The present invention relates to an oven comprising:
The present invention further relates to a process how to operate this oven.
An oven of this type is for example known from EP 1 221 575 and EP 0 558 151 and is suitable for the complete or partial cooking of edible products, especially protein containing products, like chicken, hamburgers cordon bleu etc. The above mentioned patent application are herewith included by reference and are therefore part of the disclosure of the present patent application. The temperature and humidity can be set such, that during the residence time in the oven, which is dependent on the length and velocity of the conveyor belt, the desired cooking and, if needed, browning can be effected.
Furthermore, the ovens known from the state of art comprise two chambers, which are separated by a partition wall. The conveyor belt moves from the first chamber to the second chamber via an opening in the partition wall. Each chamber has its own heating means and ventilation means, so that different temperature-, humidity- and/or fluid-flow-conditions can be set in each chamber, respectively. However, the cooking process in the ovens according to the state of the art is often not stable and/or not reproducible.
It is therefore an objective of the present invention to provide an oven and a process that is stable and leads to reproducible process conditions in the respective chambers.
The problem is solved by an oven comprising:
Due to the fluid-leakage reduction, the process conditions, e.g. temperature, humidity and/or the flow-pattern, in the individual chambers can be controlled very well and thus reproducible conditions can be established. The inventive oven is easily operated. By means of a controlled leakage, process conditions in the individual chambers can be influenced.
The subject matter “Control a fluid leakage” means controlling the magnitude and/or the direction of the leakage from the first- to the second chamber or vice versa.
The oven according to the present invention comprises a first and a second chamber, which are separated by separation means, for example a partition. The inventive oven further comprises conveyor means for guiding products from the inlet through these chambers to the outlet. The conveyor means are preferably an endless conveyor belt. In the separation means, there is a passage through which the conveyor means are directed from the first- to the second chamber. It has now been found out, that due to the different conditions in the chambers, respectively, and/or due to the motion of the conveyor means an uncontrolled leakage of process gas, e.g. air and/or process vapor, between the chambers through the passage occurs, which is unpredictable in its magnitude and its direction. Due to this leakage, the process parameters are influenced unpredictably, sometimes resulting in uncontrollable conditions, which makes the cooking process non-reproducible.
According to the present invention, the oven comprises means to reduce, preferably eliminate and/or control the process-fluid leakage between the two chambers.
In a preferred embodiment, this means to reduce, preferably eliminate, and/or control the process-fluid leakage between the two chambers is a fluid flow, introduced, preferably injected, in the vicinity of the passage. Preferably, the volume-flow-rate of the fluid flow and/or its pressure are adjustable. The fluid flow can be taken from the ambient and/or out of one or both of the chambers.
Due to the introduction of the fluid flow, the pressure in the vicinity of the passage is preferably higher than the pressure in the first- and/or the second chamber, respectively, so that no leakage of process fluid out of one of chambers to the other chamber occurs.
Preferably, the fluid flow is divided into a first part that flows from the passage towards the first chamber and a second part that flows from the passage towards the second chamber. By increasing the fluid flow, the volume flow towards one or both chambers will also be increased and vice versa. The division of the fluid flow depends, for example, on the pressure level in the first and second chamber, respectively. However, it is also possible to control the ratio how the fluid flow is split. This can be done, for example, with one or more valves. By choosing from which chamber more fluid is taken, the direction of flow can also be influenced.
In a preferred embodiment of the present invention, at least one of the flows towards the chambers is guided in the vicinity of the partition by guiding mean. This guiding means can be for example a tunnel or a tube that extends from the passage towards the first and/or the second chamber. The fluid flow is introduced into this guiding means, preferably in the middle and then separated into the part first part that flows towards the first chamber and a second part that flows towards the second chamber.
Normally, each chamber comprises at least one fan and ducts for a fluid flow, especially the fluid circulation, in the chamber to adjust the temperature and/or humidity in the chamber and/or to improve the heat transfer in the chamber, respectively. From this main fluid flow, the fluid flow to reduce or control the leakage at the passage is preferably separated. Preferably, the oven comprises means to control from which chamber the fluid is taken, the volume-flow-rate and/or the split of the fluid flow between the chambers. This preferred embodiment of the present invention has the advantage, that the cooking process can be executed each time under the same conditions. Furthermore, the oven can be operated such that no, only a minimum or controlled leakage around the passage occurs.
The control means can be adjusted manually or automatically. Preferably, the control means are adjusted automatically, for example by a PLC-controller. The PLC-controller receives information about the process and adjusts, for example, the flow to reduce or control the leakage automatically. Furthermore the PLC-controller can preferably control out of which chamber the fluid is taken and/or how it is divided after it has been injected in the vicinity of the passage. If, for example the circulation speed of the fluid in one chamber is increased to improve, for example, the heat-transfer, the pressure increases in this chamber, which, according to the state of the art results in an increased leakage. According to the present invention, however, the leakage between the chambers can be reduced and/or controlled to a desired level by adjusting the fluid-flow that that reduces or controls this leakage.
According to a new or preferred embodiment of the present invention, the oven comprises controlled ventilation means between the first chamber, the second chamber and/or the ambient. This embodiment allows to adjust process parameters in one chamber by controlled ventilation of the chamber with process fluid out of the other chamber or the ambient. If, for example, the first chamber is operated at a higher temperature and/or humidity than the second chamber, process fluid, e.g. air, can be ventilated from the second to the first chamber, in case the process parameters are too high in the first chamber and vice versa in case that the process parameters are too low in the second chamber. If, for example, the process conditions in the second chamber are above the set point, air can be drawn from the ambient into the second chamber. This controlled ventilation is reduced or stopped as soon as the desired process conditions have be reached. All this can be done via the fans, the passage and/or additional ventilation means. The controlled ventilation is preferably executed by a automatic controller, e.g. a PLC-controller.
The above made disclosure also applies to the embodiments disclosed below.
Another embodiment of the present invention is a process to operate an oven comprising:
Yet another embodiment of the present invention is a process to operate an oven comprising:
The direction of the leakage can be from the first- to the second chamber and/or from the chamber with a higher pressure to the chamber with the lower pressure and vice versa.
Due to the leakage, ambient air can be introduced into the first and/or the second chamber.
The present inventions are now explained in further detail according to the attached figures. These explanations do not limit the scope of protection.
The heating means, which are overall denoted by 15, 19, 27, 28, are arranged in the top of the housing. These heating means 15, 19, 27, 28 each comprise a fan 16, 22 with a spiral casing 17, which opens into a duct 18, 23-25. The heating elements 34 are situated in the ducts, respectively. The process fluid, e.g. air and steam, is sucked up by the fans out of chambers 3, 4 and is forced into the duct via the spiral casing 17, respectively. The process fluid 31, 32 flows past the heating elements 34 and is then reintroduced into the respective chamber 3, 4. The motion of the products (not depicted) to be cooked in the oven is depicted by arrows 29.
It is also possible to have controlled leakage from or to the ambient in order to control the temperature and/or the humidity in one or both of the chambers 3, 4. This leakage can be combined with a controlled leakage between the two chambers 3, 4.
Controlled leakages to the ambient are shown in
In the case that one chamber has an air exchange with the ambient, but no leakage between the chambers is desired, it can be suppressed by a fluid flow 26, as disclosed above.
1 oven
2 separation means, partition
2.1 passage from first- to second chamber
3 first chamber
4 second chamber
5 drum
6 drum
7 conveyor means, conveyor belt
8 helical section first chamber
9 helical section second chamber
10 inlet
11 straight conveyor means
12 outlet
13 straight conveyor means
14 connecting conveyor means section
15 temperature control means, heating means
16 fan
17 spiral casing
18 air duct
19 temperature control means
20 Y-shaped air-duct
20.1 left branch
20.2 right branch
20.3 base
21 control means, valve
22 fan
23 air duct
24 air duct
25 air duct
26 air flow
26.1 air flow to the first chamber
26.2 air flow to the second chamber
27 temperature control means
28 temperature control means
29 transportation direction
30 guiding means
31 fluid flow in channel 23
32 fluid flow in channel 24
33 leakage in the passage
34 heating elements
35 leakage from or to the ambient
36 ambient
x fluid flow taken out of one chamber
y direction of flow, fluid flow to the first chamber 3
z direction of flow, fluid flow to the second chamber 4
++ higher pressure
−− lower pressure
Number | Date | Country | Kind |
---|---|---|---|
08007605.2 | Apr 2008 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP09/02794 | 4/16/2009 | WO | 00 | 12/8/2010 |