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Colorado School of Mines. Arthur Lakes Library

Comparison of oil and intensive quenching via coupled thermal, transformation, and mechanical modeling

Abstract

dc:description.abstract

A series of simulations were performed on a 25.4 mm (1 in) diameter 254 mm (10 in) long cylindrical bar. These simulations included three carburization levels: non-carburized, carburized to 0.8 wt pct C and 1.0 wt pct C at the surface utilizing a plain carbon steel (1020) and three alloy steels (4120, 4320, and 8620) representing a range of hardenabilities. Both industrially standard oil quenching as well as high intensity quenching which has a heat transfer rate of 20 kW/(m2 °C) were simulated. After quenching, the non-carburized and oil quenched bars were predicted to have tensile residual hoop stresses at the surface while the carburized bars were predicted to have compressive residual hoop stresses. All carburization levels of 1020 were predicted to have compressive residual hoop stresses after quenching. After high intensity quenching, all four alloys at all three carburization levels were predicted to have compressive residual stresses at the surface. It was shown that the high intensity quenching compressive residual hoop stresses at the surface were a result of the high heat transfer rate decreasing the temperature within fractions of a second resulting in a martensitic shell forming around a high temperature austenitic core. As the core cooled and thermally contracted, the shell was pulled inward to maintain coherency between the shell and the core. When the core austenite transforms, the volume expansion was insufficient to overcome the thermal contraction resulting in large compressive stresses at the surface and core, and a large tensile stress at the mid-radius. This profile was not found in literature. 1020 was found to transform to a mixture of ferrite and pearlite. As the core contracted and transformed, the volume expansion initially resulted in tensile hoop stresses near the surface. These tensile hoop stresses were decreased and became compressive due to the thermal contraction after transformation. A critical heat transfer rate for each of the alloys was determined where the tensile residual hoop stresses were reversed to compression. This critical heat transfer rate was 3.2 kW/(m2 °C), 9.0 kW/(m2 °C), 8.9 kW/(m2 °C), and 9.0 kW/(m2 °C) for 1020, 4120, 4320, and 8620 respectively. This was generalized to a Biot number with a minimum of 2.5 needed to create compressive hoop stresses at the surface.

Degree

thesis:*
Name thesis:degree_name
Doctor of Philosophy (Ph.D.)
Level thesis:degree_level
Doctoral
Discipline thesis:degree_discipline
Metallurgical and Materials Engineering
Grantor dc:publisher
Colorado School of Mines. Arthur Lakes Library
Year dc:date.issued
2016

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Baker, Daniel S.
Advisor dc:contributor.advisor
  • Speer, J. G.
Committee members dc:contributor.committeemember
  • Matlock, David K.
  • Van Tyne, C. J.
  • Thompson, S. W. (Steven W.)
  • Mustoe, Graham G. W.

Subjects

dc:subject × 4

Rights

dc:rights
Statement dc:rights
  • Copyright of the original work is retained by the author.
Language dc:language.iso
eng, English

Identifiers

dc:identifier.*
Identifier
T 8141
OAI identifier oai:identifier
oai:repository.mines.edu:11124/170438

Chain of custody

source
Harvested from
Colorado School of Mines
Base URL
repository.mines.edu/server/oai/request
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
citation

Baker, Daniel S.. Comparison of oil and intensive quenching via coupled thermal, transformation, and mechanical modeling. Doctoral thesis, Colorado School of Mines. Arthur Lakes Library, 2016. https://hdl.handle.net/11124/170438