On the Experimental Determination of Damping of Metals and Calculation of Thermal Stresses in Solidifying Shells

This thesis explores experimentally and theoretically two different aspects of the properties and behaviour of metals: their ability to damp noise and their susceptibility to crack when solidifying. The first part concerns intrinsic material damping, and is motivated by increased demands from societ...

Full description

Bibliographic Details
Main Author: Åberg, Jonas
Format: Doctoral Thesis
Language:English
Published: KTH, Materialvetenskap 2006
Subjects:
ALE
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4038
http://nbn-resolving.de/urn:isbn:91-7178-377-6
id ndltd-UPSALLA1-oai-DiVA.org-kth-4038
record_format oai_dc
spelling ndltd-UPSALLA1-oai-DiVA.org-kth-40382013-01-08T13:06:40ZOn the Experimental Determination of Damping of Metals and Calculation of Thermal Stresses in Solidifying ShellsengÅberg, JonasKTH, MaterialvetenskapStockholm : KTH2006material dampingmeasurement methodscalorimetric methodsoptical strain gauge measurementshot crackingstress in solid shellsALEMaterials scienceTeknisk materialvetenskapThis thesis explores experimentally and theoretically two different aspects of the properties and behaviour of metals: their ability to damp noise and their susceptibility to crack when solidifying. The first part concerns intrinsic material damping, and is motivated by increased demands from society for reductions in noise emissions. It is a material’s inherent ability to reduce its vibration level, and hence noise emission, and transform its kinetic energy into a temperature increase. To design new materials with increased intrinsic material damping, we need to be able to measure it. In this thesis, different methods for measurement of the intrinsic damping have been considered: one using Fourier analysis has been experimentally evaluated, and another using a specimen in uniaxial tension to measure the phase-lag between stress and strain has been improved. Finally, after discarding these methods, a new method has been developed. The new method measures the damping properties during compression using differential calorimetry. A specimen is subjected to a cyclic uniaxial stress to give a prescribed energy input. The difference in temperature between a specimen under stress and a non-stressed reference sample is measured. The experiments are performed in an insulated vacuum container to reduce convective losses. The rate of temperature change, together with the energy input, is used as a measure of the intrinsic material damping in the specimen. The results show a difference in intrinsic material damping, and the way in which it is influenced by the internal structure is discussed. The second part of the thesis examines hot cracks in solidifying shells. Most metals have a brittle region starting in the two-phase temperature range during solidification and for some alloys this region extends as far as hundreds of degrees below the solidus temperature. To calculate the risk of hot cracking, one needs, besides knowledge of the solidifying material’s ability to withstand stress, knowledge of the casting process to be able to calculate the thermal history of the solidification, and from this calculate the stress. In this work, experimental methods to measure and evaluate the energy transfer from the solidifying melt have been developed. The evaluated data has been used as a boundary condition to numerically calculate the solidification process and the evolving stress in the solidifying shell. A solidification model has been implemented using a fixed-domain methodology in a commercial finite element code, Comsol Multiphysics. A new solidification model using an arbitrary Lagrange Eulerian (ALE) formulation has also been implemented to solve the solidification problem for pure metals. This new model explicitly tracks the movement of the liquid/solid interface and is much more effective than the first model. QC 20100929Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4038urn:isbn:91-7178-377-6Trita-MG, 1104-7127 ; 2006:03application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic material damping
measurement methods
calorimetric methods
optical strain gauge measurements
hot cracking
stress in solid shells
ALE
Materials science
Teknisk materialvetenskap
spellingShingle material damping
measurement methods
calorimetric methods
optical strain gauge measurements
hot cracking
stress in solid shells
ALE
Materials science
Teknisk materialvetenskap
Åberg, Jonas
On the Experimental Determination of Damping of Metals and Calculation of Thermal Stresses in Solidifying Shells
description This thesis explores experimentally and theoretically two different aspects of the properties and behaviour of metals: their ability to damp noise and their susceptibility to crack when solidifying. The first part concerns intrinsic material damping, and is motivated by increased demands from society for reductions in noise emissions. It is a material’s inherent ability to reduce its vibration level, and hence noise emission, and transform its kinetic energy into a temperature increase. To design new materials with increased intrinsic material damping, we need to be able to measure it. In this thesis, different methods for measurement of the intrinsic damping have been considered: one using Fourier analysis has been experimentally evaluated, and another using a specimen in uniaxial tension to measure the phase-lag between stress and strain has been improved. Finally, after discarding these methods, a new method has been developed. The new method measures the damping properties during compression using differential calorimetry. A specimen is subjected to a cyclic uniaxial stress to give a prescribed energy input. The difference in temperature between a specimen under stress and a non-stressed reference sample is measured. The experiments are performed in an insulated vacuum container to reduce convective losses. The rate of temperature change, together with the energy input, is used as a measure of the intrinsic material damping in the specimen. The results show a difference in intrinsic material damping, and the way in which it is influenced by the internal structure is discussed. The second part of the thesis examines hot cracks in solidifying shells. Most metals have a brittle region starting in the two-phase temperature range during solidification and for some alloys this region extends as far as hundreds of degrees below the solidus temperature. To calculate the risk of hot cracking, one needs, besides knowledge of the solidifying material’s ability to withstand stress, knowledge of the casting process to be able to calculate the thermal history of the solidification, and from this calculate the stress. In this work, experimental methods to measure and evaluate the energy transfer from the solidifying melt have been developed. The evaluated data has been used as a boundary condition to numerically calculate the solidification process and the evolving stress in the solidifying shell. A solidification model has been implemented using a fixed-domain methodology in a commercial finite element code, Comsol Multiphysics. A new solidification model using an arbitrary Lagrange Eulerian (ALE) formulation has also been implemented to solve the solidification problem for pure metals. This new model explicitly tracks the movement of the liquid/solid interface and is much more effective than the first model. === QC 20100929
author Åberg, Jonas
author_facet Åberg, Jonas
author_sort Åberg, Jonas
title On the Experimental Determination of Damping of Metals and Calculation of Thermal Stresses in Solidifying Shells
title_short On the Experimental Determination of Damping of Metals and Calculation of Thermal Stresses in Solidifying Shells
title_full On the Experimental Determination of Damping of Metals and Calculation of Thermal Stresses in Solidifying Shells
title_fullStr On the Experimental Determination of Damping of Metals and Calculation of Thermal Stresses in Solidifying Shells
title_full_unstemmed On the Experimental Determination of Damping of Metals and Calculation of Thermal Stresses in Solidifying Shells
title_sort on the experimental determination of damping of metals and calculation of thermal stresses in solidifying shells
publisher KTH, Materialvetenskap
publishDate 2006
url http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4038
http://nbn-resolving.de/urn:isbn:91-7178-377-6
work_keys_str_mv AT abergjonas ontheexperimentaldeterminationofdampingofmetalsandcalculationofthermalstressesinsolidifyingshells
_version_ 1716509236767227904