Viscoelastic polymer solutions have been extensively utilized in inkjet printing for a variety of biomedical applications. The pinch-off of viscoelastic jets is a key step toward the generation of droplets in inkjet printing. This complex process is governed by the interplay of four stresses, including inertial stress, capillary stress, viscous stress, and elastic stress. Depending on polymer solution properties and process conditions, four types of pinch-off phenomenon were observed during inkjetting of viscoelastic alginate solutions. In this study, material properties of alginate solutions with different concentrations have been characterized, and three dimensionless numbers (Ohnesorge number Oh, Deborah number De, and Weber number We) have been proposed to analyze different pinch-off behaviors. The phase diagram in terms of these three dimensionless numbers has been constructed to classify the regimes for different pinch-off types during inkjetting of viscoelastic alginate solutions. It is found that (1) at low De and Oh, the capillary stress is mainly balanced by the inertial stress, resulting in front pinching. (2) At medium De and low Oh, with the increase of We, the pinch-off type may change from front pinching to hybrid pinching to exit pinching. (3) At low Oh and high De, the capillary stress is mainly balanced by the elastic stress, resulting in exit pinching. (4) At high Oh and De, the viscoelastic effect is dominant. With the increase of We, middle pinching turns to be exit pinching due to the increase in the initial ligament diameter near the forming droplet.
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September 2019
Research-Article
Phase Diagram of Pinch-off Behaviors During Drop-on-Demand Inkjetting of Alginate Solutions Available to Purchase
Changxue Xu,
Changxue Xu
1
Department of Industrial, Manufacturing, and Systems Engineering,
Lubbock, TX 79409
e-mail: [email protected]
Texas Tech University
,Lubbock, TX 79409
e-mail: [email protected]
1Corresponding author.
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Zhengyi Zhang,
Zhengyi Zhang
School of Naval Architecture and Ocean Engineering,
Wuhan 430074,
e-mail: [email protected]
Huazhong University of Science and Technology
,Wuhan 430074,
China
e-mail: [email protected]
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Yong Huang,
Yong Huang
Department of Mechanical and Aerospace Engineering,
Gainesville, FL 32611
e-mail: [email protected]
University of Florida
,Gainesville, FL 32611
e-mail: [email protected]
Search for other works by this author on:
Heqi Xu
Heqi Xu
Department of Industrial, Manufacturing, and Systems Engineering,
Lubbock, TX 79409
e-mail: [email protected]
Texas Tech University
,Lubbock, TX 79409
e-mail: [email protected]
Search for other works by this author on:
Changxue Xu
Department of Industrial, Manufacturing, and Systems Engineering,
Lubbock, TX 79409
e-mail: [email protected]
Texas Tech University
,Lubbock, TX 79409
e-mail: [email protected]
Zhengyi Zhang
School of Naval Architecture and Ocean Engineering,
Wuhan 430074,
e-mail: [email protected]
Huazhong University of Science and Technology
,Wuhan 430074,
China
e-mail: [email protected]
Yong Huang
Department of Mechanical and Aerospace Engineering,
Gainesville, FL 32611
e-mail: [email protected]
University of Florida
,Gainesville, FL 32611
e-mail: [email protected]
Heqi Xu
Department of Industrial, Manufacturing, and Systems Engineering,
Lubbock, TX 79409
e-mail: [email protected]
Texas Tech University
,Lubbock, TX 79409
e-mail: [email protected]
1Corresponding author.
Manuscript received May 13, 2019; final manuscript received July 10, 2019; published online July 26, 2019. Editor: Y. Lawrence Yao.
J. Manuf. Sci. Eng. Sep 2019, 141(9): 091013 (6 pages)
Published Online: July 26, 2019
Article history
Received:
May 13, 2019
Revision Received:
July 10, 2019
Accepted:
July 11, 2019
Citation
Xu, C., Zhang, Z., Huang, Y., and Xu, H. (July 26, 2019). "Phase Diagram of Pinch-off Behaviors During Drop-on-Demand Inkjetting of Alginate Solutions." ASME. J. Manuf. Sci. Eng. September 2019; 141(9): 091013. https://doi.org/10.1115/1.4044252
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