The present application is a U.S. National Stage filing of International Application No. PCT/EP2010/005586, filed on Sep. 13, 2010, titled “Microwave-Radiometry-Detector and Heat-Treatment Device Comprising Such a Detector”, which claims priority to EP Patent Application No. 09011660.9, filed Sep. 11, 2009, and EP Patent Application No. 09013899.1, filed Nov. 5, 2009, the entire disclosures of which are incorporated herein by reference.
The present invention relates to a Microwave-Radiometry-Detector for measuring the core temperature of a piece of protein containing substance, such as meat.
Food products, especially protein containing food products, such as meat, are often heat treated. In industrial applications, this heat treatment takes place in a heat-treatment device, for example an oven, which comprises a belt, preferably an endless belt, which moves the products through the oven, where they are subjected to heat. In many cases, several products are transported side by side, in parallel rows, or in an arbitrary arrangement, through the oven. Since the temperature-distribution and/or the heat-transfer is not uniform over the width of the oven, the pasteurization of the individual product is also not uniform, which is, however, often undesired. It is especially undesired to have products with a too low core temperature and/or overcooked products.
It is therefore the objective of the present invention to provide a Microwave-Radiometry-Detector for measuring the core temperature of a protein containing substance.
The problem is solved with a Microwave-Radiometry-Detector for measuring the core temperature of a piece of protein containing substance, which has a receiving area of 0.1-180 mm2.
The present invention relates to a Microwave-Radiometry-Detector. Such a Microwave-Radiometry-Detector detects radiation in a bandwidth of 0.3 to 300 GHz. This detector and the connected electronics are for example known from WO 2006/070142, WO 2006/070143, WO 2006/070144, U.S. Pat. No. 4,650,345 and U.S. Pat. No. 5,176,146, which are incorporated herewith by reference and are therefore part of the present application. The core temperatures measured by the described detectors are not precise enough to control a process based on that data.
It has now been found, that a detector with a receiving area of 0.1-180 mm2, measures the core temperature of a protein containing substance very precise. The receiving area is the area of the detector, which receives the microwave radiation emitted by a product. The core temperature is—the temperature, averaged over the height z of the product under the detector.
The detector preferably does not touch the product, but is placed in the direct vicinity of the product to receive the microwave radiation emitted by the product.
A protein containing product is especially meat, for example from swine, cow, chicken, lamb as well as fish. The meat may comprise bones or fish-bones. The meat is preferably processed, for example minced, marinated, spiced and/or battered.
Preferably, the receiving area is 0.1-70 mm2, more preferably 0.1-40 mm2 and most preferably 0.1-20 mm2.
The receiving area may have any shape. However, preferably, the receiving area is circular. In a preferred embodiment of the present invention, the receiving area has a diameter of 0.35-15.1 mm, more preferably 0.35-9.4 mm, even more preferably 0.35-7.13 mm, even more preferably 0.35-5.0 mm.
Preferably, the detector and the accompanying electronics detects and analyzes microwaves in a frequency band between 1-7 GHz, whereas low frequencies around a frequency band between 2-4 GHz are more preferred and a frequency band between 2.8 and 3.2 GHz is most preferred. In an even more preferred embodiment the frequencies received and analyzed by the detector and the accompanying electronics is altered during one measurement, whereas low frequencies provide information about the temperature deep inside the product and higher frequencies information about the temperature of product nearer to the surface.
The inventive microwave-radiometry-detector is preferably part of a heat treatment device for protein containing substances. Alternatively it is possible that the detector is part of a cold treatment device for protein containing substances e.g. coming out of a freezer.
Another subject matter of the present invention is therefore a device for the heat treatment of protein containing products comprising the inventive microwave-radiometry-detector.
Preferably, this heat treatment device is an oven that heats products by radiation, natural- and/or forced convection. Vapor can be added to the heat treatment device if needed. This oven can be operated continuously or batch-wise. Preferably, the heat treatment device comprises several chambers in which different heat-treatment-conditions and/or environments are maintained. The oven comprises preferably means to control different parameters such as the temperature, the relative humidity and/or the convection in the oven.
Preferably, the device comprises transportation means, for example a belt, especially an endless belt, which transport products through the device. The path of the transportation device can be straight and/or curved, for example arranged at least partially helically. The transportation device preferably has a width, i.e. the extension perpendicular to the transport direction, which is large enough to place several products side by side, which are then transported in parallel through the heat treatment device. The product can, however, also be placed at random on the belt, for example in case of manual loading. Alternatively or optionally the transportation means comprises a pipe, a bin and/or a bag.
Preferably, the detector according to the present invention is placed above the transportation means, to measure the core temperature of the products, which pass by below this detector. The detector is preferably stationary. The detector is preferably located near the exit of the heat treatment device. Alternatively or optionally the detector is placed below and/or beside the transportation means and/or the detector is moved with the transportation means.
In a preferred embodiment of the present invention, at least two detectors are placed above the transportation means. These detectors preferably measure the core temperature of the products on the left hand side and on the right hand side of the transportation means relative to the transport direction of the belt, which are transported past the detectors.
In another preferred embodiment, one detector is placed above each row. Each of these detectors measures the core temperature of the consecutive products arranged in the respective row.
According to a preferred embodiment of the present invention, the heat treatment device comprises means to influence the heat treatment process. Such means can be, for example, means to alter the temperature, means to influence the heat transfer, means to provide radiation, residence time of the product in the oven and/or means to alter the relative humidity of the environment around the products. These means can be used to provide uniform heat treatment conditions over the entire widths of the transportation means onto provide non uniform heat treatment conditions, in case, the number of products per unit area on the transportation means differs as a function of the width of the transportation means. In this case, it can be desirable, to provide more heating energy and/or more efficient heat transfer in the area with more products per unit area than in the area with less products per unit area. Theses means to influence the heat treatment process are, in a preferred embodiment of the present invention, controlled according to the signal of the detector. This detector is for example placed at or near the exit of the heat treatment device, for example the oven, and measures the core-temperature of the individual product. Based on this measurement, the heat treatment process is altered, to achieve an optimal core-temperature.
In another preferred embodiment, the device comprises means to track the position of the individual product. This means can be for example an XY tracking system and is for example useful to know where an individual product is at a certain instant. This information can be for example used to sort out products for example by a Pick and Place Robot, which do not meet certain quality criteria especially which do not meet a certain core temperature; i.e. if the core temperature is either too high or too low, these products are sorted out by the Pick and Place Robot. This robot needs the XY coordinates of this product to be sorted out, in order to pick the right product from the transportation means.
In another preferred embodiment, the temperature information acquired by the inventive detector is stored in storing means. This information can be for example used as a quality control function to document how the individual product has been heat-treated in the heat treatment process. According to another preferred embodiment, this information is transferred to storing means, for example a transponder, which is attached to a packaging or the like in which the product is placed and packed. Alternatively or optionally the information is transferred to a central storage unit for further processing of data preferably via an interface. In case of a quality problem, the information can be directly read out of this transponder and is available to the merchandiser or the customer.
According to a preferred embodiment or another embodiment of the present invention, the heat treatment device comprises product detection means, which are located upstream of the heat treatment device. These means can be used to at least partially turn the heat treatment device on and off. In case, that no products are on the transportation means, the heat treatment device is at least partially turned off. Alternatively or optionally the heat treatment device is controlled by the product detection means. However, as soon as theses detections means identify a product, the heat treatment device is turned on again well before the product arrives at the heat treatment device. With this preferred or inventive embodiment of the present invention, energy of the heat treatment process can be saved.
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Number | Date | Country | Kind |
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09000660.9 | Sep 2009 | EP | regional |
09013899.1 | Nov 2009 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2010/005586 | 9/13/2010 | WO | 00 | 6/21/2012 |