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Point-spread Analysis of γ-ray/depth Spectra for Borehole Monitoring Applications

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Point-spread Analysis of γ-ray/depth Spectra for Borehole Monitoring Applications. / Elísio, Soraia C.; Bala, Aliyu; Bandala, Manuel et al.
In: IEEE Transactions on Nuclear Science, Vol. 70, No. 11, 01.11.2023, p. 2506 - 2514.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Elísio, SC, Bala, A, Bandala, M, Graham, J, Grievson, A & Joyce, MJ 2023, 'Point-spread Analysis of γ-ray/depth Spectra for Borehole Monitoring Applications', IEEE Transactions on Nuclear Science, vol. 70, no. 11, pp. 2506 - 2514. https://doi.org/10.1109/TNS.2023.3319540

APA

Elísio, S. C., Bala, A., Bandala, M., Graham, J., Grievson, A., & Joyce, M. J. (2023). Point-spread Analysis of γ-ray/depth Spectra for Borehole Monitoring Applications. IEEE Transactions on Nuclear Science, 70(11), 2506 - 2514. https://doi.org/10.1109/TNS.2023.3319540

Vancouver

Elísio SC, Bala A, Bandala M, Graham J, Grievson A, Joyce MJ. Point-spread Analysis of γ-ray/depth Spectra for Borehole Monitoring Applications. IEEE Transactions on Nuclear Science. 2023 Nov 1;70(11):2506 - 2514. Epub 2023 Sept 26. doi: 10.1109/TNS.2023.3319540

Author

Elísio, Soraia C. ; Bala, Aliyu ; Bandala, Manuel et al. / Point-spread Analysis of γ-ray/depth Spectra for Borehole Monitoring Applications. In: IEEE Transactions on Nuclear Science. 2023 ; Vol. 70, No. 11. pp. 2506 - 2514.

Bibtex

@article{76007487fc8245ae949ee6b07683c0cf,
title = "Point-spread Analysis of γ-ray/depth Spectra for Borehole Monitoring Applications",
abstract = "An approach to the analysis of γ-ray spectra that might arise as depth profiles from the characterization of radioactivity in boreholes is described. A borehole logging probe, {\textquoteleft}ABACUS{\textquoteright}, has been designed and constructed which comprises a cerium bromide detector and a built-in multichannel analyzer. This has been tested in a bespoke, laboratory-based testbed built to replicate the borehole environment. An established, semi-empirical model has been applied data arising from the cerium bromide scintillation detector to extract the number of counts under the photopeak from each of the resulting γ-ray spectra (in this case the 662 keV line from 137 Cs) associated with each depth position, and which also enables this information to be isolated from other contributions such as background and the Compton continuum. A complementary approach has been adopted to process the asymmetric and non-Gaussian trend that concerns the photopeak count as a function of depth in the borehole testbed for a given depth profile, when the testbed is subject to the activity provided by a sealed, 137 Cs source. This comprises a modified, Moffat point-spread function. The Moffat function is a continuous probability distribution based upon the Lorentzian distribution. Its particular importance is due to its ability to reconstruct point spread functions that comprise wings that cannot be reproduced accurately by either a Gaussian or Lorentzian function. This application of the Moffat formalism to radioactive contamination assessment profiles enables an effective and accurate assessment to be made of the position of localized radioactivity in the testbed wall.",
keywords = "Electrical and Electronic Engineering, Nuclear Energy and Engineering, Nuclear and High Energy Physics",
author = "El{\'i}sio, {Soraia C.} and Aliyu Bala and Manuel Bandala and James Graham and Alex Grievson and Joyce, {Malcolm J.}",
year = "2023",
month = nov,
day = "1",
doi = "10.1109/TNS.2023.3319540",
language = "English",
volume = "70",
pages = "2506 -- 2514",
journal = "IEEE Transactions on Nuclear Science",
issn = "0018-9499",
publisher = "IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC",
number = "11",

}

RIS

TY - JOUR

T1 - Point-spread Analysis of γ-ray/depth Spectra for Borehole Monitoring Applications

AU - Elísio, Soraia C.

AU - Bala, Aliyu

AU - Bandala, Manuel

AU - Graham, James

AU - Grievson, Alex

AU - Joyce, Malcolm J.

PY - 2023/11/1

Y1 - 2023/11/1

N2 - An approach to the analysis of γ-ray spectra that might arise as depth profiles from the characterization of radioactivity in boreholes is described. A borehole logging probe, ‘ABACUS’, has been designed and constructed which comprises a cerium bromide detector and a built-in multichannel analyzer. This has been tested in a bespoke, laboratory-based testbed built to replicate the borehole environment. An established, semi-empirical model has been applied data arising from the cerium bromide scintillation detector to extract the number of counts under the photopeak from each of the resulting γ-ray spectra (in this case the 662 keV line from 137 Cs) associated with each depth position, and which also enables this information to be isolated from other contributions such as background and the Compton continuum. A complementary approach has been adopted to process the asymmetric and non-Gaussian trend that concerns the photopeak count as a function of depth in the borehole testbed for a given depth profile, when the testbed is subject to the activity provided by a sealed, 137 Cs source. This comprises a modified, Moffat point-spread function. The Moffat function is a continuous probability distribution based upon the Lorentzian distribution. Its particular importance is due to its ability to reconstruct point spread functions that comprise wings that cannot be reproduced accurately by either a Gaussian or Lorentzian function. This application of the Moffat formalism to radioactive contamination assessment profiles enables an effective and accurate assessment to be made of the position of localized radioactivity in the testbed wall.

AB - An approach to the analysis of γ-ray spectra that might arise as depth profiles from the characterization of radioactivity in boreholes is described. A borehole logging probe, ‘ABACUS’, has been designed and constructed which comprises a cerium bromide detector and a built-in multichannel analyzer. This has been tested in a bespoke, laboratory-based testbed built to replicate the borehole environment. An established, semi-empirical model has been applied data arising from the cerium bromide scintillation detector to extract the number of counts under the photopeak from each of the resulting γ-ray spectra (in this case the 662 keV line from 137 Cs) associated with each depth position, and which also enables this information to be isolated from other contributions such as background and the Compton continuum. A complementary approach has been adopted to process the asymmetric and non-Gaussian trend that concerns the photopeak count as a function of depth in the borehole testbed for a given depth profile, when the testbed is subject to the activity provided by a sealed, 137 Cs source. This comprises a modified, Moffat point-spread function. The Moffat function is a continuous probability distribution based upon the Lorentzian distribution. Its particular importance is due to its ability to reconstruct point spread functions that comprise wings that cannot be reproduced accurately by either a Gaussian or Lorentzian function. This application of the Moffat formalism to radioactive contamination assessment profiles enables an effective and accurate assessment to be made of the position of localized radioactivity in the testbed wall.

KW - Electrical and Electronic Engineering

KW - Nuclear Energy and Engineering

KW - Nuclear and High Energy Physics

U2 - 10.1109/TNS.2023.3319540

DO - 10.1109/TNS.2023.3319540

M3 - Journal article

VL - 70

SP - 2506

EP - 2514

JO - IEEE Transactions on Nuclear Science

JF - IEEE Transactions on Nuclear Science

SN - 0018-9499

IS - 11

ER -