The acoustics of the Additive Manufacturing via Microarray Deposition (AMMD) system based on a ultrasonic atomizer is investigated for printing high viscosity fluids for 3D inkjet manufacturing applications. The ultrasonic atomizer incorporates a piezoelectric transducer, a material reservoir, and a silicon micromachined array of acoustic horn structures as ejection nozzles. When driven at the resonance frequencies of the fluid cavity, the nozzle geometry focuses the acoustic waves resulting in a locally increased pressure gradient at the nozzle apex. Previously, AMMD has demonstrated successful ejection of fluids with viscosity as high as 3000 mN-s/m2, overcoming the viscosity limitations traditionally associated with piezoelectric ...
Ultrasonic processing of liquids is used in many engineering fields, from sonochemistry to material ...
This article reviews acoustic microfluidics: the use of acoustic fields, principally ultrasonics, fo...
Fluid manipulations at the microscale and beyond are powerfully enabled through the use of 10-1,000-...
The acoustics of the Additive Manufacturing via Microarray Deposition (AMMD) system based on a ultr...
Additive Manufacturing via Microarray Deposition (AMMD) expands the allowable range of physical pro...
The focus of this dissertation is the development of a fundamental understanding of the acoustics an...
A new printing technology based on ultrasonic actuation (~1 MHz) is presented that has the potentia...
Additive manufacturing processes, which utilize selective deposition of material rather than traditi...
A random distribution of microparticles/cells increases the chance of deposition on the inner surfac...
Ultrasonic waves generated by piezoelectric devices produce forces on fluids and particles that can ...
Microfluidic technology is an important and active area of research. The lab-on-a-chip system has dr...
The study investigates the effect of changing various input parameters on the pressure responses at ...
In this study, the onset amplitude of the initial capillary surface wave for ultrasonic atomization ...
Author name used in this publication: K. W. kwok2009-2010 > Academic research: refereed > Publicatio...
The piezoelectric micro-jet, which can achieve the drop-on-demand requirement, is based on ink-jet t...
Ultrasonic processing of liquids is used in many engineering fields, from sonochemistry to material ...
This article reviews acoustic microfluidics: the use of acoustic fields, principally ultrasonics, fo...
Fluid manipulations at the microscale and beyond are powerfully enabled through the use of 10-1,000-...
The acoustics of the Additive Manufacturing via Microarray Deposition (AMMD) system based on a ultr...
Additive Manufacturing via Microarray Deposition (AMMD) expands the allowable range of physical pro...
The focus of this dissertation is the development of a fundamental understanding of the acoustics an...
A new printing technology based on ultrasonic actuation (~1 MHz) is presented that has the potentia...
Additive manufacturing processes, which utilize selective deposition of material rather than traditi...
A random distribution of microparticles/cells increases the chance of deposition on the inner surfac...
Ultrasonic waves generated by piezoelectric devices produce forces on fluids and particles that can ...
Microfluidic technology is an important and active area of research. The lab-on-a-chip system has dr...
The study investigates the effect of changing various input parameters on the pressure responses at ...
In this study, the onset amplitude of the initial capillary surface wave for ultrasonic atomization ...
Author name used in this publication: K. W. kwok2009-2010 > Academic research: refereed > Publicatio...
The piezoelectric micro-jet, which can achieve the drop-on-demand requirement, is based on ink-jet t...
Ultrasonic processing of liquids is used in many engineering fields, from sonochemistry to material ...
This article reviews acoustic microfluidics: the use of acoustic fields, principally ultrasonics, fo...
Fluid manipulations at the microscale and beyond are powerfully enabled through the use of 10-1,000-...