IP Library › Granted Patent US 11,729,885
Granted Patent B2
US 11,729,885 · App. 17/637,487 · Granted Aug 15, 2023

Light-emitting element driving circuit

Inventors: Yuya Iwazaki (Hamamatsu, JP); Sena Tsutsumi (Hamamatsu, JP)
Assignee: HAMAMATSU PHOTONICS K.K.
H05B45/46H05B45/52
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Quick Facts
Patent No.
US 11,729,885
App. No.
17/637,487
Granted
Aug 15, 2023
Kind
B2
Abstract

The present disclosure relates to a driving circuit individually performing drive control of light-emitting elements having cathodes with the same potential. The driving circuit includes driving circuit units provided in one-to-one correspondence with the light-emitting elements. Each driving circuit unit includes a switching element, a first energy-storage element, a current-control element, and a current-interrupting element. The current-control element connects in parallel to the semiconductor light-emitting element. In the first energy-storage element, a first electrode connects to a first node, and a second electrode connects to a first constant-potential line. In the switching element, a first current terminal connects to a second electrode, and a second current terminal connects to a second node. The second nodes connect to the second constant-potential line without short-circuiting each other by the current-interrupting element. The current-interrupting element interrupts or suppresses current during a period in which the switching element is in ON-state.

Claims (17)

1. A light-emitting element driving circuit configured to individually perform drive control of a plurality of semiconductor light-emitting elements each having a cathode set to a same potential, the light-emitting element driving circuit comprising:

a plurality of driving circuit units provided in one-to-one correspondence with the plurality of semiconductor light-emitting elements and configured to individually drive the associated semiconductor light-emitting elements,

wherein each of the plurality of driving circuit units includes:

a current control element having a first terminal electrically connected to the cathode of the associated semiconductor light-emitting element via a first node and a second terminal electrically connected to an anode of the associated semiconductor light-emitting element via a second node, the current control element being configured to cause current to flow from the first node to the second node during a period in which the associated semiconductor light-emitting element is in a non-light-emitting state, and to limit the current during a period in which the associated semiconductor light-emitting element is in a light-emitting state;

a first energy storage element having a first electrode electrically connected to the first node and a second electrode; and

a switching element having a control terminal to which a control signal for driving the associated semiconductor light-emitting element is inputted, a first current terminal electrically connected to the second electrode of the first energy storage element, and a second current terminal electrically connected to the second node,

wherein each of the second electrodes of the first energy storage elements in the plurality of driving circuit units is electrically connected to a first constant potential line,

wherein each of the second nodes in the plurality of driving circuit units is electrically connected to a second constant potential line set to a lower potential than the first constant potential line via a first current interrupting element or directly, the first current interrupting element being arranged on a line between two second nodes adjacent to each other and being configured to avoid a short circuit between the two second nodes adjacent to each other, and

wherein the first current interrupting element is an element configured to interrupt or suppress at least a current with a specific frequency or a current in a specific period, the first current interrupting element interrupting or suppressing at least the current during a period in which the switching element is in an ON-state.

2. The light-emitting element driving circuit according to claim 1 , wherein

each of the plurality of driving circuit units further includes a second current interrupting element arranged on a line between the first constant potential line and the second electrode of the first energy storage element, and

the second current interrupting element is an element configured to interrupt or suppress at least a current with a specific frequency or a current in a specific period, the second current interrupting element interrupting or suppressing at least the current during the period in which the switching element is in the ON-state.

3. The light-emitting element driving circuit according to claim 2 , wherein each of the plurality of driving circuit units further includes a second energy storage element having a first electrode electrically connected to a third node located on a line between the second electrode of the first energy storage element and the second current interrupting element; and a second electrode electrically connected to the second node.

4. The light-emitting element driving circuit according to claim 3 , wherein a capacity of the second energy storage element is larger than a capacity of the first energy storage element.

5. The light-emitting element driving circuit according to claim 1 , wherein the first current interrupting element includes an inductor.

6. The light-emitting element driving circuit according to claim 1 , wherein the current control element includes a resistance element.

7. The light-emitting element driving circuit according to claim 1 , wherein the plurality of driving circuit units individually drives the plurality of semiconductor light-emitting elements integrated on a common semiconductor substrate.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 23, 2022
From: IWAZAKI, YUYA; TSUTSUMI, SENA
To: HAMAMATSU PHOTONICS K.K.
Reel/Frame 059071/0586 →
Priority Claims (1)
JP 2019-198559 · Oct 31, 2019 · national
Continuity (1)
Related Publication 20220279638A1 · Sep 1, 2022