Investigation of Electromagnetic Pulse Compaction on Conducting Graphene/PEKK Composite Powder

Polymer-composite materials have the characteristics of light weight, high load, corrosion resistance, heat resistance, and high oil resistance. In particular, graphene composite has better electrical conductivity and mechanical performance. However, the raw materials of graphene composite are proce...

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Main Authors: Quanbin Wang, Deli Jia, Xiaohan Pei, Xuelian Wu, Fan Xu, Huixiong Wang, Minghao Cao, Haidong Chen
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/3/636
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author Quanbin Wang
Deli Jia
Xiaohan Pei
Xuelian Wu
Fan Xu
Huixiong Wang
Minghao Cao
Haidong Chen
author_facet Quanbin Wang
Deli Jia
Xiaohan Pei
Xuelian Wu
Fan Xu
Huixiong Wang
Minghao Cao
Haidong Chen
author_sort Quanbin Wang
collection DOAJ
description Polymer-composite materials have the characteristics of light weight, high load, corrosion resistance, heat resistance, and high oil resistance. In particular, graphene composite has better electrical conductivity and mechanical performance. However, the raw materials of graphene composite are processed into semi-finished products, directly affecting their performance and service life. The electromagnetic pulse compaction was initially studied to get the product Graphene/PEKK composite powder. Simultaneously, spark plasma sintering was used to get the bars to determine the electrical conductivity of Graphene/PEKK composite. On the basis of this result, conducting Graphene/PEKK composite powder can be processed by electromagnetic pulse compaction. Finite element numerical analysis was used to obtain process parameters during the electromagnetic pulse compaction. The results show that discharge voltage and discharge capacitance influence on the magnetic force, which is a main moulding factor affecting stress, strain and density distribution on the specimen during electromagnetic pulse compaction in a few microseconds.
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spelling doaj.art-3887e06dae6a415f9019aaf2c48b10c22023-12-03T15:20:02ZengMDPI AGMaterials1996-19442021-01-0114363610.3390/ma14030636Investigation of Electromagnetic Pulse Compaction on Conducting Graphene/PEKK Composite PowderQuanbin Wang0Deli Jia1Xiaohan Pei2Xuelian Wu3Fan Xu4Huixiong Wang5Minghao Cao6Haidong Chen7Department of Oil & Gas Production Equipment, Research Institute of Petroleum Exploration and Development, Xueyuan Road 20#, Beijing 100083, ChinaDepartment of Oil & Gas Production Equipment, Research Institute of Petroleum Exploration and Development, Xueyuan Road 20#, Beijing 100083, ChinaDepartment of Oil & Gas Production Equipment, Research Institute of Petroleum Exploration and Development, Xueyuan Road 20#, Beijing 100083, ChinaSchool of Mechanical Engineering, Jiangsu University, Xuefu Road 301#, Zhenjiang 212000, ChinaSchool of Mechanical Engineering, Jiangsu University, Xuefu Road 301#, Zhenjiang 212000, ChinaSchool of Mechanical Engineering, Jiangsu University, Xuefu Road 301#, Zhenjiang 212000, ChinaSchool of Mechanical Engineering, Jiangsu University, Xuefu Road 301#, Zhenjiang 212000, ChinaSchool of Mechanical Engineering, Jiangsu University, Xuefu Road 301#, Zhenjiang 212000, ChinaPolymer-composite materials have the characteristics of light weight, high load, corrosion resistance, heat resistance, and high oil resistance. In particular, graphene composite has better electrical conductivity and mechanical performance. However, the raw materials of graphene composite are processed into semi-finished products, directly affecting their performance and service life. The electromagnetic pulse compaction was initially studied to get the product Graphene/PEKK composite powder. Simultaneously, spark plasma sintering was used to get the bars to determine the electrical conductivity of Graphene/PEKK composite. On the basis of this result, conducting Graphene/PEKK composite powder can be processed by electromagnetic pulse compaction. Finite element numerical analysis was used to obtain process parameters during the electromagnetic pulse compaction. The results show that discharge voltage and discharge capacitance influence on the magnetic force, which is a main moulding factor affecting stress, strain and density distribution on the specimen during electromagnetic pulse compaction in a few microseconds.https://www.mdpi.com/1996-1944/14/3/636graphene compositeconductivityspark plasma sinteringmagnetic forceelectromagnetic pulse compaction
spellingShingle Quanbin Wang
Deli Jia
Xiaohan Pei
Xuelian Wu
Fan Xu
Huixiong Wang
Minghao Cao
Haidong Chen
Investigation of Electromagnetic Pulse Compaction on Conducting Graphene/PEKK Composite Powder
Materials
graphene composite
conductivity
spark plasma sintering
magnetic force
electromagnetic pulse compaction
title Investigation of Electromagnetic Pulse Compaction on Conducting Graphene/PEKK Composite Powder
title_full Investigation of Electromagnetic Pulse Compaction on Conducting Graphene/PEKK Composite Powder
title_fullStr Investigation of Electromagnetic Pulse Compaction on Conducting Graphene/PEKK Composite Powder
title_full_unstemmed Investigation of Electromagnetic Pulse Compaction on Conducting Graphene/PEKK Composite Powder
title_short Investigation of Electromagnetic Pulse Compaction on Conducting Graphene/PEKK Composite Powder
title_sort investigation of electromagnetic pulse compaction on conducting graphene pekk composite powder
topic graphene composite
conductivity
spark plasma sintering
magnetic force
electromagnetic pulse compaction
url https://www.mdpi.com/1996-1944/14/3/636
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