Method for operating a cooking oven
11732900 · 2023-08-22
Assignee
Inventors
- Michele Simonato (Pordenone, IT)
- Riccardo Furlanetto (Pordenone, IT)
- Eleonora Pippia (Pordenone, IT)
- Emidio Tiberi (Pordenone, IT)
Cpc classification
F24C7/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C7/087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention is a method for operating a cooking oven comprising: a cooking chamber; a heating device for heating foodstuff contained in the cooking chamber; a database wherein cooking cycles are stored; a control unit operatively connected to the database and to the heating device, configured for activating/deactivating the heating device according to the cooking cycles; and a user interface operatively connected to the control unit. The method comprises the following phases: (a) selecting, by the user interface, a new list of two or more of cooking cycles stored in the database, to be executed in sequence; (b) sorting, by the control unit, the cooking cycles of the new list, using a sorting algorithm that calculates the order of the cooking cycles of the new list and (c) displaying, via the user interface, a sorted list containing the cooking cycles of the new list.
Claims
1. A method for operating a cooking oven (1), comprising: a cooking chamber (3) wherein foodstuff is loaded; a heating device (6) for heating foodstuff contained in said cooking chamber (3); a database (10) wherein cooking cycles (11) are stored, each cooking cycle (11) having a pre-set starting temperature (Ti), a pre-set final temperature (Tf), a pre-set starting humidity (Hi), and a pre-set final humidity (Hf); a control unit (8) operatively connected to said database (10) and to said heating device (6), wherein said control unit (8) is configured for activating/deactivating said heating device (6) according to said cooking cycles (11); and a user interface (9) operatively connected to said control unit (8), configured for allowing a user to interact with said control unit (8); wherein the method comprises steps of (a) selecting, by said user interface (9), a new list (21) of two or more of said cooking cycles (11) stored in said database (10), to be executed in sequence, (b) sorting, by said control unit (8), said cooking cycles (11) of said new list (21), using a sorting algorithm that calculates an order of said cooking cycles (11) of said new list (21) taking to a prefixed result, at least partially related to energy consumption, when performed in sequence, basing the calculation on said pre-set starting temperature (T.sub.i), said pre-set final temperature (T.sub.f), said pre-set starting humidity (H.sub.i), and said pre-set final humidity (H.sub.f) of said cooking cycles (11) of said new list (21), wherein (i) said prefixed result comprises a minimization of an overall energy consumption for executing in sequence all said cooking cycles (11) of said new list (21), or a minimization of the overall energy consumption for executing in sequence all said cooking cycles (11) of said new list (21), subordinate to one or more not-energy-related constraints, and (ii) said sorting algorithm is configured for calculating an energy (E) required for passing from a first cooking cycle to a second cooking cycle, as a result of a polynomial function which variables are or depend on a difference between said pre-set final temperature (Tf) of said first cooking cycle and said pre-set starting temperature (Ti) of said second cooking cycle and on a difference between said pre-set final humidity (Hf) of said first cooking cycle and said pre-set starting humidity (Hi) of said second cooking cycle, and (c) displaying, via said user interface (9), a sorted list (210) containing said cooking cycles (11) of said new list (21), sorted according to step (b).
2. The method according to claim 1, and further comprising, after said step (c), a step of: (d) manually changing the order of and/or deleting one or more cooking cycles (11) of said sorted list (210).
3. The method according to claim 1, and further comprising, after said step (c), a step of: (d) saving said sorted list (210) of cooking cycles (11), sorted according to said phase (b), in a memory module of said cooking device (1).
4. The method according to claim 1, and further comprising, before said step (a), a step of: (a0) setting, by said user interface (9), a new cooking cycle (11), and storing it in said database (10).
5. The method according to claim 1, wherein said polynomial function has coefficients depending on experimental measurements operated when the cooking oven (1) is empty.
6. A method for operating a cooking oven (1), comprising: a cooking chamber (3) wherein foodstuff is loaded; a heating device (6) for heating foodstuff contained in said cooking chamber (3); a database (10) wherein cooking cycles (11) are stored, each cooking cycle (11) having a pre-set starting temperature (Ti), a pre-set final temperature (Tf), a pre-set starting humidity (Hi), and a pre-set final humidity (Hf); a control unit (8) operatively connected to said database (10) and to said heating device (6), wherein said control unit (8) is configured for activating/deactivating said heating device (6) according to said cooking cycles (11); and a user interface (9) operatively connected to said control unit (8), configured for allowing a user to interact with said control unit (8); wherein the method comprises steps of (a) selecting, by said user interface (9), a new list (21) of two or more of said cooking cycles (11) stored in said database (10), to be executed in sequence, (b) sorting, by said control unit (8), said cooking cycles (11) of said new list (21), using a sorting algorithm that calculates an order of said cooking cycles (11) of said new list (21) taking to a prefixed result, at least partially related to energy consumption, when performed in sequence, basing the calculation on said pre-set starting temperature (T.sub.i), said pre-set final temperature (T.sub.f), said pre-set starting humidity (H.sub.i), and said pre-set final humidity (H.sub.f) of said cooking cycles (11) of said new list (21), wherein said sorting algorithm is configured for sorting cooking cycles (11) by applying a heuristic technique to an energy (E) required for passing from a cooking cycle (11) to another cooking cycle (11), in such a way to find a local minimum of an overall energy consumption for executing all the cooking cycles (11) in sequence.
7. The method according to claim 6, wherein said heuristic technique is repeated a plurality of times starting with different random orders of the cooking cycles (11), and a selected order of the cooking cycles (11) is one taking to a minimum value of all the calculated local minimums of the overall energy consumption for executing all the cooking cycles (11) in sequence.
8. The method according to claim 1, wherein said sorting algorithm is configured for calculating, for all possible couples of cooking cycles (11) in a list, an energy (E) needed for passing from a cooking cycle to another cooking cycle, and sorting said cooking cycles (11) in order to minimize an overall energy consumption for executing in sequence all the cooking cycles (11) of said list.
9. The method according to claim 1, wherein each of said cooking cycles (11) is associated to a kind data related to a kind of cooking cycles it belongs to, and wherein in said step (b) said sorting algorithm bases the calculation of the order of said cooking cycles (11) of said new list (21) also on said kind data of said cooking cycles (11) of said new list (21).
10. The method according to claim 9, wherein, in said step (b), said sorting algorithm forces all the cooking cycles (11) associated to one or more prefixed kind data to an end of the cooking cycles (11) of said new list (21).
11. The method according to claim 9, wherein said kind data has only two logical values indicating if the associated cooking cycle is configured for cooking foodstuff that, during the cooking cycle, soils the cooking oven in a particular way or not.
12. The method according to claim 1, wherein each of said cooking cycles (11) is associated to a status data related to a status of the food to be cooked by said cooking cycle (11), and wherein in said step (b), said sorting algorithm bases the calculation of the order of said cooking cycles (11) of said new list (21) also on said status data related to the status of the food to be cooked by said cooking cycles (11) of said new list (21).
13. The method according to claim 12, wherein said status data indicates if the foodstuff to be cooked by said cooking cycle (11) has to be loaded still frozen into the cooking chamber.
14. A method for operating a cooking oven (1), comprising: a cooking chamber (3) wherein foodstuff is loaded; a heating device (6) for heating foodstuff contained in said cooking chamber (3); a steam generator (7) adapted to generate steam which is supplied to said cooking chamber (3); a database (10) wherein cooking cycles (11) are stored, each cooking cycle (11) having a pre-set starting temperature (Ti), a pre-set final temperature (Tf), a pre-set starting humidity (Hi), and a pre-set final humidity (Hf); a control unit (8) operatively connected to said database (10) and to said heating device (6) and said steam generator (9), wherein said control unit (8) is configured for activating/deactivating said heating device (6) and said steam generator (9) according to said cooking cycles (11); and a user interface (9) operatively connected to said control unit (8), configured for allowing a user to interact with said control unit (8); wherein the method comprises steps of (a) selecting, by said user interface (9), a new list (21) of two or more of said cooking cycles (11) stored in said database (10), to be executed in sequence, (b) sorting, by said control unit (8), said cooking cycles (11) of said new list (21), using a sorting algorithm that calculates an order of said cooking cycles (11) of said new list (21) taking to a prefixed result, at least partially related to energy consumption, when performed in sequence, basing the calculation on said pre-set starting temperature (T.sub.i), said pre-set final temperature (T.sub.f), said pre-set starting humidity (H.sub.i), and said pre-set final humidity (H.sub.f) of said cooking cycles (11) of said new list (21), wherein (i) said prefixed result comprises a minimization of an overall energy consumption for executing in sequence all said cooking cycles (11) of said new list (21), or a minimization of the overall energy consumption for executing in sequence all said cooking cycles (11) of said new list (21), subordinate to one or more not-energy-related constraints, and (ii) said sorting algorithm is configured for calculating an energy (E) required for passing from a first cooking cycle to a second cooking cycle, as a result of a polynomial function which variables are or depend on a difference between said pre-set final temperature (Tf) of said first cooking cycle and said pre-set starting temperature (Ti) of said second cooking cycle and on a difference between said pre-set final humidity (Hf) of said first cooking cycle and said pre-set starting humidity (Hi) of said second cooking cycle, and (c) displaying, via said user interface (9), a sorted list (210) containing said cooking cycles (11) of said new list (21), sorted according to step (b).
Description
(1) These and other features and advantages of the invention will be better apparent from the following description of some exemplary and non-limitative embodiments, to be read with reference to the attached drawings, wherein:
(2)
(3)
(4)
(5)
(6) With reference to
(7) The cooking oven 1 comprises an external casing 2, containing a cooking chamber 3, wherein foodstuffs can be placed for being cooked; preferably, the cooking chamber 3 is accessible via a door 4. Advantageously the cooking oven 1 is provided with a sensor, not illustrated, detecting the opened and closed state of the door 4.
(8) In an advantageous embodiment, like in the example of attached figures, the cooking chamber 3 can contain a plurality of trays or racks 5, wherein foodstuff, or pots or trays containing foodstuff, can be placed for being cooked.
(9) The cooking oven 1 comprises a heating device 6, schematically illustrated in
(10) Preferably, but not necessarily, the cooking oven 1 comprises a steam generator 7 configured for producing steam, and fluidly connected to the cooking chamber 3 so as to release into the latter the steam. More preferably, the steam generator 7 comprises a water reservoir, not illustrated, fillable with water, and a water heater for heating water loaded within the water reservoir, also not illustrated.
(11) Advantageously, the cooking oven 1 comprises a control unit 8, schematically illustrated in
(12) Advantageously, the cooking oven 1 comprises a user interface 9, comprising for example a touch-screen, a display and a keyboard, switches, knob(s), etc., operatively connected to the control unit 8, and configured for allowing a user to interact with such a control unit 8.
(13) Advantageously, the cooking oven 1 comprises a database, schematically illustrated in
(14) Advantageously, the database 10 can be stored/memorized in a suitable memory module, not illustrated, of the control unit 8, or in a further memory module operatively connected to the control unit 8.
(15) Each cooking cycle 11 has a pre-set starting temperature (T.sub.i), a pre-set final temperature (T.sub.f), a pre-set starting humidity (H.sub.i), a pre-set final humidity (H.sub.f).
(16) Advantageously, each cooking cycle 11 comprises instructions and/or a logic for obtaining in the cooking chamber 3 a temperature/humidity profile suitable for cooking a specific dish. Advantageously, the control unit is operatively connected to the heating device 6, and it is configured for activating/deactivating such heating device 6 according to the cooking cycles 11.
(17) Advantageously the cooking oven 1 is provided with a temperature sensor and an humidity sensor, not illustrated, operatively connected to the control unit 8 and configured for detecting, respectively, the temperature and the humidity within the cooking chamber 3.
(18) Advantageously, if the cooking oven is provided with a steam generator 7, some of the cooking cycles 11 can be steam cooking cycles, i.e. they comprise instructions and/or a logic for activating/deactivating, alternatively or in addition to the heating device 6, the steam generator 7, and the control unit 8 is configured for activating/deactivating the steam generator 7 according to these steam cooking cycles 11.
(19) Preferably, but not necessarily, each of the cooking cycles 11 is associated to a kind data related to a kind of cooking cycles it belongs to.
(20) Advantageously, the kind data are stored in the database 10 where the cooking cycles 11 are store, preferably together with the rest of the data of the data related to the cooking cycles 11.
(21) Preferably, this kind data can have only two logical values (e.g. YES or NOT, 1 or 0, etc.) indicating if the associated cooking cycle 11 is configured for cooking foodstuff that, during the cooking cycle 11, soils the cooking oven in a particular way (corresponding for example to logical value YES, or 1) or not (corresponding for example to logical value NOT, or 0). For example, a cooking cycle 11 for roasted chicken, that typically soils the oven very much, can be associated to a kind data which logical value is “1”, while a cooking cycle 11 for cooking bread, that typically does not soil the oven, can be associated to a kind data which logical value is “0”.
(22) Advantageously, the control unit 8 can be configured for detecting the value of the kind data associated to a cooking cycle 11.
(23) In a further advantageous embodiment, each of the cooking cycles 11 is associated to a status data related to the status of the food to be cooked by the cooking cycle 11.
(24) Preferably, the status data indicates if the foodstuff to be cooked by the cooking cycle 11 has to be loaded still frozen into the cooking chamber or not.
(25) Advantageously, the status data are stored in the database 10 where the cooking cycles 11 are store, preferably together with the rest of the data of the data related to the cooking cycles 11.
(26) Preferably, the status data can have only two logical values (e.g. YES or NOT, 1 or 0, etc.) indicating if the cooking cycle is configured for cooking still frozen foodstuff (corresponding for example to logical value YES, or 1) or not (corresponding for example to logical value NOT, or 0).
(27) Advantageously, the control unit 8 can be configured for detecting the value of the status data associated to a cooking cycle 11.
(28) Advantageously, one or more cooking cycles 11 can be stored by default in the database 10, so as to be available also at the first use of the cooking oven 1.
(29) Preferably, the cooking oven 1 is configured in such a way that one or more further cooking cycles 11 can be set up (or programmed) by a user and stored in the database 10, preferably by using the user interface 9.
(30) Preferably, one or more of the cooking cycles 11 stored in the database 10 can be modified by a user, for example by the user interface 9.
(31) The functioning of the cooking oven 1 is the following: in a preferred embodiment, the user preferably selects, for example by the user interface 9 (which, in the example of attached figures, is advantageously a “touch-screen”), the activation of the method according to the invention. In the example of attached figures, the method can be advantageously activated by operating an input device, for example a first icon 12, preferably displayed in the user interface 9.
(32) In the example of attached figures, after the user touches the first icon 12, preferably a second screen or window 13 appears on the user interface 9, which in the advantageous embodiment of attached Figures, displays a set 14 of previously sorted lists 15 of cooking cycles, advantageously in the form of icons (e.g. comprising writings and/or images).
(33) Advantageously, the user can select, e.g. by touching the related icon, one of the previously sorted lists 15 on the user interface 9, which, preferably, causes a third screen or window 16 to appear in the user interface 9; this third screen or window 16 advantageously displays a plurality of cooking cycles 11, previously sorted in such a way to minimize the overall energy consumption.
(34) Advantageously, the third screen or window 16 displays also a start icon 18, by activating which the first cooking cycle 11 in the list is activated.
(35) The first cooking cycle 11 advantageously starts with a preheating phase, in which the heating element 6 and, if present in the cooking oven 1, and provided by the first cooking cycle 11, also the steam generator 7, are activated in order to obtain in the cooking chamber 3 the pre-set starting temperature Ti, and the pre-set starting humidity Hi provided for the first cooking cycle 11.
(36) Once these pre-set starting temperature and humidity are reached (preferably measured by the temperature and humidity sensors of the cooking oven 1), a message is preferably displayed in the user interface 9, informing the user that the foodstuff can be loaded into the cooking chamber 3.
(37) The user can load the foodstuff, and, after the door 4 is closed, the cooking cycle, controlled by the control unit 8, proceeds by activating/deactivating the heating element 6, and optionally, if present and provided by the cooking cycle, the steam generator 7.
(38) Preferably, when the first cooking cycle is completed, a message, advantageously displayed in the user interface 9, informs the user that the foodstuff can be unloaded.
(39) After the user has unloaded the foodstuff, and closed the door 4, the second cooking cycle in the list starts, by a possible preheating phase in which the heating element 6 and, if present in the cooking oven 1, and provided by the second cooking cycle, also the steam generator 7, are activated/deactivated, until reaching in the cooking chamber 3 the pre-set starting temperature Ti and the pre-set starting humidity Hi provided for the second cooking cycle.
(40) Once the second cooking cycle is completed, the third is activated by the control unit 8, according to the same principle just explained in relation to the second cooking cycle in the list.
(41) The procedure advantageously proceeds in the same way, until all the cooking cycles 11 in the list are executed.
(42) A new list 21 of cooking cycles 11 to be executed in sequence, ordered in such a way to obtain a prefixed result, at least partially related to energy consumption (for example the minimization of the overall energy consumption for executing in sequence all the cooking cycles 11 of the new list 21, or a minimization of the overall energy consumption for executing in sequence all the cooking cycles 11 of the new list 21, subordinate to one or more not-energy-related constraints) can be created in the following way.
(43) A suitable input device, for example an icon 19, preferably displayed in the second screen or window 13 (
(44) The fourth screen or window 20 advantageously displays all the cooking cycles 11 that can be selected; these cooking cycles 11 can comprise steam cooking cycles.
(45) Advantageously, the cooking cycles 11 displayed in the fourth screen or window 20 can be pre-stored by default in the database 10, or they can have been set up by a user and stored in the database 10, preferably by using the user interface 9.
(46) Advantageously, the cooking cycles 11 to be included in the new 21 list can be selected, for example, by checking a related selection field 22 displayed in the fourth screen or window 20, and more preferably by giving a confirmation command, for example by a further input device, for example a confirmation icon 23 displayed in the fourth screen or window 20.
(47) The operation of such confirmation icon 23 preferably, makes a fifth screen or window 25 to be displayed in the user interface 9 (
(48) The cooking cycles 11 in the new list 21 can be therefore sorted in order to obtain a prefixed result, at least partially related to energy consumption, when all these coking programs 11 are performed in sequence.
(49) A sorting input device is provided, advantageously a sorting icon 26, which operations by the user causes a sorting algorithm to be executed by the control unit 8.
(50) The sorting algorithm calculates the order of the cooking cycles 11 of the new list 21 taking to a prefixed result, at least partially related to energy consumption, when performed in sequence; advantageously, the sorting algorithm calculates energy consumption basing the calculation on the pre-set starting temperature (Ti), pre-set final temperature (Tf), pre-set starting humidity (Hi) and pre-set final humidity (Hf) of the cooking cycles 11 contained in the new list 21.
(51) In an advantageous embodiment, the sorting algorithm is configured for calculating the energy required for passing from a first cooking cycle to a second cooking cycle as the result of a polynomial function, preferably of the second order, which variables are or depend on the difference between the pre-set final temperature (Tf) of the first cooking cycle and the pre-set starting temperature (Ti) of the second cooking cycle, and are or depend on the difference between the pre-set final humidity (Hf) of the first cooking cycle and the pre-set starting humidity (Hi) of the second cooking cycle.
(52) Preferably, such a polynomial function has coefficients depending on experimental measurements operated when the cooking oven 1 is empty (idle condition). In particular, these measurements can be executed by forcing a plurality of prefixed variations of temperature and humidity in the cooking chamber 3, and measuring the energy required for causing such variations; by repeating these measurements for many sets of temperature and humidity, it is possible to obtain, in the Cartesian space defined by the variation of temperature (ΔT), variation of humidity (ΔH), and variation of energy (E(ΔT, ΔH)) (see
(53) Preferably, the polynomial function is the following:
E(ΔT,HΔ)=p.sub.1Aτ.sup.2+p.sub.2ΔTΔH+p.sub.3ΔH.sup.2+p.sub.4ΔT+p.sub.5ΔH+p.sub.6
wherein: E(ΔT, ΔH) is the energy variation for passing from a first cooking cycle to a second cooking cycle; p.sub.1, p.sub.2, . . . p.sub.6 are the coefficient depending on experimental measurements operated when the cooking oven is empty, as explained above; ΔT is the temperature difference between the pre-set final temperature (Tf) of the first cooking cycle and the pre-set starting temperature (Ti) of the following second cooking cycle ΔH is the humidity difference between the pre-set final humidity (Hf) of the first cooking cycle and the pre-set starting Humidity (Hi) of the following second cooking cycle.
(54) Preferably, the value of the temperature variation between a first and a second cooking cycle used as variable in the polynomial function for calculating the energy, is weighted for taking into account the ambient temperature T0, by the following formula:
ΔT=ΔT(1−T0/Ti)
wherein: T0 is the environment temperature, Ti is the starting temperature of the second cooking cycle.
(55) In an advantageous embodiment, the sorting algorithm is configured for sorting cooking cycles 11 by applying a “heuristic technique” to the energy required for passing from a cooking cycle 11 to another cooking cycle 11, in such a way to find a local minimum of the overall energy consumption for executing all the cooking cycles 11 in sequence.
(56) Preferably, the heuristic technique is the Karg-Thompson heuristic.
(57) More preferably, the Karg-Thompson heuristic is repeated a plurality of times starting with different random orders of the cooking cycles 11, and the selected order of the cooking cycles 11 is the one taking to the minimum value of all the calculated local minimums of the overall energy consumption for executing all the cooking cycles 11 in sequence.
(58) In a further advantageous embodiment, the sorting algorithm calculates, for all the possible couples of cooking cycles 11 of the new list 21, the energy needed for passing from a cooking cycle to another cooking cycle, and sorts the cooking cycles 11 in order to minimize the overall energy consumption for executing in sequence all the cooking cycles contained in the first list; this kind of sorting is more precise than the one using the heuristic technique, but it requires to be executed much more time and calculation resources.
(59) Once the sorting of the cooking cycles 11 has been performed, a sorted list 210 of cooking cycles 11 is displayed in the user interface 9, for example, as in the advantageous embodiments of attached figures, in the fifth screen or window 25 (
(60) In a further advantageous embodiment, in case a kind data is associated to the cooking cycles 11, the sorting algorithm can base the calculation of the order of the cooking cycles 11 of the new list 21 also on the kind data related to the cooking cycles 11 of the new list 21.
(61) In this case, the sorting algorithm can be advantageously configured in such a way that when a cooking cycle 11 to be sorted is associated to a kind data (e.g. having logical value “1”) indicating that such a cooking cycle 11 soils the oven in a particular way, the algorithm forces this cooking cycle 11 after all the cooking cycles 11 associated to a kind data having a different value.
(62) This sorting criteria ensures that all the cooking cycles 11 that soil the oven are performed after all the cooking cycles 11 that does not soil the oven, or that soil it in a minor way, so that it is not necessary performing the cleaning (or at least a deep cleaning) of the cooking oven between performing the cooking cycles 11 of the new list 21.
(63) It is underlined that the sorting algorithm, preferably, does not simply put the cooking cycles 11 of a specific kind after the others, but it does the sorting taking anyway into account energy consumption; for example, in the passage form the last “clean” cooking cycle 11 that does not soil the oven (or that anyway is associated to a kind data indicating that it can be performed before than other cooking cycles 11 soiling the oven more that it), to the first “dirty” cooking cycle 11 that soils the oven in a particular way (or that anyway is associated to a kind data indicating that it must be performed after the other cooking cycles 11 soiling the oven less that it), the sorting algorithm takes into account the energy for passing from the last “clean cycle” to the first “dirty cycle”, and selects the last “clean cycle” and the first “dirty” cycle in order to try to minimize the overall energy consumption.
(64) In a further advantageous embodiment, in case a status data is associated to the cooking cycles 11, and the value of the status data indicates that the foodstuff has to be loaded in the cooking chamber 3 still frozen, the sorting algorithm uses as coefficients of the above mentioned polynomial function values obtained by experimental measurements performed with frozen samples positioned within the cooking chamber 3 during measurements.
(65) In the advantageous embodiment in which both a kind data and a status data are associated to the cooking cycles 11, the sorting algorithm is preferably configured for applying both above described sorting criteria, i.e. forcing the cooking cycles 11 having a first value of the kind data after all the cooking cycles 11 having a different value of the kind data, and using as coefficients of the above mentioned polynomial function values obtained by experimental measurements performed with frozen samples positioned within the cooking chamber 3 during measurements for sorting cooking cycles having a status value indicating that foodstuff has to be loaded in the cooking chamber 3 still frozen.
(66) Once the sorted list 210 is displayed in the user interface 9, the first cooking cycle of the sorted list 210 can be activated, for example by operating a start icon 18 displayed in the fifth screen or window 25. Then the cooking procedure advantageously proceeds by executing in sequence all the cooking cycles of the sorted list 210, in the same way explained above in relation to
(67) Preferably, before starting the first cooking cycle 11 of the sorted list 210, the order of the cooking cycles 11 can be manually modified (
(68) Preferably, before starting the first cooking cycle 11 of the sorted list 210, one or more cooking cycles 11 can be manually removed from the new list 21 (
(69) After moving and/or deleting one or more cooking cycles 11, the sorting phase can be performed once more, for example by operating a sorting-again input device provided in the user interface 9, for example a “sorting-again” icon 29 displayed in the fifth screen or window 25.
(70) Once the user decides that the sorted list 210 is final, it can be saved in a memory unit, not illustrated, of the cooking oven 1, e.g. contained in the control unit 8, for example by operating a saving input device provided in the user interface 9, for example a saving icon 30 (
(71) After being saved, a sorted list 210 will advantageously appear among the set 14 of previously sorted lists 15 of cooking cycles that can be selected by the user.
(72) Preferably, during the execution of a cooking cycle 11, one or more cooking cycles 11 can be skipped, for example by operating a skipping input device provided in the user interface 9, for example a skipping icon 31 displayed in the fifth screen or window 25 (
(73) Preferably, during the execution of a cooking cycle 11 of a list, one or more cooking cycles can be stopped, for example by operating a stopping input device provided in the user interface 9, for example a stopping icon 32 displayed in the fifth screen or window 25 (
(74) It is seen therefore how the invention achieves the proposed aim and objects, there being provided a method for operating a cooking oven effectively taking to a prefixed result, at least partially related to the energy consumption, when a series of cooking cycles are executed in sequence.