Multivariable control of ball-milled reactive material composition and structure

Publikationen: Beitrag in FachzeitschriftArtikelForschung(peer-reviewed)

Standard

Multivariable control of ball-milled reactive material composition and structure. / Aureli, Matteo; Doumanidis, Constantine C.; Suliman Hussien, Aseel Gamal et al.
in: Journal of manufacturing processes, Jahrgang 53.2020, Nr. May, 05.2020, S. 238-249.

Publikationen: Beitrag in FachzeitschriftArtikelForschung(peer-reviewed)

Harvard

Aureli, M, Doumanidis, CC, Suliman Hussien, AG, Jaffar, SM, Kostoglou, N, Liao, Y, Rebholz, C & Doumanidis, CC 2020, 'Multivariable control of ball-milled reactive material composition and structure', Journal of manufacturing processes, Jg. 53.2020, Nr. May, S. 238-249. https://doi.org/10.1016/j.jmapro.2020.02.022

APA

Aureli, M., Doumanidis, C. C., Suliman Hussien, A. G., Jaffar, S. M., Kostoglou, N., Liao, Y., Rebholz, C., & Doumanidis, C. C. (2020). Multivariable control of ball-milled reactive material composition and structure. Journal of manufacturing processes, 53.2020(May), 238-249. https://doi.org/10.1016/j.jmapro.2020.02.022

Vancouver

Aureli M, Doumanidis CC, Suliman Hussien AG, Jaffar SM, Kostoglou N, Liao Y et al. Multivariable control of ball-milled reactive material composition and structure. Journal of manufacturing processes. 2020 Mai;53.2020(May):238-249. Epub 2020 Feb 25. doi: 10.1016/j.jmapro.2020.02.022

Author

Aureli, Matteo ; Doumanidis, Constantine C. ; Suliman Hussien, Aseel Gamal et al. / Multivariable control of ball-milled reactive material composition and structure. in: Journal of manufacturing processes. 2020 ; Jahrgang 53.2020, Nr. May. S. 238-249.

Bibtex - Download

@article{034171b2e13e4ca3b495b605ff0b209a,
title = "Multivariable control of ball-milled reactive material composition and structure",
abstract = "In reactive bimetallic compounds such as Ni–Al multilayers, desirable thermo-kinetic properties upon ignition require simultaneously controlled geometric microstructure and material composition. This article establishes fundamental dynamical models of plastic deformation and material diffusion in ball milling processing of particulates from Ni and Al powders, for the purpose of designing and implementing feedback control strategies for process control. The role of heat dissipation from plastic yield and friction slip in affecting compressibility and diffusivity of the material is elucidated. The different sensitivity of compressibility and diffusivity to thermal power is exploited by introducing multivariable control of both bilayer thickness and penetration depth simultaneously, using a real-time computational model as an observer with adaptation informed by infrared measurements of external vial temperature. The proposed control scheme is tested on a laboratory low-energy ball milling system and demonstrated to effectively modulate power intensity and process duration to obtain the desired microstructure and material composition.",
author = "Matteo Aureli and Doumanidis, {Constantine C.} and {Suliman Hussien}, {Aseel Gamal} and Jaffar, {Syed Murtaza} and Nikolaos Kostoglou and Yiliang Liao and Claus Rebholz and Doumanidis, {Charalabos C.}",
note = "Publisher Copyright: {\textcopyright} 2020 The Society of Manufacturing Engineers",
year = "2020",
month = may,
doi = "10.1016/j.jmapro.2020.02.022",
language = "English",
volume = "53.2020",
pages = "238--249",
journal = " Journal of manufacturing processes",
issn = "2212-4616",
publisher = "Elsevier",
number = "May",

}

RIS (suitable for import to EndNote) - Download

TY - JOUR

T1 - Multivariable control of ball-milled reactive material composition and structure

AU - Aureli, Matteo

AU - Doumanidis, Constantine C.

AU - Suliman Hussien, Aseel Gamal

AU - Jaffar, Syed Murtaza

AU - Kostoglou, Nikolaos

AU - Liao, Yiliang

AU - Rebholz, Claus

AU - Doumanidis, Charalabos C.

N1 - Publisher Copyright: © 2020 The Society of Manufacturing Engineers

PY - 2020/5

Y1 - 2020/5

N2 - In reactive bimetallic compounds such as Ni–Al multilayers, desirable thermo-kinetic properties upon ignition require simultaneously controlled geometric microstructure and material composition. This article establishes fundamental dynamical models of plastic deformation and material diffusion in ball milling processing of particulates from Ni and Al powders, for the purpose of designing and implementing feedback control strategies for process control. The role of heat dissipation from plastic yield and friction slip in affecting compressibility and diffusivity of the material is elucidated. The different sensitivity of compressibility and diffusivity to thermal power is exploited by introducing multivariable control of both bilayer thickness and penetration depth simultaneously, using a real-time computational model as an observer with adaptation informed by infrared measurements of external vial temperature. The proposed control scheme is tested on a laboratory low-energy ball milling system and demonstrated to effectively modulate power intensity and process duration to obtain the desired microstructure and material composition.

AB - In reactive bimetallic compounds such as Ni–Al multilayers, desirable thermo-kinetic properties upon ignition require simultaneously controlled geometric microstructure and material composition. This article establishes fundamental dynamical models of plastic deformation and material diffusion in ball milling processing of particulates from Ni and Al powders, for the purpose of designing and implementing feedback control strategies for process control. The role of heat dissipation from plastic yield and friction slip in affecting compressibility and diffusivity of the material is elucidated. The different sensitivity of compressibility and diffusivity to thermal power is exploited by introducing multivariable control of both bilayer thickness and penetration depth simultaneously, using a real-time computational model as an observer with adaptation informed by infrared measurements of external vial temperature. The proposed control scheme is tested on a laboratory low-energy ball milling system and demonstrated to effectively modulate power intensity and process duration to obtain the desired microstructure and material composition.

UR - http://www.scopus.com/inward/record.url?scp=85079878472&partnerID=8YFLogxK

U2 - 10.1016/j.jmapro.2020.02.022

DO - 10.1016/j.jmapro.2020.02.022

M3 - Article

VL - 53.2020

SP - 238

EP - 249

JO - Journal of manufacturing processes

JF - Journal of manufacturing processes

SN - 2212-4616

IS - May

ER -