Apparatus and method for reducing thermal blooming in the optical subsystem of a high-energy laser.
The deoxygenation unit addresses thermal blooming in HELs by converting diatomic oxygen to a lower concentration using a combustion chamber, enhancing beam quality and operational readiness for HELs, suitable for mobile applications.
Patent Information
- Application Number
- JP2023564641
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-04-22
- Filing Date
- 2022-03-30
- Publication Date
- 2026-04-06
- Estimated Expiration
- 2042-03-30
AI Technical Summary
High-energy lasers (HELs) face thermal blooming due to diatomic oxygen absorption, which distorts the laser beam, and current nitrogen-based purging methods are cumbersome, limited in duration, and pose safety risks, while oxygen-deficient gas generation systems are unsuitable for mobile applications.
A deoxygenation unit comprising a fluid pump and a combustion chamber reduces thermal blooming by converting diatomic oxygen to a lower concentration using controlled combustion, supplying a deoxygenated fluid to the optical subsystem.
The deoxygenation unit effectively reduces thermal blooming by up to 82%, maintaining high beam quality and operational readiness without the need for nitrogen storage or large, heavy systems, suitable for mobile operations.
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Abstract
Description
[Technical Field]
[0001] This subject generally relates to high-energy lasers (HELs), and more specifically, to apparatus and methods for reducing thermal blooming in the optical subsystem of HELs. [Background technology]
[0002] Whether in the air, on land, or at sea, HELs provide the ability to accurately target objects at a certain distance. The effectiveness of an operational HEL largely depends on the HEL beam quality developed in the HEL's optical subsystem. Generally, prior to the implementation of the HEL's "ready" state, clean dry air (CDA) is introduced into the optical subsystem. Purge of the optical subsystem with CDA maintains positive pressure within the optical subsystem, reducing or preventing the introduction of contaminants into it. However, although feasible, CDA is not generally used as a purging agent during HEL irradiation because it contains a amount of diatomic oxygen that leads to a phenomenon known as "thermal blooming." This phenomenon results in the absorption of HEL energy by diatomic oxygen that generates heat, and undesirable distortion of the laser beam. One way to minimize / prevent thermal blooming is to use nitrogen instead of at least some of the diatomic oxygen in the gas introduced into the optical subsystem immediately before and during laser irradiation, resulting in a reduced concentration of diatomic oxygen that is replaced by nitrogen. While effective, the use of nitrogen presents other problems. First, nitrogen must be stored in containers and transported with the HEL. Generally, nitrogen containers must be transported by vehicle, or on or adjacent to the platform where the HEL is installed, and refilled at a depot, which can be problematic in remote or isolated operations. Current nitrogen containers can limit the operational use of the HEL to approximately three days. Once nitrogen is released from the container, the HEL can only operate at best in a reduced capacity until the container is refilled. Furthermore, high-pressure nitrogen containers degrade over time, and their contents can be released unexpectedly, creating projectiles that could injure workers. Moreover, even a slow leak from a high-pressure nitrogen container can create the potential for operator asphyxiation.
[0003] As an alternative to nitrogen, oxygen-deficient gases can be used as a purge fluid. While oxygen-deficient gases can be generated using numerous chemical or molecular separation systems, they are currently unsuitable for mobile applications because they require the systems to be oriented against gravity for proper operation. In addition, chemical or molecular separation systems are typically large, heavy, and require considerable power to operate. [Overview of the project] [Means for solving the problem]
[0004] According to one embodiment, a device for reducing thermal blooming in the optical subsystem of a HEL comprises a fluid pump that receives a first fluid containing diatomic oxygen at a first concentration, and a combustion chamber that burns the first fluid to produce a second fluid containing diatomic oxygen at a second concentration, the second concentration being lower than the first concentration, and the second fluid is supplied to the optical subsystem of the HEL.
[0005] In another embodiment, a method for operating a HEL having an optical subsystem includes the steps of supplying a first fluid containing diatomic oxygen to a combustion chamber at a first concentration; burning the first fluid in the combustion chamber to produce a second fluid containing diatomic oxygen at a second concentration lower than the first concentration; and supplying the second fluid to the optical subsystem of the HEL.
[0006] Other aspects and advantages will become apparent from the following detailed description and the accompanying drawings. Herein, similar reference numerals indicate similar structures throughout this specification. [Brief explanation of the drawing]
[0007] [Figure 1] Figure 1 is a block diagram of an exemplary system including the deoxygenation unit and the optical subsystem of the HEL. [Figure 2]Figure 2 is a flowchart of the programming performed by the control system in Figure 1 to implement an exemplary method according to one embodiment. [Modes for carrying out the invention]
[0008] Referring to Figure 1, the fluid supply system 100 includes a deoxygenation unit 102 that supplies deoxygenated fluid to the optical subsystem 104 of the HEL 106. More specifically, the deoxygenation unit 102 comprises a control system 108, a fluid pump 110, and a combustion chamber 112, which is preferably a catalytic combustion chamber. The system 102 further preferably includes a fuel storage tank 114, a control valve 116, and a fluid filter / dryer 118, which includes at least one filter device and at least one dryer. Further piping, valves, filter / dryer devices, and other equipment (not shown) may be used in the system 100.
[0009] As illustrated in Figure 1, the control system 108 of the deoxygenation unit 102 is coupled to the fluid pump 110, the combustion chamber 112, the control valve 116, and the HEL 106. The combustion chamber 112 is coupled to the fluid pump 110, the outlet port of the control valve 116, and the fluid filter / dryer 118. The control valve 116 further includes an inlet port coupled to the fuel storage tank 114, and fuel can be controlledly transferred from the fuel storage tank 114 to the combustion chamber 112 via the control valve 116. Furthermore, the fluid filter / dryer 118 is coupled to the optical subsystem 104 of the HEL 106. Advantageously, the deoxygenation unit 102 is relatively insensitive to changes in orientation, shock, vibration, or humidity levels during use.
[0010] During the operation of the HEL106, the control system 108 activates various components in one of the following states: standby, ready, and irradiation, as determined by signals supplied by automatic signaling devices or user operation signaling devices 119, 120, and 122. Standby state 119 is the default state when the HEL106 is operational, not ready for use, or not in use. Ready state 120 is operational when the HEL106 is ready for immediate irradiation. Irradiation state 122 is operational while the laser beam from the HEL106 is irradiating.
[0011] More specifically, during standby operation, the control system 108 operates the fluid pump 110 to draw in a first fluid from outside the fluid pump 110 and transfer the first fluid having a first diatomic oxygen concentration to the combustion chamber 112. The combustion chamber is deactivated during standby operation, and the first fluid is transferred to the fluid filter / dryer 118 to clean and dry the first fluid. The cleaned and dried first fluid is then supplied to the optical subsystem 104 to purge the HEL beam path of contaminants. In one embodiment, the fluid pump 110 is an air pump that pumps ambient air. The flow rate of the air pump may be about 0.25 L / min to 1.00 L / min, more preferably about 0.50 L / min to 1.00 L / min, and most preferably 1.00 L / min per 1.00 L of purge volume in the HEL 106.
[0012] During operation in the ready state, the control system 108 operates the fluid pump 110 to draw in the first fluid from outside the fluid pump 110 and transfer the first fluid to the combustion chamber 112. The flow rate of the fluid pump may be about 0.25 L / min to 1.00 L / min, more preferably about 0.50 L / min to 1.00 L / min, and most preferably 1.00 L / min per 1.00 L of purge volume in HEL 106. The control system operates the combustion chamber 112 to burn the first fluid in the combustion chamber 112. According to one embodiment, the size of the combustion chamber is about 5% of the HEL purge volume. The first fluid supplied to the combustion chamber 112 contains diatomic oxygen at a first concentration. In one embodiment, the first concentration of diatomic oxygen in the first fluid is about 19.5% to 23.5%, preferably about 21%. Furthermore, the control system 108 operates the control valve 116 to the open position, in which case fuel located in the fuel storage tank 114 is transferred from the fuel storage tank 114 to the combustion chamber 112 via the control valve 116. In one embodiment, the flow rate through the control valve 116 is approximately 6.25 × 10⁻¹⁶ L per 1.00 L of purge volume in the HEL 106. -5 L / min to 2.50 x 10 -4 It is L / min, more preferably about 1.25 × 10⁻⁶ -4 L / min to 2.50 x 10 -4 The rate is L / min, most preferably 2.50 × 10 -4is L / min. Combustion of the first fluid in the combustion chamber 112 rapidly generates a second deoxygenated fluid that includes a second concentration of diatomic oxygen where the concentration of diatomic oxygen in the second fluid is lower than the concentration of diatomic oxygen in the first fluid. In one embodiment, the second fluid may contain from about 0% to about 67% less diatomic oxygen, and more preferably from about 33% to 67% less diatomic oxygen. The second fluid is transferred to and acts on the fluid filter / dryer device 118, which reduces combustion by-products such as carbon monoxide, carbon dioxide, water vapor, unburned fuel, etc. that may be contained in the second fluid and that may distort the HEL beam. In one embodiment, the fluid filter / dryer device 118 can remove contaminants over 20 μm and reduce the dew point from about 100 °C to about -40 °C, most preferably to about -40 °C. After exiting the fluid filter / dryer device 118, the second fluid is supplied to the optical subsystem 104 to purge the HEL beam path of the optical subsystem 104.
[0013] When purging the beam path of the optical subsystem 104 with the second fluid, the control system 108 can operate the HEL 106 in an irradiating state to irradiate a laser beam through the optical subsystem 104. In an embodiment, the HEL beam can have a diameter from about 1 cm to about 10 cm and generate a peak power from about 10,000 W to about 1,000,000 W. The second fluid in the beam path having a lower diatomic oxygen concentration reduces the amount of HEL beam distortion by diatomic oxygen, resulting in less thermal blooming in the beam path of the HEL 106 and higher HEL beam quality. The relative reduction of diatomic oxygen is proportional to the relative reduction of thermal blooming during irradiation of the HEL beam from the HEL 106. For example, the relative reduction of thermal blooming is 1 - (SF O / FF O ) 2 where SF O is the diatomic oxygen concentration of the second fluid and FF O is the diatomic oxygen concentration of the first fluid. In one embodiment where the first fluid contains about 21% diatomic oxygen and the second fluid contains about 14% diatomic oxygen, the relative reduction in thermal blooming is about 56%.
[0014] In one embodiment, the relative substitution of thermal blooming can be further promoted when the combustion chamber 112 is a catalytic combustion chamber. Generally, catalytic combustion systems incorporate metals such as platinum to reduce hydrocarbon emissions such as carbon monoxide and unburned fuel. Combustion in the catalytic combustion chamber 112 produces and heats a second fluid, but in a flameless atmosphere. In one embodiment, the catalytic combustion chamber 112 produces a second fluid having a second diatomic oxygen concentration and heat quantity. In another embodiment, propane is stored in the fuel storage tank 114 and used as fuel in the combustion process in the catalytic combustion chamber. In this embodiment, the diatomic oxygen concentration of the second fluid is reduced to about 8.8%, and thermal blooming is reduced by about 82%. Generally, the deoxygenation unit 102 reduces thermal blooming by about 10% to about 82%, most preferably about 82%.
[0015] In one embodiment, the combustion process is performed only during operation in the ready and irradiated states to minimize fuel consumption for increased operational readiness. As described above, any combustible gas or liquid fuel can be stored in the fuel storage tank 114. In one embodiment, the fuel is jet fuel, liquid gasoline, or diesel fuel. In another embodiment, the fuel is any gas or liquid hydrocarbon, such as methane or propane. If the HEL106 is mounted on a powered vehicle, the fuel may be the same as that used for propulsion in the vehicle. Therefore, a dedicated fuel source or associated equipment is not required.
[0016] In another embodiment, when the fuel in the fuel storage tank 114 is depleted, the system 102 may use a clean, dry first fluid as a purge fluid, but can continue irradiating with the HEL beam in a degraded state until the fuel storage tank 114 can be replenished. As is evident from the foregoing, the degradation is directly related to the amount of diatomic oxygen present in the purge fluid.
[0017] Generally, the deoxygenation unit 102 can produce a second deoxygenated fluid having a second diatomic oxygen concentration between approximately -40°C and approximately 71°C. Furthermore, the system 102 can produce the second fluid at any atmospheric pressure or ambient pressure.
[0018] Furthermore, as will be apparent to those skilled in the art, any or all of the systems or components thereof described herein can be implemented using any combination of hardware and / or software. It will be understood and appreciated that one or more of the processes, subprocesses, and process steps described in relation to the drawings can be performed by hardware, software, or a combination of hardware and software on one or more electronically or digitally controlled devices. The software may reside, for example, in a suitable electronic processing component such as control system 108 or in software memory (not shown) within the system. The software memory may contain a sequence list of executable instructions for implementing logic functions (i.e., “logic” which can be implemented in digital form such as digital circuits or source code, or in analog form such as analog sources such as analog electrical signals, audio signals, or video signals). These instructions may be executed within control system 108, which may include, for example, one or more microprocessors, general-purpose processors, combinations of processors, digital signal processors (DSPs), field-programmable gate arrays (FPGAs), or application-specific integrated circuits (ASICs). The embodiments described in this application can be implemented in various configurations and can operate as hardware / software components within a single hardware / software unit or within separate hardware / software units.
[0019] An executable instruction can be implemented as a computer program product containing instructions that, when executed by a processing module of an electronic system, instruct the electronic system to execute that instruction. A computer program product can be selectively embodied in any non-temporary computer-readable storage medium for use by or in connection with an instruction execution system, device, or other system capable of selectively fetching and executing instructions from an instruction execution system, device, or other device. In the context of this specification, a computer-readable storage medium is any non-temporary means capable of storing a program for use by or in connection with an instruction execution system, device, or other device. Examples of non-temporary computer-readable storage media include electronic, magnetic, optical, electromagnetic, infrared, or semiconductor systems, devices, or equipment. A non-exhaustive list of more specific examples of non-temporary computer-readable media includes electrical connections having one or more wires (electronics), portable computer disks or diskettes (magnetic), random-access memory, i.e., volatile memory (electronics), read-only memory (electronics), erasable programmable read-only memory such as flash memory (electronics), compact disc memory such as CD-ROM, CD-R, CD-RW (optical), and digital multipurpose disc memory, i.e., DVD (optical).
[0020] It will also be understood that the reception and transmission of signals or data as used herein means that two or more systems or components can communicate with each other via signals traveling on a certain signal path. These signals can be communication, power, data, or energy signals that can communicate information, power, or energy along the signal path between the first and second systems or components from the first system or component to the second system or component. The signal path can include physical, electrical, magnetic, electromagnetic, electrochemical, optical, wired or wireless connections. The signal path may include additional systems or components between the first and second systems or components.
[0021] Figure 2 shows the operation of system 100. At step 200, system 100 starts up in a selected operating state. In one embodiment, system 100 is placed in an operating state when a movable device or a fixed device is engaged. For example, when HEL 106 and system 100 are carried by a mobile land vehicle, system 100 may be placed in an operating state when engaged with the vehicle engine. In another embodiment, system 100 is placed in an operating state when a switch, button, or other control is engaged, where the operator of HEL 106 can place system 100 in an operating state independent of the movable device or the fixed device. In one embodiment, the selected operating state may be the default standby state 119.
[0022] At step 202, control system 108 activates fluid pump 110 and control valve 116, and fluid pump 110 draws in a first fluid in the form of outside air from outside fluid pump 110 and transfers the first fluid having a first concentration of diatomic oxygen to non-operating combustion chamber 112.
[0023] In step 204, the first fluid is transferred from the non-operating combustion chamber 112 to the fluid filter / dryer 118, where the first fluid is cleaned and dried. When the cleaning and drying of the first fluid are completed, the first fluid is supplied to the optical subsystem 104 in step 206 to purge the contaminant HEL beam path. Although not shown, step 206 may be continuously performed for a selected period of time before performing subsequent steps to ensure an effective purge is achieved.
[0024] In step 208, the control system 108 detects the commanded state of the HEL 106. If the HEL 106 has not been commanded to execute the ready state and the combustion chamber 112 is not operating (step 222), the cleaned and dried first fluid is supplied to the optical subsystem 104 of the HEL 106. When the control system 108 detects that the HEL 106 has been commanded to operate in the ready state, the control system 108 commands the control valve 116 to take an open position, and fuel from the fuel storage tank 114 is transferred through the control valve 116 to the combustion chamber 112 to cause the combustion chamber 112 to be operated by the control system 108 (steps 210 and 212). The first fluid having a first concentration of diatomic oxygen drawn from the fluid pump 110 is burned in the combustion chamber 112 to produce a second fluid having a second concentration of diatomic oxygen, where the second concentration is lower than the first concentration of the first fluid.
[0025] In step 214, the second fluid is cleaned and dried by the fluid filter / dryer 118 and transferred to the optical subsystem 104 to purge the HEL beam path of the optical subsystem 104.
[0026] In step 216, the control system 108 detects whether an irradiation state has been commanded. If this is not the case, the second fluid continues to purge the contaminants of the optical subsystem 104 of the HEL 106. When an irradiation state has been commanded, in step 218, the HEL beam is irradiated through the purged beam path of the optical subsystem 104 containing the second fluid.
[0027] In step 220, the control system 108 detects whether the irradiation state is still commanded. If so, the HEL beam continues to irradiate through the optical subsystem 104 of the HEL 106. If the irradiation state is no longer commanded, the control system 108 returns to step 208. If the HEL 106 is commanded to perform the ready state, the control system 108 proceeds again to step 210. If the HEL 106 is not commanded to perform the ready state, the control system 108 determines that the combustion chamber 112 is activated (step 222), deactivates the combustion chamber 112 (step 224), and transfers a first fluid having a first diatomic oxygen concentration from the deactivated combustion chamber 112 to the fluid filter / dryer 118, where the first fluid is cleaned and dried. Once the cleaning and drying of the first fluid is complete, the first fluid is supplied to the optical subsystem 104 in step 206 to purge the HEL beam path of contaminants. [Industrial applicability]
[0028] In summary, the deoxygenation unit 102 generates a second fluid with de-diatomic oxygen through controlled combustion of a first fluid, thereby reducing thermal blooming inside the beam path of the HEL 106. The rapid, lightweight, and robust combustion to produce the second fluid from the first fluid can be performed over a wide range of temperatures, pressures, and flow rates, and therefore can improve existing HELs regardless of direction, providing a system that is not sensitive to shock, vibration, or humidity during use.
[0029] All documents, including publications, patent applications, and patents, cited herein are incorporated as part of this specification to the same extent as each document is individually and specifically identified, referenced and incorporated, and all its contents are described herein.
[0030] The use of the terms “a” and “an” and “said” and similar quotations in the context describing the invention (particularly in the context of the claims below) should be interpreted as covering both singular and plural forms, unless otherwise specifically suggested herein or unless it is clearly inconsistent with the context. Specific statements of numerical ranges in this specification are intended solely as abbreviations for referring individually to each value falling within that range, unless otherwise specifically noted herein, and each value is incorporated into the specification as if it were individually enumerated herein. All methods described herein may be performed in any preferred order, unless otherwise suggested herein or unless it is clearly inconsistent with the context. The use of any and all examples or exemplary language provided herein (e.g., “such as”) is merely for the purpose of clarifying the disclosure and does not limit the scope of the disclosure unless specifically asserted otherwise. No language in the specification should be interpreted as indicating any element not described in the claims that is essential to the practice of this disclosure.
[0031] Numerous modifications to this disclosure will be apparent to those skilled in the art, given the foregoing description. It should be understood that the illustrated embodiments are illustrative and should not be considered to limit the scope of the disclosure.
Claims
1. A fluid pump that receives a first fluid containing diatomic oxygen at a first concentration, The apparatus comprises a combustion chamber that burns the first fluid to produce a second fluid containing diatomic oxygen at a second concentration, An apparatus for reducing thermal blooming in the optical subsystem of a high-energy laser (HEL), wherein the second concentration is lower than the first concentration, and the second fluid is supplied to the optical subsystem of the HEL.
2. The apparatus according to claim 1, further comprising a fluid filter / drying device that provides fluid communication between the combustion chamber and the optical subsystem.
3. The apparatus according to claim 2, wherein the fluid filter / drying apparatus comprises a filter device and at least one of the at least one drying device, and the second fluid acts with the filter device and at least one of the at least one drying device.
4. The apparatus according to claim 1, wherein the first fluid is air.
5. The apparatus according to claim 1, wherein the fluid pump is an air pump.
6. The apparatus according to claim 1, wherein the combustion chamber is a catalytic combustion chamber.
7. The apparatus according to claim 1, further comprising a fuel storage tank and a control valve, wherein the control valve is coupled to the combustion chamber and the fuel storage tank.
8. The apparatus according to claim 7, further comprising the fuel in the fuel storage tank.
9. The apparatus according to claim 8, wherein the fuel is any gas or liquefied hydrocarbon.
10. A step of supplying a first fluid containing diatomic oxygen at a first concentration to a combustion chamber, The steps include burning the first fluid in the combustion chamber to produce a second fluid containing diatomic oxygen at a second concentration lower than the first concentration, The steps include supplying the second fluid to the optical subsystem of a high-energy laser (HEL), A method for operating a HEL having an optical subsystem, including the following.
11. The method according to claim 10, further comprising the step of transferring the second fluid to a fluid filter / drying device that is in fluid communication between the combustion chamber and the optical subsystem.
12. The method according to claim 10, wherein the first fluid is air.
13. The method according to claim 10, wherein the combustion chamber is a catalytic combustion chamber.
14. The method according to claim 10, further comprising the step of engaging a control system that is in fluid communication with the combustion chamber, wherein the input to the control system for the HEL is ready.
Citation Information
Patent Citations
Laser beam machine with gas-filled light guide chamber
JP1997099387A
Laser oscillator
JP2005217119A
Resonator box to laser cavity interface for chemical laser
US20040187697A1
Optical device, exposure system, and laser beam source, and gas feed method, exposure method, and device manufacturing method
WO2000031780A1