polymer quenching
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2017 ◽  
Vol 724 ◽  
pp. 234-239 ◽  
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Limin Chen ◽  
Fei Zhu ◽  
Zhengjun Zhang ◽  
Ping Hu ◽  
Anzhe Wang ◽  
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2016 ◽  
Vol 57 (666) ◽  
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Ryosuke IMAMURA ◽  
Tomoaki MATSUMIYA ◽  
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Mariko MATSUDA ◽  
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2016 ◽  
Vol 82 (833) ◽  
pp. 15-00456-15-00456 ◽  
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Takefumi ARIKAWA ◽  
Haeyang PAK ◽  
Tomoaki MATSUMIYA ◽  
Ryosuke IMAMURA ◽  
Keisuke OKITA ◽  
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2015 ◽  
Vol 2015 (0) ◽  
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Haeyang PAK ◽  
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Ryosuke IMAMURA ◽  
Keisuke OKITA ◽  
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2011 ◽  
Vol 41 (4) ◽  
pp. 291-293 ◽  
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O. V. Shorokhova ◽  
T. N. Oskolkova
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2009 ◽  
Vol 6 (1) ◽  
pp. 102098 ◽  
Author(s):  
S. W. Dean ◽  
Gustavo Sánchez Sarmiento ◽  
Carlos Bronzini ◽  
Antonio Carlos Canale ◽  
Lauralice C. F. Canale ◽  
...  


2009 ◽  
Vol 2009 ◽  
pp. 1-7 ◽  
Author(s):  
Małgorzata Przyłęcka ◽  
Wojciech Gęstwa

There are many literature references comparing the use of aqueous polymer quenching solutions with petroleum oil quenchants for a wide range of steels of varying hardenability and the relating parameters of describing properties of the quenching mediums. There are relatively little similar relating correlations between parameters of describing properties of the different quenching mediums. The quenchants used included: conventional quenching oil, martempering oil, and 5% and 25% aqueous polymer quenchant solutions (APQSs) of a polymer quenchant. These quenching media were selected to represent a broad range of quench severities as quantified by cooling curve analysis (ASTM D 6482) using a standard Inconel 600 probe and the Tensi Agitation Device. The test of correlation conducted between the Hardening Power parameters according to examples of oils and polymers. The enable work results in applying the Hardening Power independently from equation calculated for different quenching mediums and their work parameters.



1999 ◽  
Vol 41 (2) ◽  
pp. 52-53
Author(s):  
A. A. Belanov ◽  
A. P. Kut'ev ◽  
N. S. Mirzabekova ◽  
A. G. Ksenofontov ◽  
S. Yu. Shevchenko


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