The present invention relates to an industrial printhead.
Piezoactuated needles are known to be useful for the deposition of fluids based on the mechanism described in PCT/HU1999/000015. However, the industrial application of the technology requires that a number of operational characteristics of the system are improved to ensure consistent operation and achieve the printing of fluids with high viscosity and/or high solids loading of small or large pigment particles, required for many applications.
The printhead design described in PCT/HU1999/000015 had several limitations due to its small construction. The limitations include operating power, and due to the small dissipating surface and small piezo element, which may be ‘depolarized’ or stop mechanically functioning if overloaded.
In this patent we describe a printhead design that overcomes the industrial limitations of the invention previously described including the following main larger transducer parts and increased vibrating mass, higher input power and the dimensions and quantities of each component material have been modified to increase flow rate down the printing nozzle (including mass resonator, piezo exciter and wave concentrator as shown in
We describe the invention of an industrial printhead configuration that overcomes the limitations of the configuration described in PCT/HU1999/000015 to generate a novel and industrially applicable embodiment of piezo actuated flow channel deposition principle, with increased capability fluids with high viscosity and/or high solids loading of small or large pigment particles
An aspect of the invention provides an industrial printhead comprising a flow channel enclosed in a chamber, wherein the flow channel has at least one fluid inlet and at least one fluid outlet, wherein the flow channel is resonated, in use, by a vibration distributor comprising a mass resonator, piezoelectric exciter and wave concentrator arranged in an axial configuration.
Advantageously, industrial printheads according to the above aspect of the invention can distribute viscous fluids having a viscosity between 100-1000 cP and/or a particle size between 20-500 micron plus with different anisotropy.
In one embodiment, the mass resonator has a greater mass density than the wave concentrator.
Advantageously, such a construction provides a higher vibrating amplitude through the wave concentrator.
In one embodiment, the wave concentrator is conical in shape.
A conical shaped wave concentrator provides a focused resonance to the flow channel.
In one embodiment, the at least one fluid outlet comprises two or more fluid outlets. In another embodiment each of the two or more fluid outlets has a flow direction perpendicular to the flow direction of the fluid channel.
Configuration of piezoactuated flow channel depositors to form an array that can be used industrially as a reliable digital printhead facilitates printing of fluids with high viscosity and/or high solids loading of small or large pigment particles
An aspect of the invention provides an industrial printhead comprising of a single piezoactuated flow channel dispenser enclosed in a chamber. Due to the printhead's larger three dimensional shape, individual nozzle cannot be stacked at a low pitch, and therefore a multi-nozzle construction has also been developed, comprising of a single vibrating system to drive multiple jetting nozzles.
A prior art industrial printhead design developed by the applicant is demonstrated in
A first embodiment of industrial printhead (100) according to the present invention is shown in
The vibration distributor (104) is generally cylindrical in shape with the wave concentrator (110) forming a cone such that the diameter of the wave concentrator (110), and consequently its mass, decreases along its length away from the piezoelectric exciter (108). The mass resonator (106) is made from a high density material such as steel or brass, for example. The wave concentrator (110) is also made from a high density material but the material of the wave concentrator (110) has a lower mass density than that of the mass resonator (106). The wave concentrator (110) may be made from titanium or aluminium, for example.
Although
Number | Date | Country | Kind |
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1614637 | Aug 2016 | GB | national |
Filing Document | Filing Date | Country | Kind |
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PCT/GB2017/052516 | 8/29/2017 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2018/042165 | 3/8/2018 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3368085 | Dettloff | Feb 1968 | A |
4005435 | Lundquist | Jan 1977 | A |
5154347 | Vijay | Oct 1992 | A |
6224180 | Pham-Van-Diep | May 2001 | B1 |
6425660 | Sherman | Jul 2002 | B1 |
6460980 | Hegedus | Oct 2002 | B1 |
8439487 | Clarke | May 2013 | B2 |
20010015735 | Matsumoto | Aug 2001 | A1 |
20040046839 | Pannu | Mar 2004 | A1 |
20060191562 | Nunomura | Aug 2006 | A1 |
Number | Date | Country |
---|---|---|
2001010 | Jan 1979 | GB |
2037234 | Jul 1980 | GB |
1592819 | Jul 1981 | GB |
S56137973 | Oct 1981 | JP |
S6285948 | Apr 1987 | JP |
199851503 | Nov 1998 | WO |
1999046126 | Sep 1999 | WO |
200234526 | May 2002 | WO |
2010003933 | Jan 2010 | WO |
Entry |
---|
International Search Report and Written Opinion received in corresponding PCT Application PCT/GB2017/052516 completed Nov. 16, 2017. |
Search Report received in corresponding GB Application No. GB1614637.5 dated Mar. 1, 2017. |
Number | Date | Country | |
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20210300017 A1 | Sep 2021 | US |