HIGH POWER SINGLE MODE FIBER LASER
20190058300 ยท 2019-02-21
Inventors
Cpc classification
G02B6/4296
PHYSICS
B23K26/064
PERFORMING OPERATIONS; TRANSPORTING
H01S3/005
ELECTRICITY
G02B6/421
PHYSICS
International classification
H01S3/00
ELECTRICITY
B23K26/064
PERFORMING OPERATIONS; TRANSPORTING
H01S3/30
ELECTRICITY
Abstract
A single mode (SM) high power laser system is configured with a laser source outputting a single mode or low mode kW-power light and a passive delivery fiber spliced to an output fiber of the fiber laser source and having a double bottleneck-shaped core. The latter is configured to increase a threshold for nonlinear effects in general and in particular for stimulated Raman scattering (SRS) so that the delivery passive fiber has a fiber length at least twice the length of a delivery passive fiber with a standard uniformly dimensioned core, which may be used with the same laser source, while outputting the kW-power light with an M2 factor less than 2.
Claims
1. A high power laser system, comprising: a laser source outputting a single mode (SM) or low mode kW-power light and having at least one fiber gain block which has an active fiber and an output SM passive fiber; a delivery passive fiber spliced to the output SM passive fiber of the laser source and configured to have a double bottleneck-shaped core which increases a threshold of nonlinear effects so that the delivery passive fiber has a fiber length at least twice the length of a delivery passive fiber with a standard uniformly dimensioned core, which is optionally used with the laser source, while outputting the kW-power light with an M.sup.2 factor less than 2.
2. The high power laser system of claim 1, wherein the laser source is configured to output the single mode or low mode light in a power range varying between 1 kW and 50 kW.
3. The high power laser system of any of the above claims, wherein the laser source is configured to output 1 kW-power light coupled into the passive delivery fiber with the double bottleneck-shaped core, the passive delivery fiber being configured with the length varying between 10 and 20 meters while emitting the 1 kW light with the M2 factor of about 1.05.
4. The high power laser system of claim 1 or 2, wherein the laser source is configured to output 2 kW-power light coupled into the passive delivery fiber which is configured to have the length of 4 meters while emitting the 2 kW light with the M2 factor of about 1.1.
5. The high power laser system of claim 1 or 2, wherein the laser source is configured to output 5 kW-power light coupled into the passive delivery fiber which is configured to have the length of 4 meters while emitting the 5 kW light with the M2 factor less than 1.2.
6. The high power laser system of claim 1 or 2, wherein the laser source is configured to output 10 kW-power light coupled into the passive delivery fiber which is configured to have the length of 2 meters while emitting the 10 kW light with the M2 factor of about 1.5.
7. The high power laser system of any of the above claims, wherein the double bottleneck-shaped core of the passive delivery fiber is monolithic and includes: an input end section receiving the kW power light from the laser source and an output end section, the input and output end sections each having a uniform diameter which is dimensioned to support a single mode, a uniformly-dimensioned central section located between and having a diameter greater than that of each of the input and output end sections of the core, the central section of the core being dimensioned to support multiple modes; and input and output tapered sections skirting from respective end sections towards respective opposite ends of the central section.
8. The high power laser system of claim 7, wherein the input and output end sections are configured to have identical dimensions or dissimilar dimensions.
9. The high power laser system of claim 7 or 8, wherein the output end section is shorter than the input end section and has a length varying between tens of centimeters and a few millimeters.
10. The high power laser system of of one above claims further comprising a laser head, wherein the passive delivery fiber includes a passive fiber extending between the output SM passive fiber of the laser source and the laser head, or a passive fiber between the laser head and a workpiece to be laser beam treated, or both.
11. The high power laser system of any of claims 1 to 10, wherein the gain block includes an input SM passive fiber and an active fiber, the active fiber having a downstream end coupled to an input end of the output SM passive fiber.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0008] The above and other features and advantages will become more readily apparent from the specific description of the present disclosure accompanied by the following drawings, in which:
[0009]
[0010]
[0011]
[0012]
[0013]
SPECIFIC DESCRIPTION
[0014] Reference will now be made in detail to the disclosed system. Wherever possible, same or similar reference numerals are used in the drawings and the description to refer to the same or like parts or steps. The drawings are in simplified form being far from precise scale. For purposes of convenience and clarity only, the terms connect, couple, and similar terms with their inflectional morphemes do not necessarily denote direct and immediate connections, but also include connections through mediate elements or devices.
[0015] Referring to
[0016] The system 10 thus includes a seed 12 outputting signal light which propagates through a fiber length including at least one amplifying stage which is configured with an input SM passive fiber 14, active fiber 16 and output SM passive fiber 18 together constituting a fiber gain block GB. The active fiber 16 may have a cylindrical or bottleneck-shaped core. The increased number of gain blocks GB allows higher output powers. Therefore, the power range of the disclosed system is reasonably unlimited since several SM systems 10 can be combined together so that the system power may vary in a 1-50 kW power range and higher. The high power SM signal light emitted from the GB is coupled into a fiber 20 guiding the signal light to a processing laser head 32 which is typically configured with a housing enclosing necessary optics. Sometimes, LH 32 may be configured such that an additional delivery 22 is needed to guide light from the laser head to the workpiece to be treated WP. Usually, fiber 20 is referred to as a feeding fiber while fiber 22 is typically called a delivery fiber. For the purposes of this disclosure, however, both fibers 20 and 22 are referred to as the delivery fiber.
[0017] As soon as the fiber laser industry realized the possibility of scaling SM fiber lasers, many efforts have been directed to perfecting active 16 and sometimes passive fibers 14, 18 constituting a gain block. Adhering to the main approach including increasing the core diameter and decreasing the fiber length, multi-kW powers in SM CW have been obtained due to the bottleneck-shaped active and passive fibers of the gain block. But delivery fiber 20 and/or 22 remains unaltered featuring a maximum uniform SM core diameter. In the past, to maintain an acceptable threshold for NLE in multi-kW systems with the desired M2 factor, a length of the delivery fiber was as short as possible. In contrast to the conventional wisdom, the inventive concept requires greater, not shorter, lengths of delivery fiber 20, 22.
[0018] Referring to
[0019] The increased diameter of central section 26 allows a threshold for NLE in general and SRS in particular to increase. With the increased diameter, however, not only the length of delivery fiber 20 (and/or 22) is increased, but the M.sup.2 factor of the output light, when comparing structures of respective
TABLE-US-00001 Max Length with M2 M2 Max Length with disclosed disclosed Power standard feed standard delivery delivery fiber delivery kW fiber fiber (m) (m) fiber 1 ~1.05 5 10-20 ~1.05 2 NA NA 4 ~1.1 5 NA NA 4 1.2 10 NA NA 2 1.5
[0020] As can be seen, the objective of the present inventiongreater lengths of delivery fiberis attained without sacrificing the quality of light. Moreover, with the help of the disclosed delivery fiber, the power of fibers laser systems is scaled up without sacrificing the quality of output light which was not possible in the near past became reality. The fiber lasers systems of up to 10 kW were tested and found fully operational. When used with a standard, cylindrically shaped delivery fiber, the same very fiber laser systems each had the output with M2 factor incomparably higher than that with the disclosed delivery fiber. In fact M2 and power losses in laser system provided with a standard delivery fiber practically were found to be nonoperational.
[0021] Note that the gain block GB has the same basic configuration as shown in
[0022]
[0023] Returning to
[0024] Although there has been illustrated and described in specific detail and structure of operations it is clearly understood that the same were for purposes of illustration and that changes and modifications may be made readily therein by those skilled in the art without departing of the spirit and the scope of this invention. For example, the inventive feed fiber may be used to deliver pulsed light.