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Probing the nature of the contact between fine particles by using ultrasound propagation

Probing the nature of the contact between fine particles by using ultrasound propagation
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摘要 The propagation velocity (Vs) of an ultrasonic signal through a granular material depends on the type of interparticle contact. For noncohesive glass beads, a power law behavior Vs α σc1/6 for consolidation stresses applied (σc) above 1 MPa has been measured in previous work. This equation is compatible with Hertz's interaction law between elastic solids. In the present work, we have tested the propagation velocity of ultrasound signals through a sample of fine powder. The tensile strength and compactivity of the powder were previously measured by means of the Seville powder tester (SPT), indicating plastic deformation of the surface asperities in contact for small to moderate consolidation stresses. However, the measurements of ultrasound propagation at high consolidations presented here are compatible with Hertz's law. This finding suggests that for high consolidation stresses, surface asperities are flattened, and it is therefore the elastic deformation of the bulk of the particles that determines the transmission of ultrasonic pulses. The propagation velocity (Vs) of an ultrasonic signal through a granular material depends on the type of interparticle contact. For noncohesive glass beads, a power law behavior Vs α σc1/6 for consolidation stresses applied (σc) above 1 MPa has been measured in previous work. This equation is compatible with Hertz's interaction law between elastic solids. In the present work, we have tested the propagation velocity of ultrasound signals through a sample of fine powder. The tensile strength and compactivity of the powder were previously measured by means of the Seville powder tester (SPT), indicating plastic deformation of the surface asperities in contact for small to moderate consolidation stresses. However, the measurements of ultrasound propagation at high consolidations presented here are compatible with Hertz's law. This finding suggests that for high consolidation stresses, surface asperities are flattened, and it is therefore the elastic deformation of the bulk of the particles that determines the transmission of ultrasonic pulses.
机构地区 Faculty of Physics LPMDI
出处 《Particuology》 SCIE EI CAS CSCD 2011年第6期659-662,共4页 颗粒学报(英文版)
基金 supported by the Spanish Government Agency Ministerio de Ciencia y Tecnologia (contract FIS2006-03645) Junta de Andalucia (contract FQM 5735)
关键词 JFine cohesive powder Ultrasound propagation Interparticle contact JFine cohesive powder Ultrasound propagation Interparticle contact
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参考文献6

  • 1Castellanos, A. (2005). The relationship between attractive interparticle forces and bulk behaviour in dry and uncharged fine powders. Advances in Physics. 54, 263-376.
  • 2Jia, X, Caroli, C. & Velicky, B. (1999). Ultrasound propagation in externally stressed granular media. Physical Review E, 82, 1863-1866.
  • 3Nakagaki, M. & Sunada, H. (1968). Theoretical studies on structures of the sedimen ration bed of spherical particles. Yakugaku Zasshi, 88, 651-655.
  • 4Suzuki, M., Makino, K., Yamada, M. & Iinoya, K. (1981). Study on the coordioa tion number in a system of randomly packed, uniform-sized spherical particIes. lnternational Journal of Chemical Engineering, 21,482-488.
  • 5Valverde,J. M. & Castellanos, A. (2007). Compaction of fine powders: From fluidized agglomerates to primary particles. Granular Matter, 9, 19-24.
  • 6Watson, P. K., Valverde, J. M. & Castellanos, A. (2001). The tensile strength and h-ee volume of cohesive powders compressed by gas flow. Powder Technology. 115(1 ), 44-49.

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