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Hybrid PD-DEM approach for modeling surface erosion by particles impact
Walayat, Khuram; Haeri, Sina; Iqbal, Imran; Zhang YH(张勇豪)
Source PublicationCOMPUTATIONAL PARTICLE MECHANICS
2023-05
ISSN2196-4378
AbstractPeridynamics (PD) theory is a promising technique for modeling solids with discontinuities. Short-range repulsive force models are commonly employed in PD impact event simulations. Despite their extensive usage, short-range force models do not take damping, friction, and tangential force components into account and hence are unable to effectively describe energy dissipation, leading to uncertainty in the calculation of contact forces. However, the accuracy of impact simulations using alternate contact models has not been extensively investigated in the context of PD impact simulations. The Discrete Element Method (DEM) has been proven to be the most reliable and effective approach to model collision processes between distinct solid objects. This work presents, a particle-based hybrid PD-DEM model to accurately predict the particle impact forces and the resulting damage to the target material. The present model brings together the unique capabilities of PD and DEM and has the potential to make use of the various DEM contact laws, which allow the development and adjustment of relevant contact forces in the normal and tangential directions. Furthermore, damping effects, friction, and intra-particle stiffness are incorporated into the simulations through DEM. The proposed method has been used for modeling material failure after being validated and verified for the contact parameters during the impact process. The predicted damage patterns and resulting material loss demonstrate good agreement with the experimental results reported in the literature.
KeywordPeridynamics Discrete element method Multi-particle contact Solid particle erosion Damage Crack
DOI10.1007/s40571-023-00596-9
Indexed BySCI
Language英语
WOS IDWOS:000990450800002
Funding OrganizationEuropean Commission Research Executive Agency (EC-REA) [101031922]
Classification二类/Q1
Ranking3+
ContributorHaeri, S
Citation statistics
Cited Times:3[WOS]   [WOS Record]     [Related Records in WOS]
Document Type期刊论文
Identifierhttp://dspace.imech.ac.cn/handle/311007/92279
Collection高温气体动力学国家重点实验室
Affiliation1.(Walayat Khuram, Haeri Sina) Univ Edinburgh Inst Mat & Proc Sch Engn Sanderson BldgKings Bldg Robert Stevenson Rd Edinburgh EH9 3FB Scotland
2.(Haeri Sina) HR Wallingford Howbery Pk Wallingford Oxon England
3.(Iqbal Imran) Peking Univ Sch Math Sci Dept Informat & Computat Sci Beijing 100871 Peoples R China
4.(Iqbal Imran) Peking Univ LMAM Beijing 100871 Peoples R China
5.(Zhang Yonghao) Chinese Acad Sci Inst Mech Beijing 100190 Peoples R China
Recommended Citation
GB/T 7714
Walayat, Khuram,Haeri, Sina,Iqbal, Imran,et al. Hybrid PD-DEM approach for modeling surface erosion by particles impact[J]. COMPUTATIONAL PARTICLE MECHANICS,2023.Rp_Au:Haeri, S
APA Walayat, Khuram,Haeri, Sina,Iqbal, Imran,&张勇豪.(2023).Hybrid PD-DEM approach for modeling surface erosion by particles impact.COMPUTATIONAL PARTICLE MECHANICS.
MLA Walayat, Khuram,et al."Hybrid PD-DEM approach for modeling surface erosion by particles impact".COMPUTATIONAL PARTICLE MECHANICS (2023).
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