A high-power laser energy homogenization and attenuation device

CN117031733BActive Publication Date: 2026-08-11ZHONGBEI UNIV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-08-17
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0005]本发明要解决的技术问题是:针对传统激光能量衰减装置无法连续调节大功率激光的问题,如何提出一种高功率激光能量均匀化衰减装置,要求能够长时间衰减功率密度20kW/cm2的高功率激光

Benefits of technology

[0025] This invention addresses the problems of small laser power attenuation amplitude, poor accuracy, and uneven output spot in current laser systems by proposing a high-power laser energy homogenization attenuation device.

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Abstract

This invention belongs to the field of laser application technology, specifically relating to a high-power laser energy homogenization and attenuation device. The laser energy attenuation cavity includes an inlet, an outlet, an exit lens group, and a monitoring component. The diffuse reflection sampling cavity includes an off-axis parabolic mirror, a light transmission channel, a diffuse reflection sleeve, and a homogenization lens group. The laser energy attenuation cavity is filled with a liquid that serves as both cooling water and attenuation medium, and is connected to an external water cooler through the inlet and outlet. The high-power laser is diffusely reflected inside the diffuse reflection sampling cavity by the off-axis parabolic mirror. A small portion of the energy is absorbed by the diffuse reflection sleeve, and the remaining energy is sampled spatially through the light transmission channel. The sampled laser is homogenized by the homogenization lens group, and the homogenized laser energy is then injected into the laser energy attenuation cavity, where its energy is absorbed by the attenuation liquid. This device can attenuate a power density of 20 kW / cm² for extended periods. 2 The high-power laser can continuously adjust the laser attenuation level, making it highly practical and meeting the needs of industrial production and scientific research.
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Description

Technical Field

[0001] This invention belongs to the field of laser application technology, and specifically relates to a high-power laser energy homogenization attenuation device. Background Technology

[0002] With the rapid development of science and technology, the demand for high-power lasers in modern industry and scientific research is constantly increasing. Some applications, such as surface treatment, laser etching of large-scale integrated circuits, and dynamic calibration of ultra-high temperature sensors, have high requirements for the attenuation amplitude and accuracy of the laser output. The control accuracy of the voltage controllers currently used with lasers cannot meet the requirements. Therefore, the development of laser power attenuation technology is of great significance for complex and rapid industrial production and scientific research.

[0003] Existing laser energy attenuation methods fall into two categories. One type adjusts the energy by changing the control voltage, but its adjustment precision is limited, it cannot continuously adjust the laser energy, and the laser energy output is uneven. The other type attenuates the laser energy step by step using multi-stage optical devices. This attenuation device is complex to build, and due to material limitations, it cannot perform long-term energy attenuation for high-power lasers. Therefore, achieving uniform laser energy output and continuous high-precision adjustment would greatly expand the application range of high-power lasers. Summary of the Invention

[0004] (a) Technical problems to be solved

[0005] The technical problem this invention aims to solve is: addressing the inability of traditional laser energy attenuation devices to continuously adjust high-power lasers, and proposing a high-power laser energy homogenization attenuation device capable of attenuating a power density of 20 kW / cm² over a long period. 2 High-power laser.

[0006] (II) Technical Solution

[0007] To solve the above-mentioned technical problems, the present invention provides a high-power laser energy homogenization attenuation device, the device comprising: a laser energy attenuation cavity 1 and a diffuse reflection sampling cavity 2, wherein the diffuse reflection sampling cavity 2 is installed inside the laser energy attenuation cavity 1 via an electrically controlled guide rail 3;

[0008] The laser energy attenuation cavity 1 is a cylindrical cavity filled with energy attenuation liquid;

[0009] The diffuse reflection sampling cavity 2 is moved left and right by the electrically controlled guide rail 3;

[0010] The diffuse reflection sampling cavity 2 includes: an off-axis parabolic mirror 8, a light transmission channel 9, a diffuse reflection sleeve 10, and a homogenizing lens group 11;

[0011] The off-axis parabolic reflector 8 disperses the incident laser into the diffuse reflection sleeve 10 by setting its position; the light transmission channel 9 is set inside the diffuse reflection sleeve 10 and is used to sample the spatial intensity of the dispersed laser.

[0012] The homogenizing lens group 11 is disposed at the front end of the light transmission channel 9 and includes a grating and a collimating lens group, used to convert divergent light into collimated light;

[0013] The laser energy attenuation cavity 1 also includes an output lens group 6, which is positioned opposite to the diffuse reflection sampling cavity 2 and is used to output focused laser or collimated laser.

[0014] The diffuse reflection sampling cavity 2 is installed inside the laser energy attenuation cavity 1 via an electrically controlled guide rail 3. The diffuse reflection sampling cavity 2 moves left and right on the electrically controlled guide rail 3 to adjust the attenuation amplitude, controlled by a stepper motor.

[0015] The laser energy attenuation cavity 1 includes an inlet 4 and an outlet 5 for the inflow and outflow of energy attenuation liquid, thereby enabling the attenuation medium to flow in or out of the cylindrical cavity.

[0016] The energy decay liquid includes deionized water or NaCl solutions of different concentrations.

[0017] The outgoing lens group 6 includes a grating and a focusing lens or window.

[0018] The laser energy attenuation cavity 1 also includes a monitoring component 7 for acquiring liquid temperature, humidity, and scattered light intensity.

[0019] The surface of the off-axis parabolic reflector 8 is plated with a gold film.

[0020] The cross-section of the light-transmitting channel 9 consists of several symmetrical circular holes.

[0021] The diffuse reflection sleeve 10 is used to diffusely reflect the incident laser by more than 90%.

[0022] The diffuse reflection sleeve 10 is made of aluminum, copper, or an aluminum-copper alloy, and the light-receiving surface of the material is first sandblasted and then gold-plated.

[0023] During operation, the high-power laser beam diverges through the off-axis parabolic reflector 8 and enters the diffuse reflection sampling cavity 2. A small portion of the energy is absorbed by the diffuse reflection sleeve 10 during diffuse reflection, while most of the energy is spatially sampled through the light transmission channel 9. The beam is then expanded by the homogenizing lens group 11, resulting in a lower power density and more uniform energy distribution. The laser then enters the laser energy attenuation cavity 1 and propagates through the attenuating liquid, where its energy is absorbed. Finally, the attenuated homogenized laser beam is output through the exit lens group 6. The energy attenuating liquid in the cavity attenuates the laser energy and also acts as cooling water to cool the diffuse reflection sampling cavity 2. The cavity is connected to an external water cooler through the inlet 4 and outlet 5.

[0024] (III) Beneficial Effects

[0025] This invention addresses the problems of small laser power attenuation amplitude, poor accuracy, and uneven output spot in current laser systems by proposing a high-power laser energy homogenization attenuation device.

[0026] Compared with existing technologies, the high-power laser energy homogenization and attenuation device provided by this invention involves the high-power laser beam passing through an off-axis parabolic mirror for diffuse reflection inside the diffuse reflection sampling cavity. A small portion of the energy is absorbed by the diffuse reflection sleeve, while the remaining energy is sampled spatially through a light-transmitting channel. The sampled laser beam is homogenized by a homogenization lens group. The homogenized laser beam then enters the laser energy attenuation cavity, where its energy is absorbed by the attenuation liquid. This attenuation liquid both attenuates the laser energy and acts as cooling water to cool the diffuse reflection sampling cavity. It is connected to an external water cooler through an inlet and outlet. The high-power laser energy homogenization and attenuation device provided by this invention has advantages such as simple setup, high adjustment precision, and large attenuation amplitude, and can homogenize and attenuate a power density of 20kW / cm² for extended periods. 2 High-power laser. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of a high-power laser energy homogenization and attenuation device according to an embodiment of the present invention;

[0028] Figure 2 This is a perspective view of a diffuse reflection sampling cavity according to an embodiment of the present invention;

[0029] Figure 3 This is a schematic diagram of the structure of a diffuse reflection sampling cavity according to an embodiment of the present invention.

[0030] Reference numerals in the attached figures: 1. Laser energy attenuation cavity; 2. Diffuse reflection sampling cavity; 3. Electrically controlled guide rail; 4. Water inlet; 5. Water outlet; 6. Outgoing lens group; 7. Monitoring component; 8. Off-axis parabolic mirror; 9. Light transmission channel; 10. Diffuse reflection sleeve; 11. Homogenization lens group. Detailed Implementation

[0031] To make the objectives, contents, and advantages of the present invention clearer, the specific embodiments of the present invention will be described in further detail below with reference to the accompanying drawings and examples.

[0032] To solve the above-mentioned technical problems, the present invention provides a high-power laser energy homogenization attenuation device, the device comprising: a laser energy attenuation cavity 1 and a diffuse reflection sampling cavity 2, wherein the diffuse reflection sampling cavity 2 is installed inside the laser energy attenuation cavity 1 via an electrically controlled guide rail 3;

[0033] The laser energy attenuation cavity 1 is a cylindrical cavity filled with energy attenuation liquid;

[0034] The diffuse reflection sampling cavity 2 is moved left and right by the electrically controlled guide rail 3;

[0035] The diffuse reflection sampling cavity 2 includes: an off-axis parabolic mirror 8, a light transmission channel 9, a diffuse reflection sleeve 10, and a homogenizing lens group 11;

[0036] The off-axis parabolic reflector 8 disperses the incident laser into the diffuse reflection sleeve 10 by setting its position; the light transmission channel 9 is set inside the diffuse reflection sleeve 10 and is used to sample the spatial intensity of the dispersed laser.

[0037] The homogenizing lens group 11 is disposed at the front end of the light transmission channel 9 and includes a grating and a collimating lens group, used to convert divergent light into collimated light;

[0038] The laser energy attenuation cavity 1 also includes an output lens group 6, which is positioned opposite to the diffuse reflection sampling cavity 2 and is used to output focused laser or collimated laser.

[0039] The diffuse reflection sampling cavity 2 is installed inside the laser energy attenuation cavity 1 via an electrically controlled guide rail 3. The diffuse reflection sampling cavity 2 moves left and right on the electrically controlled guide rail 3 to adjust the attenuation amplitude, controlled by a stepper motor.

[0040] The laser energy attenuation cavity 1 includes an inlet 4 and an outlet 5 for the inflow and outflow of energy attenuation liquid, thereby enabling the attenuation medium to flow in or out of the cylindrical cavity.

[0041] The energy decay liquid includes deionized water or NaCl solutions of different concentrations.

[0042] The outgoing lens group 6 includes a grating and a focusing lens or window.

[0043] The laser energy attenuation cavity 1 also includes a monitoring component 7 for acquiring liquid temperature, humidity, and scattered light intensity.

[0044] The surface of the off-axis parabolic reflector 8 is plated with a gold film.

[0045] The cross-section of the light-transmitting channel 9 consists of several symmetrical circular holes.

[0046] The diffuse reflection sleeve 10 is used to diffusely reflect the incident laser by more than 90%.

[0047] The diffuse reflection sleeve 10 is made of aluminum, copper, or an aluminum-copper alloy, and the light-receiving surface of the material is first sandblasted and then gold-plated.

[0048] During operation, the high-power laser beam diverges through the off-axis parabolic reflector 8 and enters the diffuse reflection sampling cavity 2. A small portion of the energy is absorbed by the diffuse reflection sleeve 10 during diffuse reflection, while most of the energy is spatially sampled through the light transmission channel 9. The beam is then expanded by the homogenizing lens group 11, resulting in a lower power density and more uniform energy distribution. The laser then enters the laser energy attenuation cavity 1 and propagates through the attenuating liquid, where its energy is absorbed. Finally, the attenuated homogenized laser beam is output through the exit lens group 6. The energy attenuating liquid in the cavity attenuates the laser energy and also acts as cooling water to cool the diffuse reflection sampling cavity 2. The cavity is connected to an external water cooler through the inlet 4 and outlet 5.

[0049] Example 1

[0050] Figure 1 This is a schematic diagram of a high-power laser energy homogenization and attenuation device according to an embodiment of the present invention, as shown below. Figure 1 As shown, an embodiment of the present invention provides a high-power laser energy homogenization and attenuation device, comprising: a laser energy attenuation cavity 1 and a diffuse reflection sampling cavity 2; wherein, the diffuse reflection sampling cavity 2 comprises: an off-axis parabolic mirror 8, a light transmission channel 9, a diffuse reflection sleeve 10, and a homogenization lens group 11.

[0051] The diffuse reflection sampling cavity 2 is installed inside the laser energy attenuation cavity 1 via an electrically controlled guide rail 3. It can be moved left and right on the guide rail to adjust the attenuation ratio by a stepper motor.

[0052] Based on the above embodiments, the high-power laser homogenization attenuation device further includes an inlet 4 and an outlet 5 for the inflow and outflow of energy attenuation liquid.

[0053] Based on the above embodiments, the high-power laser homogenization attenuation device also includes an output lens group 6 for outputting focused laser or collimated laser.

[0054] It should be noted that the exit lens group 6 includes an aperture stop and a collimating lens group.

[0055] Based on the above embodiments, the high-power laser homogenization attenuation device also includes a monitoring component 7 for acquiring temperature, humidity and scattered light intensity.

[0056] like Figure 2 As shown, the off-axis parabolic reflector 8 disperses the incident laser into the diffuse reflection sleeve by setting its placement position.

[0057] like Figure 3 As shown, the cross-section of the light-transmitting channel 9 consists of several symmetrical circular holes.

[0058] The diffuse reflection sleeve 10 is used to diffusely reflect more than 90% of the incident laser.

[0059] The diffuse reflection sleeve 10 is made of aluminum, copper, or an aluminum-copper alloy, which are highly thermally conductive. The light-receiving surface of the material is first sandblasted and then gold-plated.

[0060] It should be noted that the homogenizing lens group 11 includes a grating and a collimating lens group, which are used to convert diverging light into collimated light.

[0061] In this embodiment of the invention, a high-power laser beam diverges into the diffuse reflection sampling cavity 2 after passing through the off-axis parabolic reflector 8. A small portion of the energy is absorbed by the diffuse reflection sleeve 10 during the diffuse reflection process, while most of the energy is spatially sampled through the light transmission channel 9. The beam is then expanded by the homogenizing lens group 11, resulting in a lower power density and more uniform energy distribution. The laser beam then enters the laser energy attenuation cavity 1 and propagates through the attenuating liquid, where its energy is absorbed. Finally, the attenuated homogenized laser beam is output through the exit lens group 6. The energy attenuating liquid in the cavity attenuates the laser energy and also acts as cooling water to cool the diffuse reflection sampling cavity 2. The cavity is connected to an external water cooler through the water inlet 4 and the water outlet 5.

[0062] The high-power laser energy homogenization attenuation device provided in this embodiment of the invention can attenuate a power density of 20kW / cm² over a long period of time. 2 The high-power laser can continuously adjust the laser attenuation level, making it highly practical and able to meet the needs of industrial production and scientific research.

[0063] The above description is only a preferred embodiment of the present invention. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention.

Claims

1. A high-power laser energy homogenization and attenuation device, characterized in that, The device includes a laser energy attenuation cavity (1) and a diffuse reflection sampling cavity (2), wherein the diffuse reflection sampling cavity (2) is installed inside the laser energy attenuation cavity (1) via an electrically controlled guide rail (3); The laser energy attenuation cavity (1) is a cylindrical cavity filled with energy attenuation liquid; The diffuse reflection sampling cavity (2) is moved left and right by the electrically controlled guide rail (3); The diffuse reflection sampling cavity (2) includes: an off-axis parabolic mirror (8), a light transmission channel (9), a diffuse reflection sleeve (10), and a homogenizing lens group (11); The off-axis parabolic reflector (8) disperses the incident laser into the diffuse reflection sleeve (10) by setting its placement position; the light transmission channel (9) is set inside the diffuse reflection sleeve (10) and is used to sample the spatial intensity of the dispersed laser. The homogenizing lens group (11) is disposed at the front end of the light transmission channel (9), and includes a grating and a collimating lens group, used to convert divergent light into collimated light; The laser energy attenuation cavity (1) also includes an output lens group (6), which is positioned opposite to the diffuse reflection sampling cavity (2) and is used to output focused laser or collimated laser.

2. The high-power laser energy homogenization and attenuation device as described in claim 1, characterized in that, The diffuse reflection sampling cavity (2) is installed inside the laser energy attenuation cavity (1) via an electrically controlled guide rail (3). The diffuse reflection sampling cavity (2) moves left and right on the electrically controlled guide rail (3) to adjust the attenuation amplitude, controlled by a stepper motor.

3. The high-power laser energy homogenization and attenuation device as described in claim 1, characterized in that, The laser energy attenuation cavity (1) includes an inlet (4) and an outlet (5) for the inflow and outflow of energy attenuation liquid, so as to realize the inflow or outflow of attenuation medium in the cylindrical cavity.

4. The high-power laser energy homogenization and attenuation device as described in claim 1, characterized in that, The energy decay liquid includes deionized water or NaCl solutions of different concentrations.

5. The high-power laser energy homogenization and attenuation device as described in claim 1, characterized in that, The outgoing lens group (6) includes a grating and a focusing lens or window.

6. The high-power laser energy homogenization and attenuation device as described in claim 1, characterized in that, The laser energy attenuation cavity (1) also includes a monitoring component (7) for acquiring liquid temperature, humidity and scattered light intensity.

7. The high-power laser energy homogenization and attenuation device as described in claim 1, characterized in that, The surface of the off-axis parabolic mirror (8) is coated with a gold film.

8. The high-power laser energy homogenization and attenuation device as described in claim 1, characterized in that, The cross-section of the light-transmitting channel (9) consists of several symmetrical circular holes.

9. The high-power laser energy homogenization and attenuation device as described in claim 1, characterized in that, The diffuse reflection sleeve (10) is used to diffusely reflect more than 90% of the incident laser; the material of the diffuse reflection sleeve (10) is aluminum, copper or aluminum-copper alloy, and the light-receiving surface of the material is first sandblasted and then gold-plated.

10. The high-power laser energy homogenization and attenuation device as described in claim 1, characterized in that, During operation, the high-power laser diverges into the diffuse reflection sampling cavity (2) after passing through the off-axis parabolic reflector (8); a small portion of the energy is absorbed by the diffuse reflection sleeve (10) during the diffuse reflection process, and most of the energy is spatially sampled through the light transmission channel (9), and then expanded by the homogenizing lens group (11). The power density of the expanded laser is reduced and the energy distribution is more uniform. Then the laser enters the laser energy attenuation cavity (1) and propagates in the attenuating liquid, where its energy is absorbed by the attenuating liquid. Finally, the attenuated homogenized laser is output through the output lens group (6). The energy attenuating liquid in the cavity attenuates the laser energy and also acts as cooling water to cool the diffuse reflection sampling cavity (2). It is connected to the external water cooling system through the inlet (4) and outlet (5).

Citation Information

Patent Citations

  • High-power laser attenuator

    CN111208643A

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    JP2000019433A