Claims
- 1-57. (Cancelled).
- 58. A system for generating a temperature measurement for a batch or a continuous stream of material, the system comprising:
(a) a particle having a signal that changes at a pre-determined temperature; and (b) a detector for detecting a signal change from the particle to thereby generate a temperature measurement for the batch or continuous stream.
- 59. The system of claim 58, wherein the particle further comprises an implant surrounded by a shield material and the predetermined temperature further comprises a temperature at which the shield material no longer shields the implant.
- 60. The system of claim 59, wherein the particle further comprises a magnetic implant surrounded by a ferromagnetic material and the predetermined temperature further comprises a Curie temperature for the ferromagnetic material.
- 61. The system of claim 60, wherein the magnetic implant comprises a material selected from the group consisting of neodymium iron boron, cobalt rare earth, aluminum-nickel, ceramic, organic, plastic-embedded metal or ceramic and combinations thereof.
- 62. The system of claim 59, wherein the particle further comprises a luminescent implant surrounded by an opaque material and the predetermined temperature further comprises a melting temperature of the opaque material.
- 63. The system of claim 58, wherein the particle has a density, and the density of the particle is adjusted to a pre-determined target density.
- 64. The system of claim 63, wherein the target density is that density with the highest likelihood of including a fastest particle.
- 65. The system of claim 58, wherein the particle further comprises a wall thickness, size, shape, composition or combination thereof that imparts a conservative heat transfer characteristic to the particle.
- 66. The system of claim 58, wherein the particle further comprises a material selected from the group consisting of polystyrene, copolymers thereof, polypropylene, copolymers thereof, and combinations of polystyrene, copolymers thereof, polypropylene and copolymers thereof.
- 67. The system of claim 58, wherein the particle further comprises a component selected from the group consisting of an inert material, a time-temperature integrating device (TTID), a microbial load, an actual food particle, a thermal pill, thermal insulating material, a transponder and combinations thereof.
- 68. The system of claim 58, wherein the detector further comprises a sensor adapted for placement proximate to a batch or continuous stream of material.
- 69. The system of claim 68, wherein the detector further comprises a plurality of sensors adapted for placement proximate to a batch or continuous stream of material.
- 70. The system of claim 69, wherein the plurality of sensors are adapted for successive, parallel or overlapping placement proximate to a batch or a continuous stream of material.
- 71. The system of claim 58, wherein the detector is adapted for detecting the signal change continuously over a predetermined length of a continuous stream.
- 72. The system of claim 58, further comprising a plurality of particles, each particle having a signal that changes at a different pre-determined temperature.
- 73. The system of claim 72, wherein the detector further comprises a plurality of sensors adapted for placement proximate to a batch or continuous stream of material.
- 74. The system of claim 73, wherein the plurality of sensors are adapted for successive, parallel or overlapping placement proximate to a batch or a continuous stream of material.
- 75. The system of claim 73, wherein a sensor is calibrated to detect a signal from a particle at a temperature below the predetermined temperature.
- 76. The system of claim 58, further comprising a display for graphically displaying output from the detector.
- 77. The system of claim 58, further comprising a device for recording, storing, retrieving, displaying, or analyzing data, or combinations thereof.
- 78. A method of generating a temperature measurement for a batch or a continuous stream of material, the method comprising:
(a) providing a particle comprising an implant surrounded by a shield material and having a first signal that changes to a second signal at a predetermined temperature at which the shield material no longer shields the implant; (b) inserting the particle provided in step (a) into the batch or continuous stream; and (c) measuring the time spent by the particle above the pre-determined temperature by detecting the second signal continuously in a process stage to thereby generate a temperature measurement for the batch or continuous stream.
- 79. The method of claim 78, wherein the particle further comprises a magnetic implant surrounded by a ferromagnetic material and the predetermined temperature further comprises a Curie temperature for the ferromagnetic material.
- 80. The method of claim 79, wherein the magnetic implant comprises a material selected from the group consisting of neodymium iron boron, cobalt rare earth, aluminum-nickel, ceramic, organic, plastic-embedded metal or ceramic and combinations thereof.
- 81. The method according to claim 78, wherein the particle further comprises a luminescent implant surrounded by an opaque material and the predetermined temperature further comprises a melting temperature of the opaque material.
- 82. A method of generating a temperature measurement for a batch or a continuous stream of material, the method comprising:
(a) providing a plurality of particles, each particle comprising an implant surrounded by a shield material and having a first signal that changes to a second signal at a different predetermined temperature at which the shield material no longer shields the implant; (b) inserting the particles provided in step (a) into the batch or continuous stream; and (c) measuring the time spent by the particles above the pre-determined temperature by detecting the second signal continuously in a process stage to thereby generate a temperature measurement for the batch or continuous stream.
- 83. The method of claim 82, wherein the particle further comprises a magnetic implant surrounded by a ferromagnetic material and the predetermined temperature further comprises a Curie temperature for the ferromagnetic material.
- 84. The method of claim 83, wherein the magnetic implant comprises a material selected from the group consisting of neodymium iron boron, cobalt rare earth, aluminum-nickel, ceramic, organic, plastic-embedded metal or ceramic and combinations thereof.
- 85. The method of claim 82, wherein the particle further comprises a luminescent implant surrounded by an opaque material and the predetermined temperature further comprises a melting temperature of the opaque material.
- 86. A method for conservatively evaluating thermal treatment in a continuous thermal process for a stream of a particulate-containing food product, the method comprising:
(a) providing a particle comprising an implant surrounded by a shield material and having a first signal that changes to a second signal at a predetermined temperature at which the shield material no longer shields the implant, wherein the predetermined temperature is a conservative temperature; (b) inserting the particle provided in step (a) into the stream; and (c) measuring the time spent by the particle above the pre-determined temperature by detecting the second signal continuously in a process stage to thereby conservatively evaluate thermal treatment of the stream.
- 87. The method of claim 86, wherein the particle further comprises a magnetic implant surrounded by a ferromagnetic material and the predetermined temperature further comprises a Curie temperature for the ferromagnetic material.
- 88. The method of claim 87, wherein the magnetic implant comprises a material selected from the group consisting of neodymium iron boron, cobalt rare earth, aluminum-nickel, ceramic, organic, plastic-embedded metal or ceramic and combinations thereof.
- 89. The method of claim 86, wherein the particle further comprises a luminescent implant surrounded by an opaque material and the predetermined temperature further comprises a melting temperature of the opaque material.
- 90. A method of generating a conservative time-temperature measurement for a batch or a continuous stream of material, the method comprising:
(a) providing a particle that emits a first signal at temperatures below a pre-determined temperature and emits a second signal at temperatures above the pre-determined temperature; (b) inserting the particle provided in step (a) into the batch or continuous stream; and (c) measuring the time spent by the particle above the pre-determined temperature by detecting the second signal continuously in a process stage to thereby generate a conservative time-temperature measurement for the batch or continuous stream.
- 91. The method of claim 90, wherein the particle has a density, and the density of the particle is adjusted to a pre-determined target density.
- 92. The method of claim 91, wherein the target density is that density with the highest likelihood of including a fastest particle.
- 93. The method of claim 90, wherein the particle further comprises a wall thickness, size, shape, composition or combination thereof that imparts a conservative heat transfer characteristic to the particle.
- 94. The method of claim 90, wherein the first and second signals are detected via a sensor placed proximate to the batch or stream.
- 95. The method of claim 94, wherein the first and second signals are detected via a plurality of sensors placed proximate to the batch or continuous stream.
- 96. The method of claim 90, further comprising measuring a length of continuous stream through which the second signal is maintained.
- 97. The method of claim 96, wherein the second signal is detected via a plurality of successive, parallel or overlapping sensors placed proximate to the continuous stream over the length of the continuous stream.
- 98. The method of claim 90, wherein the continuous stream is a particulate-containing food product passing through a thermal processing apparatus.
- 99. The method of claim 98, wherein the particle further comprises a component selected from the group consisting of a time-temperature integrating device (TTID), a microbial load, and combinations thereof.
- 100. The method of claim 90, further comprising recording data associated with the detecting of the first and second signals.
- 101. The method of claim 100, wherein the data is stored for documentation, retrieval, analysis or combinations thereof.
- 102. The method of claim 101, further comprising retrieving the data, analyzing the data, or combinations thereof.
- 103. A method of generating a conservative time-temperature measurement for a batch or a continuous stream of material, the method comprising:
(a) providing a plurality of particles, each particle emitting a first signal at temperatures below a different pre-determined temperature and emitting a second signal at temperatures above the different pre-determined temperature; (b) inserting the particles provided in step (a) into the batch or continuous stream; and (c) measuring the time spent by the particles above the pre-determined temperature by detecting the second signal continuously in a process stage to thereby generate a conservative time-temperature measurement for the batch or continuous stream.
- 104. The method of claim 103, wherein the particle has a density, and the density of the particle is adjusted to a pre-determined target density.
- 105. The method of claim 104, wherein the target density is that density with the highest likelihood of including a fastest particle.
- 106. The method of claim 103, wherein the particle further comprises a wall thickness, size, shape, composition or combination thereof that imparts a conservative heat transfer characteristic to the particle.
- 107. The method of claim 103, wherein the first and second signals are detected via a sensor placed proximate to the batch or continuous stream.
- 108. The method of claim 107, wherein the first and second signals are detected via a plurality of sensors placed proximate to the batch or continuous stream.
- 109. The method of claim 108, further comprising calibrating a sensor to detect a signal from a particle at a temperature below the predetermined temperature.
- 110. The method of claim 103, further comprising measuring a length of continuous stream through which the second signal is maintained.
- 111. The method of claim 110, wherein the second signal is detected via a plurality of successive, parallel or overlapping sensors placed proximate to the continuous stream over the length of the continuous stream.
- 112. The method of claim 111, further comprising calibrating a sensor to detect a signal from a particle at a temperature below the predetermined temperature.
- 113. The method of claim 103, wherein the predetermined temperature comprises a conservative temperature.
- 114. The method of claim 103, wherein the continuous stream is a particulate-containing food product passing through a thermal processing apparatus.
- 115. The method of claim 114, wherein the particle further comprising a component selected from the group consisting of a time-temperature integrating device (TTID), a microbial load, and combinations thereof.
- 116. The method of claim 103, further comprising recording data associated with detecting of the first and second signals.
- 117. The method of claim 116, wherein the data is stored for documentation, retrieval, analysis or combinations thereof.
- 118. The method of claim 117, further comprising retrieving the data, analyzing the data, or combinations thereof.
- 119. A method for conservatively evaluating thermal treatment in a continuous thermal process for a stream of a particulate-containing food product, the method comprising:
(a) providing a particle that emits a first signal at temperatures below a pre-determined temperature and emits a second signal at temperatures above the pre-determined temperature, wherein the pre-determined temperature is a conservative temperature; (b) inserting the particle provided in step (a) into the stream; and (c) measuring the time spent by the particle above the pre-determined temperature by detecting the second signal continuously in a process stage to thereby conservatively evaluate thermal treatment of the stream.
- 120. The method of claim 119, wherein the particle has a density, and the density of the particle is adjusted to a pre-determined target density.
- 121. The method of claim 120, wherein the target density is that density with the highest likelihood of including a fastest particle.
- 122. The method of claim 119, wherein the particle further comprises a wall thickness, size, shape, composition or combination thereof that imparts a conservative heat transfer characteristic to the particle.
- 123. The method of claim 119, wherein the first and second signals are detected via a sensor placed proximate to the batch or stream.
- 124. The method of claim 123, wherein the first and second signals are detected via a plurality of successive, parallel or overlapping sensors placed proximate to the continuous stream over a predetermined length of the continuous stream.
- 125. A method for conservatively evaluating thermal treatment in a continuous thermal process for a stream of a particulate-containing food product, the method comprising:
(a) providing a plurality of particles, each particle emitting a first signal at temperatures below a different pre-determined temperature and emitting a second signal at temperatures above the different pre-determined temperature; (b) inserting the particles provided in step (a) into the batch or continuous stream; and (c) measuring the time spent by the particles above the pre-determined temperature by detecting the second signal continuously in a process stage to thereby conservatively evaluate thermal treatment of the stream.
- 126. The method of claim 125, wherein the first and second signals are detected via a sensor placed proximate to the batch or continuous stream.
- 127. The method of claim 126, wherein the first and second signals are detected via a plurality of sensors placed proximate to the batch or continuous stream.
- 128. The method of claim 127, further comprising calibrating a sensor to detect a signal from a particle at a temperature below the predetermined temperature.
- 129. The method of claim 125, wherein the particle further comprises a component selected from the group consisting of a time-temperature integrating device (TTID), a microbial load, and combinations thereof.
- 130. The method of claim 125, wherein said food product is packaged for delivery to a consumer after passing through said continuous thermal process, and further comprising detecting and removing said particle before or after the product is packaged.
- 131. The method of claim 119, further comprising recording data associated with the detecting of signal.
- 132. The method of claim 131, wherein the data is stored for documentation, retrieval, analysis or combinations thereof.
- 133. The method of claim 132, further comprising retrieving the data, analyzing the data, or combinations thereof.
- 134. The method of claim 90, comprising measuring the temperature of a carrier fluid surrounding the particle for confirming that the temperature of the carrier fluid exceeds the pre-determined temperature.
- 135. The method of claim 94, wherein the sensor continuously monitors the first and second signals.
- 136. The method of claim 103, comprising measuring the temperature of a carrier fluid surrounding the particles for confirming that the temperature of the carrier fluid exceeds the pre-determined temperature.
- 137. The method of claim 107, wherein the plurality of sensors continuously monitors the first and second signals.
- 138. The method of claim 119, comprising measuring the temperature of the stream surrounding the particle for confirming that the temperature of the stream exceeds the pre-determined temperature.
- 139. The method of claim 123, wherein the plurality of sensors continuously monitors the first and second signals.
- 140. The method of claim 125, comprising measuring the temperature of the stream surrounding the particles for confirming that the temperature of the stream exceeds the pre-determined temperature.
- 141. The method of claim 126, wherein the sensor continuously monitors the first and second signals.
- 142. The method of claim 78, comprising measuring the temperature of the stream surrounding the particle for confirming that the temperature of the stream exceeds the pre-determined temperature.
- 143. The method of claim 78, wherein the measuring step comprises providing a sensor for continuously monitoring the first and second signals.
- 144. The method of claim 82, comprising measuring the temperature of the stream surrounding the particles for confirming that the temperature of the stream exceeds the pre-determined temperature.
- 145. The method of claim 82, wherein the measuring step comprises providing a plurality of sensors for continuously monitoring the first and second signals.
- 146. The method of claim 86, wherein the measuring step comprises providing a sensor for continuously monitoring the first and second signals.
- 147. The method of claim 86, comprising measuring the temperature of the stream surrounding the particle for confirming that the temperature of the stream exceeds the pre-determined temperature.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is based on and claims priority to U.S. provisional patent application serial No. 60/188,526, filed Mar. 10, 2000, herein incorporated by reference in its entirety.
GOVERNMENT SUPPORT
[0002] This work was supported by the National Science Foundation (NSF) pursuant to contract number MCB 9631375. The U.S. Government has certain rights in the invention.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60188526 |
Mar 2000 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09804366 |
Mar 2001 |
US |
Child |
10855118 |
May 2004 |
US |