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Analysis on inhomogeneous deformation behavior of metallic glass particle : 비정질 금속 입자의 불균일 변형 거동 분석에 대한 연구

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dc.contributor.advisor박은수-
dc.contributor.author김소연-
dc.date.accessioned2017-10-31T07:36:24Z-
dc.date.available2017-10-31T07:36:24Z-
dc.date.issued2017-08-
dc.identifier.other000000145487-
dc.identifier.urihttps://hdl.handle.net/10371/137383-
dc.description학위논문 (석사)-- 서울대학교 대학원 공과대학 재료공학부, 2017. 8. 박은수.-
dc.description.abstractThe size reduction of metallic glasses into nanoscale has been proposed as a promising route to overcome limited plasticity of metallic glasses and to develop novel nanostructured materials with exceptional mechanical properties. However, a lack of comprehensive understanding about mechanical behavior of nanoscale metallic glasses is attenuating both academic and industrial values of metallic glasses. Hence, this work aimed at addressing remaining issues on size effect and providing a basic guideline for designing desirable nanomechanical behaviors. With these ends in view, the mechanical response of metallic glass particles was thoroughly analyzed to clarify the effect of size on the mechanical behavior of metallic glasses and to investigate the effect of intrinsic and extrinsic factors on nanomechanical behaviors. To address the effect of size on not only mechanical properties but also shear avalanches which require uniform sample shapes and large plastic deformation range, metallic glass specimens examined in this study were prepared into spherical shape via gas atomization to have wide diameter ranges (300 nm to 4 μm). A Pd42.5Cu30Ni7.5P20 MG (Pd-MG), with outstanding glass forming ability and thermal stability, is chosen as a model system.
Mechanical properties of Pd-MG particles were measured based on contact mechanics and sample size dependences of each mechanical property are confirmed. This finding indicates that conflicting results reported in regard to the size dependence of yield strength may have been originated from extrinsic factors that obscure size effects such as dissimilarities in the shape of nanoscale MG specimens. Moreover, in order to investigate the effect of size on shear avalanches of Pd-MG particles, a statistical analysis on the size distribution of strain bursts is carried out. The complementary cumulative distribution functions (CCDFs) of strain burst sizes revealed that strain localization is weakened and self-organized critical behavior extends up to larger strain bursts upon sample size reduction. The results demonstrate that the self-organized critical behavior of plastic carriers (shear transformation zones or shear bands) is strengthened with the decrease of sample size.
Then, to elucidate the origin of inhomogeneous deformation of Pd-MG particles and to figure out intrinsic properties which have influences on nanomechanical behaviors, the deformation map for nanoscale Pd-MG is constructed. The map suggests that Pd-MG particles deform inhomogeneously at room temperature because critical boundaries which involve in the determination of deformation behavior intersect at a diameter range near the diameter of the smallest particle tested. Moreover, notable correlations between nanomechanical behaviors and intrinsic properties are found based on deformation map: (1) normalized critical stress curves for inhomogeneous deformation rely more heavily on sample size when Poissons ratio is large, (2) iso-viscosity contour locates at lower stress level when activation energy is small and shear transformation zone (STZ) volume is large, and thus, it depends on Poissons ratio, glass transition temperature, and elastic modulus. The findings demonstrate that not only Poissons ratio but also glass transition temperature and elastic modulus are controlling factors for nanomechanical behaviors. Another fruitful insight that the deformation map provides is that deformation behavior of nanoscale MGs can be tuned by manipulating extrinsic factors that can shift critical boundaries. From this point of view, the potential of electron beam irradiation as a candidate for extrinsic controlling factors is investigated via in situ compression tests inside a TEM with a high accelerating voltage of 300 keV. The result reveals that the deformation behavior of nanoscale MGs can change from inhomogeneous deformation to homogeneous deformation with viscosity value comparable to that of supercooled liquid under external stress with the aid of electron beam irradiation.
To sum up, controversial issues regarding the size dependence of mechanical properties and shear avalanches are addressed through unprecedented systematic investigations on the inhomogeneous deformation behavior of MG particles. Moreover, intrinsic and extrinsic factors influencing the deformation behavior of nanoscale MGs are figured out based on the deformation map for nanoscale MGs. These results suggest that the tailor-made design of nanoscale MGs with desirable mechanical behaviors can be practicable by manipulating intrinsic and extrinsic factors.
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dc.description.tableofcontentsChapter 1. Introduction 1
1.1. Mechanical behavior of metallic glass 1
1.1.1. Deformation mechanism and mechanical property 4
1.1.2. Deformation mode 7
1.1.3. Deformation map for metallic glass 9
1.1.4. Shear avalanches in metallic glass 11
1.2. Mechanical behavior of nanoscale metallic glass 13
1.2.1. Effect of size on mechanical property 15
1.2.2. Effect of size on deformation mode 23
1.2.3. Deformation map for nanoscale metallic glass 27
1.2.4. Effect of size on shear avalanches 29
1.2.5. Effect of intrinsic and extrinsic factors on deformation behavior of nanoscale metallic glass 30
1.3. Thesis objective and research strategy 32

Chapter 2. Experimental procedure 33
2.1. Sample preparation 33
2.1.1. Fabrication of metallic glass particle via gas atomization 33
2.1.2. Fabrication of metallic glass ribbon via melt spinning 34
2.2. Microstructure characterization 35
2.2.1. Transmission electron microscopy on metallic glass particle 35
2.3. Thermal analysis 36
2.3.1. Differential scanning calorimetry on metallic glass ribbon 36
2.3.2. Thermomechanical analysis on metallic glass ribbon 36
2.4. Mechanical analysis 37
2.4.1. Compression test on metallic glass particle 37
2.4.2. High temperature tensile creep test on metallic glass ribbon 38

Chapter 3. Result and discussion 40
3.1. Effect of size on mechanical properties of metallic glass 40
3.1.1. Compressive deformation behavior of metallic glass particle 43
3.1.2. Size-independent elastic modulus 45
3.1.3. Size-dependent yield strength 48
3.1.4. Size-dependent elastic recovery limit 54
3.1.5. Summary 58
3.2. Effect of size on shear avalanches in metallic glass 59
3.2.1. Stress distribution during plastic deformation of sphere-type specimens 64
3.2.2. Statistical analysis on the size distribution of strain bursts 68
3.2.3. Size-scaling behavior of strain bursts 72
3.2.4. Summary 75
3.3. Effect of intrinsic factor on deformation behavior of nanoscale metallic glass 76
3.3.1. Tuning parameter of critical stress curve: Poissons ratio 77
3.3.2. Tuning parameters of iso-viscosity contour: Activation energy and shear transformation zone volume 79
3.3.3. Tuning parameters and intrinsic properties 81
3.3.4. Intrinsic properties and deformation behavior of nanoscale metallic glass 90
3.3.5. Summary 98
3.4. Effect of extrinsic factor on deformation behavior of nanoscale metallic glass 99
3.4.1. Knock-on displacement by electron beam irradiation 100
3.4.2. Deformation mode transition upon electron beam irradiation inside a transmission electron microscope 103
3.4.3. Summary 107

Chapter 4. Conclusion 108
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dc.formatapplication/pdf-
dc.format.extent7962564 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectMetallic glass-
dc.subjectSpherical particle-
dc.subjectInhomogeneous deformation-
dc.subjectSize effect-
dc.subjectIntrinsic property-
dc.subjectExtrinsic factor-
dc.subject.ddc620.1-
dc.titleAnalysis on inhomogeneous deformation behavior of metallic glass particle-
dc.title.alternative비정질 금속 입자의 불균일 변형 거동 분석에 대한 연구-
dc.typeThesis-
dc.description.degreeMaster-
dc.contributor.affiliation공과대학 재료공학부-
dc.date.awarded2017-08-
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