IP Library Granted Patent US 8,491,099
Granted Patent B2
US 8,491,099 · App. 13/301,758 · Granted Jul 23, 2013

Thermal bend actuator having bilayered passive beam

Inventors: Gregory John McAvoy (Dublin, IE); Vincent Patrick Lawlor (Dublin, IE); Rónán Pádraig Seán O'Reilly (Dublin, IE)
Assignee: Zamtec Ltd
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Quick Facts
Patent No.
US 8,491,099
App. No.
13/301,758
Granted
Jul 23, 2013
Kind
B2
Abstract

A thermal bend actuator includes: an active beam for connection to drive circuitry; and a passive beam mechanically cooperating with the active beam, such that when a current is passed through the active beam, the active beam expands relative to the passive beam, resulting in bending of the actuator. The passive beam has first and second layers with the second layer sandwiched between the first layer and the active beam. The first layer is thicker than the second layer.

Claims (36)

1. A thermal bend actuator comprising:

an active beam for connection to drive circuitry; and

a passive beam mechanically cooperating with the active beam, such that when a current is passed through the active beam, the active beam expands relative to the passive beam, resulting in bending of the actuator,

wherein the passive beam comprises first and second layers, the second layer is sandwiched between the first layer and the active beam, and the first layer is thicker than the second layer.

2. The thermal bend actuator of claim 1 , wherein said first layer is at least four times thicker than the second layer.

3. The thermal bend actuator of claim 1 , wherein said first layer is comprised of silicon nitride.

4. The thermal actuator of claim 1 , wherein the second layer has a thickness in the range of 0.05 and 0.2 microns.

5. The thermal actuator of claim 1 , wherein the first layer has a thickness in the range of 1.0 and 2.0 microns.

6. The thermal actuator of claim 1 , wherein the active beam has a thickness in the range of 1.5 and 2.0 microns.

7. The thermal bend actuator of claim 1 , wherein said active beam is connected to said drive circuitry via a pair of electrical contacts positioned at one end of said actuator.

8. The thermal bend actuator of claim 1 , wherein the active beam is fused to the passive beam by a deposition process.

9. The thermal bend actuator of claim 1 , wherein the active beam is comprised of a material selected from the group consisting of: titanium nitride, titanium aluminium nitride and an aluminium alloy.

10. The thermal bend actuator of claim 1 , wherein the active beam is comprised of a vanadium-aluminium alloy.

11. An inkjet nozzle assembly comprising:

a nozzle chamber having a nozzle opening and an ink inlet; and

a thermal bend actuator for ejecting ink through the nozzle opening, said actuator comprising:

an active beam for connection to drive circuitry; and

a passive beam mechanically cooperating with the active beam, such that when a current is passed through the active beam, the active beam expands relative to the passive beam, resulting in bending of the actuator,

wherein the passive beam comprises first and second layers, the second layer is sandwiched between the first layer and the active beam, and the first layer is thicker than the second layer.

12. The inkjet nozzle assembly of claim 11 , wherein the nozzle chamber comprises a floor and a roof having a moving portion, whereby actuation of said actuator moves said moving portion towards said floor.

13. The inkjet nozzle assembly of claim 12 , wherein the moving portion comprises the actuator.

14. The inkjet nozzle assembly of claim 12 , wherein the active beam is disposed on an upper surface of said passive beam relative to the floor of the nozzle chamber.

15. The inkjet nozzle assembly of claim 12 , wherein the nozzle opening is defined in the moving portion, such that the nozzle opening is moveable relative to the floor.

16. The inkjet nozzle assembly of claim 12 , wherein the actuator is moveable relative to the nozzle opening.

17. The inkjet nozzle assembly of claim 12 , wherein said roof is coated with a polymeric material.

18. An inkjet printhead comprising a plurality of nozzle assemblies, each nozzle assembly comprising:

a nozzle chamber having a nozzle opening and an ink inlet; and

a thermal bend actuator for ejecting ink through the nozzle opening, said actuator comprising:

an active beam connected to drive circuitry; and

a passive beam mechanically cooperating with the active beam, such that when a current is passed through the active beam, the active beam expands relative to the passive beam, resulting in bending of the actuator,

wherein the passive beam comprises first and second layers, the second layer is sandwiched between the first layer and the active beam, and the first layer is thicker than the second layer.

19. The printhead of 18 , wherein each nozzle chamber comprises a floor and a roof having a moving portion comprising the actuator, whereby actuation of said actuator moves said moving portion towards said floor.

20. A MEMS device comprising one or more thermal bend actuators, each thermal bend actuator comprising:

an active beam connected to drive circuitry; and

a passive beam mechanically cooperating with the active beam, such that when a current is passed through the active beam, the active beam expands relative to the passive beam, resulting in bending of the actuator,

wherein the passive beam comprises first and second layers, the second layer is sandwiched between the first layer and the active beam, and the first layer is thicker than the second layer.

Assignments (3)
CHANGE OF NAME Recorded Jun 25, 2014
From: ZAMTEC LIMITED
To: MEMJET TECHNOLOGY LIMITED
Reel/Frame 033244/0276 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2013
From: SILVERBROOK RESEARCH PTY. LIMITED
To: ZAMTEC LIMITED
Reel/Frame 030169/0193 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 21, 2011
From: MCAVOY, GREGORY JOHN; LAWLOR, VINCENT PATRICK; O'REILLY, RONAN PADRAIG SEAN
To: SILVERBROOK RESEARCH PTY LTD
Reel/Frame 027268/0018 →
Continuity (2)
Continuation 12546682 · Aug 25, 2009
Related Publication 20120062656A1 · Mar 15, 2012