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      정상전단유동의 급개시에 따른 폴리에틸렌옥사이드 수용액의 응력성장거동 = Stress Growth Behavior of Aqueous Poly(ethylene oxide) Solutions at Start-up of Steady Shear Flow

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      https://www.riss.kr/link?id=A101372827

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      다국어 초록 (Multilingual Abstract)

      The objective of this study is to systematically elucidate the transient rheological behavior of viscoelastic polymer solutions at start-up of steady shear flow. Using a strain-controlled rheometer [Advanced Rheometric Expansion System (ARES)], the stress overshoot behavior of concentrated aqueous poly(ethylene oxide) [PEO] solutions has been thoroughly investigated with applying a number of shear rates to these polymer solutions. In this article, the typical stress growth behavior of aqueous PEO solutions was firstly presented on the basis of experimentally obtained data and nextly the effects of shear rate, molecular weight, and concentration on this behavior were discussed in depth. In order to theoretically predict the stress growth behavior, the Wagner constitutive equation (a time-strain separable constitutive equation) and the Bird-Leider model were employed and the applicability of these models was examined in detail. The main findings obtained from this study can be summarized as follows: (1) At the inception of low shear rates, the stress overshoot behavior is not observed but the shear stress progressively increases with time until the steady state stress value is reached. As the shear rate is increased, however, aqueous PEO solutions exhibit a pronounced stress overshoot followed by a stress decay to reach the steady state flow condition. (2) The maximum shear stress increases linearly with an increase in shear rate in a double logarithmic scale and becomes larger with an increase in concentration. (3) The time at which the maximum shear stress occurs, $t_{max}$, shows a linear relationship with the inverse of shear rate in a double logarithmic scale, regardless of molecular weight and concentration. (4) When the Wagner constitutive equation is used, the Wagner damping function exhibits superior performance to the Soskey-Winter damping function in predicting the transient stress growth behavior of aqueous PEO solutions. (5) The Bird-Leider empirical model can be successfully used for predicting the transient stress growth behavior of aqueous PEO solutions. This model is especially effective for expressing the maximum shear stress as well as the time at which this maximum stress is observed.
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      The objective of this study is to systematically elucidate the transient rheological behavior of viscoelastic polymer solutions at start-up of steady shear flow. Using a strain-controlled rheometer [Advanced Rheometric Expansion System (ARES)], the st...

      The objective of this study is to systematically elucidate the transient rheological behavior of viscoelastic polymer solutions at start-up of steady shear flow. Using a strain-controlled rheometer [Advanced Rheometric Expansion System (ARES)], the stress overshoot behavior of concentrated aqueous poly(ethylene oxide) [PEO] solutions has been thoroughly investigated with applying a number of shear rates to these polymer solutions. In this article, the typical stress growth behavior of aqueous PEO solutions was firstly presented on the basis of experimentally obtained data and nextly the effects of shear rate, molecular weight, and concentration on this behavior were discussed in depth. In order to theoretically predict the stress growth behavior, the Wagner constitutive equation (a time-strain separable constitutive equation) and the Bird-Leider model were employed and the applicability of these models was examined in detail. The main findings obtained from this study can be summarized as follows: (1) At the inception of low shear rates, the stress overshoot behavior is not observed but the shear stress progressively increases with time until the steady state stress value is reached. As the shear rate is increased, however, aqueous PEO solutions exhibit a pronounced stress overshoot followed by a stress decay to reach the steady state flow condition. (2) The maximum shear stress increases linearly with an increase in shear rate in a double logarithmic scale and becomes larger with an increase in concentration. (3) The time at which the maximum shear stress occurs, $t_{max}$, shows a linear relationship with the inverse of shear rate in a double logarithmic scale, regardless of molecular weight and concentration. (4) When the Wagner constitutive equation is used, the Wagner damping function exhibits superior performance to the Soskey-Winter damping function in predicting the transient stress growth behavior of aqueous PEO solutions. (5) The Bird-Leider empirical model can be successfully used for predicting the transient stress growth behavior of aqueous PEO solutions. This model is especially effective for expressing the maximum shear stress as well as the time at which this maximum stress is observed.

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      참고문헌 (Reference)

      1 송기원, "폴리에틸렌옥사이드 수용액의 유변학적 특성 평가(V) -크리프 및 크리프 회복 거동-" 한국섬유공학회 39 (39): 660-670, 2002

      2 J. D. Ferry, "Viscoelastic Properties of Polymers" John Wiley & Sons 1980

      3 K. Krishnan, "Transient Rheology of a Polymeric Bicontinuous Microemulsion" 18 : 9676-9686, 2002

      4 D. S. Soong, "Time Dependent Nonlinear Viscoelastic Behavior of Polymer Fluids: A Review of Current Understanding" 54 : 641-661, 1981

      5 N. W. Tschoegl, "The Phenomenological Theory of Linear Viscoelastic Behavior" Springer-Verlag 1989

      6 A. K. Tezel, "The Nonlinear Response of Entangled Star Polymers to Start-Up of Shear Flow" 53 : 1193-1241, 2009

      7 W. Letwimolnun, "Stress Overshoots of Organoclay Nanocomposites in Transient Shear Flow" 141 : 167-179, 2007

      8 P. Attane, "Steady and Transient Shear Flows of Polystyrene Solutions I : Concentration and Molecular Weight Dependence of Non-Dimensional Viscometric Functions" 18 : 295-317, 1985

      9 P. J. Leider, "Squeezing Flow between Parallel Disks. II. Experimental Results" 13 : 342-346, 1974

      10 P. J. Leider, "Squeezing Flow between Parallel Disks. I. Theoretical Analysis" 13 : 336-341, 1974

      1 송기원, "폴리에틸렌옥사이드 수용액의 유변학적 특성 평가(V) -크리프 및 크리프 회복 거동-" 한국섬유공학회 39 (39): 660-670, 2002

      2 J. D. Ferry, "Viscoelastic Properties of Polymers" John Wiley & Sons 1980

      3 K. Krishnan, "Transient Rheology of a Polymeric Bicontinuous Microemulsion" 18 : 9676-9686, 2002

      4 D. S. Soong, "Time Dependent Nonlinear Viscoelastic Behavior of Polymer Fluids: A Review of Current Understanding" 54 : 641-661, 1981

      5 N. W. Tschoegl, "The Phenomenological Theory of Linear Viscoelastic Behavior" Springer-Verlag 1989

      6 A. K. Tezel, "The Nonlinear Response of Entangled Star Polymers to Start-Up of Shear Flow" 53 : 1193-1241, 2009

      7 W. Letwimolnun, "Stress Overshoots of Organoclay Nanocomposites in Transient Shear Flow" 141 : 167-179, 2007

      8 P. Attane, "Steady and Transient Shear Flows of Polystyrene Solutions I : Concentration and Molecular Weight Dependence of Non-Dimensional Viscometric Functions" 18 : 295-317, 1985

      9 P. J. Leider, "Squeezing Flow between Parallel Disks. II. Experimental Results" 13 : 342-346, 1974

      10 P. J. Leider, "Squeezing Flow between Parallel Disks. I. Theoretical Analysis" 13 : 336-341, 1974

      11 P. J. Carreau, "Rheology of Polymeric Systems : Principles and Applications" Carl Hanser Verlag 1997

      12 M. Ortiz, "Rheology of Concentrated Poly(Ethylene Oxide) Solutions" 38 : 519-539, 1994

      13 B. Briscoe, "Rheological Study of Poly(Ethylene Oxide)in Aqueous Salt Solutions at High Temperature and Pressure" 29 : 6208-6211, 1996

      14 K. W. Song, "Rheological Characterization of Aqueous Poly(Ethylene Oxide)Solutions(I) : Limits of Linear Viscoelastic Response and Nonlinear Behavior with Large Amplitude Oscillatory Shear Deformation" 33 : 1083-1093, 1996

      15 K. W. Song, "Rheological Characterization of Aqueous Poly(Ethylene Oxide) Solutions (IV) : Nonlinear Stress Relaxation in Single-Step Large Shear Deformations" 36 : 383-395, 1999

      16 K. W. Song, "Rheological Characterization of Aqueous Poly(Ethylene Oxide) Solutions (III) : Determination of Discrete Relaxation Spectrum and Relaxation Modulus from Linear Viscoelastic Functions" 35 : 550-561, 1998

      17 K. W. Song, "Rheological Characterization of Aqueous Poly(Ethylene Oxide) Solutions (II) : Comparison of Steady Flow Viscosity with Dynamic and Complex Viscosities" 35 : 480-489, 1998

      18 F. E. Bailey, Jr, "Poly(Ethylene Oxide)" Academic Press 1976

      19 M. T. Islam, "Nonlinear Rheology of Highly Entangled Polymer Solutions in Start-Up and Steady Shear Flow" 39 : 2275-2289, 2001

      20 S. Q. Wang, "New Theoretical Considerations in Polymer Rheology : Elastic Breakdown of Chain Entanglement Network" 127 : 64903-64916, 2007

      21 J. M. Dealy, "Melt Rheology and Its Role in Plastics Processing : Theory and Applications" Van Nostrand Reinhold 1990

      22 P. R. Soskey, "Large Step Shear Strain Experiments with Parallel Disk Rotational Rheometers" 28 : 625-645, 1984

      23 H. Fromm, "Laminare Strmung Newtonscher und Maxwellscher Flssigkeiten" 25 : 146-150, 1947

      24 H. Fromm, "Laminare Strmung Newtonscher und Maxwellscher Flssigkeiten" 28 : 43-54, 1948

      25 F. Beekmans, "Influence of the Flow History on Stress Growth and Structure Changes in the Thermotropic Liquid Crystalline Polymer Vectra B950" 36 : 82-95, 1997

      26 V. Gauri, "Extensional Rheology of Concentrated Poly(Ethylene Oxide) Solutions" 36 : 555-567, 1997

      27 R. I. Tanner, "Engineering Rheology" Oxford University Press 2000

      28 A. S. Lodge, "Elastic Liquids" Academic Press 1964

      29 W. M. Kulicke, "Drag Reduction Phenomenon with Special Emphasis on Homogeneous Polymer Solutions" 89 : 1-68, 1989

      30 R. G. Larson, "Constitutive Relationships for Polymeric Materials with Power-Law Distributions of Relaxation Times" 24 : 327-334, 1985

      31 M. H. Wagner, "Analysis of Time-Dependent Non-Linear Stress-Growth Data for Shear and Elongational Flow of a Low-Density Branched Polyethylene Melt" 15 : 136-142, 1976

      32 M. S. Green, "A New Approach to the Theory of Relaxing Polymeric Media" 14 : 80-92, 1945

      33 A. S. Lodge, "A Network Theory of Flow Birefringence and Stress in Concentrated Polymer Solutions" 52 : 120-130, 1956

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2022 평가예정 계속평가 신청대상 (등재유지)
      2017-01-01 평가 우수등재학술지 선정 (계속평가)
      2013-01-01 평가 등재 1차 FAIL (등재유지) KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2008-09-03 학술지명변경 외국어명 : The Korean Fiber Soceity -> Textile Science and Engineering KCI등재
      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2006-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2005-03-05 학술지명변경 외국어명 : The Korean Fiber Soceity -> Textile Science and Engineering KCI등재
      2003-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2002-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      1998-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.13 0.13 0.15
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
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