Magnetic characterization of the nickel layer protecting the copper wires in harsh applications
High Temperature (HT°) motor coils open new perspectives for extending the applications of electrical motors or generators to very harsh environments or for designing very high power density machines working with high internal temperature gradients. Over a temperature of 300°C, the classic enameled...
Main Authors: | , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Polish Academy of Sciences
2017-06-01
|
Series: | Archives of Electrical Engineering |
Subjects: | |
Online Access: | http://www.degruyter.com/view/j/aee.2017.66.issue-2/aee-2017-0019/aee-2017-0019.xml?format=INT |
id |
doaj-a89619e690784eeab71d6b3de4e56eb2 |
---|---|
record_format |
Article |
spelling |
doaj-a89619e690784eeab71d6b3de4e56eb22020-11-25T02:36:17ZengPolish Academy of SciencesArchives of Electrical Engineering2300-25062017-06-0166225326310.1515/aee-2017-0019aee-2017-0019Magnetic characterization of the nickel layer protecting the copper wires in harsh applicationsRoger Daniel0Duchesne Stephane1Iosif Vadim2Universitet Artois, Arras, FranceUniversitet Artois, Arras, FranceUniversitet Artois, Arras, FranceHigh Temperature (HT°) motor coils open new perspectives for extending the applications of electrical motors or generators to very harsh environments or for designing very high power density machines working with high internal temperature gradients. Over a temperature of 300°C, the classic enameled wire cannot work permanently, the turn-to-turn insulation must be inorganic and made with high temperature textiles or vitro-ceramic compounds. For both cases, a diffusion barrier must protect the copper wire against oxidation. The usual solution consists of adding a nickel layer that yields an excellent chemical protection. Unfortunately, the nickel has ferromagnetic properties that change a lot the skin effect in the HT wire at high frequencies. For many applications such as aeronautics, electrical machines are always associated with PWM inverters for their control. The windings must resist to high voltage short spikes caused by the fast fronted pulses imposed by the feeding inverter. The nickel protection layer of the HT° inorganic wire has a large influence on the high frequency behavior of coils and, consequently, on the magnitude of the voltage spikes. A good knowledge of the non-linear magnetic characteristics of this nickel layer is helpful for designing reliable HT inorganic coils. The paper presents a method able to characterize non-linear electromagnetic properties of this nickel layer up to 500°C.http://www.degruyter.com/view/j/aee.2017.66.issue-2/aee-2017-0019/aee-2017-0019.xml?format=INThigh temperature motor windingnickel diffusion barriertemperature dependent magnetic properties |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Roger Daniel Duchesne Stephane Iosif Vadim |
spellingShingle |
Roger Daniel Duchesne Stephane Iosif Vadim Magnetic characterization of the nickel layer protecting the copper wires in harsh applications Archives of Electrical Engineering high temperature motor winding nickel diffusion barrier temperature dependent magnetic properties |
author_facet |
Roger Daniel Duchesne Stephane Iosif Vadim |
author_sort |
Roger Daniel |
title |
Magnetic characterization of the nickel layer protecting the copper wires in harsh applications |
title_short |
Magnetic characterization of the nickel layer protecting the copper wires in harsh applications |
title_full |
Magnetic characterization of the nickel layer protecting the copper wires in harsh applications |
title_fullStr |
Magnetic characterization of the nickel layer protecting the copper wires in harsh applications |
title_full_unstemmed |
Magnetic characterization of the nickel layer protecting the copper wires in harsh applications |
title_sort |
magnetic characterization of the nickel layer protecting the copper wires in harsh applications |
publisher |
Polish Academy of Sciences |
series |
Archives of Electrical Engineering |
issn |
2300-2506 |
publishDate |
2017-06-01 |
description |
High Temperature (HT°) motor coils open new perspectives for extending the applications of electrical motors or generators to very harsh environments or for designing very high power density machines working with high internal temperature gradients. Over a temperature of 300°C, the classic enameled wire cannot work permanently, the turn-to-turn insulation must be inorganic and made with high temperature textiles or vitro-ceramic compounds. For both cases, a diffusion barrier must protect the copper wire against oxidation. The usual solution consists of adding a nickel layer that yields an excellent chemical protection. Unfortunately, the nickel has ferromagnetic properties that change a lot the skin effect in the HT wire at high frequencies. For many applications such as aeronautics, electrical machines are always associated with PWM inverters for their control. The windings must resist to high voltage short spikes caused by the fast fronted pulses imposed by the feeding inverter. The nickel protection layer of the HT° inorganic wire has a large influence on the high frequency behavior of coils and, consequently, on the magnitude of the voltage spikes. A good knowledge of the non-linear magnetic characteristics of this nickel layer is helpful for designing reliable HT inorganic coils. The paper presents a method able to characterize non-linear electromagnetic properties of this nickel layer up to 500°C. |
topic |
high temperature motor winding nickel diffusion barrier temperature dependent magnetic properties |
url |
http://www.degruyter.com/view/j/aee.2017.66.issue-2/aee-2017-0019/aee-2017-0019.xml?format=INT |
work_keys_str_mv |
AT rogerdaniel magneticcharacterizationofthenickellayerprotectingthecopperwiresinharshapplications AT duchesnestephane magneticcharacterizationofthenickellayerprotectingthecopperwiresinharshapplications AT iosifvadim magneticcharacterizationofthenickellayerprotectingthecopperwiresinharshapplications |
_version_ |
1724800927103188992 |