Primary spectrometer neutron optics simulations for a new cold neutron backscattering spectrometer

Research output: Contribution to journalJournal articleResearchpeer-review

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Primary spectrometer neutron optics simulations for a new cold neutron backscattering spectrometer. / Bordallo, H. N.; Frick, B.; Schober, H.; Seydel, T.

In: Journal of Neutron Research, Vol. 16, No. 1-2, 01.01.2008, p. 39-54.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Bordallo, HN, Frick, B, Schober, H & Seydel, T 2008, 'Primary spectrometer neutron optics simulations for a new cold neutron backscattering spectrometer', Journal of Neutron Research, vol. 16, no. 1-2, pp. 39-54. https://doi.org/10.1080/10238160802401344

APA

Bordallo, H. N., Frick, B., Schober, H., & Seydel, T. (2008). Primary spectrometer neutron optics simulations for a new cold neutron backscattering spectrometer. Journal of Neutron Research, 16(1-2), 39-54. https://doi.org/10.1080/10238160802401344

Vancouver

Bordallo HN, Frick B, Schober H, Seydel T. Primary spectrometer neutron optics simulations for a new cold neutron backscattering spectrometer. Journal of Neutron Research. 2008 Jan 1;16(1-2):39-54. https://doi.org/10.1080/10238160802401344

Author

Bordallo, H. N. ; Frick, B. ; Schober, H. ; Seydel, T. / Primary spectrometer neutron optics simulations for a new cold neutron backscattering spectrometer. In: Journal of Neutron Research. 2008 ; Vol. 16, No. 1-2. pp. 39-54.

Bibtex

@article{0d90a98d346c4fcdbc7c8fd85f5d256e,
title = "Primary spectrometer neutron optics simulations for a new cold neutron backscattering spectrometer",
abstract = "The future new cold neutron backscattering spectrometer IN16B at the Institut Laue-Langevin is being designed to maintain the extremely high energy resolution of the existing backscattering spectrometer IN16 (approximately 0.4µeV full width at half maximum in a standard configuration). Simultaneously, a phase space transformation (PST) device will significantly increase the flux at the sample position at the expense of an acceptably more divergent incoming beam.Awide wavelength band (Δλ/λ < 10%) has to be offered to the PST device in order to achieve a significant flux gain by a factor of at least 4. Thus, IN16B will have to be located at the end of a cold neutron guide, whilst the present IN16 is located at a side position along a guide. In order to optimize the layout of individual components and to estimate the instrument performance, the Monte Carlo simulation programs McStas and VITESS have been used. McStas and VITESS offer a general framework to compose virtual neutron scattering instruments and support both reactor and spallation neutron sources. In this paper, we report on studies to optimize the neutron delivery towards the PST device, with an emphasis on results from McStas. The simulations of IN16B were performed for two different hypothetical guide end positions, namely a shorter guide with 58Ni coating and existing gaps and instruments upstream, and a longer dedicated guide with a ballistic layout and supermirror coating. For the simulations, different models of the available cold neutron moderator sources have been taken into account. A neutron velocity selector and an elliptical focus guide were optimized for the purposes of IN16B.",
keywords = "Backscattering, Institut Laue- Langevin, Monte Carlo simulation packages, Neutron instruments",
author = "Bordallo, {H. N.} and B. Frick and H. Schober and T. Seydel",
year = "2008",
month = jan,
day = "1",
doi = "10.1080/10238160802401344",
language = "English",
volume = "16",
pages = "39--54",
journal = "Journal of Neutron Research",
issn = "1023-8166",
publisher = "I O S Press",
number = "1-2",

}

RIS

TY - JOUR

T1 - Primary spectrometer neutron optics simulations for a new cold neutron backscattering spectrometer

AU - Bordallo, H. N.

AU - Frick, B.

AU - Schober, H.

AU - Seydel, T.

PY - 2008/1/1

Y1 - 2008/1/1

N2 - The future new cold neutron backscattering spectrometer IN16B at the Institut Laue-Langevin is being designed to maintain the extremely high energy resolution of the existing backscattering spectrometer IN16 (approximately 0.4µeV full width at half maximum in a standard configuration). Simultaneously, a phase space transformation (PST) device will significantly increase the flux at the sample position at the expense of an acceptably more divergent incoming beam.Awide wavelength band (Δλ/λ < 10%) has to be offered to the PST device in order to achieve a significant flux gain by a factor of at least 4. Thus, IN16B will have to be located at the end of a cold neutron guide, whilst the present IN16 is located at a side position along a guide. In order to optimize the layout of individual components and to estimate the instrument performance, the Monte Carlo simulation programs McStas and VITESS have been used. McStas and VITESS offer a general framework to compose virtual neutron scattering instruments and support both reactor and spallation neutron sources. In this paper, we report on studies to optimize the neutron delivery towards the PST device, with an emphasis on results from McStas. The simulations of IN16B were performed for two different hypothetical guide end positions, namely a shorter guide with 58Ni coating and existing gaps and instruments upstream, and a longer dedicated guide with a ballistic layout and supermirror coating. For the simulations, different models of the available cold neutron moderator sources have been taken into account. A neutron velocity selector and an elliptical focus guide were optimized for the purposes of IN16B.

AB - The future new cold neutron backscattering spectrometer IN16B at the Institut Laue-Langevin is being designed to maintain the extremely high energy resolution of the existing backscattering spectrometer IN16 (approximately 0.4µeV full width at half maximum in a standard configuration). Simultaneously, a phase space transformation (PST) device will significantly increase the flux at the sample position at the expense of an acceptably more divergent incoming beam.Awide wavelength band (Δλ/λ < 10%) has to be offered to the PST device in order to achieve a significant flux gain by a factor of at least 4. Thus, IN16B will have to be located at the end of a cold neutron guide, whilst the present IN16 is located at a side position along a guide. In order to optimize the layout of individual components and to estimate the instrument performance, the Monte Carlo simulation programs McStas and VITESS have been used. McStas and VITESS offer a general framework to compose virtual neutron scattering instruments and support both reactor and spallation neutron sources. In this paper, we report on studies to optimize the neutron delivery towards the PST device, with an emphasis on results from McStas. The simulations of IN16B were performed for two different hypothetical guide end positions, namely a shorter guide with 58Ni coating and existing gaps and instruments upstream, and a longer dedicated guide with a ballistic layout and supermirror coating. For the simulations, different models of the available cold neutron moderator sources have been taken into account. A neutron velocity selector and an elliptical focus guide were optimized for the purposes of IN16B.

KW - Backscattering

KW - Institut Laue- Langevin

KW - Monte Carlo simulation packages

KW - Neutron instruments

UR - http://www.scopus.com/inward/record.url?scp=85013622026&partnerID=8YFLogxK

U2 - 10.1080/10238160802401344

DO - 10.1080/10238160802401344

M3 - Journal article

AN - SCOPUS:85013622026

VL - 16

SP - 39

EP - 54

JO - Journal of Neutron Research

JF - Journal of Neutron Research

SN - 1023-8166

IS - 1-2

ER -

ID: 203939694