Claims
- 1. A process of detecting whether one or more components are properly positioned in a composite article, the process comprising:
irradiating the composite article with infrared radiation; producing an image from infrared radiation received from the irradiated composite article; identifying a position of a first variation in the produced image corresponding to an edge position of a first component in the composite article; and comparing the identified position with predetermined position data to thereby determine whether the first component is properly positioned in the composite article.
- 2. The process of claim 1 wherein the identified position is a relative position, and wherein comparing includes comparing the identified relative position to predetermined relative position data to thereby determine whether the first component is properly positioned in the composite article.
- 3. The process of claim 2 wherein identifying includes identifying a position of a second variation in the produced image corresponding to an edge position of a second component in the composite article, and identifying the position of the first variation in the produced image relative to the position of the second variation.
- 4. The process of claim 3 wherein the composite article is a disposable absorbent article.
- 5. The process of claim 1 wherein irradiating includes irradiating a first side of the composite article with the infrared radiation, and wherein producing includes producing the image from infrared radiation received from a second side of the irradiated composite article opposite the first side.
- 6. A composite article processed using the process of claim 1.
- 7. The composite article of claim 6 wherein the composite article is a disposable absorbent article.
- 8. A process of detecting whether components of a composite article are properly positioned with respect to one another, each component at least partially inhibiting infrared radiation from passing therethrough, the process comprising:
irradiating the composite article with infrared radiation; producing an image from infrared radiation received from the irradiated composite article; identifying positions of variations in the produced image, including identifying a position of a first variation in the produced image corresponding to an edge position of a first component in the composite article, and identifying a position of a second variation in the produced image corresponding to an edge position of a second component in the composite article; and comparing at least one of the identified positions with predetermined position data to thereby determine whether the first component and the second component are properly positioned with respect to one another in the composite article.
- 9. The process of claim 8 wherein identifying includes identifying the position of the first variation in the produced image relative to the position of the second variation, and wherein comparing includes comparing the identified relative position of the first variation with predetermined relative position data to thereby determine whether the first component and the second component are properly positioned with respect to one another in the composite article.
- 10. The process of claim 8 wherein the first component overlies the second component.
- 11. The process of claim 8 wherein the composite article includes at least the first component, the second component, and a third component, wherein identifying includes identifying a position of a third variation in the produced image corresponding to an edge position of the third component in the composite article, and wherein comparing includes comparing at least two of the identified positions with predetermined position data to thereby determine whether the first component, the second component, and the third component are properly positioned with respect to one another in the composite article.
- 12. The process of claim 11 wherein the second component is disposed between the first component and the third component.
- 13. The process of claim 8 wherein the first variation and the second variation are contrast variations.
- 14. The process of claim 8 wherein the image is a still two-dimensional image.
- 15. The process of claim 8 wherein the composite article is a disposable absorbent article.
- 16. The process of claim 15 wherein the second component is a fastener component.
- 17. The process of claim 16 wherein the fastener component is one of a hook component and a loop component of a hook-and-loop fastener.
- 18. The process of claim 15 wherein irradiating includes irradiating the composite article with infrared light having a wavelength in a range of about 700-1200 nanometers.
- 19. The process of claim 18 wherein irradiating includes irradiating the composite article with infrared light having a wavelength of about 940 nanometers.
- 20. The process of claim 8 wherein irradiating includes irradiating a first side of the composite article with the infrared radiation, and wherein producing includes producing the image from infrared radiation received from a second side of the irradiated composite article opposite the first side.
- 21. The process of claim 8 wherein irradiating includes irradiating one side of the composite article with the infrared radiation, and wherein producing includes producing the image from infrared radiation received from said one side of the irradiated composite article.
- 22. A composite article processed using the process of claim 8.
- 23. The composite article of claim 22 wherein the composite article is a disposable absorbent article.
- 24. A system for detecting whether one or more components are properly positioned in a composite article, the system comprising:
an infrared radiation source for irradiating the composite article with infrared radiation; an infrared detector for producing an image from infrared radiation received from one side of the irradiated composite article; an image analyzer operatively connected to the infrared detector for identifying a position of a first variation in the produced image corresponding to an edge position of a first component in the composite article; and a comparator operatively connected to the image analyzer for comparing the identified position with predetermined position data to thereby determine whether the first component is properly positioned in the composite article.
- 25. The system of claim 24 wherein the image analyzer is configured for identifying the position of the first variation as a relative position, and wherein the comparator is configured for comparing the identified relative position to predetermined relative position data to thereby determine whether the first component is properly positioned in the composite article.
- 26. The system of claim 25 wherein the image analyzer is configured for identifying a position of a second variation in the produced image corresponding to an edge position of a second component in the composite article, and for identifying the position of the first variation in the produced image relative to the position of the second variation.
- 27. The system of claim 24 wherein the infrared radiation source and the infrared detector are each positioned on said one side of the composite article.
- 28. The system of claim 24 wherein the infrared detector is positioned on said one side of the composite article and the infrared radiation source is positioned on an opposite side of the composite article.
- 29. The system of claim 24 wherein the first component underlies the second component.
- 30. The system of claim 24 wherein the composite article includes a third component, and wherein the second component is disposed between the first component and the third component.
- 31. The system of claim 24 wherein the image analyzer comprises a programmable digital computer.
- 32. A composite article processed using the system of claim 24.
- 33. The composite article of claim 32 wherein the composite article is a disposable absorbent article.
- 34. A process of detecting a presence or a position of at least a first component in a composite article, the process comprising:
irradiating the composite article with incident radiation, the first component having a predefined response to the incident radiation; detecting infrared radiation received from the irradiated composite article; and identifying the predefined response of the first component in the detected infrared radiation to thereby detect the presence or the position of the first component.
- 35. The process of claim 34 wherein the first component includes an infrared marker which provides or contributes to the predefined response of the first component.
- 36. The process of claim 34 wherein the first component absorbs or reflects at least some of the incident radiation.
- 37. The process of claim 34 wherein the first component fluoresces in response to the incident radiation.
- 38. The process of claim 37 wherein the incident radiation has a first wavelength, and the first component fluoresces in response to the incident radiation at a second wavelength different than the first wavelength.
- 39. The process of claim 38 wherein detecting includes filtering the infrared radiation received from the composite article to remove radiation having the first wavelength.
- 40. The process of claim 34 wherein detecting includes producing an image from the infrared radiation received from the irradiated composite article, and wherein identifying includes identifying the predefined response of the first component in the produced image to thereby detect the position of the first component.
- 41. The process of claim 40 wherein the produced image is a two dimensional image.
- 42. The process of claim 40 wherein the produced image is a three dimensional image.
- 43. The process of claim 42 wherein detecting includes detecting infrared radiation received from the irradiated composite article via a first infrared detector at a first position and a second infrared detector at a second position, and producing a three dimensional image from infrared radiation detected via the first infrared detector and the second infrared detector.
- 44. The process of claim 40 further comprising comparing the detected position of the first component with reference data to thereby determine whether the first component is properly positioned in the composite article.
- 45. The process of claim 44 wherein the detected position of the first component is an edge position.
- 46. The process of claim 34 wherein the composite article includes a second component having a predefined response to the incident radiation, and wherein identifying includes identifying the predefined response of the second component in the detected infrared radiation to thereby detect a presence or a position of the second component in the composite article.
- 47. The process of claim 46 wherein detecting includes producing an image from the infrared radiation received from the irradiated composite article, and wherein identifying includes identifying the predefined response of the first component in the produced image to thereby detect the position of the first component and identifying the predefined response of the second component in the produced image to thereby detect the position of the second component.
- 48. The process of claim 47 further comprising comparing the detected position of the first component and the detected position of the second component with reference data to thereby determine whether the first component and the second component are properly positioned in the composite article.
- 49. The process of claim 47 wherein identifying includes detecting the position of the first component relative to the position of the second component, and further comprising comparing the detected relative position with reference data to thereby determine whether the first component is properly positioned relative to the second component in the composite article.
- 50. The process of claim 46 wherein the predefined response of the first component is different than the predefined response of the second component.
- 51. The process of claim 50 wherein detecting includes detecting infrared radiation received from the irradiated composite article via a first infrared detector and a second infrared detector, and wherein identifying includes identifying the predefined response of the first component in infrared radiation detected by the first infrared detector and identifying the predefined response of the second component in infrared radiation detected by the second infrared detector.
- 52. The process of claim 50 wherein the first component includes an infrared marker which provides or contributes to the predefined response of the first component.
- 53. The process of claim 52 wherein the second component includes an infrared marker which provides or contributes to the predefined response of the second component.
- 54. The process of claim 34 wherein detecting includes filtering the infrared radiation received from the irradiated composite article to remove predefined wavelengths.
- 55. The process of claim 34 wherein the composite article is a disposable absorbent article.
- 56. A composite article processed using the process of claim 34.
- 57. The composite article of claim 56 wherein the composite article is a disposable absorbent article.
- 58. A system for detecting a presence of at least a first component in a composite article, the system comprising:
a radiation source for irradiating the composite article with incident radiation, the first component having a predefined response to the incident radiation; an infrared detector for detecting the predefined response of the first component in infrared radiation received from the irradiated composite article to thereby detect the presence of the first component.
- 59. The system of claim 58 wherein the composite article includes a second component having a predefined response to the incident radiation, and wherein the infrared detector is configured to detect the predefined response of the second component in infrared radiation received from the irradiated composite article to thereby detect a presence of the second component in the composite article.
- 60. The system of claim 59 wherein the infrared detector includes a first infrared detector for detecting the predefined response of the first component in infrared radiation received from the irradiated composite article, and a second infrared detector for detecting the predefined response of the second component in infrared radiation received from the irradiated composite article.
- 61. The system of claim 60 wherein the first infrared detector includes a filter for removing predefined wavelengths from infrared radiation received from the irradiated composite article.
- 62. A composite article processed using the system of claim 58.
- 63. The composite article of claim 62 wherein the composite article is a disposable absorbent article.
- 64. A system for detecting a presence or a position of at least a first component in a composite article, the system comprising:
a radiation source for irradiating the composite article with incident radiation, the first component having a predefined response to the incident radiation; an infrared detector for producing an image from infrared radiation received from the irradiated composite article; and an image analyzer operatively connected to the infrared detector for identifying the predefined response of the first component in the produced image to thereby detect the presence or the position of the first component.
- 65. The system of claim 64 wherein the composite article includes a second component having a predefined response to the incident radiation, and wherein the image analyzer is configured to identify the predefined response of the second component in the produced image to thereby detect a presence or a position of the second component in the composite article.
- 66. The system of claim 65 wherein the infrared detector includes a first infrared detector for detecting a first range of infrared radiation and a second infrared detector for detecting a second range of infrared radiation.
- 67. The system of claim 66 wherein the first infrared detector includes a filter for removing predefined wavelengths from infrared radiation received from the irradiated composite article.
- 68. The system of claim 64 wherein the radiation source includes a plurality of radiation sources positioned for irradiating the composite article.
- 69. The system of claim 68 wherein the radiation source emits infrared radiation.
- 70. A composite article processed using the system of claim 64.
- 71. The composite article of claim 70 wherein the composite article is a disposable absorbent article.
- 72. A process of detecting a distribution of components in a composite article, the process comprising:
irradiating the composite article with incident radiation, said components having a predefined response to the incident radiation; detecting infrared radiation received from the irradiated composite article; producing an image from the detected infrared radiation; identifying a pattern in the produced image formed by the predefined response of said components; and comparing the identified pattern with reference data to thereby determine whether said components are properly distributed in the composite article.
- 73. The process of claim 72 wherein said components each include an infrared marker for providing or enhancing the predefined response.
- 74. The process of claim 73 wherein the composite article is a disposable absorbent article.
- 75. The process of claim 74 wherein said components are absorbent particles.
- 76. A composite article processed using the process of claim 72.
- 77. The composite article of claim 76 wherein the composite article is a disposable absorbent article.
- 78. A system for detecting a distribution of components in a composite article, the system comprising:
a radiation source for irradiating the composite article with incident radiation, said components having a predefined response to the incident radiation; an infrared detector for producing an image from infrared radiation received from the irradiated composite article; an image analyzer operatively connected to the infrared detector for identifying a pattern in the produced image formed by the predefined response of said components; and a comparator for comparing the identified pattern with reference data to thereby determine whether said components are properly distributed in the composite article.
- 79. The system of claim 78 wherein said components each include an infrared marker for providing or enhancing the predefined response.
- 80. The system of claim 79 wherein the composite article is a disposable absorbent article.
- 81. The system of claim 80 wherein said components are absorbent particles.
- 82. The system of claim 78 wherein the comparator is configured to perform a pattern matching function.
- 83. A composite article processed using the system of claim 78.
- 84. The composite article of claim 83 wherein the composite article is a disposable absorbent article.
- 85. A process of detecting a concentration of components in a composite article, the process comprising:
irradiating the composite article with incident radiation, said components having a predefined response to the incident radiation; measuring the predefined response of said components to the incident radiation; and comparing the measured response with reference data to thereby determine the concentration of said components in the composite article.
- 86. The process of claim 85 wherein said components each include an infrared marker for providing or enhancing the predefined response.
- 87. The process of claim 86 wherein the composite article is a disposable absorbent article.
- 88. The process of claim 87 wherein said components are absorbent particles.
- 89. A composite article processed using the process of claim 85.
- 90. The composite article of claim 89 wherein the composite article is a disposable absorbent article.
- 91. A process of detecting a distribution of components in a composite article, the process comprising:
irradiating the composite article with incident radiation, said components each having a predefined response to the incident radiation; measuring a level of infrared radiation received from each of a plurality of regions of the irradiated composite article; and comparing the measured level of infrared radiation for each of the plurality of regions with reference data to thereby determine whether said components are properly distributed in the composite article.
- 92. The process of claim 91 wherein measuring includes producing an image of the irradiated composite article, defining said regions of the irradiated composite article in the produced image, and measuring a grayscale level for each of said defined regions in the produced image.
- 93. The process of claim 92 wherein measuring the grayscale level includes measuring an average grayscale level for each of said defined regions in the produced image.
- 94. The process of claim 91 wherein said components each include an infrared marker for providing or enhancing the predefined response.
- 95. The process of claim 91 wherein the composite article is a disposable absorbent article.
- 96. The process of claim 95 wherein said components are absorbent particles.
- 97. A composite article processed using the process of claim 91.
- 98. The composite article of claim 97 wherein the composite article is a disposable absorbent article.
- 99. A process for detecting whether one or more components are properly positioned in a composite article, the process comprising:
treating one or more components of the composite article with an infrared blocker to increase the absorption or reflection of infrared radiation by the blocked component; irradiating the composite article with infrared radiation; producing an image from the near infrared or infrared radiation received from the irradiated composite article; identifying a position of a first variation in the produced image which represents an edge position of a first component in the composite article; and comparing the identified position with predetermined position data to thereby determine whether the first component is properly positioned in the composite article.
- 100. The process as set forth in claim 99 wherein the infrared blocker is an absorption infrared blocker that has an absorption peak maximum of from about 750 nm to about 1200 nm.
- 101. The process as set forth in claim 99 wherein the infrared blocker is an absorption infrared blocker that has an absorption peak maximum of from about 750 nm to about 1150 nm.
- 102. The process as set forth in claim 99 wherein the infrared blocker is an absorption infrared blocker that has an absorption peak maximum of from about 775 nm to about 1050 nm.
- 103. The process as set forth in claim 99 wherein the infrared blocker is an absorption infrared blocker that has an extinction coefficient from about 1×104 L/mol cm to about 5×105 L/mol cm.
- 104. The process as set forth in claim 99 wherein the infrared blocker is an absorption infrared blocker that has an extinction coefficient from about 5×104 L/mol cm to about 3×105 L/mol cm.
- 105. The process as set forth in claim 99 wherein the infrared blocker is an absorption infrared blocker that is selected from the group consisting of water soluble absorption infrared blockers, solvent soluble absorption infrared blockers, and metal complex absorption infrared blockers.
- 106. The process as set forth in claim 99 wherein the infrared blocker is an absorption infrared blocker having the chemical formula:
- 107. The process as set forth in claim 99 wherein the infrared blocker is an absorption infrared blocker selected from the group consisting of C32H36ClN2I, C32H36Cl2N2O4, C44H60ClN2I, C36H44ClN2I, C36H44Cl2N2O4, C31H34Cl2N2O4, C34H40N2O6Cl2, C54H54N2O4S, C35H42ClN2I, C35H42Cl2N2O4, C31H34Cl2N2O4, C37H42F3ClN2O2, C40H40ClN2I, C42H44ClN2I, C52H64ClN2I, C59H71Cl2N2SO3, C53H52N2O3S2, C47H47ClN2O3S, C46H45ClN2O3S, C37H35ClN2O3S, C36H40ClN2I, C62H96N6SbF6,C36H40Cl2N2O4,C55H54ClO6, C47H39ClO6, C49H42ClO6, C62H92N6Sb2F12, C62H92N6Sb2F12, C52H44Cl2O6, C38H46ClN2O6S2Na, C43H47N2O6S2Na, C44H52N3O6S3Na, C36H44ClN2O6S2Na, C42H49N2O6S3Na, C46H51ClN2O6S2Na, C45H48ClN2O6S2Na, C28H40Cl4NS4Ni, C28H38Cl6NS4Ni, C32H28S4Ni, C32H26O4S4Cl2Ni, C30H48NS4Ni, C32H28O4S4Ni, and C32H30N2S4Ni.
- 108. The process as set forth in claim 99 wherein the infrared blocker is an absorption infrared blocker having a molecular weight from about 450 g/mol to about 1450 g/mol.
- 109. The process as set forth in claim 99 wherein the infrared blocker is an absorption infrared blocker having a molecular weight from about 600 g/mol to about 825 g/mol.
- 110. The process as set forth in claim 99 wherein at least about 10 parts per billion of the infrared blocker is added to the component.
- 111. The process as set forth in claim 99 wherein at least about 10 parts per million of the infrared blocker is added to the component.
- 112. The process as set forth in claim 99 wherein the infrared blocker is a reflecting infrared blocker.
- 113. The process as set forth in claim 112 wherein the reflecting infrared blocker is a multilayer reflective film.
- 114. The process as set forth in claim 112 wherein the reflecting infrared blocker is a light scattering compound.
- 115. A process for preparing a component for use in a composite disposable absorbent garment, the process comprising:
introducing an infrared blocker into or onto the component, the infrared blocker being capable of improving the detection of the blocked component when the composite article is subjected to an infrared inspection system.
- 116. The process as set forth in claim 115 wherein the infrared blocker is introduced into the component for use in the composite disposable absorbent garment by introducing the blocker directly into a polymer and mixing the blocker and polymer together and molding or extruding the polymer and blocker mixture to produce the component.
- 117. The process as set forth in claim 115 wherein the infrared blocker is introduced into the component for use in the composite disposable absorbent garment by dissolving the blocker into a solvent and introducing the solvent containing the dissolved blocker into a polymer and molding or extruding the polymer to produce the component.
- 118. The process as set forth in claim 115 wherein the infrared blocker is introduced into the component for use in the composite disposable absorbent garment by mixing the blocker with a carrier compound and applying the carrier compound and blocker mixture directly to the component.
- 119. The process as set forth in claim 115 wherein the infrared blocker is introduced into the component for use in the composite disposable absorbent garment by combining the blocker with a carrier resin and heating the combination to create a molten solution and applying the molten solution directly to the component.
- 120. The process as set forth in claim 115 wherein the infrared blocker is an absorption infrared blocker that has an absorption peak maximum of from about 750 nm to about 1200 nm.
- 121. The process as set forth in claim 115 wherein the infrared blocker is an absorption infrared blocker that has an absorption peak maximum of from about 750 nm to about 1150 nm.
- 122. The process as set forth in claim 115 wherein the infrared blocker is an absorption infrared blocker that has an absorption peak maximum of from about 775 nm to about 1050 nm.
- 123. The process as set forth in claim 115 wherein the infrared blocker is an absorption infrared blocker that has an extinction coefficient of from about 1×104 L/mol cm to about 5×105 L/mol cm.
- 124. The process as set forth in claim 115 wherein the infrared blocker is an absorption infrared blocker that has an extinction coefficient of from about 5×104 L/mol cm to about 3×105 L/mol cm.
- 125. The process as set forth in claim 115 wherein the infrared blocker is an absorption infrared blocker that is selected from the group consisting of water soluble absorption infrared blockers, solvent soluble infrared blockers, and metal complex absorption infrared blockers.
- 126. The process as set forth in claim 115 wherein the infrared blocker is an absorption infrared blocker having the chemical formula:
- 127. The process as set forth in claim 115 wherein the infrared blocker is an absorption infrared blocker selected from the group consisting of C32H36ClN2I, C32H36Cl2N2O4, C44H60ClN2I, C36H44ClN2I, C36H44Cl2N2O4, C31H34Cl2N2O4, C34H40N2O6Cl2, C54H54N2O4S, C35H42ClN2I, C35H42Cl2N2O4, C31H34Cl2N2O4, C37H42F3ClN2O2, C40H40ClN2I, C42H44ClN2I, C52H64ClN2I, C59H71Cl2N2SO3, C53H52N2O3S2, C47H47ClN2O3S, C46H45ClN2O3S, C37H35ClN2O3S, C36H40ClN2I, C62H96N6SbF6, C36H40Cl2N2O4, C55H54ClO6, C47H39ClO6, C49H42ClO6, C62H92N6Sb2F12, C62H92N6Sb2F12, C52H44Cl2O6, C38H46ClN2O6S2Na, C43H47N2O6S2Na, C44H52N3O6S3Na, C36H44ClN2O6S2Na, C42H49N2O6S3Na, C46H51ClN2O6S2Na, C45H48ClN2O6S2Na, C28H40Cl4NS4Ni, C28H38Cl6NS4Ni, C32H28S4Ni, C32H26O4S4Cl2Ni, C30H48NS4Ni, C32H28O4S4Ni, and C32H30N2S4Ni.
- 128. The process as set forth in claim 115 wherein the infrared blocker is an absorption infrared blocker having a molecular weight of from about 450 g/mol to about 1450 g/mol.
- 129. The process as set forth in claim 115 wherein the infrared blocker is an absorption infrared blocker having a molecular weight of from about 600 g/mol to about 825 g/mol.
- 130. The process as set forth in claim 115 wherein at least about 10 parts per billion of the infrared blocker is added to the component.
- 131. The process as set forth in claim 115 wherein at least about 10 parts per million of the infrared blocker is added to the component.
- 132. A component for use in a composite disposable absorbent garment, the component comprising an infrared blocker to increase the absorption or reflection of infrared radiation by the blocked component.
- 133. The component as set forth in claim 132 wherein the infrared blocker is selected from the group consisting of absorption infrared blockers and reflective infrared blockers.
- 134. The component as set forth in claim 132 wherein the infrared blocker is an absorption infrared blocker that has an absorption peak of from about 750 nm to about 1200 nm.
- 135. The component as set forth in claim 132 wherein the infrared blocker is an absorption infrared blocker that has an absorption peak of from about 750 nm to about 1150 nm.
- 136. The component as set forth in claim 132 wherein the infrared blocker is an absorption infrared blocker that has an absorption peak of from about 775 nm to about 1050 nm.
- 137. The component as set forth in claim 132 wherein the infrared blocker is an absorption infrared blocker that has an extinction coefficient of from about 1×104 L/mol cm to about 5×105 L/mol cm.
- 138. The component as set forth in claim 132 wherein the infrared blocker is an absorption infrared blocker that has an extinction coefficient of from about 5×104 L/mol cm to about 3×105 L/mol cm.
- 139. The component as set forth in claim 132 wherein the infrared blocker is an absorption infrared blocker that is selected from the group consisting of water soluble absorption infrared blockers, solvent soluble absorption infrared blockers, and metal complex absorption infrared blockers.
- 140. The component as set forth in claim 132 wherein the infrared blocker is an absorption infrared blocker having the chemical formula:
- 141. The component as set forth in claim 132 wherein the infrared blocker is an absorption infrared blocker selected from the group consisting of C32H36ClN2I, C32H36Cl2N2O4, C44H60ClN2I, C36H44ClN2I, C36H44Cl2N2O4, C31H34Cl2N2O4, C34H40N2O6Cl2, C54H54N2O4S, C35H42ClN2I, C35H42Cl2N2O4, C31H34Cl2N2O4, C37H42F3ClN2O2, C40H40ClN2I, C42H44ClN2I, C52H64ClN2I, C59H71Cl2N2SO3, C53H52N2O3S2. C47H47ClN2O3S, C46H45ClN2O3S, C37H35ClN2O3S, C36H40ClN2I, C62H96N6SbF6, C36H40Cl2N2O4, C55H54ClO6, C47H39ClO6, C49H42ClO6, C62H92N6Sb2F12C62H92N6Sb2F12, C52H44Cl2O6, C38H46ClN2O6S2Na, C43H47N2O6S2Na, C44H52N3O6S3Na, C36H44ClN2O6S2Na, C42H49N2O6S3Na, C46H51ClN2O6S2Na, C45H48ClN2O6S2Na, C28H40Cl4NS4Ni, C28H38Cl6NS4Ni, C32H28S4Ni, C32H26O4S4Cl2Ni, C30H48NS4Ni, C32H28O4S4Ni, and C32H30N2S4Ni.
- 142. The component as set forth in claim 132 wherein the infrared blocker is an absorption infrared blocker having a molecular weight from about 450 g/mol to about 1450 g/mol.
- 143. The component as set forth in claim 132 wherein the infrared blocker is an absorption infrared blocker having a molecular weight from about 600 g/mol to about 825 g/mol.
- 144. The component as set forth in claim 132 wherein the component is selected from the group consisting of a side panels, adhesives, surge materials, elastic strands, superabsorbent polymer materials, waist elastic material, hook fastening devices, loop fastening devices, inks, attachment tapes, nonwoven sheets, printed graphics and skin care ointments.
- 145. A component for use in a composite disposable absorbent garment, the component comprising an infrared marker to enhance the detectability of the marked component when the composite disposable absorbent garment is subjected to an inspection system.
- 146. The component as set forth in claim 145 wherein the marker is selected from the group consisting of absorbing infrared blockers and reflecting infrared blockers.
- 147. The component as set forth in claim 145 wherein the inspection system is an infrared inspection system.
- 148. The component as set forth in claim 147 wherein the infrared blocker is an absorption infrared blocker selected from the group consisting of C32H36ClN2I, C32H36Cl2N2O4, C44H60ClN2I, C36H44ClN2I, C36H44Cl2N2O4, C31H34Cl2N2O4, C34H40N2O6Cl2, C54H54N2O4S, C35H42ClN2I, C35H42Cl2N2O4, C31H34Cl2N2O4, C37H42F3ClN2O2, C40H40ClN2I, C42H44ClN2I, C52H64ClN2I, C59H71Cl2N2SO3, C53H52N2O3S2, C47H47ClN2O3S, C46H45ClN2O3S, C37H35ClN2O3S, C36H40ClN2I, C62H96N6SbF6C36H40Cl2N2O4C55H54ClO6, C47H39ClO6, C49H42ClO6, C62H92N6Sb2F12, C62H92N6Sb2F12, C52H44Cl2O6, C38H46ClN2O6S2Na, C43H47N2O6S2Na, C44H52N3O6S3Na, C36H44ClN2O6S2Na, C42H49N2O6S3Na, C46H51ClN2O6S2Na, C45H48ClN2O6S2Na, C28H40Cl4NS4Ni, C28H38Cl6NS4Ni, C32H28S4Ni, C32H26O4S4Cl2Ni, C30H48NS4Ni, C32H28O4S4Ni, and C32H30N2S4Ni.
Parent Case Info
[0001] This application claims the benefit of provisional application serial No. 60/362,833, filed Mar. 9, 2002, provisional application serial No. 10/094,404, filed Mar. 9, 2002, provisional application serial No. 60/364,264, filed Mar. 14, 2002, provisional application serial No. 60/364,329, filed Mar. 14, 2002, and of provisional application serial No. 60/382,812, filed May 23, 2002, all of which are hereby incorporated by reference in their entirety for all purposes.
Provisional Applications (5)
|
Number |
Date |
Country |
|
60362833 |
Mar 2002 |
US |
|
60372866 |
Mar 2002 |
US |
|
60364264 |
Mar 2002 |
US |
|
60364329 |
Mar 2002 |
US |
|
60382812 |
May 2002 |
US |