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Rheological characterization of complex fluids under dynamic helical squeeze flow : 동적 나선 유동 하에서 나타나는 복합 유체의 유변학적 특성에 대한 연구

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dc.contributor.advisor안경현-
dc.contributor.authorJae Hee Kim-
dc.date.accessioned2017-07-13T08:32:39Z-
dc.date.available2017-07-13T08:32:39Z-
dc.date.issued2012-08-
dc.identifier.other000000003153-
dc.identifier.urihttps://hdl.handle.net/10371/119643-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 화학생물공학부, 2012. 8. 안경현.-
dc.description.abstractThe measurements of rheological properties are often carried out in the linear or nonlinear regime under simple shear flow. Even though these rheometric protocols provide useful information on the rheological properties of complex fluids, they are not enough in the sense that the flow fields are still too simple compared to real processes. It is necessary to take the rheological measurements with more complex flow than the simple viscometric flow. The measurement of rheological properties even under a little bit more complex flow field is not straightforward and still remains one of the challenging subjects of rheometry. The objective of this thesis is to investigate the rheological behavior of complex fluids in both oscillatory squeeze flow (OSQ) and dynamic helical squeeze flow (DHSQ) and to provide a platform for the analysis of nonsymmetric stress signals.
In the oscillatory squeeze flow, the fluid experiences nonsymmetric stress history. This nonsymmetric stress response is a unique feature of oscillatory squeeze flow (OSQ), but has rarely been investigated. It was reported a robust framework for the analysis of nonlinear and nonsymmetric stress signals at larger strain amplitude under oscillatory squeeze flow, and the information obtainable from this approach is more rich and useful than that has been reported in the past. The normal stress was found to be nonsymmetric in both magnitude and shape at large strain amplitude, which leads to the appearance of even harmonics in Fourier transformation.
Dynamic helical squeeze flow of both oscillatory squeeze and oscillatory shear flow provides information for microstructural changes of material in superimposed flow field by means of mechanical spectroscopy. Although the realistic flow field is more complicated than dynamic helical squeeze flow, it is useful in understanding the flow behavior of complex fluids in well-defined complicated flow field, and enables to overcome the limitation of conventional rheometry, which has been confined mostly to simple shear flow. The stress analysis of both stress shape and Lissajous plot showed dramatic change as the strain amplitude increases. Both shear and normal stress show nonsymmetric characteristics which mean the different response during compression and extension. In dynamic helical squeeze flow, the onset of material nonlinearity in the shear stress was faster than simple shear flow. This work was undertaken to further establish the use of dynamic helical squeeze flow in order to measure the rheological properties of complex fluids under more realistic flow circumstance.
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dc.description.tableofcontents1. Introduction 1
1.1 Oscillatory shear (OS) flow 1
1.2 Oscillatory squeeze (OSQ) flow 2
1.3 Dynamic helical squeeze (DHSQ) flow 5
1.4 Outline of the thesis 8

2. Theory 11
2.1 Oscillatory shear stress 11
2.1.1 Kinetics in shear flow 11
2.1.2 SAOS (Small Amplitude Oscillatory shear) flow 12
2.1.3 LAOS (Large Amplitude Oscillatory shear) flow 13
2.2 Oscillatory normal stress 13
2.2.1 Kinetics in squeeze flow 13
2.2.2 SAOSQ (Small Amplitude Oscillatory Squeeze) flow 16
2.2.3 LAOSQ (Large Amplitude Oscillatory Squeeze) flow 17
2.3 Kinetics in DHSQ (dynamic helical squeeze) flow 18
2.4 Basic assumptions 19
2.5 Compressibility 21

3. Experiment and analysis 23
3.1 Measurements 23
3.1.1 Data acquisition 23
3.1.2 Shear and normal stresses 25
3.2 Modified fixture 25
3.3 Oscillatory squeeze (OSQ) flow 28
3.4 Dynamic helical squeeze (DHSQ) flow 31
3.5 Materials and sample preparation 34
3.6 Preliminary test 43
3.6.1 Oscillatory squeeze test 43
3.6.2 Dynamic helical squeeze test 46
3.7 Analysis of nonlinear stress 48
3.7.1 Stress shape analysis 48
3.7.2 Fourier transform (FT) 50
3.7.3 Polynomial regression 51
4. Nonlinear behavior of polymer solutions under oscillatory squeeze flow 52
4.1 Nonlinear response 52
4.2 Strain sweep test 54
4.3 Nonsymmetric normal stress 57
4.4 Lissajous plot 66
4.5 Trace of pathway 68
4.6 Lissajous plot with squared strain 72
4.7 Fourier transform (FT) 75
4.8 Strain hardening behavior 81

5. Model prediction of normal stress under oscillatory squeeze flow 92
5.1 Constitutive equations 92
5.2 Model parameters 94
5.3 Stress curve and Lissajous plot 97
5.4 Fourier transform (FT) 111
5.5 Multi-mode prediction 120

6. Nonlinear behavior of complex fluids under dynamic helical squeeze flow 125
6.1 Nonlinear response in DHSQ 125
6.2 Normal stress curve and Lissajous plot 128
6.3 Shear stress curve and Lissajous plot 139
6.4 Superposition effect 151
6.5 Model prediction 157
6.6 Non-colloidal hard sphere 164

7. Conclusions and outlook 179

Nomenclature 183

Bibliography 186

국문 초록 196
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dc.formatapplication/pdf-
dc.format.extent15854478 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectdynamic helical squeeze (DHSQ) flow-
dc.subjectoscillatory squeeze (OSQ) flow-
dc.subjectoscillatory shear (OS) flow-
dc.subjectcomplex fluid-
dc.subjectnonsymmetric stress curve-
dc.subjectLissajous plot-
dc.subjectFourier transform (FT)-
dc.subject.ddc660-
dc.titleRheological characterization of complex fluids under dynamic helical squeeze flow-
dc.title.alternative동적 나선 유동 하에서 나타나는 복합 유체의 유변학적 특성에 대한 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthor김재희-
dc.description.degreeDoctor-
dc.citation.pagesxxv, 197-
dc.contributor.affiliation공과대학 화학생물공학부-
dc.date.awarded2012-08-
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