3D-atom probe analysis of Cr and Cu added nitriding steels
- 1. Advanced Technology Research Labs., Nippon Steel Corporation, 20-1 Shintomi, Futtsu-city, Chiba, 293-8511 (Japan)
- 2. Technical RD Labs., Nippon Steel Corporation, 1 Fuji-cho, Himeji, Hirohata, Hyogo, 671-1188 (Japan)
Description
Full text: Nitriding treatment is a very effective method for hardening the surface of steels and realizing improvement in wear-resistance. Although this technology has been performed for many years, the precipitation and hardening mechanisms are not completely clear. It was not easy to observe very fine precipitates which may be generated in nitriding steels. We performed a three-dimensional atom probe analysis of the nitriding steel plate in which two kinds of precipitates were generated. Hot-rolled steel plates, which mainly contained Cr 1.0wt.% and Cu 1.3wt.%, were nitrided by annealing (550-6000o) in a mainly NH3 atmosphere. The material before the nitriding had a hardness of about 100 Hv. By the nitriding, the surface hardness increased to more than 700 Hv, and the inside hardness also increased to 200 Hv. The specimens were taken from 0.15 mm, 0.3 mm and 0.8 mm depth from the surface, which mostly correspond to the peak, the half and the inside hardness, respectively. In the specimen of 0.8 mm depth, prolate spheroidal Cu precipitates of more than 8 nm in diameter were observed. In the specimen of 0.3 mm depth, plate-shape nitride precipitates of 6-10 nm in diameter were observed in addition to the Cu precipitates. Each Cu precipitate made a pair with the nitride precipitate. In the 0.15 mm depth specimen, Cr nitride precipitates of high volume density in addition to the pairs consisting of a Cu precipitate and a Cr nitride precipitate were observed. The size of the nitride precipitate forming the pair was slightly larger than that of the single Cr nitride precipitates. Furthermore, the denuded zone where the nitride precipitate does not exist was observed around the pairs. From these results, it was concluded that three stages of precipitation arose as follows: By the heat treatment of nitriding processing, Cu precipitates were generated first. Then, Cr nitride nucleated at the surface of the Cu precipitates inhomogeneously, and surrounding solute Cr was absorbed to the nitride precipitates as the growth proceeded. Finally, in the region where enough solute Cr remained, Cr nitrides were nucleated homogeneously. The hardness increments were considered to be due to the Orowan mechanism. In the nitride precipitation region, Cu precipitates were thought not to contribute to the precipitation hardening because they always formed a pair with a nitride precipitate. The detailed precipitation and hardening mechanisms are discussed. (author)
Additional details
Publishing Information
- Publisher
- Graz University of Technology
- Imprint Place
- Graz (Austria)
- Imprint Title
- IFES 04. 49"t"h International Field Emission Symposium. Program and Abstracts
- Imprint Pagination
- 147 p.
- Journal Page Range
- p. 132
- Report number
- INIS-AT--0067
Conference
- Title
- 49. International Field Emission Symposium
- Acronym
- IFES 04
- Dates
- 12-15 Jul 2004
- Place
- Seggau Castle (Austria)
INIS
- Country of Publication
- Austria
- Country of Input or Organization
- Austria
- INIS RN
- 37073852
- Subject category
- S36: MATERIALS SCIENCE;
- Resource subtype / Literary indicator
- Conference, Non-conventional Literature
- Descriptors DEI
- ANNEALING; CHROMIUM NITRIDES; COPPER; ION MICROSCOPY; METALLURGICAL EFFECTS; MICROSTRUCTURE; NITRIDATION; PRECIPITATION HARDENING; STEELS; SURFACE HARDENING; TEMPERATURE RANGE 0400-1000 K; THREE-DIMENSIONAL CALCULATIONS; TIME-OF-FLIGHT MASS SPECTROMETERS
- Descriptors DEC
- ALLOYS; CARBON ADDITIONS; CHEMICAL REACTIONS; CHROMIUM COMPOUNDS; DYNAMIC MASS SPECTROMETERS; ELEMENTS; HARDENING; HEAT TREATMENTS; IRON ALLOYS; IRON BASE ALLOYS; MASS SPECTROMETERS; MEASURING INSTRUMENTS; METALS; MICROSCOPY; NITRIDES; NITROGEN COMPOUNDS; PNICTIDES; SPECTROMETERS; SURFACE TREATMENTS; TEMPERATURE RANGE; TIME-OF-FLIGHT SPECTROMETERS; TRANSITION ELEMENT ALLOYS; TRANSITION ELEMENT COMPOUNDS; TRANSITION ELEMENTS