FIELD: metallurgy.
SUBSTANCE: method involves deposition of the coating from electrolyte containing deposited metal ions and hardening additives in a suspended state; hardening additives are added in the quantity that is determined as per the following equation: where z - quantity of hard inclusions in the coating, %, f1 - coating friction coefficient without inclusions, f2 - coating friction coefficient with inclusions, λ1 - heat conductivity of the coating without inclusions, W/m·K, λ2 - heat conductivity of the coating with inclusions, W/m·K.
EFFECT: increasing wear resistance of electrolytic coatings and reducing labour intensity for obtaining coatings owing to reducing the number of investigations.
2 tbl, 1 ex
Title | Year | Author | Number |
---|---|---|---|
METHOD TO APPLY COMPOSITE ELECTROCHEMICAL COATINGS ONTO ITEMS WITH SUBSEQUENT ELECTROTHERMAL TREATMENT | 2011 |
|
RU2473715C2 |
NICKEL-PLATING ELECTROLYTE | 0 |
|
SU785380A1 |
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|
RU2449062C1 |
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|
RU2354760C2 |
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|
RU2318083C1 |
METHOD OF OBTAINING COMPOSITE ELECTROCHEMICAL COATING ON STEEL | 2015 |
|
RU2618679C1 |
METHOD OF ELECTROCHEMICAL PRODUCTION OF COMPOSITE NICKEL COATING WITH QUASICRYSTALLINE PARTICLES | 2011 |
|
RU2478739C1 |
COMPOSITION FOR PREPARING OF COMPOSITION ELECTROLYTICAL COATINGS ON THE BASIS OF IRON GROUP METALS | 1990 |
|
RU2026892C1 |
METHOD OF STEEL COATING | 2008 |
|
RU2360043C1 |
HEAT-CONDUCTING MATERIAL | 2001 |
|
RU2270821C2 |
Authors
Dates
2013-02-27—Published
2011-11-10—Filed