Claims
- 1. A method for assessing whether a workpiece having an initial transmission of TINIT has been rendered weld-enabled as defined by a transmission drop ΔPRE to a pre-processed transmission TPRE within a welding zone, the method comprising the steps of:
providing a workpiece with a bulk portion and a surface extending across the bulk portion, wherein at least the surface is made from a first polymer which softens on heating; transmitting electromagnetic radiation toward the surface in the region of the expected welding zone to be tested; sensing electromagnetic radiation at a test wavelength passing through the surface of the workpiece and generating a signal representative of transmission; determining whether the sensed transmission signal is within a range of TPRE as an indication that an absorber dye possessing both strong absorption and a high extinction coefficient was deposited on or above said workpiece surface within the welding zone via a vehicle having necessary viscosity and which avoids undue interference with or occlusion of the welding zone; and certifying the workpiece weld-enabled for radiant energy welding wavelengths within a bandwidth range of the test wavelength.
- 2. The method of claim 1, wherein said certifying step comprises determining the bandwidth range as a function of the dye's absorption and extinction coefficient.
- 3. The method of claim 1, wherein said step of sensing comprises scanning across the surface of the workpiece to generate multiple signals representative of transmission; and
said determining step comprises determining whether the multiple scanned transmission signals are within a range of TPRE as an indication that the deposition comprises a generally uniform density of about 5 to about 3000 nanograms of dye per mm2 to provide predictable and consistent heating.
- 4. The method of claim 1, wherein said sensing step comprises sensing electromagnetic radiation at multiple test wavelengths and said certifying step comprises determining the bandwidth range as a function of said multiple test wavelengths.
- 5. The method of claim 1, wherein at least one of said multiple test wavelengths is in numerical proximity to the radiant energy welding wavelength.
- 6. The method of claim 1, wherein the transmission drop ΔPRE within the certified bandwidth is within a range from about a 10% transmission drop to a 0.9 times transmission drop.
- 7. The method of claim 1, additionally comprising the steps of:
transmitting electromagnetic radiation toward the surface remote from the region of the expected welding zone; sensing electromagnetic radiation at a further test wavelength passing through the remote surface of the workpiece and generating a further signal representative of transmission; determining whether the further sensed signal is withing a range of TINIT; and certifying the remote surface dye free.
- 8. A method for assessing whether a workpiece having an initial transmission of TINIT has been rendered weld-enabled as defined by a transmission drop ΔPRE to a pre-processed transmission TPRE within a welding zone, the method comprising the steps of:
providing a workpiece with a bulk portion and a surface extending across the bulk portion, wherein at least the surface is made from a first polymer which softens on heating; transmitting electromagnetic radiation toward the surface in the region of the expected welding zone to be tested; sensing electromagnetic radiation at a test wavelength within the visible spectrum passing through the surface of the workpiece and generating a signal representative of transmission; determining whether the sensed transmission signal is within a range of TPRE as an indication that an absorber dye possessing both strong absorption and a high extinction coefficient was deposited on or above said workpiece surface within the welding zone via a vehicle having necessary viscosity and which avoids undue interference with or occlusion of the welding zone; and certifying the workpiece weld-enabled for a radiant energy welding wavelength as a function of the dye's absorption and extinction coefficient.
- 9. The method of claim 8, wherein said test wavelength is within the blue portion of the visible spectrum.
- 10. The method of claim 8, wherein said test wavelength is within the red portion of the visible spectrum.
- 11. The method of claim 8, wherein said signal representative of transmission comprises a composite color profile signal.
- 12. The method of claim 8, wherein said radiant energy welding wavelength is within one of a visible spectrum, a near infrared spectrum and an infrared spectrum
- 13. A system for assessing whether a workpiece having an initial transmission of TINIT has been rendered weld-enabled as defined by a transmission drop ΔPRE to a pre-processed transmission TPRE within a welding zone wherein the workpiece has a bulk portion and a surface extending across the bulk portion in which at least the surface is made from a polymer which softens on heating, comprising:
a source of electromagnetic radiation for transmitting electromagnetic radiation toward the surface in the region of the expected welding zone to be tested; a sensor for sensing electromagnetic radiation at a test wavelength passing through the surface of the workpiece and generating a signal representative of transmission; and a system controller coupled to said sensor for determining whether the sensed transmission signal is within a range of TpR as an indication that an absorber dye possessing both strong absorption and a high extinction coefficient was deposited on or above said workpiece surface within the welding zone via a vehicle having necessary viscosity and which avoids undue interference with or occlusion of the welding zone, wherein said system controller comprising means for certifying the workpiece weld-enabled for radiant energy welding wavelengths within a bandwidth range of the test wavelength.
- 14. The system of claim 13, wherein said means for certifying comprises means for determining the bandwidth range as a function of the dye's absorption and extinction coefficients.
- 15. The system of claim 13, wherein said sensor scans across the surface of the workpiece to generate multiple signals representative of transmission;
said system controller determines whether the multiple scanned transmission signals are within a range of TPRE as an indication that the deposition comprises a generally uniform density of about 5 to about 3000 nanograms of dye per mm2 to provide predictable and consistent heating.
- 16. The system of claim 13, wherein said sensor senses electromagnetic radiation at multiple test wavelengths and said means for certifying comprises determining the bandwidth range as a function of said multiple test wavelengths.
- 17. The system of claim 13, wherein at least one of said multiple test wavelengths is in numerical proximity to the radiant energy welding wavelength.
- 18. The system of claim 13, wherein the transmission drop ΔPRE within the certified bandwidth is within a range from about a 10% transmission drop to a 0.9 times transmission drop.
- 19. The system of claim 13, wherein:
said source transmits toward the surface remote from the region of the expected welded zone; said sensor senses radiation at a further test wavelength passing through the remote surface and generates a further signal representative of transmission; said system controller determines whether the further sensed signal is within a range of TINIT; and said system controller comprises means for certifying the remote surface dye free.
- 20. A system for assessing whether a workpiece having an initial transmission of TINIT has been rendered weld-enabled as defined by a transmission drop ΔPRE to a pre-processed transmission TPRE within a welding zone wherein the workpiece has a bulk portion and a surface extending across the bulk portion in which at least the surface is made from a polymer which softens on heating, comprising:
a source of electromagnetic radiation for transmitting electromagnetic radiation toward the surface in the region of the expected welding zone to be tested; a sensor for sensing electromagnetic radiation at a test wavelength within the visible spectrum passing through the surface of the workpiece and generating a signal representative of transmission; and a system controller coupled to said sensor for determining whether the sensed transmission signal is within a range of TPRE as an indication that an absorber dye possessing both strong absorption and a high extinction coefficient was deposited on or above said workpiece surface within the welding zone via a vehicle having necessary viscosity and which avoids undue interference with or occlusion of the welding zone, wherein said system controller comprising means for certifying the workpiece weld-enabled for a radiant energy welding wavelength as a function of the dye's absorption and extinction coefficients.
- 21. The system of claim 20, wherein said test wavelength is within the blue portion of the visible spectrum.
- 22. The system of claim 20, wherein said test wavelength is within the red portion of the visible spectrum.
- 23. The system of claim 20, wherein said signal representative of transmission comprises a composite color profile signal.
- 24. The system of claim 20, wherein said remote radiant energy welding wavelength is within one of a visible spectrum, a near infrared spectrum and an infrared spectrum.
- 25. A method for assessing whether a weld-enabled workpiece, having a welding zone formed by a deposition of dye via a vehicle, has been properly or improperly welded to a material evidenced by a transmission gain ΔPOST from a workpiece-material transmission TZONE passing through the welding zone, to a post-processed transmission TPOST, the method comprising the steps of:
providing a workpiece and a material in contact with the workpiece; transmitting electromagnetic radiation toward the prior location of the welding zone to be tested; sensing electromagnetic radiation at a test wavelength passing through the workpiece, the prior location of the welding zone, and the material and generating a signal representative of transmission; determining whether the sensed transmission signal is within a range of TPOST as an indication that the dye has undergone vibronic relaxation followed by exothermic decomposition of at least a portion of said dye in response to inbound radiant energy at a welding wavelength over about 0.1 J/nu2; and certifying that the vehicle avoided undue interference with welding zone and that the workpiece and material are properly welded together.
- 26. The method of claim 25, wherein said certifying step comprises optically certifying that the vehicle avoided occlusion of the welding zone and that the dye exothermically decomposed into inert, invisible by-products and that the dye, the vehicle, the by-products and the portions of the workpiece and the material that were welded are mutually miscible.
- 27. The method of claim 26, wherein mutual miscibility comprises numerical proximity of the Hansen solubility parameters of the dye, the vehicle, the by-products and the portions of the workpiece and the material that were welded together.
- 28. The method of claim 25, wherein said providing step comprises providing a workpiece with a reflective boundary facing the material and providing a material with a reflective boundary facing the workpiece, and wherein the transmission through both reflective boundaries and the welding zone is represented by TZONE and wherein the transmission through both reflective boundaries and remote from the welding zone is represented by TREF.
- 29. The method of claim 28, wherein said determining step comprises determining if TPOST exceeds TREF as in indication that the reflective boundaries are fused together.
- 30. The method of claim 29, wherein said certifying step comprises certifying that TPOST exceeds TREF by about 10%.
- 31. The method of claim 29, wherein said certifying step comprises certifying that TPOST exceeds TREF by about 1.1 times.
- 32. The method of claim 29, wherein said certifying step comprises certifying that the photopic transmission through the weld exceeds the photopic transmission through both reflective surfaces.
- 33. The method of claim 29, wherein said certifying step comprises certifying that the photopic transmission through the weld exceeds the photopic transmission through both reflective surfaces by 10%.
- 34. The method of claim 29, wherein said certifying step comprises certifying that the photopic transmission through the weld exceeds the photopic transmission through both reflective surfaces by 1.1 times.
- 35. The method of claim 25, further comprising the steps of:
additionally determining whether the sensed transmission signal is within a range in between TZONE and TPOST a s an indication that at least a portion of the dye has undergone decomposition; and rejecting the workpiece and material as being improperly welded.
- 36. A system for assessing whether a weld-enabled workpiece having a welding zone formed by a deposition of dye via a vehicle, has been properly or improperly welded to a material as defined by a transmission gain ΔPOST from a workpiece-material transmission TZONE passing through the welding zone, to a post-processed transmission TPOST, comprising:
a source of electromagnetic radiation for transmitting electromagnetic radiation toward the workpiece and a material in contact with the workpiece in the prior location of the welding zone to be tested; a sensor for capturing electromagnetic radiation at a test wavelength passing through the workpiece, the prior location of the welding zone, and the material and generating a signal representative of transmission; and a controller for determining whether the sensed transmission signal is within a range of TPOST as an indication that dye has undergone vibronic relaxation followed by exothermic decomposition of at least a portion of said dye in response to inbound radiant energy at a welding N wavelength over about 0.1 J/mm2; and means for certifying that the vehicle avoided undue interference with welding zone and that the workpiece and material are properly welded together.
- 37. The system of claim 36, wherein said certifying means comprises means for optically certifying that the vehicle avoided occlusion of the welding zone and that the dye exothermically decomposed into inert, invisible by-products and that the dye, the vehicle, the by-products and the portions of the workpiece and the material that were welded are mutually miscible.
- 38. The system of claim 37, wherein mutual miscibility comprises numerical proximity of the Hansen solubility parameters of the dye, the vehicle, the by-products and the portions of the workpiece and the material that were welded together.
- 39. The system of claim 36, wherein said workpiece includes a reflective boundary facing the material and the material includes a reflective boundary facing the workpiece, and wherein the transmission through both reflective boundaries and the welding zone is represented by TZONE.
and wherein the transmission through both reflective boundaries and remote from the welding zone is represented by TREF.
- 40. The system of claim 39, wherein said determining step comprises determining if TPOST exceeds TREF as in indication that the reflective boundaries are fused together.
- 41. The system of claim 40, wherein said certifying step comprises certifying that TPOST exceeds TREF by about 10%.
- 42. The system of claim 40, wherein said certifying step comprises certifying that TPOST exceeds TREF by about 1.0 times.
- 43. The system of claim 40, wherein said certifying step comprises certifying that the photopic transmission through the weld exceeds the photopic transmission through both reflective surfaces.
- 44. The system of claim 40, wherein said certifying step comprises certifying that the photopic transmission through the weld exceeds the photopic transmission through both reflective surfaces by 1 0%.
- 45. The system of claim 40, wherein said certifying step comprises certifying that the photopic transmission through the weld exceeds the photopic transmission through both reflective surfaces by 1.1 times.
- 46. The system of claim 36, further comprising:
said controller additionally determining whether the sensed transmission signal is within a range between TZONE and TPOST as an indication that at least a portion of the dye has undergone decomposition; and means for rejecting the workpiece and material as being improperly welded.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 10/047,006 filed Jan. 15, 2002 entitled Pre-Processed Workpiece Having a Surface Deposition of Absorber Dye Rendering the Workpiece Weld-Enabled.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10047006 |
Jan 2002 |
US |
Child |
10150782 |
May 2002 |
US |