Claims
- 1. A laser method comprising:providing a lasing liquid in an optical laser cavity, optically exciting said lasing liquid in said optical cavity to provide a laser beam resulting in thermally induced optical phase errors, circulating said lasing liquid into and out of said optical cavity, and correcting the thermally induced optical phase errors.
- 2. The laser method of claim 1 wherein said step of correcting the thermally induced optical phase errors includes dividing the lasing liquid into two equal lengths along the laser propagation direction and placing the two lengths in series in the optical laser cavity.
- 3. The laser method of claim 2 wherein the lasing liquid in the two lengths is arranged to flow in opposite directions into and out of said optical cavity.
- 4. The laser method of claim 1 wherein said step of correcting the thermally induced optical phase errors includes using a mirror to reduce wavefront distortion.
- 5. A lasing method comprising:providing a flowing lasing liquid in an optical laser cavity, optically exciting said flowing lasing liquid in said optical cavity to provide a laser beam, said flowing lasing liquid resulting in thermally induced optical phase errors, circulating said flowing lasing liquid into and out of said optical cavity, and correcting the thermally induced optical phase errors.
- 6. The lasing method of claim 5 wherein said step of correcting the thermally induced optical phase errors includes dividing the lasing liquid into two equal lengths along the laser propagation direction and placing the two lengths in series in the optical laser cavity.
- 7. The laser method of claim 6 wherein the lasing liquid in the two lengths is arranged to flow in opposite directions into and out of said optical cavity.
- 8. The laser method of claim 5 wherein said step of correcting the thermally induced optical phase errors includes using a mirror to reduce wavefront distortion.
- 9. A laser system, comprising:an optical cavity, a lasing liquid within said optical cavity, a laser pumping device within said optical cavity that produces thermally induced optical phase errors, a circulation system for circulating said lasing liquid into and out of said optical cavity, and a system for correcting the thermally induced optical phase errors.
- 10. The laser system of claim 9 wherein said system for correcting the thermally induced optical phase errors includes a system for circulating said liquid lasing medium through a closed loop so that the flowing lasing liquid is divided into two equal lengths along the laser propagation direction and placed in series in the optical laser cavity with the fluid flows arranged in opposite directions.
- 11. The laser system of claim 9 wherein said system for correcting the thermally induced optical phase errors includes a system using a mirror to reduce wavefront distortion.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is directed to subject matter disclosed in co-pending U.S. patent application Ser. No. 09/691,506, entitled“METHOD FOR BEAM STEERING COMPENSATION IN AN ULTRA-HIGH POWER LIQUID LASER,” filed on Oct. 10, 2000, by inventor Earl R. Ault. The related application is commonly assigned to The Regents of the University of California. U.S. Patent application Ser. No. 09/691,506 was issued as U.S. Pat. No. 6,339,608 on Jan. 15, 2002. The terminal portion of any patent granted on the subject application beyond the expiration date of U.S. Pat. No. 6,339,608 is disclaimed in accordance with a Terminal Disclaimer filed in this application.
Government Interests
The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.
US Referenced Citations (4)