Efficient cleaning of pollutants on the optical lens surface is a very important and urgent research topic in the field of laser processing. Therefore, based on the free jet theory of fluid dynamics, the flow field characteristics of the optical system lens are theoretically analyzed and numerically simulated, and the flow field distribution of the lens surface and far field is given. And then, combined with the existing solid particle pollutants adhesion type, influence law and calculation model, the adhesion force of solid particles with different diameters is calculated quantitatively. According to the gas dynamic pressure distribution on the surface of optical elements, the effectiveness of solid particle blowing on the surface of optical elements is analyzed and evaluated. Finally, according to the secondary dust phenomenon of mirror free jet purging, the jet outlet size, downstream collection port size and jet velocity that affect the flow field distribution characteristics of the lens surface are optimized. Finally, a self-priming mirror jet purging structure without backflow is given, which effectively eliminates the secondary dust phenomenon caused by mirror purging.
Access to the requested content is limited to institutions that have purchased or subscribe to SPIE eBooks.
You are receiving this notice because your organization may not have SPIE eBooks access.*
*Shibboleth/Open Athens users─please
sign in
to access your institution's subscriptions.
To obtain this item, you may purchase the complete book in print or electronic format on
SPIE.org.
INSTITUTIONAL Select your institution to access the SPIE Digital Library.
PERSONAL Sign in with your SPIE account to access your personal subscriptions or to use specific features such as save to my library, sign up for alerts, save searches, etc.