LIVIVO - Das Suchportal für Lebenswissenschaften

switch to English language
Erweiterte Suche

Ihre letzten Suchen

  1. AU="Govindaraman, Loganathan T"
  2. AU="De Baere, Thierry"
  3. AU="Dunne, Jean"
  4. AU="Taj, Shafaq"
  5. AU="Hassan, Ashwaa"
  6. AU=Freudenberger Todd D
  7. AU="Bose, Sarah"
  8. AU=Casanova Jean-Laurent
  9. AU="Ho, Gia-Thien-Thanh"
  10. AU="Shao, Hui"
  11. AU="Xu, Y Jun"
  12. AU="Lee, Hae-Ock"
  13. AU=Loscher Wolfgang
  14. AU="Mariani, Nicholas"
  15. AU=Corominas M
  16. AU="Enderami, Seyed Ehsan"
  17. AU="Vaidya, Ratnaraj"
  18. AU=Kawai Yasuyuki
  19. AU="Hilu, John"
  20. AU="Liu, Hao-Wen"
  21. AU="Sandar, H"
  22. AU="Palumbo, Amelia"
  23. AU=Hoshino Ayuko
  24. AU="Grindle, Tina"
  25. AU="Fathy, Ramie"

Suchergebnis

Treffer 1 - 1 von insgesamt 1

Suchoptionen

Artikel: Electrical Conductivity of Additively Manufactured Copper and Silver for Electrical Winding Applications.

Robinson, John / Munagala, Sai Priya / Arjunan, Arun / Simpson, Nick / Jones, Ryan / Baroutaji, Ahmad / Govindaraman, Loganathan T / Lyall, Iain

Materials (Basel, Switzerland)

2022  Band 15, Heft 21

Abstract: Efficient and power-dense electrical machines are critical in driving the next generation of green energy technologies for many industries including automotive, aerospace and energy. However, one of the primary requirements to enable this is the ... ...

Abstract Efficient and power-dense electrical machines are critical in driving the next generation of green energy technologies for many industries including automotive, aerospace and energy. However, one of the primary requirements to enable this is the fabrication of compact custom windings with optimised materials and geometries. Electrical machine windings rely on highly electrically conductive materials, and therefore, the Additive Manufacturing (AM) of custom copper (Cu) and silver (Ag) windings offers opportunities to simultaneously improve efficiency through optimised materials, custom geometries and topology and thermal management through integrated cooling strategies. Laser Powder Bed Fusion (L-PBF) is the most mature AM technology for metals, however, laser processing highly reflective and conductive metals such as Cu and Ag is highly challenging due to insufficient energy absorption. In this regard, this study details the 400 W L-PBF processing of high-purity Cu, Ag and Cu-Ag alloys and the resultant electrical conductivity performance. Six Cu and Ag material variants are investigated in four comparative studies characterising the influence of material composition, powder recoating, laser exposure and electropolishing. The highest density and electrical conductivity achieved was 88% and 73% IACS, respectively. To aid in the application of electrical insulation coatings, electropolishing parameters are established to improve surface roughness. Finally, proof-of-concept electrical machine coils are fabricated, highlighting the potential for 400 W L-PBF processing of Cu and Ag, extending the current state of the art.
Sprache Englisch
Erscheinungsdatum 2022-10-28
Erscheinungsland Switzerland
Dokumenttyp Journal Article
ZDB-ID 2487261-1
ISSN 1996-1944
ISSN 1996-1944
DOI 10.3390/ma15217563
Datenquelle MEDical Literature Analysis and Retrieval System OnLINE

Zusatzmaterialien

Kategorien

Zum Seitenanfang