Doktorsavhandlingar vid Chalmers tekniska högskola

Compacted graphite iron (CGI) is rapidly becoming an attractive alternative material for engine components in the automotive industry, replacing lamellar graphite iron (LGI) in applications where high mechanical strength is desired. However, the gain in mechanical strength comes with a cost; thermal...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: König Mathias 1980- , Tekniska Högskolan, Högskolan i Jönköping, JTH. Forskningsområde Material och tillverkning - gjutning, König Mathias 1980, Technical College, Jönköping University, JTH. Research area Materials and manufacturing - casting
Format: Dissertation
Sprache:eng ; swe
Online-Zugang:Volltext bestellen
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
container_end_page
container_issue
container_start_page
container_title
container_volume
creator König Mathias 1980- , Tekniska Högskolan, Högskolan i Jönköping, JTH. Forskningsområde Material och tillverkning - gjutning
König Mathias 1980, Technical College, Jönköping University, JTH. Research area Materials and manufacturing - casting
description Compacted graphite iron (CGI) is rapidly becoming an attractive alternative material for engine components in the automotive industry, replacing lamellar graphite iron (LGI) in applications where high mechanical strength is desired. However, the gain in mechanical strength comes with a cost; thermal conductivity, process control and machining are three areas that are more challenging for CGI. This generates a need for research regarding various aspects concerning CGI. In this thesis the microstructure formation during solidification and solid state transformation will be the focus of interest. The phase transformations relevant for microstructure formation of importance to properties in CGI were studied. Experiments were performed in an industrial foundry giving this research direct relevance to regular production of CGI castings. Solidification of the grey (graphite/austenite) eutectic will be discussed, focusing on some relevant aspects influencing the graphite morphology of CGI. The formation of graphite nodules has been investigated by studying colour-etched microstructures. In a material containing mainly CGI cells it was found that nodules form either early during solidification as a consequence of high undercooling or late in the solidification sequence due to a combination of high undercooling and segregation of nodularising elements. Solidification of the white (cementite/austenite) eutectic was studied using chill wedges and the influence of some alloying elements on the amount of carbides was examined. To further enhance the understanding of carbide formation in CGI a commercial casting simulation software was used to correlate real castings to simulations. It was found that the alloying elements investigated influence the carbide formation in a similar way as in other graphitic cast irons and that high nodularity CGI is more prone to chill formation than low nodularity CGI. The solid state transformation was studied and a deterministic model was developed. The model divides a eutectic cell into layers, in order to take into account segregation of alloying elements, which was observed to be influential for the ferrite growth. Moreover, the effect of alloying elements on mechanical properties (tensile properties and hardness) was evaluated. Properties were correlated to microstructural features originating from both solidification and solid state transformations. The trends found generally confirmed previous results regarding properties in graphi
format Dissertation
fullrecord <record><control><sourceid>europeana_1GC</sourceid><recordid>TN_cdi_europeana_collections_9200111_BibliographicResource_1000086005957</recordid><sourceformat>XML</sourceformat><sourcesystem>PC</sourcesystem><sourcerecordid>9200111_BibliographicResource_1000086005957</sourcerecordid><originalsourceid>FETCH-europeana_collections_9200111_BibliographicResource_10000860059573</originalsourceid><addsrcrecordid>eNqtzLENwjAQQNE0FAjYwQsg2UQB0hJA1IjeOpwjPtn4Il-S0ViAxaBgBH7zuj8vyiOHgbPA5CG1kVIHWU3UqsZDfGIWNWBIJAGUf786CRxhWcweEAVXPxfF5Xy6NZc1jpl7hATWcYzoBuIktt5obYyxB7pH4i5D78ldUXjMDq3R3_Zbrau62pV_XH0Awb1JxQ</addsrcrecordid><sourcetype>Aggregation Database</sourcetype><iscdi>true</iscdi><recordtype>dissertation</recordtype></control><display><type>dissertation</type><title>Doktorsavhandlingar vid Chalmers tekniska högskola</title><source>Europeana Collections</source><creator>König Mathias 1980- , Tekniska Högskolan, Högskolan i Jönköping, JTH. Forskningsområde Material och tillverkning - gjutning ; König Mathias 1980, Technical College, Jönköping University, JTH. Research area Materials and manufacturing - casting</creator><creatorcontrib>König Mathias 1980- , Tekniska Högskolan, Högskolan i Jönköping, JTH. Forskningsområde Material och tillverkning - gjutning ; König Mathias 1980, Technical College, Jönköping University, JTH. Research area Materials and manufacturing - casting ; Tekniska Högskolan Högskolan i Jönköping Tekniska Högskolan JTH. Forskningsområde Material och tillverkning - gjutning ; Wessén Magnus Ph.D ; Sikora Jorge Professor ; Svensson Ingvar L. Professor</creatorcontrib><description>Compacted graphite iron (CGI) is rapidly becoming an attractive alternative material for engine components in the automotive industry, replacing lamellar graphite iron (LGI) in applications where high mechanical strength is desired. However, the gain in mechanical strength comes with a cost; thermal conductivity, process control and machining are three areas that are more challenging for CGI. This generates a need for research regarding various aspects concerning CGI. In this thesis the microstructure formation during solidification and solid state transformation will be the focus of interest. The phase transformations relevant for microstructure formation of importance to properties in CGI were studied. Experiments were performed in an industrial foundry giving this research direct relevance to regular production of CGI castings. Solidification of the grey (graphite/austenite) eutectic will be discussed, focusing on some relevant aspects influencing the graphite morphology of CGI. The formation of graphite nodules has been investigated by studying colour-etched microstructures. In a material containing mainly CGI cells it was found that nodules form either early during solidification as a consequence of high undercooling or late in the solidification sequence due to a combination of high undercooling and segregation of nodularising elements. Solidification of the white (cementite/austenite) eutectic was studied using chill wedges and the influence of some alloying elements on the amount of carbides was examined. To further enhance the understanding of carbide formation in CGI a commercial casting simulation software was used to correlate real castings to simulations. It was found that the alloying elements investigated influence the carbide formation in a similar way as in other graphitic cast irons and that high nodularity CGI is more prone to chill formation than low nodularity CGI. The solid state transformation was studied and a deterministic model was developed. The model divides a eutectic cell into layers, in order to take into account segregation of alloying elements, which was observed to be influential for the ferrite growth. Moreover, the effect of alloying elements on mechanical properties (tensile properties and hardness) was evaluated. Properties were correlated to microstructural features originating from both solidification and solid state transformations. The trends found generally confirmed previous results regarding properties in graphitic cast irons. Härtill 5 uppsatser Diss. (sammanfattning) Jönköping : Högskolan i Jönköping, 2011 Doctor of Philosophy Filosofie doktorsexamen E1405, Gjuterigatan 5, 55111, Jönköping Härtill 5 uppsatser Diss. (sammanfattning) Jönköping : Högskolan i Jönköping, 2011 Filosofie doktorsexamen E1405, Gjuterigatan 5, 55111, Jönköping Compacted graphite iron (CGI) is rapidly becoming an attractive alternative material for engine components in the automotive industry, replacing lamellar graphite iron (LGI) in applications where high mechanical strength is desired. However, the gain in mechanical strength comes with a cost; thermal conductivity, process control and machining are three areas that are more challenging for CGI. This generates a need for research regarding various aspects concerning CGI. In this thesis the microstructure formation during solidification and solid state transformation will be the focus of interest. The phase transformations relevant for microstructure formation of importance to properties in CGI were studied. Experiments were performed in an industrial foundry giving this research direct relevance to regular production of CGI castings. Solidification of the grey (graphite/austenite) eutectic will be discussed, focusing on some relevant aspects influencing the graphite morphology of CGI. The formation of graphite nodules has been investigated by studying colour-etched microstructures. In a material containing mainly CGI cells it was found that nodules form either early during solidification as a consequence of high undercooling or late in the solidification sequence due to a combination of high undercooling and segregation of nodularising elements. Solidification of the white (cementite/austenite) eutectic was studied using chill wedges and the influence of some alloying elements on the amount of carbides was examined. To further enhance the understanding of carbide formation in CGI a commercial casting simulation software was used to correlate real castings to simulations. It was found that the alloying elements investigated influence the carbide formation in a similar way as in other graphitic cast irons and that high nodularity CGI is more prone to chill formation than low nodularity CGI. The solid state transformation was studied and a deterministic model was developed. The model divides a eutectic cell into layers, in order to take into account segregation of alloying elements, which was observed to be influential for the ferrite growth. Moreover, the effect of alloying elements on mechanical properties (tensile properties and hardness) was evaluated. Properties were correlated to microstructural features originating from both solidification and solid state transformations. The trends found generally confirmed previous results regarding properties in graphitic cast irons. Doctor of Philosophy</description><language>eng ; swe</language><publisher>Chalmers University of Technology</publisher><creationdate>2011</creationdate><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://data.europeana.eu/item/9200111/BibliographicResource_1000086005957$$EHTML$$P50$$Geuropeana$$Hfree_for_read</linktohtml><link.rule.ids>311,780,4052,38517,76176</link.rule.ids><linktorsrc>$$Uhttps://data.europeana.eu/item/9200111/BibliographicResource_1000086005957$$EView_record_in_Europeana$$FView_record_in_$$GEuropeana$$Hfree_for_read</linktorsrc></links><search><creatorcontrib>König Mathias 1980- , Tekniska Högskolan, Högskolan i Jönköping, JTH. Forskningsområde Material och tillverkning - gjutning</creatorcontrib><creatorcontrib>König Mathias 1980, Technical College, Jönköping University, JTH. Research area Materials and manufacturing - casting</creatorcontrib><title>Doktorsavhandlingar vid Chalmers tekniska högskola</title><description>Compacted graphite iron (CGI) is rapidly becoming an attractive alternative material for engine components in the automotive industry, replacing lamellar graphite iron (LGI) in applications where high mechanical strength is desired. However, the gain in mechanical strength comes with a cost; thermal conductivity, process control and machining are three areas that are more challenging for CGI. This generates a need for research regarding various aspects concerning CGI. In this thesis the microstructure formation during solidification and solid state transformation will be the focus of interest. The phase transformations relevant for microstructure formation of importance to properties in CGI were studied. Experiments were performed in an industrial foundry giving this research direct relevance to regular production of CGI castings. Solidification of the grey (graphite/austenite) eutectic will be discussed, focusing on some relevant aspects influencing the graphite morphology of CGI. The formation of graphite nodules has been investigated by studying colour-etched microstructures. In a material containing mainly CGI cells it was found that nodules form either early during solidification as a consequence of high undercooling or late in the solidification sequence due to a combination of high undercooling and segregation of nodularising elements. Solidification of the white (cementite/austenite) eutectic was studied using chill wedges and the influence of some alloying elements on the amount of carbides was examined. To further enhance the understanding of carbide formation in CGI a commercial casting simulation software was used to correlate real castings to simulations. It was found that the alloying elements investigated influence the carbide formation in a similar way as in other graphitic cast irons and that high nodularity CGI is more prone to chill formation than low nodularity CGI. The solid state transformation was studied and a deterministic model was developed. The model divides a eutectic cell into layers, in order to take into account segregation of alloying elements, which was observed to be influential for the ferrite growth. Moreover, the effect of alloying elements on mechanical properties (tensile properties and hardness) was evaluated. Properties were correlated to microstructural features originating from both solidification and solid state transformations. The trends found generally confirmed previous results regarding properties in graphitic cast irons. Härtill 5 uppsatser Diss. (sammanfattning) Jönköping : Högskolan i Jönköping, 2011 Doctor of Philosophy Filosofie doktorsexamen E1405, Gjuterigatan 5, 55111, Jönköping Härtill 5 uppsatser Diss. (sammanfattning) Jönköping : Högskolan i Jönköping, 2011 Filosofie doktorsexamen E1405, Gjuterigatan 5, 55111, Jönköping Compacted graphite iron (CGI) is rapidly becoming an attractive alternative material for engine components in the automotive industry, replacing lamellar graphite iron (LGI) in applications where high mechanical strength is desired. However, the gain in mechanical strength comes with a cost; thermal conductivity, process control and machining are three areas that are more challenging for CGI. This generates a need for research regarding various aspects concerning CGI. In this thesis the microstructure formation during solidification and solid state transformation will be the focus of interest. The phase transformations relevant for microstructure formation of importance to properties in CGI were studied. Experiments were performed in an industrial foundry giving this research direct relevance to regular production of CGI castings. Solidification of the grey (graphite/austenite) eutectic will be discussed, focusing on some relevant aspects influencing the graphite morphology of CGI. The formation of graphite nodules has been investigated by studying colour-etched microstructures. In a material containing mainly CGI cells it was found that nodules form either early during solidification as a consequence of high undercooling or late in the solidification sequence due to a combination of high undercooling and segregation of nodularising elements. Solidification of the white (cementite/austenite) eutectic was studied using chill wedges and the influence of some alloying elements on the amount of carbides was examined. To further enhance the understanding of carbide formation in CGI a commercial casting simulation software was used to correlate real castings to simulations. It was found that the alloying elements investigated influence the carbide formation in a similar way as in other graphitic cast irons and that high nodularity CGI is more prone to chill formation than low nodularity CGI. The solid state transformation was studied and a deterministic model was developed. The model divides a eutectic cell into layers, in order to take into account segregation of alloying elements, which was observed to be influential for the ferrite growth. Moreover, the effect of alloying elements on mechanical properties (tensile properties and hardness) was evaluated. Properties were correlated to microstructural features originating from both solidification and solid state transformations. The trends found generally confirmed previous results regarding properties in graphitic cast irons. Doctor of Philosophy</description><fulltext>true</fulltext><rsrctype>dissertation</rsrctype><creationdate>2011</creationdate><recordtype>dissertation</recordtype><sourceid>1GC</sourceid><recordid>eNqtzLENwjAQQNE0FAjYwQsg2UQB0hJA1IjeOpwjPtn4Il-S0ViAxaBgBH7zuj8vyiOHgbPA5CG1kVIHWU3UqsZDfGIWNWBIJAGUf786CRxhWcweEAVXPxfF5Xy6NZc1jpl7hATWcYzoBuIktt5obYyxB7pH4i5D78ldUXjMDq3R3_Zbrau62pV_XH0Awb1JxQ</recordid><startdate>2011</startdate><enddate>2011</enddate><creator>König Mathias 1980- , Tekniska Högskolan, Högskolan i Jönköping, JTH. Forskningsområde Material och tillverkning - gjutning</creator><creator>König Mathias 1980, Technical College, Jönköping University, JTH. Research area Materials and manufacturing - casting</creator><general>Chalmers University of Technology</general><scope>1GC</scope></search><sort><creationdate>2011</creationdate><title>Doktorsavhandlingar vid Chalmers tekniska högskola</title><author>König Mathias 1980- , Tekniska Högskolan, Högskolan i Jönköping, JTH. Forskningsområde Material och tillverkning - gjutning ; König Mathias 1980, Technical College, Jönköping University, JTH. Research area Materials and manufacturing - casting</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-europeana_collections_9200111_BibliographicResource_10000860059573</frbrgroupid><rsrctype>dissertations</rsrctype><prefilter>dissertations</prefilter><language>eng ; swe</language><creationdate>2011</creationdate><toplevel>online_resources</toplevel><creatorcontrib>König Mathias 1980- , Tekniska Högskolan, Högskolan i Jönköping, JTH. Forskningsområde Material och tillverkning - gjutning</creatorcontrib><creatorcontrib>König Mathias 1980, Technical College, Jönköping University, JTH. Research area Materials and manufacturing - casting</creatorcontrib><collection>Europeana Collections</collection></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext_linktorsrc</fulltext></delivery><addata><au>König Mathias 1980- , Tekniska Högskolan, Högskolan i Jönköping, JTH. Forskningsområde Material och tillverkning - gjutning</au><au>König Mathias 1980, Technical College, Jönköping University, JTH. Research area Materials and manufacturing - casting</au><format>dissertation</format><genre>dissertation</genre><ristype>THES</ristype><Advisor>Tekniska Högskolan Högskolan i Jönköping Tekniska Högskolan JTH. Forskningsområde Material och tillverkning - gjutning</Advisor><Advisor>Wessén Magnus Ph.D</Advisor><Advisor>Sikora Jorge Professor</Advisor><Advisor>Svensson Ingvar L. Professor</Advisor><btitle>Doktorsavhandlingar vid Chalmers tekniska högskola</btitle><date>2011</date><risdate>2011</risdate><abstract>Compacted graphite iron (CGI) is rapidly becoming an attractive alternative material for engine components in the automotive industry, replacing lamellar graphite iron (LGI) in applications where high mechanical strength is desired. However, the gain in mechanical strength comes with a cost; thermal conductivity, process control and machining are three areas that are more challenging for CGI. This generates a need for research regarding various aspects concerning CGI. In this thesis the microstructure formation during solidification and solid state transformation will be the focus of interest. The phase transformations relevant for microstructure formation of importance to properties in CGI were studied. Experiments were performed in an industrial foundry giving this research direct relevance to regular production of CGI castings. Solidification of the grey (graphite/austenite) eutectic will be discussed, focusing on some relevant aspects influencing the graphite morphology of CGI. The formation of graphite nodules has been investigated by studying colour-etched microstructures. In a material containing mainly CGI cells it was found that nodules form either early during solidification as a consequence of high undercooling or late in the solidification sequence due to a combination of high undercooling and segregation of nodularising elements. Solidification of the white (cementite/austenite) eutectic was studied using chill wedges and the influence of some alloying elements on the amount of carbides was examined. To further enhance the understanding of carbide formation in CGI a commercial casting simulation software was used to correlate real castings to simulations. It was found that the alloying elements investigated influence the carbide formation in a similar way as in other graphitic cast irons and that high nodularity CGI is more prone to chill formation than low nodularity CGI. The solid state transformation was studied and a deterministic model was developed. The model divides a eutectic cell into layers, in order to take into account segregation of alloying elements, which was observed to be influential for the ferrite growth. Moreover, the effect of alloying elements on mechanical properties (tensile properties and hardness) was evaluated. Properties were correlated to microstructural features originating from both solidification and solid state transformations. The trends found generally confirmed previous results regarding properties in graphitic cast irons. Härtill 5 uppsatser Diss. (sammanfattning) Jönköping : Högskolan i Jönköping, 2011 Doctor of Philosophy Filosofie doktorsexamen E1405, Gjuterigatan 5, 55111, Jönköping Härtill 5 uppsatser Diss. (sammanfattning) Jönköping : Högskolan i Jönköping, 2011 Filosofie doktorsexamen E1405, Gjuterigatan 5, 55111, Jönköping Compacted graphite iron (CGI) is rapidly becoming an attractive alternative material for engine components in the automotive industry, replacing lamellar graphite iron (LGI) in applications where high mechanical strength is desired. However, the gain in mechanical strength comes with a cost; thermal conductivity, process control and machining are three areas that are more challenging for CGI. This generates a need for research regarding various aspects concerning CGI. In this thesis the microstructure formation during solidification and solid state transformation will be the focus of interest. The phase transformations relevant for microstructure formation of importance to properties in CGI were studied. Experiments were performed in an industrial foundry giving this research direct relevance to regular production of CGI castings. Solidification of the grey (graphite/austenite) eutectic will be discussed, focusing on some relevant aspects influencing the graphite morphology of CGI. The formation of graphite nodules has been investigated by studying colour-etched microstructures. In a material containing mainly CGI cells it was found that nodules form either early during solidification as a consequence of high undercooling or late in the solidification sequence due to a combination of high undercooling and segregation of nodularising elements. Solidification of the white (cementite/austenite) eutectic was studied using chill wedges and the influence of some alloying elements on the amount of carbides was examined. To further enhance the understanding of carbide formation in CGI a commercial casting simulation software was used to correlate real castings to simulations. It was found that the alloying elements investigated influence the carbide formation in a similar way as in other graphitic cast irons and that high nodularity CGI is more prone to chill formation than low nodularity CGI. The solid state transformation was studied and a deterministic model was developed. The model divides a eutectic cell into layers, in order to take into account segregation of alloying elements, which was observed to be influential for the ferrite growth. Moreover, the effect of alloying elements on mechanical properties (tensile properties and hardness) was evaluated. Properties were correlated to microstructural features originating from both solidification and solid state transformations. The trends found generally confirmed previous results regarding properties in graphitic cast irons. Doctor of Philosophy</abstract><pub>Chalmers University of Technology</pub><oa>free_for_read</oa></addata></record>
fulltext fulltext_linktorsrc
identifier
ispartof
issn
language eng ; swe
recordid cdi_europeana_collections_9200111_BibliographicResource_1000086005957
source Europeana Collections
title Doktorsavhandlingar vid Chalmers tekniska högskola
url https://sfx.bib-bvb.de/sfx_tum?ctx_ver=Z39.88-2004&ctx_enc=info:ofi/enc:UTF-8&ctx_tim=2025-01-05T05%3A22%3A20IST&url_ver=Z39.88-2004&url_ctx_fmt=infofi/fmt:kev:mtx:ctx&rfr_id=info:sid/primo.exlibrisgroup.com:primo3-Article-europeana_1GC&rft_val_fmt=info:ofi/fmt:kev:mtx:dissertation&rft.genre=dissertation&rft.btitle=Doktorsavhandlingar%20vid%20Chalmers%20tekniska%20h%C3%B6gskola&rft.au=K%C3%B6nig%20Mathias%201980-%20,%20Tekniska%20H%C3%B6gskolan,%20H%C3%B6gskolan%20i%20J%C3%B6nk%C3%B6ping,%20JTH.%20Forskningsomr%C3%A5de%20Material%20och%20tillverkning%20-%20gjutning&rft.date=2011&rft_id=info:doi/&rft_dat=%3Ceuropeana_1GC%3E9200111_BibliographicResource_1000086005957%3C/europeana_1GC%3E%3Curl%3E%3C/url%3E&disable_directlink=true&sfx.directlink=off&sfx.report_link=0&rft_id=info:oai/&rft_id=info:pmid/&rfr_iscdi=true