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국회도서관 홈으로 정보검색 소장정보 검색

권호기사

권호기사 목록 테이블로 기사명, 저자명, 페이지, 원문, 기사목차 순으로 되어있습니다.
기사명 저자명 페이지 원문 목차
Effect of solution pH on the microstructural and rheological properties in boehmite suspensions Gi Wook Lee, Seong Hwan Kim, Da Young Lee, Kwan-Young Lee, Byoungjin Chun, Hyun Wook Jung p. 1-10
Plate gap effect on vicosity and rheological model of shear thickening fluid Shiwei Hou, Zhanwen Lai, Minghai Wei p. 11-18
Dispersion of unfractionated microalgae in various polymers and its influence on rheological and mechanical properties Jin Hoon Yang, Jin-Ho Yun, Hee-Sik Kim, Joung Sook Hong, Kyung Hyun Ahn p. 19-29
Rheological characterization of cellulose nanocrystal-laden self-healable polyvinyl alcohol hydrogels Hyeonjeong Kim, Hyo Jeong Kim, Youngeun Lee, Jin Kyung Kim, Youngho Eom p. 31-38
Thermoplastic resin transfer molding of carbon fiber reinforced polyamide 6 composite with the improved processability using zeolite particle Jae Hyo Lee, Seung Mo Son, Jung Jae Yoo, Sang Woo Kim, Jin Woo Yi, Dong Gi Seong p. 39-45
Comparative study of two-relaxation time lattice Boltzmann and finite element methods for a planar 4:1 contraction flow : a Newtonian fluid at finite Reynolds numbers Young Ki Lee p. 47-54

참고문헌 (29건) : 자료제공( 네이버학술정보 )

참고문헌 목록에 대한 테이블로 번호, 참고문헌, 국회도서관 소장유무로 구성되어 있습니다.
번호 참고문헌 국회도서관 소장유무
1 Molaeimanesh G, Akbari MH (2014) Water droplet dynamic behavior during removal from a proton exchange membrane fuel cell gas diffusion layer by Lattice-Boltzmann method. Korean J Chem Eng 31(4):598–610 미소장
2 Molaeimanesh GR, Davarani MHS (2016) A pore-scale model for microfibrous ammonia cracking microreactors via lattice Boltzmann method. Korean J Chem Eng 33(4):1211–1219 미소장
3 Lee YK et al (2018) Deposition of sticky spheres in channel flow: Modeling of surface coverage evolution requires accurate sphere-sphere collision hydrodynamics. J Colloid Interface Sci 530:383–393 미소장
4 Montessori A et al (2019) Jetting to dripping transition: critical aspect ratio in step emulsifiers. Phys Fluids 31(2):021703 미소장
5 Kang SK, Hassan YA (2013) The effect of lattice models within the lattice Boltzmann method in the simulation of wall-bounded turbulent flows. J Comput Phys 232(1):100–117 미소장
6 Suga K et al (2015) A D3Q27 multiple-relaxation-time lattice Boltzmann method for turbulent flows. Comput Math Appl 69(6):518–529 미소장
7 Kromkamp J et al (2006) Lattice Boltzmann simulation of 2D and 3D non-Brownian suspensions in Couette flow. Chem Eng Sci 61(2):858–873 미소장
8 Krüger T (2016) Effect of tube diameter and capillary number on platelet margination and near-wall dynamics. Rheol Acta 55(6):511–526 미소장
9 Lee YK, Ahn KH (2017) A novel lattice Boltzmann method for the dynamics of rigid particles suspended in a viscoelastic medium. J Nonnewton Fluid Mech 244:75–84 미소장
10 Lee YK, Ahn KH, Lee SJ (2017) Time-dependent viscoelastic properties of Oldroyd-B fluid studied by advection-diffusion lattice Boltzmann method. Korea-Australia Rheol J 29(2):137–146 미소장
11 Lee YK, Ahn KH (2020) Particle dynamics at fluid interfaces studied by the color gradient lattice Boltzmann method coupled with the smoothed profile method. Phys Rev E 101(5):053302 미소장
12 Lee YK, Hyun K, Ahn KH (2020) The first normal stress difference of non-Brownian hard-sphere suspensions in the oscillatory shear flow near the liquid and crystal coexistence region. Soft Matter 16(43):9864–9875 미소장
13 Al-Jahmany YY, Brenner G, Brunn PO (2004) Comparative study of lattice-Boltzmann and finite volume methods for the simulation of laminar flow through a 4: 1 planar contraction. Int J Numer Meth Fluids 46(9):903–920 미소장
14 Malaspinas O, Courbebaisse G, Deville M (2007) Simulation of generalized Newtonian fluids with the lattice Boltzmann method. Int J Mod Phys C 18(12):1939–1949 미소장
15 Su J et al (2013) Lattice Boltzmann method coupled with the Oldroyd-B constitutive model for a viscoelastic fluid. Phys Rev E 88(5):053304 미소장
16 Ginzburg I (2005) Equilibrium-type and link-type lattice Boltzmann models for generic advection and anisotropic-dispersion equation. Adv Water Resour 28(11):1171–1195 미소장
17 Ginzburg I, Verhaeghe F, d’Humieres D (2008) Two-relaxation-time lattice Boltzmann scheme: about parametrization, velocity, pressure and mixed boundary conditions. Commun Comput Phys 3(2):427–478 미소장
18 d’Humières D, Ginzburg I (2009) Viscosity independent numerical errors for Lattice Boltzmann models: from recurrence equations to “magic” collision numbers. Comput Math Appl 58(5):823–840 미소장
19 Qian Y-H, d’Humières D, Lallemand P (1992) Lattice BGK models for Navier-Stokes equation. EPL (Europhysics Letters) 17(6):479 미소장
20 He X, Luo L-S (1997) Lattice Boltzmann model for the incompressible Navier-Stokes equation. J Stat Phys 88(3–4):927–944 미소장
21 Succi S (2001) The lattice Boltzmann equation: for fluid dynamics and beyond. Oxford University Press, Oxford, UK 미소장
22 Aidun CK, Clausen JR (2010) Lattice-Boltzmann method for complex flows. Annu Rev Fluid Mech 42:439–472 미소장
23 Lallemand P, Luo L-S (2000) Theory of the lattice Boltzmann method: dispersion, dissipation, isotropy, Galilean invariance, and stability. Phys Rev E 61(6):6546 미소장
24 Humieres D (2002) Multiple–relaxation–time lattice Boltzmann models in three dimensions. Philosophical transactions of the royal society of London. Series A Mathemat Phy Eng Sci. 360(1792):437–451 미소장
25 Lallemand P, Luo L-S (2003) Theory of the lattice Boltzmann method: acoustic and thermal properties in two and three dimensions. Phys Rev E 68(3):036706 미소장
26 Luo L-S et al (2011) Numerics of the lattice Boltzmann method: effects of collision models on the lattice Boltzmann simulations. Phys Rev E 83(5):056710 미소장
27 Zou Q, He X (1997) On pressure and velocity boundary conditions for the lattice Boltzmann BGK model. Phys Fluids 9(6):1591–1598 미소장
28 Ladd AJ (1994) Numerical simulations of particulate suspensions via a discretized Boltzmann equation. Part 1. Theoretical foundation. J Fluid Mech 271:285–309 미소장
29 Nguyen N-Q, Ladd A (2002) Lubrication corrections for lattice-Boltzmann simulations of particle suspensions. Phys Rev E 66(4):046708 미소장