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Piezoelectric Drop-on-Demand Inkjet
Ed

Creado por

Ed

30. agosto 2026FI
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Piezoelectric Drop-on-Demand Inkjet

A continuous inkjet is always firing and throws away the drops it does not want. It buys reliability with a gutter, a pump, a filter and a solvent that evaporates. Drop-on-demand asks the opposite question: can a nozzle sit still and produce exactly one drop when told to? Steven Zoltan at Clevite and Kyser and Sears at Silonics both answered yes in 1972, with the same component in two arrangements. Zoltan wrapped a tube of piezoelectric ceramic around a glass capillary so it squeezed inward; Kyser and Sears put a piezo diaphragm on the wall of a small chamber so it flexed. Either way, applying a voltage changes the chamber's volume slightly and a drop leaves the nozzle. Slightly is the word. Work backwards from a thirty-picolitre drop and a one-square-millimetre diaphragm has to move about ninety nanometres - which at four hundred picometres per volt is a couple of hundred volts - which is what the 1972 machines ran on - or a tenth of that once you bond the ceramic to a passive plate so it curls instead of stretching. The whole drive voltage of every piezo head ever built falls out of that one sum. What is not obvious is that the chamber rings. A pressure wave runs to the far end and back in a few microseconds, so if the next pulse arrives while the ink is still sloshing the drop leaves at the wrong speed and the wrong size. The drive is therefore never a pulse - it is a pull, a push and a damping segment, each timed against that acoustic round trip. Tuning those three numbers is most of what a print head manufacturer actually sells. And because nothing in the chamber gets hot, the ink only has to flow. UV-curable monomer, solvent, hot wax, conductive silver, live cells in buffer - all of it goes through a piezo head, and none of it through a thermal one.
Avanzado
4 hours

Instrucciones

1

Make a squeeze-mode chamber

Draw a glass capillary to a 60 micrometre tip over a small flame and break it square. Slide a piezo tube - or wrap a disc element - tightly around the barrel and bond it with a thin film of epoxy so the ceramic really grips the glass. Back-fill with dyed water and glycerol through a syringe until a meniscus sits flat in the tip. No bubbles, or nothing will eject.

Materiales para este paso:

Glass Tubing KitGlass Tubing Kit1 pieza
Piezo ElementPiezo Element1 pieza
Two-Part Epoxy Adhesive (Quick Set)Two-Part Epoxy Adhesive (Quick Set)1 tube
Glycerol (99%)Glycerol (99%)20 ml
Food ColouringFood Colouring5 ml

Herramientas necesarias:

Syringe (Laboratory)Syringe (Laboratory)
Bunsen BurnerBunsen Burner
Hand Lens (10x)Hand Lens (10x)
Digital Microscope (USB, 250x)Digital Microscope (USB, 250x)
2

Shape the waveform until the satellites stop

Drive the element from the arbitrary generator through the amplifier, starting with a single 100 V push a few microseconds long. Catch the drops on a slide and look at them. Now add a pull before the push and a small reverse pulse after it, and sweep each segment length through a few microseconds. There is a setting where the trailing satellite drops merge back into the main drop. That setting is the chamber's acoustic round trip, measured.

Materiales para este paso:

Glass SlideGlass Slide10 piezas

Herramientas necesarias:

Function Generator (10MHz)Function Generator (10MHz)
High-Voltage Amplifier (Bench)High-Voltage Amplifier (Bench)
Digital OscilloscopeDigital Oscilloscope
Digital Microscope (USB, 250x)Digital Microscope (USB, 250x)
Safety GogglesSafety Goggles
3

Drop volume to drive volts, ringing, and three ejectors

Loading Jupyter Notebook...

Herramientas necesarias:

Desktop ComputerDesktop Computer
4

Compendium: four modes, and the nozzle plate

The 1972 pair became four modes, all the same trick in different geometry. SQUEEZE is Zoltan's tube round a capillary, easy to build one of and impossible to build a thousand of side by side. BEND is Kyser and Sears' diaphragm, and it is what nearly every desktop piezo head uses because it photolithographs into a silicon plate. PUSH drives a rod into the chamber end-on. SHEAR uses poled ceramic walls between adjacent chambers that rock sideways, so the wall between two nozzles does the work for both - the densest arrangement, and the one industrial heads use. The nozzle plate is the part nobody expects to matter. Ink must not wet the outside face, or a film creeps across and pulls the next drops off-axis, so the plate carries a fluoropolymer coating and a wiper cleans it between passes. Everything that goes wrong with a working head - drops landing left of where they should, a nozzle that fires weakly, a sudden band across the page - is usually the last micrometre of that face rather than anything happening inside the chamber.

Herramientas necesarias:

Notebook and PencilNotebook and Pencil

Materiales

6

Herramientas requeridas

10
Total estimado
MX$38.00

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