The present invention relates to an assembly for detecting operating parameters within an oven cavity.
Modern cooking ovens often are equipped with sensors to detect operating parameters within the oven cavity, such as temperature and/or humidity within the oven cavity. The oven also may be equipped with optical sensors, such as an imaging system, to automatically detect or monitor the load within the oven cavity, so as to control operating parameters of the oven in dependency of the load detected or of the cooking progress, such as a degree of change in size or color of the food items being processed.
Evidently, in order to be able to detect the parameter or parameters to be monitored, the sensors have to be placed at a location that allows picking up the signals that are representative of the parameter to be monitored, which necessitates that the one or more sensors have to be arranged in close proximity to the oven cavity. In case that the sensor is an optical sensor, the sensor has to be located in eye-sight of the oven cavity. Due to the harsh conditions prevailing in an oven, such as high temperature and high humidity, it was suggested in the prior art to locate the sensor in a chamber that is separate from the oven cavity, such as within an air channel that is used to vent air from within the oven cavity to the exterior. A problem with such systems, as they were suggested for example in DE10 2004 210 673 A1, DE10 2004 056 839 A1 or DE 10 2006 058 617 B3, is that the sensor necessarily has to be positioned remote from the oven cavity, which for an optical sensor is disadvantageous due to the limited field of view. Furthermore, when the sensor is located within a vent channel, so as to be cooled by air that is removed from within the oven cavity, not only does the positioning of the sensor within the vent channel interfere with, and thus deteriorate, the venting action, but also is the sensor cooling rather limited, given that the air that leaves the oven cavity is of high temperature.
It is an object of the present invention to provide for an assembly for detecting operating parameters within an oven cavity which reliably allows monitoring the respective operating parameter to be monitored, but which at the same time is effectively protected against the harsh environment that may prevail within the oven cavity during a cooking process.
In accordance with the present invention the above object is solved by an assembly for detecting operating parameters within an oven cavity, which assembly comprises a housing, a sensor disposed within the housing, an air inlet for feeding air into the housing, and an air outlet through which air can leave the housing.
Instead of providing for a sensor that is to be located in a region of the oven, where there are less harsh operating conditions as compared to those prevailing within the oven cavity, as it was suggested in the prior art, the present invention provides for a sensor assembly in which the sensor has its own cooling system, by arranging the sensor within a housing through which air can be fed. In this manner it is made possible to arrange temperature-sensitive sensor systems, such as imaging systems or humidity sensors, in direct ambience of an oven cavity.
In this manner, more direct and thus precise information can be obtained with respect to the state of the food product under treatment, the degree of preparation of the food product being processed, the state of the oven muffle and the oven cavity including any components therein. By evaluating the monitored parameters, potentially detrimental or even hazardous situations can be prevented, such as overheating of food or of oven components. Apart from providing for prevention against abnormal or abusive operation of the appliance, continuously monitoring respective parameters also allows for automation of the food treatment, wherein the appliance automatically adjusts operation parameters in dependency of the monitored parameters.
Preferred embodiments of the present invention are defined in the dependent claims.
Thus, in order to facilitate removal of heat from the sensor, preferably a heatsink is disposed within the housing in contact with the sensor. The heatsink preferably is an element having a large thermal capacity, and further preferably is designed to have a large surface area so as to facilitate heat exchange with its surroundings, so that the heat sink acts as a dissipator for the heat that has been captured.
To improve the heat transfer between the heatsink and the sensor, preferably a thermal interface material is disposed between the heatsink and the sensor, such as thermal grease, thermal glue or a thermal adhesive, which improves the thermal conductivity between the heatsink and the sensor by eliminating gaps or spaces between these components.
The sensor can comprise any sensor, or combination of sensors, suitable to detect signals characteristic for a parameter to be monitored. In particular, the sensor may comprise at least one of an optical sensor, an imaging system, a humidity sensor, a temperature sensor, a gas sensor, a sound sensor, and a chemical sensor, or the like. Thus various signals can be picked up to monitor the cooking progress. Amongst optical parameters to be monitored are to be named the amount and distribution of food items loaded into the oven, a change in color of food items processed such as the degree of browning of an article being roasted or baked, a change in shape, such as the rising of a dough, and the like. While temperature and humidity within the oven cavity are important parameters to be monitored by respective sensors, sound sensors can be employed for example for boiling detection, or for detection of certain sound events such as the popping sound when preparing popcorn. Vapor sensors, gas sensors or other chemical sensors can be employed to detect the generation of various substances.
In preferred embodiments, the housing comprises a cover which covers a receptive region of the sensor element but which is permeable for the physical or chemical parameter to be detected by the sensor.
Thus, when the sensor is a humidity sensor, the cover preferably comprises a membrane, such as a PTFE membrane, which is permeable for water vapor, but which protects the receptive region of the sensor from water and dust.
When the sensor is an optical sensor, the cover preferably comprises a transparent element, such as a cover made of glass or transparent plastic, wherein in further preferred embodiments the transparent element is designed as an optical filter and/or lens, so as to further enhance and optimize the optical transmission to the sensor.
In order to avoid rapid warming of the sensor housing, the housing or at least parts thereof are made from a material having a thermal conductivity at standard conditions (i.e. atmospheric pressure and a temperature of about 293 K) of less than 10 W/m*K, preferable of less than 1 W/m*K, which can be realized for example with certain heat resistant plastic materials, such as PTFE.
To provide for further variability in mounting the sensor assembly to elements of an oven cavity, the assembly can comprise a housing support for mounting the housing to a wall of the oven cavity, which housing support can be designed not only to facilitate mounting of the sensor assembly, but also to provide for further thermal protection of the assembly, such as by making the housing support of a material which has a lower thermal conductivity than the housing.
The present invention further is an oven with an oven cavity and an assembly as it is described above, wherein the oven comprises means for generating a forced air flow which is directed to the air inlet, and wherein the assembly is located within the oven cavity. Due to the fact that the assembly comprises a housing within which there is disposed the sensor and which is designed such that an air flow can be passed through the housing so as to cool the sensor, the assembly can be located within the oven cavity as such where it can be used for direct measurements of parameters to be monitored.
The air flow to be passed through the housing so as to cool the sensor can be generated either by a fan that is used to feed air into the oven cavity, wherein the air flow to the sensor assembly is diverted from the air volume passed into the cavity. In order to provide for cooling of the sensor assembly independent from the operation of the fan that is used to provide air into the oven cavity, preferably the oven is equipped with a dedicated fan that is used to provide air for cooling one or more sensor assemblies.
In a further embodiment, the present invention is an oven with an oven cavity and an assembly as it is described above, wherein the assembly is mounted to the exterior side of a wall of the oven cavity and communicates with the interior of the oven cavity through a region provided in the wall of the oven cavity which is permeable for the physical or chemical parameter to be detected by the sensor. Depending on the parameter to be detected, such permeable region can be simply an opening in the wall of the oven cavity, or a transparent element, a sound-transmissive element, a light-transmissive element, a membrane, and the like.
To reduce the number of parts, the housing can be formed in part by a deep drawn region in a wall of the oven cavity.
The air which is passed into the assembly housing for cooling of the sensor either can be expelled into the oven cavity, or can be used for further purposes, such as for the cooling of at least one further sensor assembly, for cooling an exterior wall of the assembly housing, or can be vented to the exterior of the oven.
Both, in embodiments in which the assembly is mounted to the exterior side of a wall of the oven cavity and communicates with the interior of the oven cavity through a permeable region in the wall of the oven cavity, but also in embodiments in which the assembly is mounted within the oven cavity and wherein the sensor assembly as such comprises a permeable cover, the air outlet advantageously comprises one or more outlet openings located in the perimeter of the cover, so as to provide for an air stream which protects the permeable region or the cover, respectively, from oven fumes, so as to prevent soiling for example by oil or soot particles contained in such fumes.
To further improve such protecting effect of the exiting air flow, the outlet openings are arranged such that the air is expelled in a turbulent flow, as may be attained for example by merging the exit flows leaving individual outlet openings, such as by providing for an inclination of the axis along which the air flows leave the outlet openings, or by orienting the outlet openings in a manner so as to provide for a swirling flow.
To further prevent heating of the assembly, an insulation layer can be provided at a wall of the housing which faces towards the oven cavity.
In embodiments of the present invention, elements of the assembly can be formed as an integral part so as to facilitate mounting of the assembly by reducing the number of elements to be assembled. Thus, for example a heat sink can be formed as an integral part of the housing.
Preferred embodiments of the present invention will be described by reference to the drawings in which:
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The sensor assembly suggested herein is capable of sufficiently cooling sensors for use within a baking oven, which further to having resistance heating elements may incorporate at least one other heating technology, such as steam generation or microwave generation, and which further may be provided with a pyrolytic cleaning capacity.
In
The sensor assembly 10 shown in
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In
Correspondingly the bottom wall 18 of housing 12 has no air opening 28 as shown in
10 sensor assembly
12 housing
14 sensor element
16 air inlet
18 air outlet
20 heat sink
22 oven cavity
24 upper wall of oven muffle
26 annular portion
28 bottom wall of 12
30 opening in 24
32 transparent element
34 wall of 12
16 air outlet
37 openings
38 outlet openings
39 metallic wall
40 aperture
42 fins
43 outlet openings
44 central opening
46 camera element
48 channel
50 lid
52 housing support
54 annular wall
56 annular element
58 support
60 support
62 insulation layer
64 humidity sensor
66 annular element
68 membrane
70 connection ring
Number | Date | Country | Kind |
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17174764.5 | Jun 2017 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2018/062635 | 5/15/2018 | WO | 00 |