REG NASA-LLIS-0753-2000 Lessons Learned Integrated Optical Performance Modeling of X-Ray Systems.pdf
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1、Best Practices Entry: Best Practice Info:a71 Committee Approval Date: 2000-04-04a71 Center Point of Contact: MSFCa71 Submitted by: Wil HarkinsSubject: Integrated Optical Performance Modeling of X-Ray Systems Practice: To ensure that high resolution mirror assemblies for grazing incidence x-ray optic
2、al systems meet their requirements, image quality must be predicted during design and verified during fabrication by modeling the system for in-orbit and x-ray test configurations. Computer based modeling programs should be used to verify that both the initial design and the as-built configurations
3、will reliably produce the required image quality.Programs that Certify Usage: N/ACenter to Contact for Information: MSFCImplementation Method: This Lesson Learned is based on Reliability Practice No. PD-ED-1264; from NASA Technical Memorandum 4322A, NASA Reliability Preferred Practices for Design an
4、d Test.Benefit:The use of computer-based models for integrated x-ray optical performance modeling will provide an independent check of optical systems design and will ensure high quality optical systems by providing in-process verification of the fabrication process. These models can save time and m
5、oney in optical systems design and development, and should result in highly reliable x-ray imaging.Provided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-Implementation Method:Software has been developed and is being refined to model the images produced by
6、the grazing incidence optics of the Advanced X-ray Astrophysics Facility (AXAF-I) based on a number of optical system and mirror parameters. Commercial optical design and analysis programs are not tailored for grazing incidence mirror systems with their highly annular entrance apertures and cylindri
7、cally shaped mirrors. Analytical modeling is required to verify the design and to check fabrication in real time based on in-process mirror inspection metrology. A computer model has been developed that includes the effects of x-ray source position, x-ray source size, mirror figure errors, mirror su
8、rface roughness, mirror reflectivity, mirror alignment, and detector shape. Links are provided in the program to mirror surface metrology data and the mirror distortion predictions of standard structural analyses programs. Mirror figure errors are incorporated into a ray trace model by interpolating
9、 metrology data and structural model results onto a finely spaced grid. Individual surface parameters such as curvature and slope errors can also be applied to influence model results. The ray trace results can be convolved with the x-ray scattering predicted from the roughness of the mirror surface
10、s, and with the detector aperture shape and x-ray source size.An integrated, interactive program has been developed which will produce various two and three-dimensional image plots as well as parameters such as x-ray collecting area, root mean square image size, and image encircled energy distributi
11、on. This model is being developed as part of the AXAF-I project, but it is applicable to other grazing incidence x-ray optical systems. Figure 1 is an illustration of the Wolter I combined paraboloid/hyperboloid mirror system used for x-ray telescopes.refer to D descriptionD Provided by IHSNot for R
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