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Static and Dynamic Modeling of Piezoelectric Drivers in Drop on Demand Printing Abed M. Khaskia Mallett Technology.

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Presentation on theme: "Static and Dynamic Modeling of Piezoelectric Drivers in Drop on Demand Printing Abed M. Khaskia Mallett Technology."— Presentation transcript:

1 Static and Dynamic Modeling of Piezoelectric Drivers in Drop on Demand Printing Abed M. Khaskia Mallett Technology

2 Contributors Georgios Karles, Henry Dante and M. Subbiah Philip Morris, USA and David Power Mallett Technology, Inc.

3 Overview zIntroduction zPurpose zDevice Analysis zDevices Modeled zFinite Element Analyses zResults zConclusions

4 Introduction zInk jet printers have evolved in the SOHO market with high resolution and image quality zTwo technologies are used, bubble jet and piezoelectric zOur focus is on piezoelectric technology for industrial applications that did not advance as the SOHO market zIndustrial applications require higher printing speed, defect free printing for longer times and not very high resolution zInk variability is important in order to meet regulations without compromising the performance required

5 Purpose zUse FEM to study the effect of ink variables and print speed on print quality zObtain deformations, modes of vibrations and the effect of ink damping z Couple structural to fluid behavior in order to predict drop formation

6 Device Analysis zPrint head performance is affected by device geometry, all material properties including the ink’s and by electric pulse applied zTraditionally devices were analyzed using lumped mechanical models zThere were also few finite element based analyses

7 Devices Modeled Cylindrical tube and rectangular print head

8 Finite Element Analyses Cylindrical Tube z3-D quarter symmetry model. Coupled Field elements for piezoelectric PZT-4. 3-D Solid for Glass and Fluid element for ink using Super-element z Analysis performed are static to validate material behavior. Modal to capture model shapes and frequencies in open and closed circuit. Transient dynamics under a square pulse that allow capturing tube true behavior

9 Finite Element Analyses Print Head z3-D full model. Coupled Field elements for piezoelectric PZT- 4. 3-D Solid for substrate and Fluid element for ink using Super- element z Analysis performed are static to validate material behavior

10 Cylindrical Tube Results Static under 80 volt. Max def of.02 micron 1 st modes for closed and open circuit with frequency of 15Khz

11 Cylindrical Tube Results Transient analysis results under 80 volt 40 microsecond square pulse No ink no damp Ink damp No ink damp Ink no damp

12 Print Head Results Static def under 80 volt. Max def is 0.22 micron

13 Conclusions zFEM can be used to study the dynamic response of piezoelectric ink jet devices zModeling illustrates the effect of materials, device geometry and ink variables on final drop formation zInk damping, mass and bulk modulus affect device response z Piezoelectric material properties should be validated in terms of values and orientation zFuture work will incorporate the ink’s surface tension in order to predict drop formation. This requires better structural – fluid coupling

14 Conclusions zCurrent work incorporates FSI between piezoelectric model and ink model

15 Conclusions zCurrent work incorporates FSI between piezoelectric model and ink model – drop formation


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