IP Library Granted Patent US 9,972,975
Granted Patent B2
US 9,972,975 · App. 15/660,134 · Granted May 15, 2018

High-power laser systems with modular diode sources

Inventors: Parviz Tayebati (Sherborn, MA); Bien Chann (Merrimack, NH); Bryan Lochman (Somerville, MA); Matthew Sauter (Boston, MA); Wang-Long Zhou (Andover, MA)
Assignee: TERADIODE, INC.
H01S5/4012H01S5/02284H01S5/02288H01S5/02423H01S5/4025
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,972,975
App. No.
15/660,134
Granted
May 15, 2018
Kind
B2
Abstract

In various embodiments, a modular laser system features an enclosure having interfaces for accepting input laser beam modules, optical elements for combining beams from the modules into a combined output beam, and a heat-exchange manifold for interfacing with and cooling the modules during operation.

Claims (29)

1. A laser system for combining a plurality of input beams into a combined output beam, the laser system comprising:

an enclosure comprising a beam output for outputting the combined output beam;

a heat-exchange manifold comprising (i) a reservoir for containing heat-exchange fluid, and (ii) a plurality of heat-exchange interfaces each comprising (a) an output conduit for supplying heat-exchange fluid and (b) an input conduit for receiving heat-exchange fluid;

a plurality of input beam modules, each input beam module comprising (i) a housing, (ii) a laser beam source disposed within the housing, (iii) disposed within the housing, a focusing optical element for receiving and focusing one or more input beams emitted by the laser beam source, (iv) disposed on the housing, an optical interface for transmitting the focused one or more input beams out of the housing, (v) disposed on the housing, an electrical interface for transmitting electrical power into the housing and to the laser beam source, and (vi) a cooling interface comprising (a) a cooling input for receiving heat-exchange fluid from one of the output conduits of the heat-exchange manifold and disposing the heat-exchange fluid in thermal contact with the laser beam source and (b) a cooling output for receiving heat-exchange fluid from the laser beam source after heat exchange therebetween and outputting the heat-exchange fluid to an input conduit of the heat-exchange manifold;

disposed on the enclosure, a plurality of input receptacles, each input receptacle configured to accept one of the input beam modules, wherein each input receptacle comprises (i) an electrical output for supplying electrical power, (ii) an optical receiver for receiving one or more input beams from an input beam module, and (iii) an alignment feature for mechanically aligning an input beam module with the enclosure, whereby, when an input beam module is accepted within the input beam receptacle, the electrical output is electrically connected to the electrical interface of the input beam module and the optical receiver is optically aligned with the optical interface of the input beam module; and

disposed within the enclosure, a plurality of optical elements for receiving input beams from the optical receivers of the input receptacles, combining the input beams into a combined output beam, and transmitting the combined output beam to the beam output.

2. The system of claim 1 , wherein the beam output comprises an output receptacle for receiving an optical fiber.

3. The system of claim 1 , wherein the beam output comprises a window for transmitting a free-space output beam.

4. The system of claim 1 , wherein one or more of the laser beam sources comprises a diode bar configured to emit a plurality of laser beams.

5. The system of claim 1 , wherein the plurality of optical elements disposed within the enclosure comprises (i) focusing optics for focusing input beams onto a dispersive element, (ii) a dispersive element for receiving and dispersing the received focused input beams, and (iii) a partially reflective output coupler positioned to receive the dispersed beams, transmit a portion of the dispersed beams therethrough as the combined output beam, and reflect a second portion of the dispersed beams back toward the dispersive element.

6. The system of claim 5 , wherein the dispersive element comprises a diffraction grating.

7. The system of claim 1 , wherein the optical elements are configured to combine the input beams into the combined output beam and transmit the combined output beam to the beam output even if one or more of the input receptacles is empty.

8. The system of claim 1 , further comprising a control system configured to control flow of heat-exchange fluid through each of the heat-exchange interfaces.

9. The system of claim 8 , wherein the control system is configured to control the flow of heat-exchange fluid based at least in part on a sensed temperature of each of the input beam modules.

10. The system of claim 1 , wherein the optical interface of at least one of the input beam modules comprises at least one of a window, prism, or lens.

11. The system of claim 1 , wherein the optical receiver of at least one of the input receptacles comprises at least one of a window, prism, or lens.

12. A laser system for combining a plurality of input beams emitted by a plurality of input beam modules into a combined output beam, wherein each of the input beam modules comprises (i) a housing, (ii) a laser beam source disposed within the housing, (iii) disposed within the housing, a focusing optical element for receiving and focusing one or more input beams emitted by the laser beam source, (iv) disposed on the housing, an optical interface for transmitting the focused one or more input beams out of the housing, (v) disposed on the housing, an electrical interface for transmitting electrical power into the housing and to the laser beam source, and (vi) a cooling interface comprising (a) a cooling input for receiving heat-exchange fluid and disposing the heat-exchange fluid in thermal contact with the laser beam source and (b) a cooling output for receiving heat-exchange fluid from the laser beam source after heat exchange therebetween and outputting the heat-exchange fluid, the laser system comprising:

an enclosure comprising a beam output for outputting the combined output beam;

a heat-exchange manifold comprising (i) a reservoir for containing heat-exchange fluid, and (ii) a plurality of heat-exchange interfaces each comprising (a) an output conduit for supplying heat-exchange fluid to a cooling input of one of the input beam modules and (b) an input conduit for receiving heat-exchange fluid from a cooling output of one of the input beam modules;

disposed on the enclosure, a plurality of input receptacles, each input receptacle configured to accept one of the input beam modules, wherein each input receptacle comprises (i) an electrical output for supplying electrical power, (ii) an optical receiver for receiving one or more input beams from an input beam module, and (iii) an alignment feature for mechanically aligning an input beam module with the enclosure, whereby, when an input beam module is accepted within the input beam receptacle, the electrical output is electrically connected to the electrical interface of the input beam module and the optical receiver is optically aligned with the optical interface of the input beam module; and

disposed within the enclosure, a plurality of optical elements for receiving input beams from the optical receivers of the input receptacles, combining the input beams into a combined output beam, and transmitting the combined output beam to the beam output.

13. The system of claim 12 , wherein the beam output comprises an output receptacle for receiving an optical fiber.

14. The system of claim 12 , wherein the beam output comprises a window for transmitting a free-space output beam.

15. The system of claim 12 , wherein the plurality of optical elements disposed within the enclosure comprises (i) focusing optics for focusing input beams onto a dispersive element, (ii) a dispersive element for receiving and dispersing the received focused input beams, and (iii) a partially reflective output coupler positioned to receive the dispersed beams, transmit a portion of the dispersed beams therethrough as the combined output beam, and reflect a second portion of the dispersed beams back toward the dispersive element.

16. The system of claim 15 , wherein the dispersive element comprises a diffraction grating.

17. The system of claim 12 , wherein the optical elements are configured to combine the input beams into the combined output beam and transmit the combined output beam to the beam output even if one or more of the input receptacles is empty.

18. The system of claim 12 , further comprising a control system configured to control flow of heat-exchange fluid through each of the heat-exchange interfaces.

19. The system of claim 18 , wherein the control system is configured to control the flow of heat-exchange fluid based at least in part on a sensed temperature of each of the input beam modules.

20. The system of claim 12 , wherein the optical receiver of at least one of the input receptacles comprises at least one of a window, prism, or lens.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 14, 2024
From: PANASONIC CORPORATION OF NORTH AMERICA
To: WBC PHOTONICS, INC.
Reel/Frame 069361/0616 →
MERGER Recorded Apr 13, 2023
From: TERADIODE, INC.
To: PANASONIC CORPORATION OF NORTH AMERICA
Reel/Frame 063311/0915 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 15, 2018
From: TAYEBATI, PARVIZ; CHANN, BIEN; LOCHMAN, BRYAN; SAUTER, MATTHEW; ZHOU, WANG-LONG
To: TERADIODE, INC.
Reel/Frame 045229/0960 →
Continuity (2)
Provisional Application 62371341 · Aug 5, 2016
Related Publication 20180041012A1 · Feb 8, 2018