Fracture failure analysis of baseplates in a fluidic amplifier made of WC-11Co cemented carbide

A fluidic amplifier is a crucial automatic control component in a liquid jet hammer used to drill hard formations in the oil industry. This study aims to determine the true causes of the fracture failure of baseplates in a fluidic amplifier made of WC-11Co cemented carbide in a very short period of...

Full description

Bibliographic Details
Main Authors: H. Liu, K. Yin, J.M. Peng, Q.L. Yin
Format: Article
Language:English
Published: Gruppo Italiano Frattura 2013-12-01
Series:Frattura ed Integrità Strutturale
Subjects:
Online Access:https://www.fracturae.com/index.php/fis/article/view/1202
id doaj-a48c3123b878471491aa2178bb743f10
record_format Article
spelling doaj-a48c3123b878471491aa2178bb743f102021-01-27T17:17:46ZengGruppo Italiano FratturaFrattura ed Integrità Strutturale1971-89932013-12-01827Fracture failure analysis of baseplates in a fluidic amplifier made of WC-11Co cemented carbideH. Liu0K. Yin1J.M. Peng2Q.L. Yin3College of Construction Engineering, Jilin University, Changchun (China)College of Construction Engineering, Jilin University, Changchun (China)College of Construction Engineering, Jilin University, Changchun (China)College of Construction Engineering, Jilin University, Changchun (China) A fluidic amplifier is a crucial automatic control component in a liquid jet hammer used to drill hard formations in the oil industry. This study aims to determine the true causes of the fracture failure of baseplates in a fluidic amplifier made of WC-11Co cemented carbide in a very short period of time. Computational fluid dynamics (CFD), theoretical estimation, and finite element analysis (FEA) were employed to analyze the effect of static and dynamic loads on the strength of the baseplates. Fractographic, metallographic, and processing defect analyses were also carried out. The FEA results showed that the static and dynamic loads caused stress concentrations at the actual fracture locations, and the effect of working loads on material strength was allowable and safe. Fracture surfaces exhibited typical characteristics of a brittle fracture. The metallographic analysis revealed that a specific amount of brittle eta-phase (?-phase) was present in the material. The microstructure of the processing cutting zone was inspected and the results revealed that some voids, pores, and microcracks were formed on the processing surface. The manufacturing and processing defects resulted in low stress fracture failure of the baseplates. https://www.fracturae.com/index.php/fis/article/view/1202WC-Co cemented carbide
collection DOAJ
language English
format Article
sources DOAJ
author H. Liu
K. Yin
J.M. Peng
Q.L. Yin
spellingShingle H. Liu
K. Yin
J.M. Peng
Q.L. Yin
Fracture failure analysis of baseplates in a fluidic amplifier made of WC-11Co cemented carbide
Frattura ed Integrità Strutturale
WC-Co cemented carbide
author_facet H. Liu
K. Yin
J.M. Peng
Q.L. Yin
author_sort H. Liu
title Fracture failure analysis of baseplates in a fluidic amplifier made of WC-11Co cemented carbide
title_short Fracture failure analysis of baseplates in a fluidic amplifier made of WC-11Co cemented carbide
title_full Fracture failure analysis of baseplates in a fluidic amplifier made of WC-11Co cemented carbide
title_fullStr Fracture failure analysis of baseplates in a fluidic amplifier made of WC-11Co cemented carbide
title_full_unstemmed Fracture failure analysis of baseplates in a fluidic amplifier made of WC-11Co cemented carbide
title_sort fracture failure analysis of baseplates in a fluidic amplifier made of wc-11co cemented carbide
publisher Gruppo Italiano Frattura
series Frattura ed Integrità Strutturale
issn 1971-8993
publishDate 2013-12-01
description A fluidic amplifier is a crucial automatic control component in a liquid jet hammer used to drill hard formations in the oil industry. This study aims to determine the true causes of the fracture failure of baseplates in a fluidic amplifier made of WC-11Co cemented carbide in a very short period of time. Computational fluid dynamics (CFD), theoretical estimation, and finite element analysis (FEA) were employed to analyze the effect of static and dynamic loads on the strength of the baseplates. Fractographic, metallographic, and processing defect analyses were also carried out. The FEA results showed that the static and dynamic loads caused stress concentrations at the actual fracture locations, and the effect of working loads on material strength was allowable and safe. Fracture surfaces exhibited typical characteristics of a brittle fracture. The metallographic analysis revealed that a specific amount of brittle eta-phase (?-phase) was present in the material. The microstructure of the processing cutting zone was inspected and the results revealed that some voids, pores, and microcracks were formed on the processing surface. The manufacturing and processing defects resulted in low stress fracture failure of the baseplates.
topic WC-Co cemented carbide
url https://www.fracturae.com/index.php/fis/article/view/1202
work_keys_str_mv AT hliu fracturefailureanalysisofbaseplatesinafluidicamplifiermadeofwc11cocementedcarbide
AT kyin fracturefailureanalysisofbaseplatesinafluidicamplifiermadeofwc11cocementedcarbide
AT jmpeng fracturefailureanalysisofbaseplatesinafluidicamplifiermadeofwc11cocementedcarbide
AT qlyin fracturefailureanalysisofbaseplatesinafluidicamplifiermadeofwc11cocementedcarbide
_version_ 1724320596498579456