Apparatus for combining laser beams in optical fibers, and corresponding method
11133638 · 2021-09-28
Assignee
Inventors
Cpc classification
G02B6/4296
PHYSICS
G02B6/262
PHYSICS
B23K26/0626
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An apparatus comprises a multi-clad fiber that includes a light-guiding core surrounded by at least a cladding layer, and an input interface including a first set of input channels in the core configured to receive a first optical fiber, and a second set of input channels in the cladding layer configured to receive a second optical fiber. The apparatus further includes an optical switch module having an input port, a first and a second output port, a first optical path between the input port and the first input channel, and a second optical path between the input port and a second input channel in the second set of input channels. The optical switch module is controllable to switch between the first and the second optical paths. The apparatus also includes a set of laser modules.
Claims
1. An apparatus, comprising: a multi-clad fiber comprising a light-guiding core surrounded by at least a further cladding layer around said guiding core, an input interface comprising a first set of input channels in said light-guiding core configured to receive at least a first optical fiber and a second set of input channels in said at least cladding layer configured to receive at least a second optical fiber, an optical switch module comprising: i) an input port, ii) a first and a second output port, iii) a first optical path between said input port and said first input channel in said first set of input channels in said core via said first output port, and iv) at least a second optical path between said input port and a second input channel in said second set of input channels in said at least one guiding cladding layer via said second output port, said optical switch module being controllable to switch between said first optical path and said second optical path, a set of laser modules comprising at least a first laser module and at least a second laser module, said laser modules being configured to emit respective laser beams when in a respective power-on state, said at least first laser module being coupled to an input channel in said first set of input channels via said at least first optical fiber, said at least second laser module being coupled to said optical switch module.
2. The apparatus of claim 1, wherein: said first optical path comprises at least an optical fiber portion and said second optical path comprises at least an optical fiber portion, said first and second optical path in said optical switch module are alternatively selectable controlling an adjustable optical component in said optical switch module.
3. The apparatus of claim 1, wherein said at least second laser module is coupled to said optical switch module via a fourth optical fiber.
4. The apparatus of claim 1, wherein the apparatus comprises a plurality of laser modules coupled to respective input channels in a plurality of input channels in said first set of input channels in said core in said multi-clad fiber.
5. The apparatus of claim 1, wherein: said selectable first optical path intercepts said adjustable optical element oriented in a first position, said second optical path does not intercepts said adjustable optical element oriented in a second position.
6. The apparatus of claim 1, wherein said set of optical components further comprises: a) a first collimating lens, b) said adjustable element comprises a mirror adjustable between said first position and said second position, c) a mirror, d) a first focusing lens, e) a second focusing lens, wherein: said first optical path is defined between said input port, said first collimating lens, said adjustable mirror oriented in said first position, said mirror, said first focusing lens and said first output port, and said second optical path is defined between said input port, said first collimating lens, said adjustable mirror oriented in said second position, said second focusing lens and said second output port.
7. The apparatus of claim 1, wherein the apparatus comprises a confining cladding layer around the core, whose refraction index (n.sub.2) is lower than a refraction index (n.sub.1) of said core, and said cladding layer whose refraction index (n.sub.3) is higher than the refraction index (n2) of said confining cladding layer, which is interposed between said core and said cladding layer.
8. The apparatus of claim 1, wherein said multi-clad fiber comprises at least a third cladding layer.
9. The apparatus of claim 1, wherein said multi-clad fiber comprises a sequence of cladding layers around the core with respective progressively decreasing refractive indexes.
10. The apparatus of claim 6, wherein said adjustable mirror comprises an actuator and a control mode of said actuator.
11. A method for generating a laser beam with wavefront profile selection in an apparatus according to claim 1, wherein said wavefront profile selection comprises: selecting a respective power-on state of respective said at least first laser module and said at least second laser module in said set of laser modules, selecting alternatively one of said first and second optical path in said optical switch module.
12. The method of claim 11, comprising: selecting said first optical path in said optical switch module, selecting said power-on state of said at least first laser module in said set of laser modules.
13. The method of claim 11, comprising: selecting said second optical path in said optical switch module, and selecting said power-on state of said at least a second laser module in said set of laser modules.
14. The method of claim 12, further comprising selecting said power-on state of said at least a second laser module in said set of laser modules.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) One or more embodiments will now be described, purely by way of example, with reference to the annexed drawings, wherein:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF EXAMPLES OF EMBODIMENTS
(6) In the ensuing description, one or more specific details are illustrated, in order to enable an in-depth understanding of examples of embodiments of the present disclosure. The embodiments may be provided without one or more of the specific details or with other methods, components, materials, etc. In other cases, known operations, materials, or structures are not illustrated or described in detail in such a way that certain aspects of the embodiments will not be obscured.
(7) Reference to “an embodiment” or “one embodiment” in the framework of the present description is intended to indicate that a particular configuration, structure, or characteristic described with reference to the embodiment is included in at least one embodiment. Likewise, phrases such as “in an embodiment” or “in one embodiment”, and the like, that may be present in one or more points of the present description do not necessarily refer to one and the same embodiment.
(8) Moreover, particular conformations, structures, or characteristics may be combined in any adequate way in one or more embodiments.
(9) The references used herein are provided merely for convenience and hence do not define the sphere of protection or the scope of the embodiments.
(10)
(11) The double-clad optical fiber 10, as shown by way of example in
(12) It is pointed out that the ensuing description, albeit referring to a double-clad optical fiber 10, may be extended to a generic multi-clad fiber.
(13) In general, the multi-clad fiber 10 to which the solution as per the present disclosure relates comprises a light-guiding core 12, surrounded by at least one light-guiding cladding layer, that is the cladding layer 16. There may be present also further light-guiding or light-confining layers, with different ratios between the respective refractive indices according to the different structures available of known multi-clad fibers.
(14) In the exemplified embodiments there is also the confining cladding layer 14, wherein such a confining cladding layer 14 surrounding the core 12 has a refractive index n.sub.2 lower than a refractive index n.sub.1 of the core 12, and the guiding cladding layer 16 has a refractive index n.sub.3 higher than the refractive index n.sub.2 of the confining cladding layer 14, which is set between the core 12 and the guiding cladding layer 16.
(15) In various embodiments, the first refractive index n.sub.1 and the third refractive index n.sub.3, of the core 12 and of the second cladding layer 16, respectively, which have functions of guiding laser radiation, are in general higher than the values of the indices n.sub.2, n.sub.4 of the first cladding layer 14 and of the third cladding layer 18, respectively. In this context, moreover, the first refractive index n.sub.1 and the third refractive index n.sub.3 are preferably the same as one another. Also, the second refractive index n.sub.2 and the fourth refractive index n.sub.4 may be the same or different, their value being, in any case, lower than that of the first refractive index n.sub.1 and higher than that of the second refractive index n.sub.2 to be able to contain the laser radiation.
(16) Multi-clad fibers suitable for the apparatus and method described herein may present a sequence of cladding layers around the core 12 with progressively decreasing respective refractive indices, for example n.sub.1>n.sub.2>n.sub.3>n.sub.4.
(17) The double-clad fiber 10, or more in general a multi-clad fiber, may comprise a further protective layer (not visible in the figure) that surrounds the layered structure of the fiber 10, for example a protective sheath made of silicone or some other synthetic material.
(18) In other various embodiments, instead of the third cladding layer 18 there may be the protective layer. In other various embodiments, the third cladding layer 18 is configured, via its refractive index, so as to operate as a confining layer.
(19) One or more light beams can be propagated within the core 12 and/or the second cladding layer 16 in the fiber 10 via total internal reflection (TIR).
(20) It is noted that, albeit represented as having concentric circular sections in the example of
(21)
(22) It is noted that, even though in the example of
(23) The input channels 122, 124, 126, 128 and 162, 164, 166 can extend along the longitudinal axis of the section of multi-clad fiber 10 in the coupler 10A, the set of input channels 122, 124, 126, 128 and 162, 164, 166 having the function of housing, that is coupling optical fibers.
(24) As represented in
(25) The dual-clad fiber 10 is configured a laser beam to provide at the output end that propagates in the fiber, in particular propagating starting from at least one between the first laser module LM120 and the second laser module LM140, that is when at least one of the two is in a power-on state, that is switched on, as discussed in the following.
(26) In one embodiment, further laser modules may be coupled to further input channels, for example, one for each of the channels 126, 128 of the core, so that a high-power laser beam can be supplied at output once the modules are in a respective power-on state.
(27)
(28) For instance, the optical switch 200 comprises: a first collimating lens E; a first movable reflecting surface A, for example an orientable mirror Am; a second reflecting surface, for example an oriented mirror B; and a first focusing lens G and a second focusing lens F.
(29) The free-space portion of the first optical path OPcff that goes from the input port 210 to the first output port 224 comprises: the first focusing lens E; the adjustable mirror A oriented at 45° with respect to the direction of propagation of the beam coming from the lens E; the oriented mirror B parallel to the adjustable mirror A with the reflecting surfaces that reflect towards one another; and the first focusing lens G.
(30) The free-space portion of the second optical path OPrff comprises: the input coupler 210; the first collimating lens E; and the second focusing lens F,
(31) with the adjustable mirror A set parallel to the direction of propagation of the beam coming from the lens E so as not to intercept it.
(32) In this way, the electromagnetic radiation emitted by the fiber 140f of the second laser module LM140 follows the following optical paths:
(33) a) a first optical path OPcff: it is directed towards the lens E, then reaches the lens F, and then reaches the input channel 164 of the cladding layer 16; and
(34) b) a second optical path OPrff: if the mirror A is located on the optical path described in point a), then the electromagnetic radiation is reflected towards the mirror B and then reflected towards the focusing lens G and towards the input channel 124 of the core 12.
(35) This solution facilitates to have a power that can be scaled between the core and the cladding, and moreover to inject all the power into the core so as to have a quasi-Gaussian mode, an annular mode, or a combination of the two.
(36) The optical properties of the above laser beam supplied by the double-clad fiber 10 may be varied. In particular, it is possible to obtain at least three output laser beam wave-front profiles, as exemplified in
(37) In a variant embodiment, one or more of the first optical path OPc and the second optical path OPr may be entirely obtained with optical fiber, i.e., also the respective portions here described as “portions in free space” OPcff, OPrff may comprise one or more parts made of optical fiber or be entirely made of optical fiber. In other words, in this variant embodiment, the apparatus described herein comprises an optical-fiber switch, without any free-space portions, and the apparatus may hence be defined as full-glass apparatus, that is completely made of optical fiber.
(38) There now follows a description of a method for generating a laser beam with selection of the wave-front profile in an apparatus 100 for combining laser beams in optical fibers.
(39) In general, a method for varying the parameters of a laser beam emitted by one end of a multi-clad fiber, in particular for selecting the wave-front profile, in an apparatus 100, such as the one described with reference to
(40) With reference to
(41) Once again with reference to
(42) For instance, a profile of a mixed type L.sub.M, which can be associated to 100% of the power, can be obtained via: switching on the first module LM120; and selecting the second optical path OPr in the switch 200, and switching on the second module LM140.
(43) Then, multiple intermediate combinations can be obtained via selecting a percentage of the maximum power of the first module LM120 and of the second module LM140.
(44) In a variant embodiment, a certain number of modules can be connected to the fibers 122 of the core 12, whereas a certain number of modules can be connected to the fibers 164 of the cladding layer 16 with the aid of one or more optical switches.
(45) Hence, from the discussion in the foregoing, advantages of the solution emerge clearly presented.
(46) The apparatus and method described facilitate, as compared to the solutions that envisage directing the output of some of the laser modules that usually constitute a high-power fiber laser into the core or into the cladding, not to abandon the possibility to use of all the power that can be emitted by the laser when it is desired to use a beam only at low BPP (propagation in the core) or else only at high BPP (propagation in the cladding) typical of the second method.
(47) The apparatus and method discussed herein, in this regard, present the advantages of the coupling solutions via optical devices of the power in the core of in the cladding of the fiber, without envisaging only to direct the total available laser power alternatively in the core or in the cladding.
(48) The apparatus and method described make it easier to obtain improved functions, for example a power that can be scaled between two or more concentric areas of a multi-clad fiber.
(49) The apparatus and method described enable to facilitate easier distribution of the power of one or more laser beams in a first core of a multi-clad fiber.
(50) The apparatus and method described enable to facilitate obtaining a laser profile of a quasi-Gaussian type, an annular type, or a mixture of the two, for example enabling passage from one profile to the other in a flexible way.
(51) The apparatus and method described make it possible to obtain more easily a distribution of part of the power in the core and part of the power in the cladding.
(52) One or more embodiments afford both the advantages of the coupling solutions using optical devices and the flexibility in distribution of the power in the core or in the cladding of a delivery fiber of lasers, facilitating the possibility of directing the output of part of the laser modules that usually constitute a high-power laser into the core or into the cladding without the limitations of either of the two solutions. An advantage of one or more embodiments is the possibility of using the totality of the power that can be emitted by the laser at low BPP, for example even in the absence of a step of “switching” of all of the high power provided by the laser.
(53) Without prejudice to the underlying principles, the details and the embodiments may vary, even appreciably, with respect to what has been described, purely by way of example, without thereby departing from the scope of protection. The scope of protection is defined by the annexed claims.
(54) One or more embodiments may manage the power of the individual module, for example by means of a switch, so as to solve the problem of managing all the power directly in the fiber itself.