EXCHANGEABLE PUMP MODULE
20170365973 · 2017-12-21
Inventors
Cpc classification
H01S3/061
ELECTRICITY
H01S3/094053
ELECTRICITY
H01S3/09415
ELECTRICITY
International classification
Abstract
A modular solid-state laser comprises a diode-laser pump module and a laser-enclosure. The diode-laser pump module produces a collimated beam of laser-radiation for pumping a gain-element within the laser-enclosure. The beam of pump laser-radiation is focused into the gain-element by optics located within the laser-enclosure. The diode-laser pump module can be replaced or exchanged without realigning optics located within the laser-enclosure.
Claims
1. Laser apparatus comprising: an optical fiber having an input end and an output end; a diode-laser delivering a beam of laser-radiation into the optical fiber through the input end; a connector-assembly body and a collimating lens, the output end of the optical fiber fixedly held in one end of the connector-assembly body, the beam of laser-radiation propagating out of the fixed output end of the optical fiber towards the opposed end of the connector-assembly body, the collimating lens fixedly held within the connector-assembly body, the fixed collimating lens arranged to intercept and collimate the beam of laser-radiation; a laser-enclosure including a focusing lens and a gain-element, the collimated beam of laser-radiation propagating out through the opposed end of the connector-assembly body and into the laser-enclosure via an entrance-aperture therein, the focusing lens arranged to intercept the collimated beam of laser-radiation and to focus the beam of laser-radiation into the gain-element, the focused beam of laser-radiation energizing the gain-element; and wherein the connector-assembly body is mechanically referenced and attached to the laser-enclosure and is detachable from the laser-enclosure, and the fixed collimating lens is arranged such that the collimated beam of laser-radiation is collinear with a preferred alignment axis defined with respect to the connector-assembly body.
2. The apparatus of claim 1, wherein mechanical attaching and detaching of the connector-assembly body and laser-enclosure occurs at a location within a collimated portion of the beam of laser-radiation.
3. The apparatus of claim 1, wherein the connector-assembly body is detachable from the laser-enclosure between the collimating lens and the focusing lens.
4. The apparatus of claim 1, wherein the connector-assembly body is mechanically referenced to the laser-enclosure by location pins on one of the connector-assembly body and laser enclosure, said pins engaging complementary location holes in the other of the connector assembly body or laser-enclosure.
5. The apparatus of claim 1, wherein a protective window is located at the opposed end of the connector-assembly body.
6. The apparatus of claim 1, wherein a protective window covers the entrance-aperture of the laser-enclosure.
7. The apparatus of claim 1, wherein the gain-element has the form of a rod and is end-pumped by the beam of laser-radiation.
8. The apparatus of claim 1, wherein the collimating lens is fixedly held within the connector-assembly body by soldering.
9. The apparatus of claim 4 wherein the connector-assembly body includes a planar radial flange extending in a direction perpendicular to the propagation direction of the beam of laser-radiation, said radial flange abutting a planar wall of the laser-enclosure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The accompanying drawings, which are incorporated in and constitute a part of the specification, schematically illustrate a preferred embodiment of the present invention, and together with the general description given above and the detailed description of the preferred embodiment given below, serve to explain principles of the present invention.
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF THE INVENTION
[0015] Turning now to the drawings, wherein like features are designated by like reference numerals,
[0016] Connector-assembly 26 includes a connector-assembly body 30 (hatched) and a collimating lens 32. Output end 24B of optical fiber 24 is secured mechanically in a closed end 30A of connector-assembly body 30 by a fiber-connector 34, thereby fixing permanently the alignment of beam of laser-radiation 28 with respect to connector-assembly body 30. Fiber-connector 34 incorporates termination of output end 24B of optical fiber 24, which may simply be polished flat and anti-reflection coated, or may include an endcap for high-power operation. Those skilled in the art of fiber-optic design would recognize that fiber-connector 34 may be fabricated or purchased having specifications appropriate for a specific application, without departing from the spirit and scope of the present invention. Beam of laser-radiation 28 is highly diverging as it emerges from output end 24B of optical fiber 24 and propagates towards an open end 30B of connector-assembly body 30.
[0017] Collimating lens 32 is arranged to intercept and collimate beam of laser-radiation 28 before diverging beam 28A emerges from open end 30B of connector-assembly body 30. Collimating lens 32 is secured mechanically within connector-assembly body 30, thereby fixing alignment of collimated beam 28B with respect to connector-assembly body 30. Connector-assembly 26 may also include an optional window 36 at the open end 30B of connector-assembly body 30 for protection against particle and chemical contamination.
[0018] Modular laser apparatus 10 further comprises a laser-enclosure 50 that includes a laser-enclosure body 52 (hatched), a focusing lens 54, and a gain-element 56. Laser-enclosure 50 supports and protects a plurality of other elements (not shown) that together make a laser-oscillator or laser-amplifier. These other elements are particular to the specific laser-oscillator or laser amplifier design and a detailed description thereof is not necessary for understanding principles of the present invention. An entrance aperture 53 in laser-enclosure 50 is defined by edges of laser-enclosure body 52.
[0019] Connector-assembly body 30 is attached to laser-enclosure body 52 such that open end 30B is adjacent to entrance aperture 53. Connector-assembly body 30 is precisely situated by location pins 38. Connector-assembly 26 is thereby mechanically referenced to laser-enclosure 50. Practitioners in the art of mechanical design would appreciate that the connector-assembly could be attached and situated on the laser-enclosure body by alternative means, without departing from the spirit and scope of the present invention.
[0020] Beam of laser-radiation 28 propagates from connector-assembly 26 into laser-enclosure 50. Focusing lens 54 is arranged to intercept collimated beam 28B and focus the beam of laser-radiation into gain-element 56. Focused beam 28C is substantially absorbed by gain-element 56, thereby energizing gain-element 56. Here “substantially absorbed” means any residual beam of laser-radiation 58 transmitted through gain-element 56 retains only a small fraction of the power in focused beam 28C incident on the gain-element. Laser-enclosure 50 may include an optional window 60 that transmits collimated beam 28B and protects elements inside the laser-enclosure from contamination.
[0021]
[0022] First, collimated beam 28B is the most forgiving of lateral and angular misalignment. Double-arrowed dashed-line 64 represents a preferred alignment axis for collimated beam 28B emerging from connector-assembly 26. Principal axis 28 of collimated beam 28B may be translated and tilted with respect to preferred alignment axis 64, with minimal impact on location and shape of focused beam 28C in gain-element 56. Similarly, focused beam 28C depends weakly on waist-location and waist-size of collimated beam 28B.
[0023] Second, collimated beam 28B is largest and therefore least damaging to optical surfaces, especially any optical surfaces having mechanical defects or contamination. Diode-laser pump module 20 and laser-enclosure 50 are thereby less vulnerable to damage by mishandling or exposure to contaminants. In designs that include optional windows 36 and 60, optical damage can be further mitigated by making the windows from relatively hard materials and by making external surfaces of the windows accessible for cleaning.
[0024] Location pins 38 in connector-assembly body 30 and complementary location holes 62 in laser-enclosure body 52 are depicted in
[0025] Gain-element 56 is depicted in
[0026]
[0027] Pump module alignment tooling 80 further includes wedged tooling mirrors 84 for attenuating beam of laser-radiation 28. Wedged tooling mirrors 84 direct the attenuated beam through a tooling focusing lens 86 and into beam-diagnostic tooling 88. Tooling focusing lens 86 may be identical to focusing lens 54 (shown in
[0028] The objective of an alignment procedure is consistent alignment of every diode-laser pump module 20, by aligning collimating lens 32 to create a focused beam having a target caustic in beam-diagnostic tooling 88, corresponding to a preferred optical and mechanical alignment. Therefore tooling mount 82, wedged tooling mirrors 84, tooling focusing lens 86, and beam-diagnostic tooling 88 are mechanically fixed with respect to each other. A simple way to fix these elements is to mount them all on a common tooling plate (not shown). A reference laser (not shown) optically and mechanically referenced to tooling mount 82 may be used to maintain consistent alignment of pump module alignment tooling 80 and to facilitate replacement of any elements of the pump module alignment tooling.
[0029] An exemplary alignment procedure aligns collimating lens 32 by translating it in x, y, and z-directions until caustic 92A and 92B of focused beam 28C matches the target caustic. The z-direction is the propagation direction of beam of laser-radiation 28, as indicated in the drawing. The three mutually-orthogonal translations are performed iteratively. Collimating lens 32 is then fixed permanently within connector-assembly body 30. Tooling for aligning and fixing collimating lens 32 is not depicted in
[0030]
[0031] Referring again to
[0032] For optical fibers 24 having a facet angle on output end 24B, diverging beam 28A is refracted from the geometrical axis of fiber 24, with variances in refracted angle and orientation. To compensate for these variances, another exemplary alignment procedure would include aligning and fixing fiber-connector 34 within connector-assembly body 30. Referring again to
[0033] In some applications, it may be preferable to separate functions of connector-assembly body 30 between a plurality of elements. For example, a first element for mounting collimating lens 32, a second element for holding fiber-connector 34, and a third element for sealing connector-assembly 26. The first and second elements would be references for optical and mechanical alignment. The third element may be installed after aligning and fixing collimating lens 32 and fiber-connector 34.
[0034] For reliability and convenience, all the elements of diode-laser pump module 20 may be packaged into a common enclosure (not shown). Such an enclosure would have connectors for external electrical connection and ports for external water connection.
[0035] The present invention is described above in terms of a preferred embodiment and other embodiments. The invention is not limited, however, to the embodiments described and depicted herein. Rather, the invention is limited only by the claims appended hereto.