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diff --git a/presentation/slides.bbl b/presentation/slides.bbl
index 4272813..100a433 100644
--- a/presentation/slides.bbl
+++ b/presentation/slides.bbl
@@ -66,6 +66,359 @@
\endverb
\keyw{boronising,cavitation,cavitation erosion resistance,friction stir processing,hardness,HVOF coating,nitriding,PVD coating,shot peening}
\endentry
+ \entry{ogunlakinMicrostructuralElectrochemicalCorrosion2025}{article}{}{}
+ \name{author}{7}{}{%
+ {{hash=d33b8d751752a2580e69701d3d8c1482}{%
+ family={Ogunlakin},
+ familyi={O\bibinitperiod},
+ given={Nasirudeen},
+ giveni={N\bibinitperiod}}}%
+ {{hash=4cd0cba8d86dc89c84ea105e588d87d0}{%
+ family={Hakeem},
+ familyi={H\bibinitperiod},
+ given={Abbas\bibnamedelima Saeed},
+ giveni={A\bibinitperiod\bibinitdelim S\bibinitperiod}}}%
+ {{hash=958f67aa840aac7d055ae4cbb015ed04}{%
+ family={Sohail},
+ familyi={S\bibinitperiod},
+ given={Syed\bibnamedelima Hussain},
+ giveni={S\bibinitperiod\bibinitdelim H\bibinitperiod}}}%
+ {{hash=cdbbb6986e5df549d84a30ffc396a7c4}{%
+ family={Ahmed},
+ familyi={A\bibinitperiod},
+ given={Bilal\bibnamedelima Anjum},
+ giveni={B\bibinitperiod\bibinitdelim A\bibinitperiod}}}%
+ {{hash=a666ba25f69b6443152ddc32870f1cbf}{%
+ family={Ehsan},
+ familyi={E\bibinitperiod},
+ given={Muhammad\bibnamedelima Ali},
+ giveni={M\bibinitperiod\bibinitdelim A\bibinitperiod}}}%
+ {{hash=39e27280e32a4f24c9b7436542ed6bb0}{%
+ family={Ankah},
+ familyi={A\bibinitperiod},
+ given={Nestor},
+ giveni={N\bibinitperiod}}}%
+ {{hash=fe0c1dda6a05683ece46e10288dd9042}{%
+ family={Ali},
+ familyi={A\bibinitperiod},
+ given={Sameer},
+ giveni={S\bibinitperiod}}}%
+ }
+ \strng{namehash}{aec20708c330c1275fb7cf3257d9e5cd}
+ \strng{fullhash}{655e5b5cc8c73046c2700579a8f97260}
+ \strng{fullhashraw}{655e5b5cc8c73046c2700579a8f97260}
+ \strng{bibnamehash}{aec20708c330c1275fb7cf3257d9e5cd}
+ \strng{authorbibnamehash}{aec20708c330c1275fb7cf3257d9e5cd}
+ \strng{authornamehash}{aec20708c330c1275fb7cf3257d9e5cd}
+ \strng{authorfullhash}{655e5b5cc8c73046c2700579a8f97260}
+ \strng{authorfullhashraw}{655e5b5cc8c73046c2700579a8f97260}
+ \field{sortinit}{4}
+ \field{sortinithash}{9381316451d1b9788675a07e972a12a7}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{A novel 50\% Inconel--50\% cobalt (50 IN--50 Co) superalloy composite was developed via an advanced powder metallurgy spark plasma sintering (SPS) technique. The microstructural characteristics and electrochemical corrosion behavior of the composite were extensively studied to reveal its potential for industrial applications that demand excellent corrosion resistance properties. Field emissions scanning electron microscopy (FESEM) revealed a homogeneous distribution of IN718 and Co212 alloys within each other, with good interfacial integrity free of secondary phases, reaction products, or voids. X-ray diffraction (XRD) analysis revealed characteristic peaks corresponding to the pure IN718 and Co212 alloys, respectively, affirming successful composite formation without any secondary phases. Electrochemical corrosion tests, including open circuit potential (OCP), electrochemical impedance spectroscopy (EIS), linear polarization resistance (LPR), and cyclic potentiodynamic polarization (CPDP), were conducted to assess the alloy's corrosion resistance. Results demonstrated that the 50 IN--50 Co composite exhibited a substantial enhancement in corrosion resistance, with a charge transfer resistance (Rct) approximately 378\% higher than pure IN718 and 123\% higher than Co212, along with a polarization resistance (Rp) approximately 36\% higher than both IN718 and Co212. The composite's superior corrosion resistance is attributed to an effective passive film formation and enhanced charge transfer resistance. LPR measurements corroborated these findings, with the alloy demonstrating the lowest corrosion current density and the highest polarization resistance. CPDP curves indicated a lower current density and a more comprehensive passivation potential range, suggesting effective surface passivation and reduced pitting susceptibility. These findings highlight the promising potential of the superalloy composite for diverse industrial applications in harsh and corrosive environments. This detailed characterization offers crucial insights for newly developed alloys with customized corrosion resistance, which is essential for use in challenging industrial and engineering environments.}
+ \field{issn}{1544-1024}
+ \field{journaltitle}{Journal of Materials Engineering and Performance}
+ \field{langid}{english}
+ \field{month}{3}
+ \field{title}{Microstructural and {{Electrochemical Corrosion Characterization}} of a {{Novel}} 50 {{IN}}--50 {{Co Super Alloy Composite}} in 3.5wt.\% {{NaCl Solution}}}
+ \field{urlday}{27}
+ \field{urlmonth}{5}
+ \field{urlyear}{2025}
+ \field{year}{2025}
+ \field{urldateera}{ce}
+ \verb{doi}
+ \verb 10.1007/s11665-025-10951-x
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/X3PSR8YZ/Ogunlakin et al. - 2025 - Microstructural and Electrochemical Corrosion Characterization of a Novel 50 IN–50 Co Super Alloy Co.pdf
+ \endverb
+ \keyw{Co212 superalloy,Coatings,Composites,Corrosion,Corrosion resistance,Electrochemistry,IN718 superalloy,Materials Engineering,Metals and Alloys,Structural Materials}
+ \endentry
+ \entry{rosalbinoCorrosionBehaviourAssessment2013}{article}{}{}
+ \name{author}{2}{}{%
+ {{hash=e8131d75882c2fa7a8421f90ce25d1c8}{%
+ family={Rosalbino},
+ familyi={R\bibinitperiod},
+ given={F.},
+ giveni={F\bibinitperiod}}}%
+ {{hash=926282030f8047fd2d43a9df86389c42}{%
+ family={Scavino},
+ familyi={S\bibinitperiod},
+ given={G.},
+ giveni={G\bibinitperiod}}}%
+ }
+ \strng{namehash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{fullhash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{fullhashraw}{36d2582fd30d252f704f9311c20257b1}
+ \strng{bibnamehash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{authorbibnamehash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{authornamehash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{authorfullhash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{authorfullhashraw}{36d2582fd30d252f704f9311c20257b1}
+ \field{sortinit}{4}
+ \field{sortinithash}{9381316451d1b9788675a07e972a12a7}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{Cobalt-base (Stellite) alloys have seen extensive use in wear environments mainly due to their high strength, corrosion resistance and hardness. Co-base superalloys rely primarily on carbides formed in the Co matrix and at grain boundaries, for their strength and wear resistance. The distribution, size and shape of carbides depend on processing conditions. Currently, the use of Stellite alloys has extended into various industrial sectors (e.g. pulp and paper processing, oil and gas processing, pharmaceuticals, chemical processing) and the need for improved information regarding corrosion of Stellite alloys has increased. It has been recognized that processing changes, which affect the microstructure of Stellite alloys, most affect corrosion resistance. In this work the corrosion behaviour of Stellite 6 alloy in the as-cast and the HIPed consolidated forms is compared and contrasted using DC and AC electrochemical techniques in static saline conditions. The results show that there is a significant difference in the corrosion performance of HIP consolidated Stellite 6 and it is possible to link the corrosion behaviour to the microstructure. The benefits of using HIPing as a manufacturing process for the corrosion performance of Stellite 6 are discussed.}
+ \field{annotation}{42 citations (Semantic Scholar/DOI) [2025-04-15]}
+ \field{issn}{0013-4686}
+ \field{journaltitle}{Electrochimica Acta}
+ \field{month}{11}
+ \field{title}{Corrosion Behaviour Assessment of Cast and {{HIPed Stellite}} 6 Alloy in a Chloride-Containing Environment}
+ \field{urlday}{15}
+ \field{urlmonth}{4}
+ \field{urlyear}{2025}
+ \field{volume}{111}
+ \field{year}{2013}
+ \field{urldateera}{ce}
+ \field{pages}{656\bibrangedash 662}
+ \range{pages}{7}
+ \verb{doi}
+ \verb 10.1016/j.electacta.2013.08.019
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/2DRD9XNN/Rosalbino and Scavino - 2013 - Corrosion behaviour assessment of cast and HIPed Stellite 6 alloy in a chloride-containing environme.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/L9KT464K/Rosalbino and Scavino - 2013 - Corrosion behaviour assessment of cast and HIPed Stellite 6 alloy in a chloride-containing environme.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/Q5R7IBUD/Rosalbino and Scavino - 2013 - Corrosion behaviour assessment of cast and HIPed Stellite 6 alloy in a chloride-containing environme.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/QS8M9ND2/Rosalbino and Scavino - 2013 - Corrosion behaviour assessment of cast and HIPed Stellite 6 alloy in a chloride-containing environme.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/DS9UW8EM/S0013468613015338.html;/home/grokkingstuff/Sync/Zotero/Zotero/storage/PHWTJ7LD/S0013468613015338.html
+ \endverb
+ \keyw{Corrosion behaviour,Electrochemical impedance spectroscopy (EIS),Passive film,Sodium chloride solution,Stellite 6 alloy}
+ \endentry
+ \entry{malayogluComparingPerformanceHIPed2003}{article}{}{}
+ \name{author}{2}{}{%
+ {{hash=71f57eb10950396ed3fa62c703ddaee5}{%
+ family={Malayoglu},
+ familyi={M\bibinitperiod},
+ given={U.},
+ giveni={U\bibinitperiod}}}%
+ {{hash=c00a172220606f67c3da2492047a9b71}{%
+ family={Neville},
+ familyi={N\bibinitperiod},
+ given={A.},
+ giveni={A\bibinitperiod}}}%
+ }
+ \strng{namehash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{fullhash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{fullhashraw}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{bibnamehash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{authorbibnamehash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{authornamehash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{authorfullhash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{authorfullhashraw}{49054a18ed24a57daa4c3278c94c6ce5}
+ \field{sortinit}{5}
+ \field{sortinithash}{20e9b4b0b173788c5dace24730f47d8c}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{In this paper, results from erosion--corrosion tests performed under liquid--solid erosion conditions in 3.5\% NaCl liquid medium are reported. The focus of the paper is to compare the behaviour of Cast and Hot Isostatically Pressed (HIPed) Stellite 6 alloy in terms of their electrochemical corrosion characteristics, their resistance to mechanical degradation and relationship between microstructure and degradation mechanisms. It has been shown that HIPed Stellite 6 possesses better erosion and erosion corrosion resistance than that of Cast Stellite 6 and two stainless steels (UNS S32760 and UNS S31603) under the same solid loading (200 and 500mg/l), and same temperature (20 and 50{$^\circ$}C). The material removal mechanisms have been identified by using atomic force microscopy (AFM) and shown preferential removal of the Co-rich matrix to be less extensive on the HIPed material.}
+ \field{issn}{0043-1648}
+ \field{journaltitle}{Wear}
+ \field{month}{8}
+ \field{number}{1}
+ \field{series}{14th {{International Conference}} on {{Wear}} of {{Materials}}}
+ \field{title}{Comparing the Performance of {{HIPed}} and {{Cast Stellite}} 6 Alloy in Liquid--Solid Slurries}
+ \field{urlday}{17}
+ \field{urlmonth}{2}
+ \field{urlyear}{2025}
+ \field{volume}{255}
+ \field{year}{2003}
+ \field{urldateera}{ce}
+ \field{pages}{181\bibrangedash 194}
+ \range{pages}{14}
+ \verb{doi}
+ \verb 10.1016/S0043-1648(03)00287-4
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/22BIGZS5/Malayoglu and Neville - 2003 - Comparing the performance of HIPed and Cast Stellite 6 alloy in liquid–solid slurries.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/54ZML2SM/S0043164803002874.html
+ \endverb
+ \keyw{Cast Stellite 6,Corrosion,Erosion,HIPed,Liquid-solid slurries}
+ \endentry
+ \entry{malayogluAssessingKineticsMechanisms2005}{article}{}{}
+ \name{author}{3}{}{%
+ {{hash=71f57eb10950396ed3fa62c703ddaee5}{%
+ family={Malayoglu},
+ familyi={M\bibinitperiod},
+ given={U.},
+ giveni={U\bibinitperiod}}}%
+ {{hash=c00a172220606f67c3da2492047a9b71}{%
+ family={Neville},
+ familyi={N\bibinitperiod},
+ given={A.},
+ giveni={A\bibinitperiod}}}%
+ {{hash=ee5b11fe5a87f0778993b26bdf4201f9}{%
+ family={Lovelock},
+ familyi={L\bibinitperiod},
+ given={H.},
+ giveni={H\bibinitperiod}}}%
+ }
+ \strng{namehash}{e97dbd10bf73605a8abe6ce76eebeee7}
+ \strng{fullhash}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \strng{fullhashraw}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \strng{bibnamehash}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \strng{authorbibnamehash}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \strng{authornamehash}{e97dbd10bf73605a8abe6ce76eebeee7}
+ \strng{authorfullhash}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \strng{authorfullhashraw}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \field{sortinit}{5}
+ \field{sortinithash}{20e9b4b0b173788c5dace24730f47d8c}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{Cobalt--base (Stellite) alloys have seen extensive use in wear environments mainly due to their high strength, corrosion resistance and hardness. Co--base superalloys rely primarily on carbides, formed in the Co matrix and at grain boundaries, for their strength and the distribution, size and shape of carbides depends on processing conditions. Currently use of Stellite alloys has extended into various industrial sectors (e.g. pulp and paper processing, oil and gas processing, pharmaceuticals, chemical processing) and the need for improved information regarding corrosion (and often tribo-corrosion) of Stellite alloys has increased. It has been recognised that processing changes, which affect the microstructure of Stellite alloys, will most probably affect the corrosion performance. In this paper the corrosion behaviour of Stellite 6 in the as-cast and the HIP consolidated forms has been compared and contrasted using DC electrochemical techniques in static saline conditions. It has been shown that there is a significant difference in the corrosion performance of HIP consolidated Stellite 6 and it is possible to link the corrosion mechanisms to the microstructure. The benefits of using HIPing as a manufacturing process for the corrosion performance of Stellite 6 are discussed.}
+ \field{annotation}{29 citations (Semantic Scholar/DOI) [2025-04-12]}
+ \field{issn}{0010-938X}
+ \field{journaltitle}{Corrosion Science}
+ \field{month}{8}
+ \field{number}{8}
+ \field{title}{Assessing the Kinetics and Mechanisms of Corrosion of Cast and {{HIPed Stellite}} 6 in Aqueous Saline Environments}
+ \field{urlday}{30}
+ \field{urlmonth}{6}
+ \field{urlyear}{2024}
+ \field{volume}{47}
+ \field{year}{2005}
+ \field{urldateera}{ce}
+ \field{pages}{1911\bibrangedash 1931}
+ \range{pages}{21}
+ \verb{doi}
+ \verb 10.1016/j.corsci.2004.09.011
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/W53CCXFR/Malayoglu et al. - 2005 - Assessing the kinetics and mechanisms of corrosion.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/2N27J6MC/display.html;/home/grokkingstuff/Sync/Zotero/Zotero/storage/IQJ7KFUN/S0010938X04003129.html;/home/grokkingstuff/Sync/Zotero/Zotero/storage/UMLTNN6H/S0010938X04003129.html
+ \endverb
+ \keyw{(A) Cobalt,(B) Polarisation,(C) Passive film,Pitting corrosion,Potentiostatic}
+ \endentry
+ \entry{nevilleAqueousCorrosionCobalt2010}{incollection}{}{}
+ \name{author}{2}{}{%
+ {{hash=c00a172220606f67c3da2492047a9b71}{%
+ family={Neville},
+ familyi={N\bibinitperiod},
+ given={A.},
+ giveni={A\bibinitperiod}}}%
+ {{hash=71f57eb10950396ed3fa62c703ddaee5}{%
+ family={Malayoglu},
+ familyi={M\bibinitperiod},
+ given={U.},
+ giveni={U\bibinitperiod}}}%
+ }
+ \strng{namehash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{fullhash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{fullhashraw}{9593ff71fc126477835f10aeb0544b21}
+ \strng{bibnamehash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{authorbibnamehash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{authornamehash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{authorfullhash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{authorfullhashraw}{9593ff71fc126477835f10aeb0544b21}
+ \field{sortinit}{5}
+ \field{sortinithash}{20e9b4b0b173788c5dace24730f47d8c}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{Cobalt-base alloys are of great importance in engineering applications across a wide range of sectors from oil and gas to biomedical and this chapter assesses their metallurgy and their corrosion resistance and performance where corrosion is accentuated by a mechanical wear processes. It is intended to guide the reader to the wealth of research work which has been conducted on Co-base alloys. . {©} 2010 Copyright {©} 2010 Elsevier B.V. All rights reserved.}
+ \field{booktitle}{Shreir's {{Corrosion}}}
+ \field{title}{Aqueous Corrosion of Cobalt and Its Alloys}
+ \field{year}{2010}
+ \field{pages}{1916\bibrangedash 1936}
+ \range{pages}{21}
+ \verb{doi}
+ \verb 10.1016/B978-044452787-5.00093-7
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/EQG4HXFG/Neville and Malayoglu - 2010 - Aqueous corrosion of cobalt and its alloys.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/WHCULADN/display.html
+ \endverb
+ \endentry
+ \entry{azziTriboMechanicalProperties2015}{inproceedings}{}{}
+ \name{author}{4}{}{%
+ {{hash=d1dea97a94bcc9e5f1059efb2bf7e656}{%
+ family={Azzi},
+ familyi={A\bibinitperiod},
+ given={M.},
+ giveni={M\bibinitperiod}}}%
+ {{hash=e0bb54604048a1f245397e2d1be337af}{%
+ family={Vernhes},
+ familyi={V\bibinitperiod},
+ given={L.},
+ giveni={L\bibinitperiod}}}%
+ {{hash=9539b302212d5c1004b11979b421d554}{%
+ family={Bousser},
+ familyi={B\bibinitperiod},
+ given={E.},
+ giveni={E\bibinitperiod}}}%
+ {{hash=8a5e5ef381d5c6c3fe957a49e4360d33}{%
+ family={{Klemberg-Sapieha}},
+ familyi={K\bibinitperiod},
+ given={J.\bibnamedelimi E.},
+ giveni={J\bibinitperiod\bibinitdelim E\bibinitperiod}}}%
+ }
+ \list{publisher}{1}{%
+ {American Society of Mechanical Engineers Digital Collection}%
+ }
+ \strng{namehash}{57b49c6fc197693a279e1b7dc6383072}
+ \strng{fullhash}{ad0e27a5d2118f600d335aede01fb9f3}
+ \strng{fullhashraw}{ad0e27a5d2118f600d335aede01fb9f3}
+ \strng{bibnamehash}{ad0e27a5d2118f600d335aede01fb9f3}
+ \strng{authorbibnamehash}{ad0e27a5d2118f600d335aede01fb9f3}
+ \strng{authornamehash}{57b49c6fc197693a279e1b7dc6383072}
+ \strng{authorfullhash}{ad0e27a5d2118f600d335aede01fb9f3}
+ \strng{authorfullhashraw}{ad0e27a5d2118f600d335aede01fb9f3}
+ \field{sortinit}{6}
+ \field{sortinithash}{b33bc299efb3c36abec520a4c896a66d}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{Wear of materials is a serious problem facing industry especially in mechanical applications where moving parts are continuously subjected to friction. Hard coatings prepared by a variety of processes are nowadays considered as effective solutions to protect components against wear. Examples of such processes are: thermal spray coating, vacuum-based coating and hardfacing. In this paper, we study the mechanical, tribological and corrosion properties of two hard coating systems: CoCr Stellite 6 (ST6) hardfacing on 316 stainless steel and NiWCrB Colmonoy 88 (C88) thermal spray coating on Inconel 718. The effect of gas nitriding on the microstructure and wear performance of these coating systems is investigated. X-ray diffraction, energy dispersive spectroscopy and scanning electron microscopy were used for microstructural analysis. Micro-indentation technique was utilized to measure the surface and cross-sectional hardness of the coatings. Rockwell indentation technique was used to evaluate coating adhesion in accordance with CEN/TS 1071-8. Pin-on-disk tests were conducted to assess the tribological performance of the coatings. Microstructural analysis showed that ST6 has a cobalt matrix in the form of dendrites reinforced with metal carbide particles whereas C88 has a Nickel matrix reinforced mainly with metal boride particles. ST6 and C88 improved significantly the wear resistance of their corresponding substrates. This is mainly due to good adhesion and high hardness of the coatings; HR15N values of ST6 and C88 were almost 85 as compared to 61 and 80 for 316 and INC substrates, respectively. ST6 was found to improve significantly the corrosion resistance of 316 whereas C88 decreased the corrosion performance of INC. Moreover, nitriding treatment was found to improve significantly the wear resistance of 316 and INC, however, in the case of ST6, nitriding was beneficial in terms of wear resistance only at relatively low load.}
+ \field{annotation}{0 citations (Semantic Scholar/DOI) [2025-04-16]}
+ \field{booktitle}{{{ASME}} 2014 {{International Mechanical Engineering Congress}} and {{Exposition}}}
+ \field{langid}{english}
+ \field{month}{3}
+ \field{title}{Tribo {{Mechanical Properties}} of {{CoCr}} and {{NiWCrB Hardfacing Superalloy Coating Systems}}}
+ \field{urlday}{16}
+ \field{urlmonth}{4}
+ \field{urlyear}{2025}
+ \field{year}{2015}
+ \field{urldateera}{ce}
+ \verb{doi}
+ \verb 10.1115/IMECE2014-39372
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/ZS9U4NG6/Azzi et al. - 2015 - Tribo Mechanical Properties of CoCr and NiWCrB Hardfacing Superalloy Coating Systems.pdf
+ \endverb
+ \endentry
+ \entry{wuMicrostructurePerformanceStudies2020}{thesis}{}{}
+ \name{author}{1}{}{%
+ {{hash=f81812ca23235d219efb11e87d2f546f}{%
+ family={Wu},
+ familyi={W\bibinitperiod},
+ given={Xueyao},
+ giveni={X\bibinitperiod}}}%
+ }
+ \list{institution}{1}{%
+ {Carleton University}%
+ }
+ \list{location}{1}{%
+ {Ottawa, Ontario}%
+ }
+ \strng{namehash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{fullhash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{fullhashraw}{f81812ca23235d219efb11e87d2f546f}
+ \strng{bibnamehash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{authorbibnamehash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{authornamehash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{authorfullhash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{authorfullhashraw}{f81812ca23235d219efb11e87d2f546f}
+ \field{sortinit}{6}
+ \field{sortinithash}{b33bc299efb3c36abec520a4c896a66d}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{A novel high entropy alloy (HEA), designated as HE6, is created by combining the features of HEAs and Stellite alloys in this research. The new alloy has the equiatomic Co-Cr-Fe-Ni composition (22 at.\%) with a large amount of W (19 wt.\%), small amounts of C (0.96 wt.\%) and Mo (3 wt.\%). The bulk specimens of HE6 alloy are fabricated from the alloy powder via spark plasma sintering (SPS) and plasma transferred arc (PTA) welding processes. The microstructures of the SPS and PTA specimens are studied using a scanning electron microscope (SEM) equipped with energy dispersive X-ray spectroscopy (EDX) and using X-ray diffraction (XRD). A series of material characterization tests such as hardness, wear and corrosion are performed on the bulk HE6 specimens. As the benchmark of Stellite alloy family, Stellite 6 is investigated along with HE6 for comparison. It is found that HE6 alloy has a microstructure which is similar to that of Stellite alloys where various carbides and intermetallics are embedded in a solid solution matrix, but compared to Stellite 6, the FCC solid solution of HE6 consists of multi-element structures (Co, Cr, Fe and Ni), not single FCC Co structure, and also, the carbides and intermetallics in HE6 alloy are more diverse. The hardness and dry-sliding wear tests show that HE6 alloy does not perform as well as Stellite 6. In the electrochemical and immersion corrosion tests, similar to Stellite alloys, HE6 alloy displays passivation ability by forming protective Cr-rich oxide films in 3.5\% NaCl, 2\% HCl and 10\% H2SO4 solutions, but localized corrosion (pitting) can occur when the oxide films are broken. HE6 alloy shows less resistance to corrosion under the electrochemical impedance spectroscopy (EIS) and cyclic polarization tests than Stellite 6, but has lower corrosion rates under immersion test in 5\% HCl and 10\% H2SO4 solutions for the longer testing duration (72 hours), also showing nearly stable corrosion rate with testing time, which indicates better repairing ability of the oxide films.}
+ \field{langid}{english}
+ \field{title}{Microstructure and {{Performance Studies}} of a {{Novel Cobalt High Entropy Alloy}}}
+ \field{type}{Master of {{Applied Science}}}
+ \field{urlday}{14}
+ \field{urlmonth}{3}
+ \field{urlyear}{2025}
+ \field{year}{2020}
+ \field{urldateera}{ce}
+ \verb{doi}
+ \verb 10.22215/etd/2020-14374
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/TBH5RZ9Y/Wu - 2020 - Microstructure and Performance Studies of a Novel Cobalt High Entropy Alloy.pdf
+ \endverb
+ \endentry
\enddatalist
\endrefsection
\endinput
diff --git a/presentation/slides.bbl-SAVE-ERROR b/presentation/slides.bbl-SAVE-ERROR
index 4272813..e7bb8ab 100644
--- a/presentation/slides.bbl-SAVE-ERROR
+++ b/presentation/slides.bbl-SAVE-ERROR
@@ -66,6 +66,290 @@
\endverb
\keyw{boronising,cavitation,cavitation erosion resistance,friction stir processing,hardness,HVOF coating,nitriding,PVD coating,shot peening}
\endentry
+ \entry{malayogluComparingPerformanceHIPed2003}{article}{}{}
+ \name{author}{2}{}{%
+ {{hash=71f57eb10950396ed3fa62c703ddaee5}{%
+ family={Malayoglu},
+ familyi={M\bibinitperiod},
+ given={U.},
+ giveni={U\bibinitperiod}}}%
+ {{hash=c00a172220606f67c3da2492047a9b71}{%
+ family={Neville},
+ familyi={N\bibinitperiod},
+ given={A.},
+ giveni={A\bibinitperiod}}}%
+ }
+ \strng{namehash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{fullhash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{fullhashraw}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{bibnamehash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{authorbibnamehash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{authornamehash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{authorfullhash}{49054a18ed24a57daa4c3278c94c6ce5}
+ \strng{authorfullhashraw}{49054a18ed24a57daa4c3278c94c6ce5}
+ \field{sortinit}{4}
+ \field{sortinithash}{9381316451d1b9788675a07e972a12a7}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{In this paper, results from erosion--corrosion tests performed under liquid--solid erosion conditions in 3.5\% NaCl liquid medium are reported. The focus of the paper is to compare the behaviour of Cast and Hot Isostatically Pressed (HIPed) Stellite 6 alloy in terms of their electrochemical corrosion characteristics, their resistance to mechanical degradation and relationship between microstructure and degradation mechanisms. It has been shown that HIPed Stellite 6 possesses better erosion and erosion corrosion resistance than that of Cast Stellite 6 and two stainless steels (UNS S32760 and UNS S31603) under the same solid loading (200 and 500mg/l), and same temperature (20 and 50{$^\circ$}C). The material removal mechanisms have been identified by using atomic force microscopy (AFM) and shown preferential removal of the Co-rich matrix to be less extensive on the HIPed material.}
+ \field{issn}{0043-1648}
+ \field{journaltitle}{Wear}
+ \field{month}{8}
+ \field{number}{1}
+ \field{series}{14th {{International Conference}} on {{Wear}} of {{Materials}}}
+ \field{title}{Comparing the Performance of {{HIPed}} and {{Cast Stellite}} 6 Alloy in Liquid--Solid Slurries}
+ \field{urlday}{17}
+ \field{urlmonth}{2}
+ \field{urlyear}{2025}
+ \field{volume}{255}
+ \field{year}{2003}
+ \field{urldateera}{ce}
+ \field{pages}{181\bibrangedash 194}
+ \range{pages}{14}
+ \verb{doi}
+ \verb 10.1016/S0043-1648(03)00287-4
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/22BIGZS5/Malayoglu and Neville - 2003 - Comparing the performance of HIPed and Cast Stellite 6 alloy in liquid–solid slurries.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/54ZML2SM/S0043164803002874.html
+ \endverb
+ \keyw{Cast Stellite 6,Corrosion,Erosion,HIPed,Liquid-solid slurries}
+ \endentry
+ \entry{malayogluAssessingKineticsMechanisms2005}{article}{}{}
+ \name{author}{3}{}{%
+ {{hash=71f57eb10950396ed3fa62c703ddaee5}{%
+ family={Malayoglu},
+ familyi={M\bibinitperiod},
+ given={U.},
+ giveni={U\bibinitperiod}}}%
+ {{hash=c00a172220606f67c3da2492047a9b71}{%
+ family={Neville},
+ familyi={N\bibinitperiod},
+ given={A.},
+ giveni={A\bibinitperiod}}}%
+ {{hash=ee5b11fe5a87f0778993b26bdf4201f9}{%
+ family={Lovelock},
+ familyi={L\bibinitperiod},
+ given={H.},
+ giveni={H\bibinitperiod}}}%
+ }
+ \strng{namehash}{e97dbd10bf73605a8abe6ce76eebeee7}
+ \strng{fullhash}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \strng{fullhashraw}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \strng{bibnamehash}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \strng{authorbibnamehash}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \strng{authornamehash}{e97dbd10bf73605a8abe6ce76eebeee7}
+ \strng{authorfullhash}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \strng{authorfullhashraw}{6d20cef4e19bc64d64fcdd07161b9ac9}
+ \field{sortinit}{4}
+ \field{sortinithash}{9381316451d1b9788675a07e972a12a7}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{Cobalt--base (Stellite) alloys have seen extensive use in wear environments mainly due to their high strength, corrosion resistance and hardness. Co--base superalloys rely primarily on carbides, formed in the Co matrix and at grain boundaries, for their strength and the distribution, size and shape of carbides depends on processing conditions. Currently use of Stellite alloys has extended into various industrial sectors (e.g. pulp and paper processing, oil and gas processing, pharmaceuticals, chemical processing) and the need for improved information regarding corrosion (and often tribo-corrosion) of Stellite alloys has increased. It has been recognised that processing changes, which affect the microstructure of Stellite alloys, will most probably affect the corrosion performance. In this paper the corrosion behaviour of Stellite 6 in the as-cast and the HIP consolidated forms has been compared and contrasted using DC electrochemical techniques in static saline conditions. It has been shown that there is a significant difference in the corrosion performance of HIP consolidated Stellite 6 and it is possible to link the corrosion mechanisms to the microstructure. The benefits of using HIPing as a manufacturing process for the corrosion performance of Stellite 6 are discussed.}
+ \field{annotation}{29 citations (Semantic Scholar/DOI) [2025-04-12]}
+ \field{issn}{0010-938X}
+ \field{journaltitle}{Corrosion Science}
+ \field{month}{8}
+ \field{number}{8}
+ \field{title}{Assessing the Kinetics and Mechanisms of Corrosion of Cast and {{HIPed Stellite}} 6 in Aqueous Saline Environments}
+ \field{urlday}{30}
+ \field{urlmonth}{6}
+ \field{urlyear}{2024}
+ \field{volume}{47}
+ \field{year}{2005}
+ \field{urldateera}{ce}
+ \field{pages}{1911\bibrangedash 1931}
+ \range{pages}{21}
+ \verb{doi}
+ \verb 10.1016/j.corsci.2004.09.011
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/W53CCXFR/Malayoglu et al. - 2005 - Assessing the kinetics and mechanisms of corrosion.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/2N27J6MC/display.html;/home/grokkingstuff/Sync/Zotero/Zotero/storage/IQJ7KFUN/S0010938X04003129.html;/home/grokkingstuff/Sync/Zotero/Zotero/storage/UMLTNN6H/S0010938X04003129.html
+ \endverb
+ \keyw{(A) Cobalt,(B) Polarisation,(C) Passive film,Pitting corrosion,Potentiostatic}
+ \endentry
+ \entry{nevilleAqueousCorrosionCobalt2010}{incollection}{}{}
+ \name{author}{2}{}{%
+ {{hash=c00a172220606f67c3da2492047a9b71}{%
+ family={Neville},
+ familyi={N\bibinitperiod},
+ given={A.},
+ giveni={A\bibinitperiod}}}%
+ {{hash=71f57eb10950396ed3fa62c703ddaee5}{%
+ family={Malayoglu},
+ familyi={M\bibinitperiod},
+ given={U.},
+ giveni={U\bibinitperiod}}}%
+ }
+ \strng{namehash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{fullhash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{fullhashraw}{9593ff71fc126477835f10aeb0544b21}
+ \strng{bibnamehash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{authorbibnamehash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{authornamehash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{authorfullhash}{9593ff71fc126477835f10aeb0544b21}
+ \strng{authorfullhashraw}{9593ff71fc126477835f10aeb0544b21}
+ \field{sortinit}{4}
+ \field{sortinithash}{9381316451d1b9788675a07e972a12a7}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{Cobalt-base alloys are of great importance in engineering applications across a wide range of sectors from oil and gas to biomedical and this chapter assesses their metallurgy and their corrosion resistance and performance where corrosion is accentuated by a mechanical wear processes. It is intended to guide the reader to the wealth of research work which has been conducted on Co-base alloys. . {©} 2010 Copyright {©} 2010 Elsevier B.V. All rights reserved.}
+ \field{booktitle}{Shreir's {{Corrosion}}}
+ \field{title}{Aqueous Corrosion of Cobalt and Its Alloys}
+ \field{year}{2010}
+ \field{pages}{1916\bibrangedash 1936}
+ \range{pages}{21}
+ \verb{doi}
+ \verb 10.1016/B978-044452787-5.00093-7
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/EQG4HXFG/Neville and Malayoglu - 2010 - Aqueous corrosion of cobalt and its alloys.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/WHCULADN/display.html
+ \endverb
+ \endentry
+ \entry{rosalbinoCorrosionBehaviourAssessment2013}{article}{}{}
+ \name{author}{2}{}{%
+ {{hash=e8131d75882c2fa7a8421f90ce25d1c8}{%
+ family={Rosalbino},
+ familyi={R\bibinitperiod},
+ given={F.},
+ giveni={F\bibinitperiod}}}%
+ {{hash=926282030f8047fd2d43a9df86389c42}{%
+ family={Scavino},
+ familyi={S\bibinitperiod},
+ given={G.},
+ giveni={G\bibinitperiod}}}%
+ }
+ \strng{namehash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{fullhash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{fullhashraw}{36d2582fd30d252f704f9311c20257b1}
+ \strng{bibnamehash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{authorbibnamehash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{authornamehash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{authorfullhash}{36d2582fd30d252f704f9311c20257b1}
+ \strng{authorfullhashraw}{36d2582fd30d252f704f9311c20257b1}
+ \field{sortinit}{4}
+ \field{sortinithash}{9381316451d1b9788675a07e972a12a7}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{Cobalt-base (Stellite) alloys have seen extensive use in wear environments mainly due to their high strength, corrosion resistance and hardness. Co-base superalloys rely primarily on carbides formed in the Co matrix and at grain boundaries, for their strength and wear resistance. The distribution, size and shape of carbides depend on processing conditions. Currently, the use of Stellite alloys has extended into various industrial sectors (e.g. pulp and paper processing, oil and gas processing, pharmaceuticals, chemical processing) and the need for improved information regarding corrosion of Stellite alloys has increased. It has been recognized that processing changes, which affect the microstructure of Stellite alloys, most affect corrosion resistance. In this work the corrosion behaviour of Stellite 6 alloy in the as-cast and the HIPed consolidated forms is compared and contrasted using DC and AC electrochemical techniques in static saline conditions. The results show that there is a significant difference in the corrosion performance of HIP consolidated Stellite 6 and it is possible to link the corrosion behaviour to the microstructure. The benefits of using HIPing as a manufacturing process for the corrosion performance of Stellite 6 are discussed.}
+ \field{annotation}{42 citations (Semantic Scholar/DOI) [2025-04-15]}
+ \field{issn}{0013-4686}
+ \field{journaltitle}{Electrochimica Acta}
+ \field{month}{11}
+ \field{title}{Corrosion Behaviour Assessment of Cast and {{HIPed Stellite}} 6 Alloy in a Chloride-Containing Environment}
+ \field{urlday}{15}
+ \field{urlmonth}{4}
+ \field{urlyear}{2025}
+ \field{volume}{111}
+ \field{year}{2013}
+ \field{urldateera}{ce}
+ \field{pages}{656\bibrangedash 662}
+ \range{pages}{7}
+ \verb{doi}
+ \verb 10.1016/j.electacta.2013.08.019
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/2DRD9XNN/Rosalbino and Scavino - 2013 - Corrosion behaviour assessment of cast and HIPed Stellite 6 alloy in a chloride-containing environme.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/L9KT464K/Rosalbino and Scavino - 2013 - Corrosion behaviour assessment of cast and HIPed Stellite 6 alloy in a chloride-containing environme.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/Q5R7IBUD/Rosalbino and Scavino - 2013 - Corrosion behaviour assessment of cast and HIPed Stellite 6 alloy in a chloride-containing environme.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/QS8M9ND2/Rosalbino and Scavino - 2013 - Corrosion behaviour assessment of cast and HIPed Stellite 6 alloy in a chloride-containing environme.pdf;/home/grokkingstuff/Sync/Zotero/Zotero/storage/DS9UW8EM/S0013468613015338.html;/home/grokkingstuff/Sync/Zotero/Zotero/storage/PHWTJ7LD/S0013468613015338.html
+ \endverb
+ \keyw{Corrosion behaviour,Electrochemical impedance spectroscopy (EIS),Passive film,Sodium chloride solution,Stellite 6 alloy}
+ \endentry
+ \entry{azziTriboMechanicalProperties2015}{inproceedings}{}{}
+ \name{author}{4}{}{%
+ {{hash=d1dea97a94bcc9e5f1059efb2bf7e656}{%
+ family={Azzi},
+ familyi={A\bibinitperiod},
+ given={M.},
+ giveni={M\bibinitperiod}}}%
+ {{hash=e0bb54604048a1f245397e2d1be337af}{%
+ family={Vernhes},
+ familyi={V\bibinitperiod},
+ given={L.},
+ giveni={L\bibinitperiod}}}%
+ {{hash=9539b302212d5c1004b11979b421d554}{%
+ family={Bousser},
+ familyi={B\bibinitperiod},
+ given={E.},
+ giveni={E\bibinitperiod}}}%
+ {{hash=8a5e5ef381d5c6c3fe957a49e4360d33}{%
+ family={{Klemberg-Sapieha}},
+ familyi={K\bibinitperiod},
+ given={J.\bibnamedelimi E.},
+ giveni={J\bibinitperiod\bibinitdelim E\bibinitperiod}}}%
+ }
+ \list{publisher}{1}{%
+ {American Society of Mechanical Engineers Digital Collection}%
+ }
+ \strng{namehash}{57b49c6fc197693a279e1b7dc6383072}
+ \strng{fullhash}{ad0e27a5d2118f600d335aede01fb9f3}
+ \strng{fullhashraw}{ad0e27a5d2118f600d335aede01fb9f3}
+ \strng{bibnamehash}{ad0e27a5d2118f600d335aede01fb9f3}
+ \strng{authorbibnamehash}{ad0e27a5d2118f600d335aede01fb9f3}
+ \strng{authornamehash}{57b49c6fc197693a279e1b7dc6383072}
+ \strng{authorfullhash}{ad0e27a5d2118f600d335aede01fb9f3}
+ \strng{authorfullhashraw}{ad0e27a5d2118f600d335aede01fb9f3}
+ \field{sortinit}{5}
+ \field{sortinithash}{20e9b4b0b173788c5dace24730f47d8c}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{Wear of materials is a serious problem facing industry especially in mechanical applications where moving parts are continuously subjected to friction. Hard coatings prepared by a variety of processes are nowadays considered as effective solutions to protect components against wear. Examples of such processes are: thermal spray coating, vacuum-based coating and hardfacing. In this paper, we study the mechanical, tribological and corrosion properties of two hard coating systems: CoCr Stellite 6 (ST6) hardfacing on 316 stainless steel and NiWCrB Colmonoy 88 (C88) thermal spray coating on Inconel 718. The effect of gas nitriding on the microstructure and wear performance of these coating systems is investigated. X-ray diffraction, energy dispersive spectroscopy and scanning electron microscopy were used for microstructural analysis. Micro-indentation technique was utilized to measure the surface and cross-sectional hardness of the coatings. Rockwell indentation technique was used to evaluate coating adhesion in accordance with CEN/TS 1071-8. Pin-on-disk tests were conducted to assess the tribological performance of the coatings. Microstructural analysis showed that ST6 has a cobalt matrix in the form of dendrites reinforced with metal carbide particles whereas C88 has a Nickel matrix reinforced mainly with metal boride particles. ST6 and C88 improved significantly the wear resistance of their corresponding substrates. This is mainly due to good adhesion and high hardness of the coatings; HR15N values of ST6 and C88 were almost 85 as compared to 61 and 80 for 316 and INC substrates, respectively. ST6 was found to improve significantly the corrosion resistance of 316 whereas C88 decreased the corrosion performance of INC. Moreover, nitriding treatment was found to improve significantly the wear resistance of 316 and INC, however, in the case of ST6, nitriding was beneficial in terms of wear resistance only at relatively low load.}
+ \field{annotation}{0 citations (Semantic Scholar/DOI) [2025-04-16]}
+ \field{booktitle}{{{ASME}} 2014 {{International Mechanical Engineering Congress}} and {{Exposition}}}
+ \field{langid}{english}
+ \field{month}{3}
+ \field{title}{Tribo {{Mechanical Properties}} of {{CoCr}} and {{NiWCrB Hardfacing Superalloy Coating Systems}}}
+ \field{urlday}{16}
+ \field{urlmonth}{4}
+ \field{urlyear}{2025}
+ \field{year}{2015}
+ \field{urldateera}{ce}
+ \verb{doi}
+ \verb 10.1115/IMECE2014-39372
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/ZS9U4NG6/Azzi et al. - 2015 - Tribo Mechanical Properties of CoCr and NiWCrB Hardfacing Superalloy Coating Systems.pdf
+ \endverb
+ \endentry
+ \entry{wuMicrostructurePerformanceStudies2020}{thesis}{}{}
+ \name{author}{1}{}{%
+ {{hash=f81812ca23235d219efb11e87d2f546f}{%
+ family={Wu},
+ familyi={W\bibinitperiod},
+ given={Xueyao},
+ giveni={X\bibinitperiod}}}%
+ }
+ \list{institution}{1}{%
+ {Carleton University}%
+ }
+ \list{location}{1}{%
+ {Ottawa, Ontario}%
+ }
+ \strng{namehash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{fullhash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{fullhashraw}{f81812ca23235d219efb11e87d2f546f}
+ \strng{bibnamehash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{authorbibnamehash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{authornamehash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{authorfullhash}{f81812ca23235d219efb11e87d2f546f}
+ \strng{authorfullhashraw}{f81812ca23235d219efb11e87d2f546f}
+ \field{sortinit}{5}
+ \field{sortinithash}{20e9b4b0b173788c5dace24730f47d8c}
+ \field{labelnamesource}{author}
+ \field{labeltitlesource}{title}
+ \field{abstract}{A novel high entropy alloy (HEA), designated as HE6, is created by combining the features of HEAs and Stellite alloys in this research. The new alloy has the equiatomic Co-Cr-Fe-Ni composition (22 at.\%) with a large amount of W (19 wt.\%), small amounts of C (0.96 wt.\%) and Mo (3 wt.\%). The bulk specimens of HE6 alloy are fabricated from the alloy powder via spark plasma sintering (SPS) and plasma transferred arc (PTA) welding processes. The microstructures of the SPS and PTA specimens are studied using a scanning electron microscope (SEM) equipped with energy dispersive X-ray spectroscopy (EDX) and using X-ray diffraction (XRD). A series of material characterization tests such as hardness, wear and corrosion are performed on the bulk HE6 specimens. As the benchmark of Stellite alloy family, Stellite 6 is investigated along with HE6 for comparison. It is found that HE6 alloy has a microstructure which is similar to that of Stellite alloys where various carbides and intermetallics are embedded in a solid solution matrix, but compared to Stellite 6, the FCC solid solution of HE6 consists of multi-element structures (Co, Cr, Fe and Ni), not single FCC Co structure, and also, the carbides and intermetallics in HE6 alloy are more diverse. The hardness and dry-sliding wear tests show that HE6 alloy does not perform as well as Stellite 6. In the electrochemical and immersion corrosion tests, similar to Stellite alloys, HE6 alloy displays passivation ability by forming protective Cr-rich oxide films in 3.5\% NaCl, 2\% HCl and 10\% H2SO4 solutions, but localized corrosion (pitting) can occur when the oxide films are broken. HE6 alloy shows less resistance to corrosion under the electrochemical impedance spectroscopy (EIS) and cyclic polarization tests than Stellite 6, but has lower corrosion rates under immersion test in 5\% HCl and 10\% H2SO4 solutions for the longer testing duration (72 hours), also showing nearly stable corrosion rate with testing time, which indicates better repairing ability of the oxide films.}
+ \field{langid}{english}
+ \field{title}{Microstructure and {{Performance Studies}} of a {{Novel Cobalt High Entropy Alloy}}}
+ \field{type}{Master of {{Applied Science}}}
+ \field{urlday}{14}
+ \field{urlmonth}{3}
+ \field{urlyear}{2025}
+ \field{year}{2020}
+ \field{urldateera}{ce}
+ \verb{doi}
+ \verb 10.22215/etd/2020-14374
+ \endverb
+ \verb{file}
+ \verb /home/grokkingstuff/Sync/Zotero/Zotero/storage/TBH5RZ9Y/Wu - 2020 - Microstructure and Performance Studies of a Novel Cobalt High Entropy Alloy.pdf
+ \endverb
+ \endentry
\enddatalist
\endrefsection
\endinput
diff --git a/presentation/slides.bcf b/presentation/slides.bcf
index 0648888..1f54ca3 100644
--- a/presentation/slides.bcf
+++ b/presentation/slides.bcf
@@ -2374,6 +2374,32 @@
krellaDegradationProtectionMaterials2023
+ krellaDegradationProtectionMaterials2023
+ krellaDegradationProtectionMaterials2023
+ ogunlakinMicrostructuralElectrochemicalCorrosion2025
+ rosalbinoCorrosionBehaviourAssessment2013
+ malayogluComparingPerformanceHIPed2003
+ malayogluAssessingKineticsMechanisms2005
+ nevilleAqueousCorrosionCobalt2010
+ rosalbinoCorrosionBehaviourAssessment2013
+ rosalbinoCorrosionBehaviourAssessment2013
+ azziTriboMechanicalProperties2015
+ wuMicrostructurePerformanceStudies2020
+ rosalbinoCorrosionBehaviourAssessment2013
+ azziTriboMechanicalProperties2015
+ wuMicrostructurePerformanceStudies2020
+ rosalbinoCorrosionBehaviourAssessment2013
+ azziTriboMechanicalProperties2015
+ wuMicrostructurePerformanceStudies2020
+ rosalbinoCorrosionBehaviourAssessment2013
+ azziTriboMechanicalProperties2015
+ wuMicrostructurePerformanceStudies2020
+ rosalbinoCorrosionBehaviourAssessment2013
+ azziTriboMechanicalProperties2015
+ wuMicrostructurePerformanceStudies2020
+ rosalbinoCorrosionBehaviourAssessment2013
+ azziTriboMechanicalProperties2015
+ wuMicrostructurePerformanceStudies2020
diff --git a/presentation/slides.bcf-SAVE-ERROR b/presentation/slides.bcf-SAVE-ERROR
index ef9bcb0..23fad38 100644
--- a/presentation/slides.bcf-SAVE-ERROR
+++ b/presentation/slides.bcf-SAVE-ERROR
@@ -2374,3 +2374,5 @@
krellaDegradationProtectionMaterials2023
+ krellaDegradationProtectionMaterials2023
+ krellaDegradationProtectionMaterials2023
diff --git a/presentation/slides.blg b/presentation/slides.blg
index ab5ab7e..0768737 100644
--- a/presentation/slides.blg
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+[41] Biber.pm:420> INFO - Reading 'slides.bcf'
+[69] Biber.pm:994> INFO - Found 8 citekeys in bib section 0
[75] Biber.pm:4463> INFO - Processing section 0
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-[1584] bbl.pm:779> INFO - Output to slides.bbl
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+[1604] UCollate.pm:68> INFO - Overriding locale 'en-US' defaults 'variable = shifted' with 'variable = non-ignorable'
+[1604] UCollate.pm:68> INFO - Overriding locale 'en-US' defaults 'normalization = NFD' with 'normalization = prenormalized'
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+[1606] bbl.pm:676> INFO - Writing 'slides.bbl' with encoding 'UTF-8'
+[1609] bbl.pm:779> INFO - Output to slides.bbl
diff --git a/presentation/slides.dvi b/presentation/slides.dvi
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index 0000000..1c855e0
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diff --git a/presentation/slides.fdb_latexmk b/presentation/slides.fdb_latexmk
index c607f58..e9896be 100644
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+ "references.bib" 1754841032.1435 2970348 1a596cc9c260fe987e7cfc548efecf93 ""
+ "slides.bcf" 1754912427.68637 110256 f1abf4987ee16d88e83d5b01fb4f8320 "pdflatex"
(generated)
"slides.bbl"
"slides.blg"
(rewritten before read)
-["pdflatex"] 1754810700.93203 "slides.tex" "slides.pdf" "slides" 1754810702.5026 0
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"/opt/texlive/2025/texmf-dist/fonts/type1/public/cm-super/sfsi1000.pfb" 1746385105 103607 8dec125a771685406ae21998f7cfb6f2 ""
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"/opt/texlive/2025/texmf-dist/fonts/type1/public/cm-super/sfso1000.pfb" 1746385105 160858 2985abeca00255053fda4e0f01ab8650 ""
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+ "/opt/texlive/2025/texmf-dist/fonts/type1/public/cm-super/sfss1200.pfb" 1746385105 95792 fb800ffa2babe7bd5fafc1817d8f1313 ""
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@@ -130,14 +135,19 @@
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"/opt/texlive/2025/texmf-dist/tex/generic/pgf/basiclayer/pgfcoretransparency.code.tex" 1746385105 8893 e851de2175338fdf7c17f3e091d94618 ""
+ "/opt/texlive/2025/texmf-dist/tex/generic/pgf/frontendlayer/tikz/libraries/tikzlibrarybackgrounds.code.tex" 1746385105 4572 4a19637ef65ce88ad2f2d5064b69541d ""
"/opt/texlive/2025/texmf-dist/tex/generic/pgf/frontendlayer/tikz/libraries/tikzlibrarydecorations.code.tex" 1746385105 5628 dc0ee4ba7f3e40acae5600067ce833de ""
"/opt/texlive/2025/texmf-dist/tex/generic/pgf/frontendlayer/tikz/libraries/tikzlibrarydecorations.pathmorphing.code.tex" 1746385105 321 cdd11262840e01e25374a2d458f15e99 ""
"/opt/texlive/2025/texmf-dist/tex/generic/pgf/frontendlayer/tikz/libraries/tikzlibrarydecorations.pathreplacing.code.tex" 1746385105 1319 0b2de5126c6cbc295f0eb77f7344b34d ""
+ "/opt/texlive/2025/texmf-dist/tex/generic/pgf/frontendlayer/tikz/libraries/tikzlibraryfit.code.tex" 1746385105 3626 2d87dc681257fa32d07a8b3934b10f88 ""
+ "/opt/texlive/2025/texmf-dist/tex/generic/pgf/frontendlayer/tikz/libraries/tikzlibrarymatrix.code.tex" 1746385105 4228 c39d423dc1a80da31c8c67bf1067f384 ""
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+ "/opt/texlive/2025/texmf-dist/tex/generic/pgf/frontendlayer/tikz/libraries/tikzlibrarypositioning.code.tex" 1746385105 3937 3f208572dd82c71103831da976d74f1a ""
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"/opt/texlive/2025/texmf-dist/tex/generic/pgf/libraries/decorations/pgflibrarydecorations.pathreplacing.code.tex" 1746385105 7474 f05a7223b140f230922562ac6a9fede5 ""
+ "/opt/texlive/2025/texmf-dist/tex/generic/pgf/libraries/pgflibraryarrows.meta.code.tex" 1746385105 58801 1e750fb0692eb99aaac45698bbec96b1 ""
"/opt/texlive/2025/texmf-dist/tex/generic/pgf/libraries/pgflibraryfpu.code.tex" 1746385105 85938 8e4ba97c5906e1c0d158aea81fe29af7 ""
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@@ -289,6 +299,12 @@
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"/opt/texlive/2025/texmf-dist/tex/latex/capt-of/capt-of.sty" 1746385105 1311 063f8536a047a2d9cb1803321f793f37 ""
+ "/opt/texlive/2025/texmf-dist/tex/latex/caption/caption-beamer.sto" 1746385105 4350 a9295a4610cd29113396b45a37d92606 ""
+ "/opt/texlive/2025/texmf-dist/tex/latex/caption/caption.sty" 1746385105 56128 c2ccf1a29d78c33bc553880402e4fb9a ""
+ "/opt/texlive/2025/texmf-dist/tex/latex/caption/caption3.sty" 1746385105 72619 ee90b6612147680fd73c3b1406a74245 ""
+ "/opt/texlive/2025/texmf-dist/tex/latex/caption/ltcaption.sty" 1746385105 7418 021d7c4eb11bde94592761855a3d046e ""
+ "/opt/texlive/2025/texmf-dist/tex/latex/caption/subcaption.sty" 1746385105 12494 0c0cdb824278a4d51cefeb2e79901315 ""
+ "/opt/texlive/2025/texmf-dist/tex/latex/chemgreek/chemgreek.sty" 1746385105 47530 64600845afa9c25b782d42fa33f66772 ""
"/opt/texlive/2025/texmf-dist/tex/latex/csquotes/csquotes.cfg" 1746385105 7068 06f8d141725d114847527a66439066b6 ""
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"/opt/texlive/2025/texmf-dist/tex/latex/csquotes/csquotes.sty" 1746385105 62767 e79d6d7a989e7da62dcf3d0a65c1faee ""
@@ -326,6 +342,7 @@
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"/opt/texlive/2025/texmf-dist/tex/latex/l3backend/l3backend-pdftex.def" 1746385105 30366 13daaaa774357bc2a262523ba6a04bac ""
"/opt/texlive/2025/texmf-dist/tex/latex/l3kernel/expl3.sty" 1746385105 6558 e00ead217769dd82217e7c94d181dc63 ""
+ "/opt/texlive/2025/texmf-dist/tex/latex/l3packages/l3keys2e/l3keys2e.sty" 1746385105 4674 22943918cc84173478a588d6efbc800b ""
"/opt/texlive/2025/texmf-dist/tex/latex/l3packages/xparse/xparse.sty" 1746385105 9783 ab4bee47700c04aadedb8da27591b0ab ""
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"/opt/texlive/2025/texmf-dist/tex/latex/listings/listings.cfg" 1746385105 1865 301ae3c26fb8c0243307b619a6aa2dd3 ""
@@ -336,6 +353,7 @@
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"/opt/texlive/2025/texmf-dist/tex/latex/mathtools/mathtools.sty" 1746385105 62711 3b0ed1d68b598a75677c10d16646d5e5 ""
"/opt/texlive/2025/texmf-dist/tex/latex/mathtools/mhsetup.sty" 1746385105 5582 a43dedf8e5ec418356f1e9dfe5d29fc3 ""
+ "/opt/texlive/2025/texmf-dist/tex/latex/mhchem/mhchem.sty" 1746385105 133877 abeecc93dabd0b08364240f40830f21b ""
"/opt/texlive/2025/texmf-dist/tex/latex/microtype/microtype-pdftex.def" 1746385105 49650 26a5e891c8da4553198575ba0517c0e5 ""
"/opt/texlive/2025/texmf-dist/tex/latex/microtype/microtype.cfg" 1746385105 27015 bd167d0154f271c424b157d8894ae4a4 ""
"/opt/texlive/2025/texmf-dist/tex/latex/microtype/microtype.sty" 1746385105 102775 6624742dafeb6f262a13657f9f77f048 ""
@@ -386,6 +404,22 @@
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"/opt/texlive/2025/texmf.cnf" 1746385105 585 81f10441804f05cc9107aafbbb0bcd23 ""
"ASTMG32_standard.png" 1754771282.73779 60833 4b192e642ecb80bd21d7fc4fa8acee29 ""
+ "EIS_CS_Bode_comparison.png" 1754831106.3188 403446 ff42e045692816fa18c363e9c83f00ce ""
+ "EIS_CS_Nyquist_comparison.png" 1754836717.68482 284420 a6eb94132d59d651b077f2dd7bfbe712 ""
+ "EIS_HS_Bode_comparison.png" 1754831097.06817 192328 5055e7f1263b2dc75061e2e6bd239617 ""
+ "EIS_HS_Nyquist_comparison.png" 1754836714.85796 248100 911fdba146e8c13e19b1cbbaafb48442 ""
+ "EIS_Nyquist_EC_fitting.png" 1754842974.19491 455523 c980cbb997abae737742904c932d76be ""
+ "EIS_doublecolumn_bode_plot.png" 1754832853.00562 402947 a1e3c269ef1699c43d655e4b32c2897c ""
+ "HIPed_Stellite1_1000X_SE.jpg" 1754812068.79258 313133 05113f2f4b30f7558be4fc48cc3e3919 ""
+ "HIPed_Stellite1_10X_SE.jpg" 1754812048.10115 232902 8a23e0f03f6eb15ab0719f7757ea294e ""
+ "HIPed_Stellite1_5000X_BSE.jpg" 1754812082.65021 203440 14ae69fa62bc4fe9f8c91ca28ef653da ""
+ "HIPed_Stellite1_5000X_SE.jpg" 1754812105.52185 219178 d51592caf7789ecba68ade6735ee1e4c ""
+ "HIPed_Stellite1_Tafel.png" 1754912188.03981 120809 6f24a53103bfcb45ee5d8a1aaa765b71 ""
+ "OCP.png" 1754819938.75349 236819 dcfc0b8d7bc0e677f7a13ab613a328c1 ""
+ "OM_HIPed_Stellite1_500X.jpg" 1754815706.13389 2276630 95aa98f99af4bc833fcb1f59358102ff ""
+ "OM_asCast_Stellite1_500X_butterfly_1.jpg" 1754815706.13389 2276630 95aa98f99af4bc833fcb1f59358102ff ""
+ "OM_asCast_Stellite1_500X_central_1.jpg" 1754816520.86243 2298538 aaaebbec3f704d3525ba4a541b25029b ""
+ "OM_asCast_Stellite1_500X_nearEdge_1.jpg" 1754816554.73475 2239176 96bd078faafcf7b17c116faaadd8eccc ""
"XRD_instrumentation.jpeg" 1754760710.28429 186638 a17bc584b0a5bbaf43733645b405d3a3 ""
"analyticalBalance.jpeg" 1754771094.48819 73983 8ca220758ef67d4ec515a664b36808dc ""
"cavitationCloseUp.jpeg" 1754759825.11661 58117 a75e3c96484ef166e5016887bc10adce ""
@@ -396,12 +430,15 @@
"pHMeter.jpeg" 1754810323.1751 111229 c48a5a53103170ce05a68b6acf0028d4 ""
"sampleHolder.jpeg" 1754771632.8785 143673 f049f5386dd3df6d60839632ae696a20 ""
"scanningElectronMicroscopy.jpeg" 1754768960.03461 169769 b78213960c652582e1f188a0a395ad99 ""
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- "slides.bbl" 1754760868.41188 5087 467b72bc7c33280a1f62f30b4492b478 "biber slides"
- "slides.nav" 1754810702.39466 3163 25f7ceaa64abdc13376e12ff16748654 "pdflatex"
- "slides.out" 1754810702.39133 602 e40934fa5c2b68c1c3bc1b816b94b0d1 "pdflatex"
- "slides.run.xml" 1754810702.39466 2416 7dd65af4565e53e8053028178a46d8b2 "pdflatex"
- "slides.tex" 1754810698.89108 15512 62bf59320d25cc07ffd15521b88b1d74 ""
+ "slides.aux" 1754912427.68304 19792 27c01afc4f7079d46cfa95ca6d172136 "pdflatex"
+ "slides.bbl" 1754912420.7459 31736 e7748bf5989c037516a04148e7fe3206 "biber slides"
+ "slides.nav" 1754912427.68637 4365 23c3b06e11e0c5687b5989b9cff3d5c4 "pdflatex"
+ "slides.out" 1754912427.68304 602 e40934fa5c2b68c1c3bc1b816b94b0d1 "pdflatex"
+ "slides.run.xml" 1754912427.68637 2416 7dd65af4565e53e8053028178a46d8b2 "pdflatex"
+ "slides.tex" 1754912410.7052 46528 710cbb44f685f01e8385386787c0a0b5 ""
+ "tikz_valve_seat_bubble.png" 1754889422 35921 64312b6e0517b5eafbd35eebd40835e7 ""
+ "tikz_valve_seat_damage.png" 1754889432 19797 f148401955e7e64d3f4060f9e9097c2d ""
+ "tikz_valve_seat_original.png" 1754889418 20007 6d4bf1bfe96d7a5e98a1535d7f8496a4 ""
(generated)
"slides.aux"
"slides.bcf"
diff --git a/presentation/slides.fls b/presentation/slides.fls
index 8396299..7d58a8b 100644
--- a/presentation/slides.fls
+++ b/presentation/slides.fls
@@ -456,6 +456,40 @@ INPUT /opt/texlive/2025/texmf-dist/tex/generic/pgf/frontendlayer/tikz/libraries/
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INPUT /opt/texlive/2025/texmf-dist/tex/generic/pgf/libraries/pgflibraryplotmarks.code.tex
INPUT /opt/texlive/2025/texmf-dist/tex/generic/pgf/libraries/pgflibraryplotmarks.code.tex
+INPUT /opt/texlive/2025/texmf-dist/tex/latex/mhchem/mhchem.sty
+INPUT /opt/texlive/2025/texmf-dist/tex/latex/mhchem/mhchem.sty
+INPUT /opt/texlive/2025/texmf-dist/tex/latex/l3kernel/expl3.sty
+INPUT /opt/texlive/2025/texmf-dist/tex/latex/l3kernel/expl3.sty
+INPUT /opt/texlive/2025/texmf-dist/tex/latex/l3backend/l3backend-pdftex.def
+INPUT /opt/texlive/2025/texmf-dist/tex/latex/l3backend/l3backend-pdftex.def
+INPUT /opt/texlive/2025/texmf-dist/tex/latex/l3packages/l3keys2e/l3keys2e.sty
+INPUT /opt/texlive/2025/texmf-dist/tex/latex/l3packages/l3keys2e/l3keys2e.sty
+INPUT /opt/texlive/2025/texmf-dist/tex/latex/chemgreek/chemgreek.sty
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English.dict
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(/opt/texlive/2025/texmf-dist/tex/latex/translations/translations-basic-diction
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Package translations Info: loading dictionary `translations-basic-dictionary' f
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Package biblatex Info: Trying to load language 'english'...
Package biblatex Info: ... file 'english.lbx' found.
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