TY - JOUR
T1 - Deconvolution-based real-time neutron flux reconstruction for Self-Powered Neutron Detector
AU - Zhang, Qingmin
AU - Deng, Bangjie
AU - Liu, Xinxin
AU - Li, Chengyuan
AU - Sang, Yaodong
AU - Cao, Liangzhi
AU - Bi, Guangwen
AU - Tang, Chuntao
AU - Zhang, Peng
AU - Tong, Dayin
AU - Li, Yang
N1 - Publisher Copyright:
© 2017 Elsevier B.V.
PY - 2018/1
Y1 - 2018/1
N2 - Self-Powered Neutron Detector (SPND) is useful for in-core neutron flux measurement in nuclear reactors due to its tiny size, simple structure, ruggedness and self-powered feature. One type of SPNDs with delayed current from instable intermediate nuclides cannot directly represent the real-time in-core neutron flux Φ(t) by their current I(t), which should be avoided during reactor control and protection. In this paper, we proposed a deconvolution-based method to reconstruct real-time neutron flux for SPND. Following the establishment of dynamic model, the unit-impulse response function h(t) was easily obtained when neutron flux was unit-impulse. Then, the iterative compensation relations were established for delay compensation according to the convolution relationship I(t) = Φ(t) * h(t). In the meanwhile, determination methods for initial values were also proposed and the compensation performance for jump neutron flux was demonstrated to be only 0.3 s. Furthermore, the dependences on initial conditions and sampling time interval were studied systematically, indicating our method is effective and robust. Finally, our method has been compared with a typical compensation method and validated with measured current, showing its advantages. This method is very attractive due to its obvious simplicity, high intuitiveness and general applicability.
AB - Self-Powered Neutron Detector (SPND) is useful for in-core neutron flux measurement in nuclear reactors due to its tiny size, simple structure, ruggedness and self-powered feature. One type of SPNDs with delayed current from instable intermediate nuclides cannot directly represent the real-time in-core neutron flux Φ(t) by their current I(t), which should be avoided during reactor control and protection. In this paper, we proposed a deconvolution-based method to reconstruct real-time neutron flux for SPND. Following the establishment of dynamic model, the unit-impulse response function h(t) was easily obtained when neutron flux was unit-impulse. Then, the iterative compensation relations were established for delay compensation according to the convolution relationship I(t) = Φ(t) * h(t). In the meanwhile, determination methods for initial values were also proposed and the compensation performance for jump neutron flux was demonstrated to be only 0.3 s. Furthermore, the dependences on initial conditions and sampling time interval were studied systematically, indicating our method is effective and robust. Finally, our method has been compared with a typical compensation method and validated with measured current, showing its advantages. This method is very attractive due to its obvious simplicity, high intuitiveness and general applicability.
KW - Deconvolution
KW - Delay compensation
KW - Real-time neutron flux reconstruction
KW - Self-Powered Neutron Detector
UR - https://www.scopus.com/pages/publications/85034645990
U2 - 10.1016/j.nucengdes.2017.11.024
DO - 10.1016/j.nucengdes.2017.11.024
M3 - 文章
AN - SCOPUS:85034645990
SN - 0029-5493
VL - 326
SP - 261
EP - 267
JO - Nuclear Engineering and Design
JF - Nuclear Engineering and Design
ER -