US2881109A - Case-hardened, worked steels - Google Patents

Case-hardened, worked steels Download PDF

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Publication number
US2881109A
US2881109A US617272A US61727256A US2881109A US 2881109 A US2881109 A US 2881109A US 617272 A US617272 A US 617272A US 61727256 A US61727256 A US 61727256A US 2881109 A US2881109 A US 2881109A
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United States
Prior art keywords
steel
temperature
reduction
range
steels
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Expired - Lifetime
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US617272A
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English (en)
Inventor
David E Thorn
Elliot S Nachtman
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Lasalle Steel Co
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Lasalle Steel Co
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Priority to US617272A priority Critical patent/US2881109A/en
Priority to CH5181857A priority patent/CH383424A/de
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    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D8/00Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C8/00Solid state diffusion of only non-metal elements into metallic material surfaces; Chemical surface treatment of metallic material by reaction of the surface with a reactive gas, leaving reaction products of surface material in the coating, e.g. conversion coatings, passivation of metals

Definitions

  • This invention relates to the improvement in me-' chanical and physical properties of steel by a process capable of being employed in the cold-finishing of steel, as in the cold-finishing of steel bars, rods, wires, and the like steel products.
  • the inventions of the aforementioned copending applications are addressed to the method for the improvement of physical and mechanical properties of steel by the process which includes the step of working the steel as by advancement of the steel through a die to effect reduction in cross-sectional area while the steel is at a temperature within the range of 200 F. to the lower critical temperature for the steel composition, or at a temperature within the range of 200 F. to ll00-1200 F.
  • the temperature of the steel in the elevated temperature reduction step has considerable influence on the improvements secured in physical and mechanical properties of the steel.
  • .controlling temperature, chemistry, and amount of reduction itis possible selectively to adjust physical and mechanical properties developed in the steel over a fairly wide range while enhancing the uniformity of physical and mechanical properties in the steel from heat to heat by comparison with hot-rolled steels.
  • This invention embodies the concepts set forth in the aforementioned copending applications in combination with the treatment of the steel prior to taking the elevated temperature reduction step to effect a diflusion transfer at elevated temperature followed by quenching or otherwise cooling the steel from diffusion temperature to ambient temperature, or to approximately the temperature for advancing the steel directly to the die for the elevated temperature reduction step.
  • diffusion transfer will hereinafter be defined with reference to the previous treatment of the steel to case the steel, as by means of carburizing, but it will be understood that other diffusion transfer processes may instead be em- 2,881,109 Patented "Apr; 7, 195g:
  • . 2 ployed, such as nitriding, cyaniding, carbonitriding, and the like, to introduce elements which change the chemistry of the steel, at least in the surface portions.
  • the term physical and mechanical properties is meant to include tensile strength, yield strength, hardness, ductility, elongation, residual stress, warpage, corrosion resistance, wear resistance, and the like. It has been found, for example, as described in the aforementioned copending applications, that machine ability characteristics of the steel and such properties as tensile strength,--yield strength, proportional limit, imv pact strength, and hardness are more beneficially affected when, as described in the copending applicationsserial Nos. 518,414 and 518,413, the steel is advanced through the die to elfe'ct reduction in cross-sectional area whilethe steel is at a temperature within the range of 450-8501 F.
  • the trend of the improvements in physical and mechanical properties, and the extent of improvements in any one of the properties is influenced by the temperature of the steel being reduced, the chemistry of the steel, and the amount of reduction that is taken.
  • the rate of cooling of 'the steel after elevated temperature reduction has very litle influence on the properties and character of the steel with the exception that lower stress levels are secured and a preponderance of compressive stresses can be provided in the steels when the steels are rapidly cooled, as by quenching following the elevated temperature reduction step, and especially when the elevated temperature reduction step is taken while the steel is at a temperature within the range of 750 F. to the lower critical temperature of the steel composition.
  • Steels that respond in the manner described to the com bination of steps of diffusion transfer, as by carburizing, prior to elevated temperature reduction can be classified quite generally as steels of the type which strain harden and harden by some mode of precipitation or other rearrangement when worked at a temperature within a range of 200 F. to the lower critical temperature for the steel composition.
  • Typical of the class of steels are the hot rolled, non-austenitic steels which have a pearlitic structure in a matrix of free ferrite.
  • the steel may be advanced through a die such as adraw die, extrusion die, or roller die to elfect reduction in cross-sectional area.
  • a die such as adraw die, extrusion die, or roller die to elfect reduction in cross-sectional area.
  • the process of rolling is not equivalent to the process of drawing or extrusion, it has been found that many of the characteristics and properties capable of being developed in steels in the elevated temperature reduction step are also capable of development when the elevated temperature reduction step is taken in a rolling operation while the steel isat a temperature within a range of 200 F. to the lower critical temperature of the steel composition.
  • Difiusion ean be defined briefly as involving the movement of atoms within a solution. The net movement is usually in the direction from regions of high concentration toward regions of lower concentration in the attempt to achieve homogeneity of the system, which may be a liquid or gas or, as in the present instance, a solid metal.
  • Carburizing is a diffusion-transfer process wherein carbon is introduced into the steelby bringing th'e'steelintointimate contacting relation with a car- 'ac" 'us material,'i11 the form of a solid, liquid, or gas, an heatrn'gto a temperature above thetransformation ti for "the steel holding at that temperature for anhmountl'of tirne'suflicient to "give the desired case to the steel.
  • Qarburi'zinfg is'generally followedbyquenching to produce a hardened case. The time and temperature relationship influences'the depth of case, as is well known inthe art.
  • Carburizing eliminates the decarb in the steel and hardens the surface of the steel, thereby markedly 'to increase the endurance limit of the elevated-temperaturedrawn steel by comparison with the results secured with steels having decarb still in the surface. Carburizing increases the amount of carbon in the surface of the steel.
  • the case may be formed to various depths, depending on the time and temperature of carburization. Ordinarily the case will be formed to depths of about 0.030" to 0.060", but the desired results may be secured by elevated-temperature reduction of steels having a depth of case within the range of 0.001" to 0.100".
  • the treatment after carburizing can be varied.
  • the steel can be quenched rapidly to cool the steel to room temperature, followed by reheating the quenched steel to the elevated temperature desired for taking the elevated temperature reduction step.
  • the carburized steel can be air cooled to ambient temperature and then reheated to the temperature desired for the elevated temperature reduction step.
  • the carburized steel can be quenched or air cooled to temperatures above ambient temperature, such as to 'a temperature slightly below the temperature desired for elevated temperature reduction, followed by reheating to the desired temperature, or the carburized steel'can be quenched or otherwise cooled to temperatures corresponding to thetemperature desired for the elevated temperature reduction step, followed immediately by reduction of the steel at the desired temperature. While elevated temperature reduction of the carburized and quenched steel is intended to include reduction of.
  • the steel while at a temperature within the range of 200 F. to the lower critical temperature for the steel composition, it 'is preferred to effect the desired reduction in cross-sectional area while the steel is at a temperature within the range of 450 F. to the lower critical temperature for the steel composition.
  • the steel bars to be drawn were lubricated in advance of drawing, and then the steels were advanced through a draw die to take a reduction in cross-sectional area.
  • the bars of 0-1144 steel were ,4 in diameter, and the bars of the 4140 steel were originally ,5 in diameter.
  • warpage factor is directly related to residual stresses.
  • the warpage value is an indication of the concentration and character of the longitudinal stresses present in steel.
  • the residual stress is obtained by means of warpage test wherein the length of the test piece is determined as being five times the diameter plus two inches.
  • the test pieces are slotted through a diameter for a distance five times the diameter.
  • the length of the slot is recorded and the maximum diameter perpendicular to the slot is also recorded.
  • the differences between the diameter before slotting and after slotting represent the flare caused by the presence of residual stresses.
  • the flare is considered positive, indicating a preponderance of tensile stresses at the surface of the steel, if the bar expands upon slotting.
  • the flare is considered negative, indicating a preponderance of compressive stresses at the surface of the steel, if the ends move toward the cut made through the diameter.
  • the warpage values determined are calculated on the following equation:
  • the depth of case, the carbon content of the case, the grain size, the rate of carburization, and the carbon gradient have some effect on the increase in endurance limit and wear resistance, as well as on some of the other properties of the steel.
  • the carburizing temperature of 1600" F. was arbitrarily selected as representative of a number of temperatures which might have been employed above the transformationrange of the steel.
  • the temperature of 1600 perrnits good diffusion of the steel and results in a smooth "gradient of carbon from the case to the core.
  • Table III Diffusion process of carburizing Air-cooled to room temperature Drawn to take a 9.8% reduction Air-cooled after drawing.
  • Air-cooled carburized steel which is subsequently drawn at temperatures indicated on [allowing lines.
  • bar stock may include bars, rods, wire, tubing, and the like metal products. It will be further understood that modifications may be made with respect to the carburizing steps, the time and temperature of quench, the temperature of the steel during the elevatedtemperature-reduction step, and the after treatment, as Well as the methods for heating, re-heating, and quenching, without departing from the spirit of the invention, especially as defined in the following claims.
  • the metallurgical process for treating steel of the non-austenitic type having a pearlitic structure in a matrix of free ferrite comprising the combination of steps of heating the steel to a temperature above its transformation range while in surface contact with the material for diffusion transfer onto the surface of the steel, cooling the steel and subsequently taking a reduction in crosssectional area by working the steel while the steel is at a temperature within the range of 200 F. to the lower critical temperature for the steel composition.
  • the metallurgical process for treating steel of the non-austenitic type having a pearlitic structure in a matrix of free ferrite comprising the combination of steps of carburizing the steel and then advancing the carburized steel through a die to take a reduction in cross-sectional area while the steel is at a temperature within the range of 200 F. to the lower critical temperature for the steel composition.
  • the metallurgical process fortreating steel which strain-hardens and which hardens by some mode of precipitation when worked at a temperature between 200 F. and the lower critical temperature for the steel composition comprising the combination of steps of heating the steel to a temperature above its transformation range while in contact with a material for ditfusion transfer into the steel, quenching the steel to ambient temperature and subsequently taking a reduction in cross-sectional area by working the steel while the steel is at a temperature within the range of 200 F. to the lower critical temperature for the steel composition.
  • the metallurgical process for treating steel which strain-hardens and which hardens by some mode of precipitation when worked at a temperature between 200 F. and the lower critical temperature for the steel composition comprising the combination of steps of heating the steel to a temperature above its transformation range while in contact with a material for diffusion transfer into the steel, air-cooling the steel from the temperature of diifusion and subsequently taking a reduction in crosssectional area by working the steel while the steel is at a temperature within the range of 200 F. to the lower critical temperature for the steel composition.
  • the metallurgical process for treating steel which strain-hardens and which hardens by some mode of precipitation when worked at a temperature between 200 F. and the lower critical temperature for the steel composition comprising the combination of steps of carburizing the steel and then advancing the steel through a die to take a reduction in cross-sectional area while the steel is at a temperature within the range of 200 F. to the lower critical temperature for the steel composition.
  • the metallurgical process for treating steel which strain-hardens and which hardens by some mode of precipitation when worked at a temperature between 200 F. and the lower critical temperature for the steel composition comprising the combination of steps of carburizing the steel and then advancing the steel through a draw die to take a reduction in cross-sectional area in a drawing operation while the steel is at a temperature within the range of 200 F. to the lower critical temperature for the steel composition.
  • the metallurgical process for treating steel which strain-hardens and which hardens by some mode of precipitation when worked at a temperature between 200 F. and the lower critical temperature for the steel composition comprising the combination of steps of carburizing the steel and then advancing the steel through an extrusion die to take a reduction in cross-sectional area by an extrusion operation while the steel is at a temperature within the range of 200 F. to the lower critical temperature for the steel composition.
  • the metallurgical process for treating steel which strain-hardens and which hardens by some mode of precipitation when worked at a temperature between 200 F. and the lower critical temperature for the steel composition comprising the combination of steps of carburizing the steel and then rolling the steel to efiect a reduction in cross-sectional area in a rolling operation while the steel is at a temperature within the range of 200 F. to the lower critical temperature for the steel composition.
  • the metallurgical process for treating steel which strain-hardens and which hardens by some mode of precipitation when worked at a temperature between 200 F. and the lower critical temperature for the steel composition comprising the combination of steps of heating the steel to a temperature above its transformation range while in contact with a material for difiusion transfer into the steel, cooling the steel and subsequently taking a reduction in cross-sectional area by working the steel while the steel is at a temperature Within the range of 200 F. to the lower critical temperature for the steel composition.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Materials Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Crystallography & Structural Chemistry (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Heat Treatment Of Steel (AREA)
  • Solid-Phase Diffusion Into Metallic Material Surfaces (AREA)
US617272A 1956-10-22 1956-10-22 Case-hardened, worked steels Expired - Lifetime US2881109A (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
US617272A US2881109A (en) 1956-10-22 1956-10-22 Case-hardened, worked steels
CH5181857A CH383424A (de) 1956-10-22 1957-10-21 Verfahren zur Behandlung von Stahl

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3294595A (en) * 1965-10-24 1966-12-27 Tadeusz W Wlodek Precarburization and other prediffusion treatment of spiral rolled or differentially plastically formed and standard type drill steel
US3873375A (en) * 1973-04-19 1975-03-25 Remington Arms Co Inc Method of making steel cartridge cases
US5094699A (en) * 1989-02-17 1992-03-10 Vereinigte Schmiedewerke Gmbh Method of producing a high strength and hard metallic composite layer material
US10400320B2 (en) 2015-05-15 2019-09-03 Nucor Corporation Lead free steel and method of manufacturing

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1018369A (en) * 1912-01-04 1912-02-20 Winfield S Potter Manufacture of manganese-steel wire.
US2531731A (en) * 1946-11-29 1950-11-28 Carnegie Illinois Steel Corp Razor blade stock

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1018369A (en) * 1912-01-04 1912-02-20 Winfield S Potter Manufacture of manganese-steel wire.
US2531731A (en) * 1946-11-29 1950-11-28 Carnegie Illinois Steel Corp Razor blade stock

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3294595A (en) * 1965-10-24 1966-12-27 Tadeusz W Wlodek Precarburization and other prediffusion treatment of spiral rolled or differentially plastically formed and standard type drill steel
US3873375A (en) * 1973-04-19 1975-03-25 Remington Arms Co Inc Method of making steel cartridge cases
US5094699A (en) * 1989-02-17 1992-03-10 Vereinigte Schmiedewerke Gmbh Method of producing a high strength and hard metallic composite layer material
US10400320B2 (en) 2015-05-15 2019-09-03 Nucor Corporation Lead free steel and method of manufacturing
US11697867B2 (en) 2015-05-15 2023-07-11 Nucor Corporation Lead free steel

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Publication number Publication date
CH383424A (de) 1964-10-31

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