Method for Operating a Food Processor
20190261805 · 2019-08-29
Inventors
Cpc classification
Y02P90/02
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
A47J43/0716
HUMAN NECESSITIES
International classification
Abstract
The invention relates to a method (100) for operating a food processor (10), in which, in a preparation mode, at least one processor device (50) of said food processor (10) is actuated so as to prepare food at least partly automatically, wherein a monitoring device (200) determines detection values (106) by detecting (105), at said processor (10), at least two detection variables (102) specific to a state of preparation.
Claims
1-25. (canceled)
26. A method for operating a food processor, wherein at least one processing device of the food processor is controlled, in a preparation mode, so as to least partially automatically prepare food, and wherein a monitoring device carries out an identification of acquisition values by acquisition of at least two acquisition variables, specific to a preparation state, on the food processor, the method comprising: a) identifying at least one first acquisition value by a first acquisition of a first acquisition variable; b) identifying at least one second acquisition value by a second acquisition of a second acquisition variable, wherein the second acquisition variable differs from the first acquisition variable; c) determining at least one analysis information on the basis of at least one of the first acquisition value and the second acquisition value; d) performing a time-dependent analysis of the analysis information in order to determine an analysis result specific to the preparation state; and e) emitting at least one control signal for influencing the preparation mode on the basis of the analysis result, such that the preparation state is taken into account during the preparation.
27. The method according to claim 26, wherein at least one of the first and the second or both the first and second identified acquisition values are at least partially at least one of compared with one another and combined with one another.
28. The method according to claim 26, wherein at least one of the first and second acquisition variable each includes variables measurable on the food processor, which at least one of influence a property of the food changeable by the preparation respectively in a different manner and are influenced by the property, so that they are specific to a preparation state.
29. The method according to claim 26, wherein first acquisition values are at least one of periodically and repeatedly identified in the preparation mode, and preferably at least one of second acquisition values and further acquisition values are at least one of simultaneously identified periodically and repeatedly in the preparation mode, wherein the analysis information is determined from a time course of the respective at least one of periodically and repeatedly identified acquisition values.
30. The method according to claim 26, wherein the second acquisition value is identified outside the preparation mode.
31. The method according to claim 26, wherein a further analysis of the analysis information is carried out temporally at least one of after and simultaneously to the time-dependent analysis, in order to determine the analysis result, wherein the further analysis differs from the time-dependent analysis.
32. The method according to claim 26, wherein the preparation state is a future optimal completion timepoint of the prepared food during the preparation, wherein the control signal is emitted temporally in such a way that a deactivation of the preparation mode at the completion timepoint is caused.
33. The method according to claim 26, wherein a first and a second control signal is emitted, wherein: the first control signal is emitted when a first analysis result is determined, so that the preparation is influenced in a first manner; and the second control signal is emitted when a second analysis result is determined, so that the preparation is influenced in a second manner, which differs from the first manner.
34. The method according to claim 26, wherein the second acquisition variable is a surroundings parameter outside the food processor.
35. The method according to claim 26, wherein at least one of the time-dependent analysis and the determination of the analysis result is carried out in an adaptive manner.
36. The method according to claim 26, wherein at least one of the time-dependent analysis and the determination of the analysis result is effected dependent upon a parametrization.
37. The method according to claim 26, wherein in the time-dependent analysis, at least one comparison specification is evaluated dependent upon a prepared food, wherein, a comparison of the analysis information with the comparison specification is effected.
38. The method according to claim 26, wherein the following steps are provided: at least one of setting and selecting a food to be prepared, by a user input on the food processor; selecting a comparison specification dependent upon the set food; and comparing values of at least one of the analysis information and of the analysis result with the comparison specification, in order to determine a future determined state specified to the food.
39. The method according to claim 26, wherein a selection of the comparison specification is effected in such a way that the comparison specification is read from a database dependent upon a set food.
40. The method according to claim 26, wherein in the preparation mode, the processing device is controlled for the at least partially automatic preparation of different foods, wherein at least one food-specific comparison specification is at least one of provided and pre-stored for each of these foods.
41. The method according to claim 26, wherein a comparison specification includes an information about an acquisition variable selection, wherein the comparison specification is selected dependent upon the set food, and in the acquisition, the acquisition variables are acquired which are predetermined by the acquisition variable selection of the selected comparison specification, so that in the selection of a first food to be prepared, at least one different acquisition variable is acquired than in the selection of a second food to be prepared.
42. A food processor comprising at least one processing device and a monitoring device, wherein the processing device can be controlled, in the preparation mode, to at least partially-automatically prepare food, and the monitoring device comprises at least two sensors, and at least a first acquisition value can be identified by a first sensor by means of a first acquisition of a first acquisition variable of the food processor, and at least a second acquisition value can be identified by a second sensor by means of a second acquisition of a second acquisition variable of the food processor, wherein the second acquisition variable differs from the first acquisition variable, wherein the monitoring device includes a processing device, by means of which at least one analysis information can be determined dependent upon at least one of the first acquisition value and the second acquisition value, and a time-dependent analysis of the analysis information can be performed to determine an analysis result specific to a preparation state, wherein at least one control signal can be emitted for influencing the preparation state dependent upon the analysis result.
43. The food processor according to claim 42, wherein the processing device includes at least one drive and a processing tool, which can be operated by the drive.
44. The food processor according to claim 42, wherein at least one of the first sensor and the second sensor respectively carry out the acquisition on the food.
45. The food processor according to claim 42, wherein the food processor comprises a mixing vessel to accommodate the food, wherein the mixing vessel is in the form of a thermo vessel to maintain the temperature of the food, preferably having a double wall.
46. The food processor according to claim 42, wherein the sensor is integrated in a mixing vessel of the food processor.
47. The food processor according to claim 42, wherein the sensor is configured that it can be retrofitted in such a way that the sensor can be fitted, into at least one of the food processor, a mixing vessel of the food processor and a cover of the mixing vessel in a detachable manner.
48. The food processor according to claim 42, wherein at least one of a mixing vessel holder of the food processor, a mixing vessel of the food processor that can be inserted into at least one of the mixing vessel holder, and a lid of the mixing vessel that can be placed on the mixing vessel, comprises at least one electrical contact for establishing an electrical connection to an electrical circuit of the food processor when in at least one of the inserted and placed-on state.
49. The food processor according to claim 42, wherein the food processor is configured to carry out a method, wherein at least one processing device of the food processor is controlled, in a preparation mode, so as to least partially automatically prepare food, and wherein a monitoring device carries out an identification of acquisition values by acquisition of at least two acquisition variables, specific to a preparation state, on the food processor, the method comprising: a) identifying at least one first acquisition value by a first acquisition of a first acquisition variable; b) identifying at least one second acquisition value by a second acquisition of a second acquisition variable, wherein the second acquisition variable differs from the first acquisition variable determining at least one analysis information on the basis of at least one of the first acquisition value and the second acquisition value; d) performing a time-dependent analysis of the analysis information in order to determine an analysis result specific to the preparation state; and e) emitting at least one control signal for influencing the preparation mode on the basis of the analysis result, such that the preparation state is taken into account during the preparation.
50. A computer program product for operating a food processor, wherein the computer program product is configured to carry out a method, wherein at least one processing device of the food processor is controlled, in a preparation mode, so as to least partially automatically prepare food, and wherein a monitoring device carries out an identification of acquisition values by acquisition of at least two acquisition variables, specific to a preparation state, on the food processor, the method comprising: a) identifying at least one first acquisition value by a first acquisition of a first acquisition variable; b) identifying at least one second acquisition value by a second acquisition of a second acquisition variable, wherein the second acquisition variable differs from the first acquisition variable; c) determining at least one analysis information on the basis of at least one of the first acquisition value and the second acquisition value; d) performing a time-dependent analysis of the analysis information in order to determine an analysis result specific to the preparation state; and e) emitting at least one control signal for influencing the preparation mode on the basis of the analysis result, such that the preparation state is taken into account during the preparation.
Description
[0120] Further advantages, features and details of the invention can be found in the following description, in which embodiments of the invention are described in detail with reference to the drawings. In this case, the features mentioned in the claims and in the description may in each case be essential to the invention alone or in any desired combination. In the drawings:
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[0125] In the following drawings, identical reference characters are used for the same technical features, even in different embodiments.
[0126] A food processor 10 according to the invention is shown schematically in
[0127] As shown in
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[0129]
[0130] The method according to the invention is detailed in
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[0133] It is also conceivable for filtering of the time curve 107 of the acquisition values 106 to be performed alternatively or in addition. This is shown schematically in
[0134] The time-dependent analysis 140 can for example be performed on the basis of the filtered time curve 107b and/or on the basis of the unfiltered time curve 107a and/or on the basis of the generated features 121 and/or on the basis of the filtered acquisition values 106b and/or on the basis of the unfiltered acquisition values 106a. The time-dependent analysis 140 is preferably a frequency analysis. As shown in
[0135] In particular, a positive decision result 151 is determined only when the analysis result indicates a (desired) specified future preparation state, for example an optimal completion time of the preparation. In this case, in the event of a negative decision result 151, the preparation mode is not influenced and/or no control signal 161 is emitted. In other words, the preparation of the food continues as normal in the preparation mode. In particular, however, there can moreover also be further abortion conditions for the preparation mode, such that the preparation mode is automatically deactivated for example when a maximum time period of the preparation mode is exceeded, irrespective of the analysis result. After the negative decision result 151 has been determined, at least one acquisition 105 and/or one time-dependent analysis 140 is performed again (for example automatically and/or after a specified time period and/or cyclically). However, if a positive decision result 151 is determined, the processing device 50 is controlled 160, by means of a control signal 161 being emitted, in order to influence the preparation mode (see
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[0138] The curve pattern 152 is for example empirically pre-defined. It may be possible for a comparison specification such as the curve pattern 152 to be detected by means of the time-dependent analysis 140 and/or the process of carrying out the decision 150. Detection of the curve pattern 152 then allows for early prediction of a critical point 153 at which the desired preparation state occurs. In particular, the steps of the method 100 according to the invention can be adjusted and/or temporally defined for example by means of a real-time requirement, such that the control signal 161 is emitted in due time, despite an evaluation latency period, in order to influence and/or deactivate the preparation mode when the desired state or the critical point 153 has been temporally reached.
[0139] It may furthermore be possible for the acquisition values 106, in particular the filtered curve 107b, to be able to be consulted for generating features. It is thus possible to generate, for example, a first generated feature 121a and a second generated feature 121b by means of an evaluation. The first generated feature 121a in this case indicates for example a rise (i.e. a positive difference), and the further generated feature 121b in this case indicates for example a drop (i.e. a negative difference). It is furthermore possible for a comparison specification, in particular a curve pattern 152, in the curve pattern 107 to be detected by means of the feature evaluation and/or the time-dependent analysis 140. For this purpose, a histogram is evaluated for example. As shown in
[0140] A plausibility check of the analysis result, in particular also the definition of the value range of the acquisition values 106 for carrying out the decision 150, is made possible by the threshold values 171. The threshold value 171 in particular comprises at least one first threshold value 171, 171a, which is shown by a dashed horizontal line in
[0141] The above explanation of the embodiments describes the present invention merely within the context of examples. Of course, individual features of the embodiments can, insofar as technically reasonable, be combined with one another as desired without departing from the scope of the present invention.
LIST OF REFERENCE CHARACTERS
[0142] 10 food processor [0143] 20 housing [0144] 21 lid [0145] 22 mixing vessel holder [0146] 23 handle [0147] 24 mixing vessel [0148] 25 display [0149] 26 control panel [0150] 30 drive means [0151] 31 motor [0152] 50 processing device [0153] 51 processing tool, mixer [0154] 52 sensor [0155] 52.1 first sensor [0156] 52.2 second sensor [0157] 53 heating element [0158] 54 scale [0159] 100 method [0160] 101.1 first recording [0161] 101.2 second recording [0162] 102 acquisition variable [0163] 102.1 first acquisition variable [0164] 102.2 second acquisition variable [0165] 105 acquisition [0166] 105.1 first acquisition [0167] 105.2 second acquisition [0168] 106 acquisition values [0169] 106.1 first acquisition values [0170] 106.2 second acquisition values [0171] 106a unfiltered acquisition values [0172] 106b filtered acquisition values [0173] 107 curve [0174] 107.1 first curve [0175] 107.2 second curve [0176] 107a unfiltered curve [0177] 107b filtered curve [0178] 110 filtering [0179] 121 generated feature [0180] 121a first generated feature [0181] 121b second generated feature [0182] 140 time-dependent analysis [0183] 150 carrying out a decision [0184] 151 decision result [0185] 152 curve pattern [0186] 153 critical point [0187] 160 control [0188] 161 control signal [0189] 161.1 first control signal [0190] 161.2 second control signal [0191] 171 threshold value [0192] 171a first threshold value [0193] 171b second threshold value [0194] 200 monitoring device [0195] 210 processing device [0196] 220 non-volatile memory [0197] t time [0198] M measuring variable, motor signal