Claims
- 1. A computer implemented method for designing energy deposition of infrared energy in order to braze two or more objects together, said method comprising:
(a) selecting said objects to be coupled through brazing and establishing initial conditions of relative geometry and material characteristics, (b) determining a first design of an optical system for directing heat energy onto said objects, (c) inputting said relative geometry and said first design of said optical system into an optical ray-tracing computer program to output a representation of heat energy input over said objects, (d) adjusting said geometry and material characteristics of said objects, and optical system design until a desired heat input representation over said objects is obtained.
- 2. The computer implemented method of claim 1, wherein establishing said initial conditions includes:
(e) determining a relative geometry between said objects, (f) determining a braze joint geometry, (g) selecting a braze filler material, (h) determining an initial time and temperature energy deposition profile based on said material characteristics, and (i) selecting a desired atmospheric environment.
- 3. The computer implemented method of claim 1, wherein determining said first design of said optical system includes:
(j) selecting a non-imaging infrared energy source, and (k) selecting a waveguide configuration of one or more waveguides to direct said energy source.
- 4. The computer implemented method of claim 1, wherein adjusting said first design of said optical system includes providing at least on change of:
(l) infrared energy source; (m) waveguide material of said one or more waveguides; and (n) configuration of said one or more waveguides.
- 5. A computer implemented method for designing energy deposition of infrared energy in order to thermally treat an object, said method comprising:
(a) selecting said object to be thermally treated and establishing initial conditions of relative geometry and material characteristics, (b) determining a first design of an optical system for directing heat energy onto said object, (c) inputting said relative geometry and said first design of said optical system into an optical ray-tracing computer program to output a representation of heat energy input over said object, (d) adjusting said geometry and material characteristics of said objects, and optical system design until a desired heat input representation over said object is obtained.
- 6. The computer implemented method of claim 5, wherein establishing said initial conditions includes:
(e) determining an initial time and temperature energy deposition profile based on said material characteristics, and (f) selecting a desired atmospheric environment.
- 7. The computer implemented method of claim 5, wherein determining said first design of said optical system includes:
(g) selecting a non-imaging infrared energy source, and (h) selecting a waveguide configuration of one or more waveguides to direct said energy source.
- 8. The computer implemented method of claim 5, wherein adjusting said first design of said optical system includes providing at least on change of:
(i) infrared energy source; (j) waveguide material of said one or more waveguides; and (k) configuration of said one or more waveguides.
RELATED APPLICATIONS
[0001] This application is a continuation-in-part of application Ser. No. 09/776,045, filed on Feb. 1, 2001, by Milewski et al, incorporated herein by reference for all purposes.
STATEMENT REGARDING FEDERAL RIGHTS
[0002] This invention was made with government support under Contract No. W-7405-ENG-36 awarded by the U.S. Department of Energy. The government has certain rights in the invention.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09776045 |
Feb 2001 |
US |
Child |
10425288 |
Apr 2003 |
US |