IP Library › Granted Patent US 12,593,611
Granted Patent B2
US 12,593,611 · App. 17/794,839 · Granted Mar 31, 2026

Reservoir element and neuromorphic device

Inventor: Eiji Suzuki (Tokyo, JP)
Assignee: TDK CORPORATION
H10N30/20H10N30/802H10N30/87H10N35/00
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Quick Facts
Patent No.
US 12,593,611
App. No.
17/794,839
Granted
Mar 31, 2026
Kind
B2
Abstract

A reservoir element according to an embodiment has a plurality of vibrators, at least one of the plurality of vibrators has a vibration state different from vibration states of the other vibrators, and vibrations of the plurality of vibrators are configured to affect each other.

Claims (81)

1 . A reservoir element, comprising:

a plurality of vibrators,

wherein at least one of the plurality of vibrators has a vibration state different from vibration states of the other vibrators, and

vibrations of the plurality of vibrators are configured to affect each other

wherein at least one of the plurality of vibrators has a size or a material different from sizes or materials of the other vibrators.

2 . The reservoir element according to claim 1 , further comprising:

a connection plate,

wherein the connection plate is connected to each of the plurality of vibrators.

3 . The reservoir element according to claim 1 ,

wherein each of the plurality of vibrators has a magnetostrictive film, and

the reservoir element further includes a magnetic field applying unit configured to apply a magnetic field to each of the magnetostrictive films.

4 . The reservoir element according to claim 1 ,

wherein each of the plurality of vibrators has a magnetostrictive film,

the reservoir element further includes a magnetic field applying unit configured to apply a magnetic field to each of the magnetostrictive films, and

the magnetic field applying unit is configured to apply a magnetic field different from magnetic fields of the other magnetostrictive films to at least one of the plurality of magnetostrictive films.

5 . The reservoir element according to claim 1 ,

wherein each of the plurality of vibrators has an electrode, and

the reservoir element further includes:

a counter electrode facing the electrode; and

a first alternating current (AC) power supply configured to apply an AC voltage between the electrode and the counter electrode.

6 . The reservoir element according to claim 1 ,

wherein each of the plurality of vibrators has an electrode,

the reservoir element further includes:

a counter electrode facing the electrode; and

a direct current (DC) power supply configured to apply a DC voltage between the electrode and the counter electrode, and

a potential difference between the electrode of any of the vibrators and the counter electrode is different from potential differences between the electrodes of the other vibrators and the counter electrode.

7 . A reservoir element, comprising:

a plurality of vibrators; and

a second AC power supply configured to apply an AC voltage between the upper electrode and the lower electrode,

wherein at least one of the plurality of vibrators has a vibration state different from vibration states of the other vibrators,

vibrations of the plurality of vibrators are configured to affect each other

each of the plurality of vibrators comprises:

a piezoelectric material; and

an upper electrode and a lower electrode which sandwich the piezoelectric material therebetween.

8 . The reservoir element according to claim 7 , further comprising:

a connection plate,

wherein the connection plate is connected to each of the plurality of vibrators.

9 . The reservoir element according to claim 7 ,

wherein each of the plurality of vibrators has a magnetostrictive film, and

the reservoir element further includes a magnetic field applying unit configured to apply a magnetic field to each of the magnetostrictive films.

10 . The reservoir element according to claim 7 ,

wherein each of the plurality of vibrators has a magnetostrictive film,

the reservoir element further includes a magnetic field applying unit configured to apply a magnetic field to each of the magnetostrictive films, and

the magnetic field applying unit is configured to apply a magnetic field different from magnetic fields of the other magnetostrictive films to at least one of the plurality of magnetostrictive films.

11 . The reservoir element according to claim 7 ,

wherein each of the plurality of vibrators has an electrode, and

the reservoir element further includes:

a counter electrode facing the electrode; and

a first alternating current (AC) power supply configured to apply an AC voltage between the electrode and the counter electrode.

12 . The reservoir element according to claim 7 ,

wherein each of the plurality of vibrators has an electrode,

the reservoir element further includes:

a counter electrode facing the electrode; and

a direct current (DC) power supply configured to apply a DC voltage between the electrode and the counter electrode, and

a potential difference between the electrode of any of the vibrators and the counter electrode is different from potential differences between the electrodes of the other vibrators and the counter electrode.

13 . A reservoir element, comprising:

a plurality of vibrators; and

a strain sensor which is in contact with each of the plurality of vibrators,

wherein at least one of the plurality of vibrators has a vibration state different from vibration states of the other vibrators, and

vibrations of the plurality of vibrators are configured to affect each other.

14 . The reservoir element according to claim 13 , further comprising:

a connection plate,

wherein the connection plate is connected to each of the plurality of vibrators.

15 . The reservoir element according to claim 13 ,

wherein each of the plurality of vibrators has a magnetostrictive film, and

the reservoir element further includes a magnetic field applying unit configured to apply a magnetic field to each of the magnetostrictive films.

16 . The reservoir element according to claim 13 ,

wherein each of the plurality of vibrators has a magnetostrictive film,

the reservoir element further includes a magnetic field applying unit configured to apply a magnetic field to each of the magnetostrictive films, and

the magnetic field applying unit is configured to apply a magnetic field different from magnetic fields of the other magnetostrictive films to at least one of the plurality of magnetostrictive films.

17 . The reservoir element according to claim 13 ,

wherein each of the plurality of vibrators has an electrode, and

the reservoir element further includes:

a counter electrode facing the electrode; and

a first alternating current (AC) power supply configured to apply an AC voltage between the electrode and the counter electrode.

18 . The reservoir element according to claim 13 ,

wherein each of the plurality of vibrators has an electrode,

the reservoir element further includes:

a counter electrode facing the electrode; and

a direct current (DC) power supply configured to apply a DC voltage between the electrode and the counter electrode, and

a potential difference between the electrode of any of the vibrators and the counter electrode is different from potential differences between the electrodes of the other vibrators and the counter electrode.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 22, 2022
From: SUZUKI, EIJI
To: TDK CORPORATION
Reel/Frame 060597/0042 →
Continuity (1)
Related Publication 20230055056A1 · Feb 23, 2023
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