Transportation of hydrocarbon is often accompanied by sand particles, water and acid gases which can induce erosion and corrosion phenomena in the metallic components and pipelines. Nickel-Phosphorus (NiP) alloys obtained through chemical plating offer a significant solving route for protective coatings, by providing increased hardness, erosion resistance and corrosion protection. In addition, electroless NiP deposition allows low production costs and effectiveness in large components with complex shapes, with a good adhesion between the composite coating and the metallic substrate. Multilayer coatings permit then to further increase corrosion resistance. This paper presents an innovative NiP Multipurpose Multilayer Coating (MMC), developed by Eni in cooperation with Politecnico di Milano (PoliMi), whose performances can be tailored by: 1) choosing the appropriate concentration of phosphorus to obtain corrosion resistance; 2) multilayers to improve resistance to corrosion in aggressive environment; 3) rigid microparticles addition to further increase the hardness of the matrix and achieve higher resistance to erosion. Several tests were carried out in the laboratories of PoliMi and EniProgetti to optimize the composition of the MMC: erosion and abrasion resistance, corrosion resistance in a flowing sour environment, morphology, micro-hardness and texture roughness of the different types of coating. The experimental activity allowed to characterize the behaviour and to identify optimized compositions of MMC. Finally, optimized MMC have been validated with in field real tests by applying the deposition process both by immersion, in case of small components, and by fluxing, with an in-situ apparatus specifically designed for pipes.

AN INNOVATIVE TECHNOLOGY FOR THE DEVELOPMENT OF COMPOSITE MULTILAYER COATINGS ON METALLIC COMPONENTS AND PIPES IN THE OIL & GAS SECTOR

L. Magagnin
2021-01-01

Abstract

Transportation of hydrocarbon is often accompanied by sand particles, water and acid gases which can induce erosion and corrosion phenomena in the metallic components and pipelines. Nickel-Phosphorus (NiP) alloys obtained through chemical plating offer a significant solving route for protective coatings, by providing increased hardness, erosion resistance and corrosion protection. In addition, electroless NiP deposition allows low production costs and effectiveness in large components with complex shapes, with a good adhesion between the composite coating and the metallic substrate. Multilayer coatings permit then to further increase corrosion resistance. This paper presents an innovative NiP Multipurpose Multilayer Coating (MMC), developed by Eni in cooperation with Politecnico di Milano (PoliMi), whose performances can be tailored by: 1) choosing the appropriate concentration of phosphorus to obtain corrosion resistance; 2) multilayers to improve resistance to corrosion in aggressive environment; 3) rigid microparticles addition to further increase the hardness of the matrix and achieve higher resistance to erosion. Several tests were carried out in the laboratories of PoliMi and EniProgetti to optimize the composition of the MMC: erosion and abrasion resistance, corrosion resistance in a flowing sour environment, morphology, micro-hardness and texture roughness of the different types of coating. The experimental activity allowed to characterize the behaviour and to identify optimized compositions of MMC. Finally, optimized MMC have been validated with in field real tests by applying the deposition process both by immersion, in case of small components, and by fluxing, with an in-situ apparatus specifically designed for pipes.
2021
OMC Med Energy Conference and Exhibition
978-88946678-0-6
Coating, NiP, pipeline
File in questo prodotto:
File Dimensione Formato  
OMC_2021.pdf

Accesso riservato

Descrizione: Articolo
: Publisher’s version
Dimensione 1.03 MB
Formato Adobe PDF
1.03 MB Adobe PDF   Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11311/1204155
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus ND
  • ???jsp.display-item.citation.isi??? ND
social impact