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    Finite Width Slab and Hollow Cylinder Under an Arbitrary Temperature Transient on a Growing or Receding Boundary: Forward and Inverse Formulations

    Source: ASME Journal of Heat and Mass Transfer:;2025:;volume( 147 ):;issue: 007::page 71401-1
    Author:
    Kumar, Pavan
    ,
    Segall, Albert
    ,
    Drapaca, Corina
    DOI: 10.1115/1.4068292
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Semi-analytical solutions based on Duhamel's and Laplace convolution theorems along with a Zakian series representation of the inverse Laplace transform were derived to solve forward, unsteady heat-conduction problems of a single phase, homogeneous, and finite-width slab and hollow cylinder. Both had a constant-velocity growing or receding boundary under a time-dependent, arbitrary thermal load on the moving boundary with convection on the static surface. Additionally, the inverse thermal problem was solved by modeling an arbitrary surface loading using a polynomial and temperatures measured at the opposite surface with convection. In order to assure the accuracy and versatility of the derived semi-analytical solutions, results were compared with finite element solutions with excellent agreement using a test case of an asymptotic exponential thermal excitation. In practice, the resulting direct solutions can be used to determine transient temperature during machining, wear, erosion, corrosion, and/or additive manufacturing, especially for lower temperature solid-state methods such as cold-spray. Inverse solutions can be used to remotely assess surface temperature and/or erosion/wear and/or oxidation/growth rates in severe conditions where direct measurements are not feasible.
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      Finite Width Slab and Hollow Cylinder Under an Arbitrary Temperature Transient on a Growing or Receding Boundary: Forward and Inverse Formulations

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4308655
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    contributor authorKumar, Pavan
    contributor authorSegall, Albert
    contributor authorDrapaca, Corina
    date accessioned2025-08-20T09:40:13Z
    date available2025-08-20T09:40:13Z
    date copyright4/11/2025 12:00:00 AM
    date issued2025
    identifier issn2832-8450
    identifier otherht_147_07_071401.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4308655
    description abstractSemi-analytical solutions based on Duhamel's and Laplace convolution theorems along with a Zakian series representation of the inverse Laplace transform were derived to solve forward, unsteady heat-conduction problems of a single phase, homogeneous, and finite-width slab and hollow cylinder. Both had a constant-velocity growing or receding boundary under a time-dependent, arbitrary thermal load on the moving boundary with convection on the static surface. Additionally, the inverse thermal problem was solved by modeling an arbitrary surface loading using a polynomial and temperatures measured at the opposite surface with convection. In order to assure the accuracy and versatility of the derived semi-analytical solutions, results were compared with finite element solutions with excellent agreement using a test case of an asymptotic exponential thermal excitation. In practice, the resulting direct solutions can be used to determine transient temperature during machining, wear, erosion, corrosion, and/or additive manufacturing, especially for lower temperature solid-state methods such as cold-spray. Inverse solutions can be used to remotely assess surface temperature and/or erosion/wear and/or oxidation/growth rates in severe conditions where direct measurements are not feasible.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleFinite Width Slab and Hollow Cylinder Under an Arbitrary Temperature Transient on a Growing or Receding Boundary: Forward and Inverse Formulations
    typeJournal Paper
    journal volume147
    journal issue7
    journal titleASME Journal of Heat and Mass Transfer
    identifier doi10.1115/1.4068292
    journal fristpage71401-1
    journal lastpage71401-10
    page10
    treeASME Journal of Heat and Mass Transfer:;2025:;volume( 147 ):;issue: 007
    contenttypeFulltext
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