Spreading of inkjet droplet of non-Newtonian fluid on solid surface with controlled contact angle at low Weber and Reynolds numbers

被引:68
作者
Son, Yangsoo [1 ]
Kim, Chongyoup [1 ]
机构
[1] Korea Univ, Dept Chem & Biol Engn, Seoul 136713, South Korea
关键词
Wettability; Maximum spreading factor; Contact line motion; Polymer relaxation time; IMPACT; DEPOSITION; DYNAMICS; TECHNOLOGY; POLYMERS; TENSION;
D O I
10.1016/j.jnnfm.2009.05.009
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The dynamics of inkjet droplet of non-Newtonian fluid on glass substrates was investigated experimentally and compared with that of Newtonian fluid. The non-Newtonian fluids used here were 100ppm solutions of polyethylene oxide (300k, 600k and 900k) dissolved in the 1: 1 mixture of water and glycerin. Weber number (We) was 2-35 and Ohnesorge number was fixed at 0.057 +/- 0.003. The wettability of solid substrate was also varied. The diameter of inkjet droplets in the present study was about 50 mu m and was much smaller than the size of the previous studies on drop impact. Due to the development of a thin and long thread at the rear of the main drop the jetting window of polymer solution was much narrower than that of Newtonian fluid, and hence the experimental range of Weber number was restricted. The impact scenarios of non-Newtonian inkjet droplets were found to be qualitatively different from those of Newtonian droplets during the receding phase while they were almost the same as the Newtonian fluid case during the kinematic phase. The spreading diameter at the equilibrium was well correlated with the modified Weber number (We'=We/(1 - cos theta(eq))) as in the case of Newtonian fluid, where theta(eq) is the equilibrium contact angle. The similarity or disparity between the Newtonian and non-Newtonian cases was discussed considering the conformation of polymer chains during each stage of drop deformation. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:78 / 87
页数:10
相关论文
共 35 条
[1]   An energy balance approach of the dynamics of drop impact on a solid surface [J].
Attane, P. ;
Girard, F. ;
Morin, V. .
PHYSICS OF FLUIDS, 2007, 19 (01)
[2]   Dynamics of non-newtonian droplets [J].
Bartolo, Denis ;
Boudaoud, Arezki ;
Narcy, Gregoire ;
Bonn, Daniel .
PHYSICAL REVIEW LETTERS, 2007, 99 (17)
[3]   Controlling droplet deposition with polymer additives [J].
Bergeron, V ;
Bonn, D ;
Martin, JY ;
Vovelle, L .
NATURE, 2000, 405 (6788) :772-775
[4]   Inkjet deposition of alkanethiolate monolayers and DNA oligonucleotides on gold: Evaluation of spot uniformity by wet etching [J].
Bietsch, A ;
Hegner, M ;
Lang, HP ;
Gerber, C .
LANGMUIR, 2004, 20 (12) :5119-5122
[5]   ON THE COLLISION OF A DROPLET WITH A SOLID-SURFACE [J].
CHANDRA, S ;
AVEDISIAN, CT .
PROCEEDINGS OF THE ROYAL SOCIETY-MATHEMATICAL AND PHYSICAL SCIENCES, 1991, 432 (1884) :13-41
[6]  
Chang SC, 1999, ADV MATER, V11, P734, DOI 10.1002/(SICI)1521-4095(199906)11:9<734::AID-ADMA734>3.0.CO
[7]  
2-D
[8]   Kinetic aspects of the coil-stretch transition of polymer chains in dilute solution under extensional flow [J].
Cifre, JGH ;
de la Torre, JG .
JOURNAL OF CHEMICAL PHYSICS, 2001, 115 (20) :9578-9584
[9]   Drop formation dynamics of constant low-viscosity, elastic fluids [J].
Cooper-White, JJ ;
Fagan, JE ;
Tirtaatmadja, V ;
Lester, DR ;
Boger, DV .
JOURNAL OF NON-NEWTONIAN FLUID MECHANICS, 2002, 106 (01) :29-59
[10]   The role of dynamic surface tension and elasticity on the dynamics of drop impact [J].
Crooks, R ;
Cooper-Whitez, J ;
Boger, DV .
CHEMICAL ENGINEERING SCIENCE, 2001, 56 (19) :5575-5592