH (2018) Kinetics solution with iteration scheme of historybased neutron source in accelerator-driven system. Ann Nucl Energy 112:337
57. Pyeon CH, Vu TM, Yamanaka M et al (2018) Reaction rate analyses of accelerator-driven
system experiments with 100 MeV protons at Kyoto University Critical Assembly. J Nucl Sci
Technol 55:190
58. Endo T, Chiba G, Van Rooijen WFG et al (2018) Experimental analysis and uncertainty quantification using random sampling technique for ADS experiments at KUCA. J Nucl Sci Technol
55:450
59. Kong CD, Choe JW, Yum SP et al (2018) Application of advanced Rossi-alpha technique to
reactivity measurements at Kyoto University Critical Assembly. Ann Nucl Energy 118:92
60. Pyeon CH, Yamanaka M, Oizumi A et al (2018) Experimental analyses of bismuth sample
reactivity worth at Kyoto University Critical Assembly. J Nucl Sci Technol 55:1324
61. Yamanaka M, Jang KW, Shin SH et al (2019) Proton beam characteristics with wavelength
shifting fiber detector at Kyoto University Critical Assembly. Jpn J Appl Phys 58:036002
62. Endo T, Yamamoto A, Yamanaka M et al (2019) Experimental validation of unique combination
numbers for the third- and fourth-order neutron correlation factors in the zero power reactor
noise. J Nucl Sci Technol 56:322
63. Talamo A, Gohar Y, Yamamoto T et al (2019) Calculation of the prompt neutron decay constant
from the cross and auto power spectrum densities of pulse mode detectors. Ann Nucl Energy
131:138
64. Aizawa N, Yamanaka M, Iwasaki T et al (2019) Effect of neutron spectrum on subcritical
multiplication factor in accelerator-driven system. Prog Nucl Energy 116:158
65. Pyeon CH, Yamanaka M, Sano T et al (2019) Integral experiments on critical irradiation of
237 Np and 241 Am foils at Kyoto University Critical Assembly. Nucl Sci Eng 193:1023
66. Pyeon CH, Yamanaka M, Oizumi A et al (2019) First nuclear transmutation of 237 Np and 241 Am
by accelerator-driven system at Kyoto University Critical Assembly. J Nucl Sci Technol 56:684
67. Katano R, Yamanaka M, Pyeon CH (2019) Application of linear combination method to pulsedneutron source measurement at Kyoto University Critical Assembly. Nucl Sci Eng 193:1394
68. Pyeon CH, Talamo A, Fukushima M (2020) Special issue on accelerator-driven system
benchmarks at Kyoto University Critical Assembly. J Nucl Sci Technol 57:133
69. Watanabe K, Endo T, Yamanaka M et al (2020) Real-time subcriticality monitoring system
based on a highly sensitive optical fiber detector in an accelerator-driven system at the Kyoto
University Critical Assembly. J Nucl Sci Technol 57:136
70. Talamo A, Gohar Y, Yamanaka M et al (2020) Calculation of the prompt neutron decay constant
of the KUCA facility configurations driven by a californium of spallation external neutron
sources. J Nucl Sci Technol 57:145
71. Talamo A, Gohar Y, Yamanaka M et al (2020) Paralyzable and non-paralyzable dead-time
corrections for the neutron detectors of the KUCA facility using external neutron sources. J
Nucl Sci Technol 57:157
72. Katano R, Yamanaka M, Pyeon CH (2020) Measurement of prompt neutron decay constant with
spallation neutrons at Kyoto University Critical Assembly using linear combination method. J
Nucl Sci Technol 57:169
73. Shim HJ, Kim DH, Yamanaka M et al (2020) Estimation of kinetics parameters by Monte Carlo
fixed-source calculations for accelerator-driven system. J Nucl Sci Technol 57:177
