Finite element analysis of synergetic deformation in precision cutting of polymer bonded explosive
Synergetic deformation behavior between crystal particles and polymeric binders dominates the machinability of energetic materials. In the present work, we elucidate cutting mechanisms of HMX-based polymer bonded explosive (PBX) in orthogonal cutting by numerical simulations based on a cohesive fini...
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doaj-0cc0efde6deb4dfb9c3306feef5c67942020-11-25T02:26:55ZengElsevierMaterials & Design0264-12752020-03-01188Finite element analysis of synergetic deformation in precision cutting of polymer bonded explosiveJiaohu Huang0Shijin Lu1Fengying Xie2Wei Liu3Caiwei Xiao4Junjie Zhang5Tao Sun6Institute of Chemical Materials, China Academy of Engineering Physics, Mianyang 621999, ChinaCenter for Precision Engineering, Harbin Institute of Technology, Harbin 150001, ChinaInstitute of Chemical Materials, China Academy of Engineering Physics, Mianyang 621999, ChinaInstitute of Chemical Materials, China Academy of Engineering Physics, Mianyang 621999, ChinaInstitute of Chemical Materials, China Academy of Engineering Physics, Mianyang 621999, China; Corresponding authors.Center for Precision Engineering, Harbin Institute of Technology, Harbin 150001, China; Corresponding authors.Center for Precision Engineering, Harbin Institute of Technology, Harbin 150001, ChinaSynergetic deformation behavior between crystal particles and polymeric binders dominates the machinability of energetic materials. In the present work, we elucidate cutting mechanisms of HMX-based polymer bonded explosive (PBX) in orthogonal cutting by numerical simulations based on a cohesive finite element framework. The polygonal HMX crystals with a particle volume fraction of 90% are modeled by a linear elasticity model, while the HTPB binders are described by a rate-independent hyperelastic model coupled with a rate-dependent plasticity model. Furthermore, cohesive elements are implemented in both crystal particles and binders to describe thermal-mechanical coupling-induced material failure behavior in the cutting process of PBX. Simulation results reveal different deformation modes of PBX, as well as their correlations with machining results. Furthermore, it is found that depth of cut has a strong impact on the cutting processes of PBX, in terms of material failure mode, subsurface damage and energy dissipation. These findings provide important guidelines for the design and synthesis of energetic materials with high machinability. Keywords: Energetic material, Synergetic deformation, Orthogonal cutting, Finite element simulation, Cohesive zone modelhttp://www.sciencedirect.com/science/article/pii/S0264127520300046 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jiaohu Huang Shijin Lu Fengying Xie Wei Liu Caiwei Xiao Junjie Zhang Tao Sun |
spellingShingle |
Jiaohu Huang Shijin Lu Fengying Xie Wei Liu Caiwei Xiao Junjie Zhang Tao Sun Finite element analysis of synergetic deformation in precision cutting of polymer bonded explosive Materials & Design |
author_facet |
Jiaohu Huang Shijin Lu Fengying Xie Wei Liu Caiwei Xiao Junjie Zhang Tao Sun |
author_sort |
Jiaohu Huang |
title |
Finite element analysis of synergetic deformation in precision cutting of polymer bonded explosive |
title_short |
Finite element analysis of synergetic deformation in precision cutting of polymer bonded explosive |
title_full |
Finite element analysis of synergetic deformation in precision cutting of polymer bonded explosive |
title_fullStr |
Finite element analysis of synergetic deformation in precision cutting of polymer bonded explosive |
title_full_unstemmed |
Finite element analysis of synergetic deformation in precision cutting of polymer bonded explosive |
title_sort |
finite element analysis of synergetic deformation in precision cutting of polymer bonded explosive |
publisher |
Elsevier |
series |
Materials & Design |
issn |
0264-1275 |
publishDate |
2020-03-01 |
description |
Synergetic deformation behavior between crystal particles and polymeric binders dominates the machinability of energetic materials. In the present work, we elucidate cutting mechanisms of HMX-based polymer bonded explosive (PBX) in orthogonal cutting by numerical simulations based on a cohesive finite element framework. The polygonal HMX crystals with a particle volume fraction of 90% are modeled by a linear elasticity model, while the HTPB binders are described by a rate-independent hyperelastic model coupled with a rate-dependent plasticity model. Furthermore, cohesive elements are implemented in both crystal particles and binders to describe thermal-mechanical coupling-induced material failure behavior in the cutting process of PBX. Simulation results reveal different deformation modes of PBX, as well as their correlations with machining results. Furthermore, it is found that depth of cut has a strong impact on the cutting processes of PBX, in terms of material failure mode, subsurface damage and energy dissipation. These findings provide important guidelines for the design and synthesis of energetic materials with high machinability. Keywords: Energetic material, Synergetic deformation, Orthogonal cutting, Finite element simulation, Cohesive zone model |
url |
http://www.sciencedirect.com/science/article/pii/S0264127520300046 |
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