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Published: 01 January 1989
Fig. 26 An example of PVD TiN coating on a sharp cemented carbide tool. Etched with Murakami's reagent for 3 s. 1140×
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Image
Published: 30 September 2015
Fig. 2 Tin-coated, rounded, cut copper wire particles with a size range of 250 to 425 micrometers that are gravity sintered to 55% density in order to yield a 40 micron filter grade. 100×
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in Corrosion of Electronic Equipment in Military Environments
> Corrosion: Environments and Industries
Published: 01 January 2006
Fig. 4 White corrosion products on tin-coated circuits and galvanic corrosion between the gold-tin contact/circuit interface resulting from a coffee spill
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Image
Published: 01 January 1990
Fig. 26 An example of PVD TiN coating on a sharp cemented carbide tool. Etched with Murakami's reagent for 3 s. 1140×
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Image
Published: 01 January 1994
Fig. 5 Auger electron spectroscopy of a TiN coating in the derivative mode. At 383 eV, one of the major titanium peaks overlaps with the nitrogen (381 eV) peak. Source: Ref 10
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Published: 09 June 2014
Fig. 58 Wear of combined chemical vapor deposition (CVD) TiN-coated + induction surface-hardened steel D2 (10 kW, 18 s air, and nitrogen/oil). IH, induction heated. Source: Ref 51
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Published: 01 December 2004
Fig. 27 Same physical-vapor-deposited TiN-coated insert as in Fig. 108, but the micrograph shows the coating over the sharp insert edge. Murakami's reagent, 1 min. 1500×.
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Published: 01 November 2010
Fig. 14 Mesh model for a TiC/Al 2 O 3 /TiN-coated tool as used in experiments, based on the individual layer model. Source: Ref 36
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Published: 01 January 1989
Fig. 11 Cross section of multiple coatings of TiC on TiN on a Si 3 N 4 -TiC composite tool material
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Published: 01 January 1994
Fig. 6 Physical vapor deposition coatings on cemented carbide substrates. (a) TiN. (b) TiCN. (c) TiAlN
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Published: 01 January 1994
Fig. 7 Combination of a chemical vapor deposition TiN-TiCN coating and a physical vapor deposition TiN coating on a cobalt-enriched cemented carbide insert
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Book Chapter
Book: Corrosion: Materials
Series: ASM Handbook
Volume: 13B
Publisher: ASM International
Published: 01 January 2005
DOI: 10.31399/asm.hb.v13b.a0003818
EISBN: 978-1-62708-183-2
... behavior on soft solders, pewter, bearing alloys, tin-copper alloys, and tin-silver alloys. It reviews the influence of corrosion on immersion tin coating, tin-cadmium alloy coatings, tin-cobalt coatings, tin-copper coatings, tin-lead coatings, tin-nickel coatings, and tin-zinc coatings. The general...
Abstract
This article describes the allotropic modification and atmospheric corrosion of pure tin. Corrosion of pure tin due to oxidation reaction, and reaction with the other gases, water, acids, bases, and other liquid media, is discussed. The article provides information on corrosion behavior on soft solders, pewter, bearing alloys, tin-copper alloys, and tin-silver alloys. It reviews the influence of corrosion on immersion tin coating, tin-cadmium alloy coatings, tin-cobalt coatings, tin-copper coatings, tin-lead coatings, tin-nickel coatings, and tin-zinc coatings. The general properties and corrosion resistance of tinplate are summarized. The article also describes the methods of corrosion testing of coatings; these include an analysis of coating thickness measurements, porosity and rust resistance testing, solderability test, and specific special tests.
Series: ASM Handbook
Volume: 14B
Publisher: ASM International
Published: 01 January 2006
DOI: 10.31399/asm.hb.v14b.a0005164
EISBN: 978-1-62708-186-3
... of the substrate, the type of coating, and the method used for its application. The article describes various coating types for steels such as zinc-coated steels, aluminum-coated steels, tin-coated steels, terne-coated steels, and organic-coated steels. aluminum-coated steels bare steel formability...
Abstract
This article provides an overview of some common sheet steel coatings available. It discusses the formability differences between coated and bare steel and provides some general guidelines on the forming of coated steels. Coated steels are classified according to the nature of the substrate, the type of coating, and the method used for its application. The article describes various coating types for steels such as zinc-coated steels, aluminum-coated steels, tin-coated steels, terne-coated steels, and organic-coated steels.
Image
Published: 01 January 2002
Fig. 9 Morphology of cracks leading to rolling-contact fatigue failure of PVD (TiN) coatings. (a) Crack parallel to the interface leading to spalled area for hard substrate (60 HRC) TiN coating. (b) Cracks parallel to the coating-substrate interface for hard substrate (60 HRC) TiN coating. (c
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Image
Published: 01 January 1994
Fig. 3 Chemical vapor deposition coatings. (a) Cemented carbide insert with TiC coating. Note eta phase at the coating-substrate interface. (b) 73WC-19(Ti,Ta,Nb)C-8Co alloy with a TiC/TiCN/TiN coating about 10 μm thick. (c) 85WC-9(Ti,Ta,Nb)C-6Co alloy with a TiC/Al 2 O 3 coating about 9 μm
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Book: Surface Engineering
Series: ASM Handbook
Volume: 5
Publisher: ASM International
Published: 01 January 1994
DOI: 10.31399/asm.hb.v05.a0001270
EISBN: 978-1-62708-170-2
... considered in this article include metal coatings, such as zinc coatings, and alloy coatings, such as zinc-iron, types 1 and 2 aluminum, Zn-5AI, Zn-55AI, and lead-tin coatings. aluminum coatings continuous hot dip coatings ferrous metals lead-tin alloycoatings microstructure steel sheet surface...
Abstract
This article discusses the processes involved in continuous hotdip coating of steel sheets, namely, hot and cold line processing, surface preparation, and post treatment. It outlines the properties and microstructures of metals and their alloys used in this process. The coatings considered in this article include metal coatings, such as zinc coatings, and alloy coatings, such as zinc-iron, types 1 and 2 aluminum, Zn-5AI, Zn-55AI, and lead-tin coatings.
Image
Published: 01 January 1994
Fig. 4 Multilayer chemical vapor deposition coatings on cobalt-enriched substrates. (a) 86WC-8(Ti,Ta,Nb)C-6Co alloy with cobalt-enriched periphery and a TiC/TiCN/TiN coating. (b) Second-generation cobalt-enriched cemented carbide tool with TiC/Al 2 O 3 /TiN coating
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Image
Published: 01 January 1989
Fig. 17 Multilayer coatings of carbide substrates. (a) 73WC-19(Ti,Ta,Nb)C-8Co alloy with a TiC/TiCN/TiN coating of about 10 μm (400 μin.) in total thickness. (b) 85WC-9(Ti,Ta,Nb)C-6Co with a TiC/Al 2 O 3 coating about 9 μm (350 μin.) thick. (c) 85WC-9(Ti,Ta,Nb)C-6Co with a TiC/Al 2 O 3 /TiN
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Image
Published: 01 January 1990
Fig. 17 Multilayer coatings of carbide substrates. (a) 73WC-19(Ti,Ta,Nb)C-8Co alloy with a TiC/TiCN/TiN coating of about 10 μm (400 μin.) in total thickness. (b) 85WC-9(Ti,Ta,Nb)C-6Co with a TiC/Al 2 O 3 coating about 9 μm (350 μin.) thick. (c) 85WC-9(Ti,Ta,Nb)C-6Co with a TiC/Al 2 O 3 /TiN
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Image
Published: 01 January 1993
Fig. 4 Copper-tin intermetallic layer (Cu 6 Sn 5 + Cu 3 Sn) growth kinetics. (a) For electroplated tin coating. (b) For electroplated 60Sn-40Pb coating. (c) For hot-dipped 63Sn-37Pb coating. (d) For tin-lead coatings at room temperature. Source: International Tin Research Institute and Sandia
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