LASER HEAD CAPABLE OF DYNAMICALLY REGULATING LASER SPOT BY HIGH FREQUENCY/ULTRAHIGH FREQUENCY MICRO-VIBRATION
20210373347 · 2021-12-02
Assignee
Inventors
- Xiuquan Ma (Wuhan, CN)
- Tianyu Xu (Wuhan, CN)
- Gaoyang Mi (Wuhan, CN)
- Shaowei Zhou (Wuhan, CN)
- Xinyu SHAO (Wuhan, CN)
Cpc classification
B23K26/082
PERFORMING OPERATIONS; TRANSPORTING
G02B27/0933
PHYSICS
H01S3/005
ELECTRICITY
B23K26/064
PERFORMING OPERATIONS; TRANSPORTING
B23K26/0869
PERFORMING OPERATIONS; TRANSPORTING
G02B27/0916
PHYSICS
International classification
G02B27/09
PHYSICS
B23K26/06
PERFORMING OPERATIONS; TRANSPORTING
B23K26/082
PERFORMING OPERATIONS; TRANSPORTING
G02B19/00
PHYSICS
Abstract
Disclosed is a laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration, including a laser transmitting device, a cavity, a special electromechanical module and a shielded nozzle. The laser transmitting device is disposed at the top of the cavity. A first protective glass and a collimating lens are sequentially disposed from top to bottom within the cavity. The special electromechanical module is disposed at the bottom of the cavity and connected to the cavity by means of a housing. A focusing lens is further disposed within the housing of the special electromechanical module, and a flat spring is disposed between the focusing lens and the special electromechanical module. The special electromechanical module can cause ultrahigh frequency micro-oscillation of the focusing lens. The shielded nozzle is disposed at the bottom of the special electromechanical module.
Claims
1. A laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration, comprising: a laser transmitting device, a cavity, a special electromechanical module and a shielded nozzle, wherein the laser transmitting device is disposed at the top of the cavity to emit laser into the cavity through an entrance port formed in the top of the cavity; a first protective glass and a collimating lens are sequentially disposed from top to bottom within the cavity; the special electromechanical module is disposed at the bottom of the cavity and connected to the cavity by means of a housing; light holes are formed in the top and bottom of the housing of the special electromechanical module, respectively; a focusing lens is further disposed within the housing of the special electromechanical module, and a flat spring is disposed between the focusing lens and the special electromechanical module; the special electromechanical module is capable of causing ultrahigh frequency micro-oscillation of the focusing lens; and the shielded nozzle is disposed at the bottom of the special electromechanical module.
2. The laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration according to claim 1, wherein an optical fiber end cap is disposed between the laser transmitting device and the cavity.
3. The laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration according to claim 1, wherein the special electromechanical module is a voice coil motor; a lens holder for the focusing lens is connected to a live coil of the voice coil motor; the flat spring is connected to a housing of the voice coil motor; when a high-frequency alternating current is applied to the live coil, a magnetic field generated by the live coil interacts with a magnetic field of a permanent magnet to induce a high frequency periodic force for acting on the focusing lens, which is also simultaneously acted upon by the force of the flat spring; driven by the two forces, the focusing lens spins like a satellite at an ultrahigh frequency.
4. The laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration according to claim 1, wherein the special electromechanical module is a vibration exciter.
5. The laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration according to claim 1, wherein a second protective glass is further disposed at an internal bottom end of the housing of the special electromechanical module.
6. The laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration according to claim 1, wherein the entrance port, the first protective glass, the collimating lens, the light holes, the focusing lens and the second protective glass are disposed concentrically.
7. The laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration according to claim 1, wherein the light emitted by the laser transmitting device is a Gaussian beam having a wavelength ranging from 1030 to 1080 nm.
8. The laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration according to claim 1, wherein the collimating lens has a diameter greater than a cross-section size of the Gaussian beam at a position where the lens is located so as to encompass the entire beam within a refraction range.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] To describe the technical solutions in examples of the present disclosure or in the prior art more clearly, the accompanying drawings required for describing the examples will be briefly described below. Apparently, the accompanying drawings in the following description show merely some examples of the present disclosure, and a person of ordinary skill in the art may still derive other drawings from these accompanying drawings without creative efforts.
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] In the drawings, what reference numerals denote are: 1-laser transmitting device, 2-incident light, 3-collimating lens, 4-collimated beam, 5-focusing lens, 6-flat spring, 7-special electromechanical module, 8-cavity, 9-first protective glass, 10-focused laser beam, 11-second protective glass, 12-shielded nozzle, 13-laser focusing plane, 14-optical fiber end cap, 15-voice coil motor housing, 16-live coil, and 17-magnet.
DETAILED DESCRIPTION
[0030] The technical solutions in examples of the present disclosure will be described below clearly and completely with reference to the accompanying drawings in the examples of the present disclosure. Apparently, the described examples are merely a part rather than all of the examples of the present disclosure. All other examples derived from the examples in the present disclosure by a person of ordinary skill in the art without creative efforts shall fall within the protection scope of the present disclosure.
[0031] An objective of the present disclosure is to provide a laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration to solve the problems in the prior art.
[0032] To make the foregoing objective, features, and advantages of the present disclosure clearer and more comprehensible, the present disclosure will be further described in detail below with reference to the accompanying drawings and specific examples.
[0033] A laser head capable of dynamically regulating a laser spot by high frequency/ultrahigh frequency micro-vibration in this embodiment, as shown in
[0034] In this embodiment, an optical fiber end cap 14 is disposed between the laser transmitting device 1 and the cavity 8. The optical fiber end cap 14, which is a high power device processed and designed with regard to output end faces of a high power fiber laser device and an amplifier, can reduce the optical power density at the output end by expanding an output beam. Moreover, with the design of a special end face angle, echo reflection by the end face is significantly reduced (better than -35 dB). The optical fiber end caps 14 can be applied to output ends of laser devices (amplifiers) having high power which can be high peak power or high average power, resulting in minimal distortion of output beams.
[0035] The special electromechanical module 7 in this embodiment can be chosen as a voice coil motor (as shown in
[0036] The special electromechanical module 7 in this embodiment can also be chosen from a vibration exciter and other electromechanical devices that can apply a high frequency periodic acting force to other objects, serving to apply a high frequency periodic acting force to the optical fiber end cap 14, the focusing lens 5 or the collimating lens in the horizontal plane, causing the optical fiber end cap 14, the focusing lens 5 or the collimating lens to circumferentially revolve around a center at a high frequency within the horizontal plane without spinning itself.
[0037] In this embodiment, a second protective glass 11 is further disposed at the internal bottom end of the housing of the special electromechanical module. The second protective glass 11 has a particular thickness of 1-6 mm and serves to prevent contaminants such as particulate matters from entering the special electromechanical module, ensuring that the electromechanical module and the focusing lens 5 operate in a clean environment and are free from contamination.
[0038] In this embodiment, the entrance port, the first protective glass 9, the collimating lens 3, the light holes, the focusing lens 5 and the second protective glass 11 are disposed concentrically, so that the collimated laser can be exactly directed to the center of the static focusing lens 5.
[0039] In this embodiment, the laser transmitting device 1 can transmit continuous laser with particular power. The transmitted laser is a Gaussian beam having a wavelength ranging from 1030 to 1080 nm that serves as an energy source for flexible laser processing.
[0040] The collimating lens 3 has a diameter greater than a cross-section size of the Gaussian beam at a position where the lens is located so as to encompass the entire beam within a refraction range. The collimating lens 3 is capable of adjusting an incident beam to a parallel beam which basically does not diverge in the transmission process and is transmitted to the focusing lens 5 in parallel. The lens is a common high transmittance lens and can stand the laser power of at least 15000 watts.
[0041] The diameter of a collimated beam 4 depends on the NA value of an optical fiber that generates incident light 2 and a distance between a laser emitting point and the plane of the collimating lens, and may not exceed the maximum diameter of the working faces of the collimating lens and the focusing lens 5.
[0042]
[0043] The flat spring 6, the cross section of which is as shown in
[0044] The first protective glass 9 has a particular thickness of 1-6 mm and serves to prevent particulate matters and the like from contact with the lenses below and protect the lenses and the cavity 8 from contamination.
[0045] A focused laser beam 10 vibrates at the same frequency with the focusing lens 5 and may finally be focused into a minimum diameter spot in the focal plane.
[0046] The shielded nozzle 12 is mounted under the special electromechanical module 7 and serves to prevent splashes generated when laser acts on a workpiece from entering the cavity 8 and the electromechanical module above, allowing for a clean environment for operation.
[0047] A laser focusing plane 13 has a diameter d (d ranges from 10 to 100 μm) when the spot is static. When the focusing lens 5 operates, a spot as shown in
[0048] The present disclosure first proposes a new method for changing the equivalent spot diameter, which can ensure that the power density basically does not decrease and can permit real-time changing of the spot diameter during laser processing, thereby realizing smart workpiece processing and achieving good processing effect. The special electromechanical module 7 is employed to cause ultrahigh frequency micro-oscillation between 0 and D (e.g., D is equal, but not limited, to 500 μm) of any one of the focusing lens 5, the collimating lens and the optical fiber end cap 14, with an oscillation frequency ranging from 1 kHz to 30 kHz. The system and method are applicable to laser processing occasions requiring a varying optical fiber core diameter, such as laser cutting, laser welding, and laser additive and subtractive manufacturing. The oscillation form of any one of the focusing lens 5, the collimating lens and the output optical fiber is that it revolves at an ultrahigh frequency around an axis parallel to its axis without spinning itself.
[0049] Specific embodiments are used herein to explain the principles and implementations of the present disclosure. The description of the foregoing examples is merely intended to help understand the method of the present disclosure and the core ideas thereof. Moreover, various modifications can be made by those of ordinary skill in the art to the specific implementations and the scope of application in accordance with the ideas of the present disclosure. In conclusion, the contents of this specification shall not be construed as limitations to the present disclosure.