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Corrosion inhibition for an aluminum...
~
Collins, Andrew Peter.
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Corrosion inhibition for an aluminum substrate bonded with an electrically conductive adhesive.
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Corrosion inhibition for an aluminum substrate bonded with an electrically conductive adhesive./
作者:
Collins, Andrew Peter.
面頁冊數:
50 p.
附註:
Source: Masters Abstracts International, Volume: 41-05, page: 1512.
Contained By:
Masters Abstracts International41-05.
標題:
Plastics Technology. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=1413359
Corrosion inhibition for an aluminum substrate bonded with an electrically conductive adhesive.
Collins, Andrew Peter.
Corrosion inhibition for an aluminum substrate bonded with an electrically conductive adhesive.
- 50 p.
Source: Masters Abstracts International, Volume: 41-05, page: 1512.
Thesis (M.S.Eng.)--University of Massachusetts Lowell, 2003.
Corrosion inhibition is imperative to prevent instability in electrical resistance and adhesive strength when using an electrically conductive adhesive (ECA) to bond an aluminum thick metal backer to a printed wire circuit board in high frequency wireless applications. The mechanism by which corrosion occurs is accelerated by the presence of the ECA due to differences in galvanic potentials between the aluminum and the conductive filler. Stability was enhanced primarily by selection of hardener in combination with the proper conductive filler package. Some improvements were noted by proper selection of the corrosion inhibitor chemistry. Temporary stability and low electrical resistance was achieved by surface treatment of the aluminum, but it did not inhibit the conversion of aluminum oxide to aluminum hydroxide.Subjects--Topical Terms:
1023683
Plastics Technology.
Corrosion inhibition for an aluminum substrate bonded with an electrically conductive adhesive.
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Corrosion inhibition is imperative to prevent instability in electrical resistance and adhesive strength when using an electrically conductive adhesive (ECA) to bond an aluminum thick metal backer to a printed wire circuit board in high frequency wireless applications. The mechanism by which corrosion occurs is accelerated by the presence of the ECA due to differences in galvanic potentials between the aluminum and the conductive filler. Stability was enhanced primarily by selection of hardener in combination with the proper conductive filler package. Some improvements were noted by proper selection of the corrosion inhibitor chemistry. Temporary stability and low electrical resistance was achieved by surface treatment of the aluminum, but it did not inhibit the conversion of aluminum oxide to aluminum hydroxide.
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