The computer-aided optimal heating schedule of forging ingots using the finite element method

Thesis (M.Eng.)--Memorial University of Newfoundland, 1985. Engineering and Applied Science References: leaves 146-149. This thesis presents the computer simulated thermal stress analysis of forging ingots during the heating and soaking periods. These results are then used to obtain the optimal heat...

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Main Author: Reddy, Bhimavarapu Subba
Other Authors: Memorial University of Newfoundland. Faculty of Engineering and Applied Science
Format: Thesis
Language:English
Published: 1985
Subjects:
Online Access:http://collections.mun.ca/cdm/ref/collection/theses2/id/242680
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spelling ftmemorialunivdc:oai:collections.mun.ca:theses2/242680 2023-05-15T17:23:31+02:00 The computer-aided optimal heating schedule of forging ingots using the finite element method Reddy, Bhimavarapu Subba Memorial University of Newfoundland. Faculty of Engineering and Applied Science 1985 xviii, 193 leaves : ill. Image/jpeg; Application/pdf http://collections.mun.ca/cdm/ref/collection/theses2/id/242680 Eng eng Electronic Theses and Dissertations (24.21 MB) -- http://collections.mun.ca/PDFs/theses/Reddy_BhimavarapuSubba.pdf 75370923 http://collections.mun.ca/cdm/ref/collection/theses2/id/242680 The author retains copyright ownership and moral rights in this thesis. Neither the thesis nor substantial extracts from it may be printed or otherwise reproduced without the author's permission. Paper copy kept in the Centre for Newfoundland Studies, Memorial University Libraries Steel ingots Steel forgings Finite element method Thermal stresses--Computer programs Text Electronic thesis or dissertation 1985 ftmemorialunivdc 2015-08-06T19:17:32Z Thesis (M.Eng.)--Memorial University of Newfoundland, 1985. Engineering and Applied Science References: leaves 146-149. This thesis presents the computer simulated thermal stress analysis of forging ingots during the heating and soaking periods. These results are then used to obtain the optimal heating schedule of these ingots. -- The equations for the transient nonlinear temperature distribution within the ingot due to the convective and radiative heat flux are derived using the nonlinear finite element analysis. The nonlinearities due to the variation of material properties have been taken into account by calculating the temperature at different time steps first and then at each time step the elemental property matrices are recalculated. The nonlinear algebraic equations are solved using three techniques and then the best technique is selected from these three for further analysis. -- The mathematical model for the thermal stress analysis has also been formulated using the finite element analysis. The temperatures obtained from the heat transfer analysis are used to calculate the force vector for the stress analysis. These finite element models are then used to calculate the effects of axial heat flux, the slenderness ratio of the ingot, and the linearization of the heat flux on the transient temperature and stress distributions within the ingot. -- The optimal heating schedule has been obtained considering two types of constraints; the first type of the constraint is that the stresses developed should not exceed certain value established by some of the commonly known failure theories, and the second type is that the temperature in the ingot during the heating or soaking period does not exceed a specified value for a particular type of material. The method of optimization of the furnace heating schedule is selected after considering three alternate ways of carrying out the optimization. Thesis Newfoundland studies University of Newfoundland Memorial University of Newfoundland: Digital Archives Initiative (DAI)
institution Open Polar
collection Memorial University of Newfoundland: Digital Archives Initiative (DAI)
op_collection_id ftmemorialunivdc
language English
topic Steel ingots
Steel forgings
Finite element method
Thermal stresses--Computer programs
spellingShingle Steel ingots
Steel forgings
Finite element method
Thermal stresses--Computer programs
Reddy, Bhimavarapu Subba
The computer-aided optimal heating schedule of forging ingots using the finite element method
topic_facet Steel ingots
Steel forgings
Finite element method
Thermal stresses--Computer programs
description Thesis (M.Eng.)--Memorial University of Newfoundland, 1985. Engineering and Applied Science References: leaves 146-149. This thesis presents the computer simulated thermal stress analysis of forging ingots during the heating and soaking periods. These results are then used to obtain the optimal heating schedule of these ingots. -- The equations for the transient nonlinear temperature distribution within the ingot due to the convective and radiative heat flux are derived using the nonlinear finite element analysis. The nonlinearities due to the variation of material properties have been taken into account by calculating the temperature at different time steps first and then at each time step the elemental property matrices are recalculated. The nonlinear algebraic equations are solved using three techniques and then the best technique is selected from these three for further analysis. -- The mathematical model for the thermal stress analysis has also been formulated using the finite element analysis. The temperatures obtained from the heat transfer analysis are used to calculate the force vector for the stress analysis. These finite element models are then used to calculate the effects of axial heat flux, the slenderness ratio of the ingot, and the linearization of the heat flux on the transient temperature and stress distributions within the ingot. -- The optimal heating schedule has been obtained considering two types of constraints; the first type of the constraint is that the stresses developed should not exceed certain value established by some of the commonly known failure theories, and the second type is that the temperature in the ingot during the heating or soaking period does not exceed a specified value for a particular type of material. The method of optimization of the furnace heating schedule is selected after considering three alternate ways of carrying out the optimization.
author2 Memorial University of Newfoundland. Faculty of Engineering and Applied Science
format Thesis
author Reddy, Bhimavarapu Subba
author_facet Reddy, Bhimavarapu Subba
author_sort Reddy, Bhimavarapu Subba
title The computer-aided optimal heating schedule of forging ingots using the finite element method
title_short The computer-aided optimal heating schedule of forging ingots using the finite element method
title_full The computer-aided optimal heating schedule of forging ingots using the finite element method
title_fullStr The computer-aided optimal heating schedule of forging ingots using the finite element method
title_full_unstemmed The computer-aided optimal heating schedule of forging ingots using the finite element method
title_sort computer-aided optimal heating schedule of forging ingots using the finite element method
publishDate 1985
url http://collections.mun.ca/cdm/ref/collection/theses2/id/242680
genre Newfoundland studies
University of Newfoundland
genre_facet Newfoundland studies
University of Newfoundland
op_source Paper copy kept in the Centre for Newfoundland Studies, Memorial University Libraries
op_relation Electronic Theses and Dissertations
(24.21 MB) -- http://collections.mun.ca/PDFs/theses/Reddy_BhimavarapuSubba.pdf
75370923
http://collections.mun.ca/cdm/ref/collection/theses2/id/242680
op_rights The author retains copyright ownership and moral rights in this thesis. Neither the thesis nor substantial extracts from it may be printed or otherwise reproduced without the author's permission.
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