IP Library › Granted Patent US 10,236,434
Granted Patent B2
US 10,236,434 · App. 16/055,291 · Granted Mar 19, 2019

Liquid ejection apparatus

Inventor: Toru Kakiuchi (Aichi-ken, JP)
Assignee: BROTHER KOGYO KABUSHIKI KAISHA
H01L41/0475B41J2/14072B41J2/14233B41J2/1623B41J2/17526H05K3/321H05K3/361B41J2002/14491H05K2201/09745H05K2203/0278
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Quick Facts
Patent No.
US 10,236,434
App. No.
16/055,291
Granted
Mar 19, 2019
Kind
B2
Abstract

An actuator device includes: an actuator including a first contact; and a wire member including a second contact connected to the first contact with a conductive adhesive including a conductive particle. One of the first contact and the second contact is a particular contact. The other of the first contact and the second contact is a specific contact. At least two protrusions and at least one recess are formed on and in the particular contact. The at least two protrusions are arranged in a first direction. The at least one recess is interposed between the at least two protrusions. The particular contact is joined to the specific contact with the conductive adhesive provided in the at least one recess, in a state in which each of the at least two protrusions is in contact with the specific contact.

Claims (25)

1. A liquid ejection apparatus, comprising:

an actuator comprising at least one first contact; and

a wire member comprising at least one second contact respectively connected to the at least one first contact,

wherein one of (i) each of the at least one first contact and (ii) each of the at least one second contact is each of at least one particular contact, and another of (i) each of the at least one first contact and (ii) each of the at least one second contact is each of at least one specific contact,

wherein at least two protrusions and at least one recess are formed on and in the at least one particular contact, the at least two protrusions being arranged in a first direction parallel with a placement surface of each of the at least one particular contact, the at least one recess being interposed between the at least two protrusions,

wherein the at least one particular contact is respectively joined to the at least one specific contact in a state in which each of the at least two protrusions is in contact with a corresponding one of the at least one specific contact, and

wherein a plurality of first contacts as the at least one first contact are arranged at an interval of less than or equal to 21 μm.

2. The liquid ejection apparatus according to claim 1 , wherein the actuator comprises a piezoelectric layer with a thickness between 1.0 μm and 2.0 μm.

3. The liquid ejection apparatus according to claim 1 , wherein the at least one first contact and the at least one second contact are bonded to each other with a conductive adhesive.

4. The liquid ejection apparatus according to claim 3 , wherein the conductive adhesive comprises a conductive particle with a diameter between 3 μm and 5 μm.

5. The liquid ejection apparatus according to claim 1 , wherein where n is the number of conductive particles contained in the conductive adhesive per area A, and A 1 is an area of each of the at least one recess, A 1 is greater than or equal to A/n.

6. The liquid ejection apparatus according to claim 1 , wherein each of the at least two protrusions is in contact with a corresponding one of the at least one specific contact.

7. The liquid ejection apparatus according to claim 6 , wherein a width of each of the at least one specific contact in the first direction is greater than a width of each of the at least one particular contact in the first direction.

8. The liquid ejection apparatus according to claim 7 , wherein the width of each of the at least one specific contact in the first direction is greater than or equal to twice the width of each of the at least one particular contact in the first direction.

9. The liquid ejection apparatus according to claim 1 , wherein a width of each of the at least one recess in the first direction is greater than or equal to a diameter of the conductive particle.

10. The liquid ejection apparatus according to claim 9 , wherein the width of each of the at least one recess in the first direction is greater than or equal to twice the diameter of the conductive particle.

11. The liquid ejection apparatus according to claim 9 , wherein the width of each of the at least one recess in the first direction is less than or equal to ten times the diameter of the conductive particle.

12. The liquid ejection apparatus according to claim 11 , wherein a width of each of the at least one particular contact in the first direction is less than or equal to ten times the diameter of the conductive particle.

13. The liquid ejection apparatus according to claim 1 ,

wherein the at least one first contact comprises a plurality of first contacts arranged in the first direction, and

wherein a length of each of the at least one recess in a second direction parallel with the placement surface and orthogonal to the first direction is greater than that of each of the at least one recess in the first direction.

14. The liquid ejection apparatus according to claim 13 , wherein only one of the at least one recess is disposed in the first direction.

15. The liquid ejection apparatus according to claim 1 , wherein a depth of each of the at least one recess is less than a diameter of the conductive particle.

16. The liquid ejection apparatus according to claim 15 , wherein the depth of each of the at least one recess is less than or equal to three fifths of the diameter of the conductive particle.

17. The liquid ejection apparatus according to claim 15 , wherein the depth of each of the at least one recess is greater than or equal to one fifth of the diameter of the conductive particle.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2018
From: KAKIUCHI, TORU
To: BROTHER KOGYO KABUSHIKI KAISHA
Reel/Frame 046559/0282 →
Priority Claims (1)
JP 2016-189997 · Sep 28, 2016 · national
Continuity (2)
Continuation 15472056 · Mar 28, 2017
Related Publication 20180342664A1 · Nov 29, 2018