소장자료
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005 | 20240318154333▲ | ||
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035 | ▼a(MiAaPQ)Purdue23774274▲ | ||
040 | ▼aMiAaPQ▼cMiAaPQ▲ | ||
082 | 0 | ▼a600▲ | |
100 | 1 | ▼aGuerra, Rodrigo Orta.▲ | |
245 | 1 | 0 | ▼aDevelopment of Processing and Joining Techniques for the Fabrication of a Silicon Carbide Heat Exchanger▼h[electronic resource]▲ |
260 | ▼a[S.l.]: ▼bPurdue University. ▼c2023▲ | ||
260 | 1 | ▼aAnn Arbor : ▼bProQuest Dissertations & Theses, ▼c2023▲ | |
300 | ▼a1 online resource(127 p.)▲ | ||
500 | ▼aSource: Dissertations Abstracts International, Volume: 85-05, Section: B.▲ | ||
500 | ▼aAdvisor: Youngblood, Jeffrey;Trice, Rodney.▲ | ||
502 | 1 | ▼aThesis (Ph.D.)--Purdue University, 2023.▲ | |
506 | ▼aThis item must not be sold to any third party vendors.▲ | ||
520 | ▼aThe development of a high-temperature heat exchanger made of silicon carbide (SiC) required the development of processing and joining technologies for the fabrication and integration of a prototype. Traditional ceramic forming techniques such as dry powder compaction, tape casting, or injection molding cannot effectively process complex and micron-size parts such as those required by heat exchangers to generate high surface area for improved thermal efficiency. Ceramic co-extrusion has been a successful fabrication technique to produce small structures, ceramic piezoelectric, and fibrous monolithic.The co-extrusion process is unique in its ability to create micron-size features in two dimensions through multiple reduction steps. Using this process, the heat exchanger channels are developed to create a section with a high surface area to enhance the heat transfer between fluids.Ceramic co-extrusion requires the development of ceramic/polymer binder systems based on SiC powder, fugitive thermoplastic binders, and low molecular weight polymeric species as processing aids. The thermoplastic binders mixed with SiC powder provided molding and extrusion capabilities to build the heat exchanger prototype. Afterward, a binder removal process and sintering were performed to densify the final component. The presence of cracks is common when working with ceramic/polymer binder systems. Ten different SiC ceramic/polymer binder systems were developed and evaluated to understand the mechanisms that generate cracks and lower the mechanical strengths of components.A SiC heat exchanger is comprised of a main core where the fluids exchange energy and the manifolds that direct both cold and hot fluids to the respective set of channels. The integration of these components is challenging because of the high degree of covalent bonding and low self-diffusivity of SiC. Welding and other integration methods common in metals are not feasible due to the high melting point of SiC (2730 °C). Reaction bonding is a technique that has displayed the potential to integrate SiC parts by recreating the reaction of silicon (Si) and carbon (C) on an interlayer between SiC components. This work presents the development of a pressureless joining technique for SiC by reaction bonding using SiC/C loaded ceramic suspensions and the methodology to create a successful bonding region between SiC components. The approaches studied varied the thickness in the joint region to study its mechanical strength, and crystalline structure.▲ | ||
590 | ▼aSchool code: 0183.▲ | ||
650 | 4 | ▼aMetals.▲ | |
650 | 4 | ▼aMechanical properties.▲ | |
650 | 4 | ▼aAlumina.▲ | |
650 | 4 | ▼aNickel alloys.▲ | |
650 | 4 | ▼aThermogravimetric analysis.▲ | |
650 | 4 | ▼aHigh temperature.▲ | |
650 | 4 | ▼aSilver.▲ | |
650 | 4 | ▼aHeat recovery systems.▲ | |
650 | 4 | ▼aCracks.▲ | |
650 | 4 | ▼aAerospace engineering.▲ | |
650 | 4 | ▼aEnergy consumption.▲ | |
650 | 4 | ▼aSintering.▲ | |
650 | 4 | ▼aNitrogen.▲ | |
650 | 4 | ▼aCarbon black.▲ | |
650 | 4 | ▼aInjection molding.▲ | |
650 | 4 | ▼aOxidation.▲ | |
650 | 4 | ▼aHeat exchangers.▲ | |
650 | 4 | ▼aCorrosion resistance.▲ | |
650 | 4 | ▼aSolvents.▲ | |
650 | 4 | ▼aGas turbine engines.▲ | |
650 | 4 | ▼aGeometry.▲ | |
650 | 4 | ▼aCeramic fibers.▲ | |
650 | 4 | ▼aEnergy.▲ | |
650 | 4 | ▼aEngineering.▲ | |
650 | 4 | ▼aHigh temperature physics.▲ | |
650 | 4 | ▼aIndustrial engineering.▲ | |
650 | 4 | ▼aMechanics.▲ | |
650 | 4 | ▼aNanotechnology.▲ | |
650 | 4 | ▼aPhysics.▲ | |
650 | 4 | ▼aThermodynamics.▲ | |
690 | ▼a0538▲ | ||
690 | ▼a0791▲ | ||
690 | ▼a0537▲ | ||
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710 | 2 | 0 | ▼aPurdue University.▲ |
773 | 0 | ▼tDissertations Abstracts International▼g85-05B.▲ | |
773 | ▼tDissertation Abstract International▲ | ||
790 | ▼a0183▲ | ||
791 | ▼aPh.D.▲ | ||
792 | ▼a2023▲ | ||
793 | ▼aEnglish▲ | ||
856 | 4 | 0 | ▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T16935244▼nKERIS▼z이 자료의 원문은 한국교육학술정보원에서 제공합니다.▲ |

Development of Processing and Joining Techniques for the Fabrication of a Silicon Carbide Heat Exchanger[electronic resource]
자료유형
국외eBook
서명/책임사항
Development of Processing and Joining Techniques for the Fabrication of a Silicon Carbide Heat Exchanger [electronic resource]
발행사항
[S.l.] : Purdue University. 2023 Ann Arbor : ProQuest Dissertations & Theses , 2023
형태사항
1 online resource(127 p.)
일반주기
Source: Dissertations Abstracts International, Volume: 85-05, Section: B.
Advisor: Youngblood, Jeffrey;Trice, Rodney.
Advisor: Youngblood, Jeffrey;Trice, Rodney.
학위논문주기
Thesis (Ph.D.)--Purdue University, 2023.
요약주기
The development of a high-temperature heat exchanger made of silicon carbide (SiC) required the development of processing and joining technologies for the fabrication and integration of a prototype. Traditional ceramic forming techniques such as dry powder compaction, tape casting, or injection molding cannot effectively process complex and micron-size parts such as those required by heat exchangers to generate high surface area for improved thermal efficiency. Ceramic co-extrusion has been a successful fabrication technique to produce small structures, ceramic piezoelectric, and fibrous monolithic.The co-extrusion process is unique in its ability to create micron-size features in two dimensions through multiple reduction steps. Using this process, the heat exchanger channels are developed to create a section with a high surface area to enhance the heat transfer between fluids.Ceramic co-extrusion requires the development of ceramic/polymer binder systems based on SiC powder, fugitive thermoplastic binders, and low molecular weight polymeric species as processing aids. The thermoplastic binders mixed with SiC powder provided molding and extrusion capabilities to build the heat exchanger prototype. Afterward, a binder removal process and sintering were performed to densify the final component. The presence of cracks is common when working with ceramic/polymer binder systems. Ten different SiC ceramic/polymer binder systems were developed and evaluated to understand the mechanisms that generate cracks and lower the mechanical strengths of components.A SiC heat exchanger is comprised of a main core where the fluids exchange energy and the manifolds that direct both cold and hot fluids to the respective set of channels. The integration of these components is challenging because of the high degree of covalent bonding and low self-diffusivity of SiC. Welding and other integration methods common in metals are not feasible due to the high melting point of SiC (2730 °C). Reaction bonding is a technique that has displayed the potential to integrate SiC parts by recreating the reaction of silicon (Si) and carbon (C) on an interlayer between SiC components. This work presents the development of a pressureless joining technique for SiC by reaction bonding using SiC/C loaded ceramic suspensions and the methodology to create a successful bonding region between SiC components. The approaches studied varied the thickness in the joint region to study its mechanical strength, and crystalline structure.
주제
Metals.
Mechanical properties.
Alumina.
Nickel alloys.
Thermogravimetric analysis.
High temperature.
Silver.
Heat recovery systems.
Cracks.
Aerospace engineering.
Energy consumption.
Sintering.
Nitrogen.
Carbon black.
Injection molding.
Oxidation.
Heat exchangers.
Corrosion resistance.
Solvents.
Gas turbine engines.
Geometry.
Ceramic fibers.
Energy.
Engineering.
High temperature physics.
Industrial engineering.
Mechanics.
Nanotechnology.
Physics.
Thermodynamics.
Mechanical properties.
Alumina.
Nickel alloys.
Thermogravimetric analysis.
High temperature.
Silver.
Heat recovery systems.
Cracks.
Aerospace engineering.
Energy consumption.
Sintering.
Nitrogen.
Carbon black.
Injection molding.
Oxidation.
Heat exchangers.
Corrosion resistance.
Solvents.
Gas turbine engines.
Geometry.
Ceramic fibers.
Energy.
Engineering.
High temperature physics.
Industrial engineering.
Mechanics.
Nanotechnology.
Physics.
Thermodynamics.
ISBN
9798380717731
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