Device and method for determining a bubble, method for removing a bubble, and kitchen appliance

EP4622515A1Inactive Publication Date: 2025-10-01DE LONGHI BRAUN HOUSEHOLD GMBH
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Patent Information

Application Number
EP2023730056
Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2022-11-22
Filing Date
2023-05-30
Publication Date
2025-10-01
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Kitchen appliances like stand mixers often encounter air bubbles during food processing due to centrifugal force, especially with high viscosity foods, leading to inefficient processing and requiring manual intervention for bubble detection and removal, which is inconvenient and user-dependent.

Method used

A device that detects air bubbles by monitoring operating parameters such as power and rotational speed of the drive, using a power determining device and evaluation device to identify drops in power and increases in speed, and automatically adjusts the rotation speed or voltage to remove bubbles, enhancing processing efficiency and user-friendliness.

Benefits of technology

The solution enables automatic detection and removal of air bubbles, ensuring consistent food processing without user intervention, improving processing efficiency and reducing the risk of unsatisfactory results due to undetected bubbles.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a device for determining whether a bubble is present in a food being processed by a rotatingly driven working means, comprising a power determining device for determining the power of the drive with which the working means is driven and comprising an analysis device for determining whether a bubble is present, wherein the analysis device detects a bubble on the basis of the output of the power determining device.
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Description

[0001] Device and method for determining a bubble, method for removing a bubble and kitchen appliance

[0002] Technical area

[0003] The invention relates to a device for determining whether a bubble is present in a food product processed by a rotating working medium. It further relates to a kitchen appliance having such a device. The invention further relates to a method for determining whether a bubble is present in a food product processed by a rotating working medium and to a method for removing such a bubble.

[0004] Technical background

[0005] Kitchen appliances such as stand mixers are often used for processing food in both the home and catering environments. In such appliances, a working element, which may, for example, be in the form of rotating blades, is arranged within a container and can be driven by a motor. The rotation of this working element chops and mixes the food placed in the container.

[0006] During processing in a stand mixer, an air bubble can form around the rotating tool. This can be due, for example, to the food being pushed outwards due to centrifugal force, causing air to collect around the tool. This effect is disadvantageous in that the now freely rotating tool can hardly or no longer process the food as it is not in contact with the food or is only in a much smaller area. This problem is particularly relevant for foods with a high viscosity such as spreads, baby food, frozen fruit, nut butters such as peanut butter, etc.The rotating working medium pushes the food to the side and due to the high viscosity of the food, it no longer flows back to the working medium but remains in a position radially outside the working medium.

[0007] In order to be able to further process the food in such a state, there are several options that a user can use.

[0008] First, a user can insert a tamper, which can be used to manually press the food toward the food processor while the appliance is in operation. Such tampers often look like a large spoon, a cylindrical rod, or something similar. To press the food toward the food processor using such a tamper, the tamper is often inserted through an opening in the lid of the container containing the food. This method can be used while the motor is running, so the appliance does not need to be stopped.

[0009] Alternatively, the motor's rotation speed can be manually reduced by setting a lower speed. After a short time, the original speed can then be reset. At a lower speed, the centrifugal forces are lower, which often results in stuck food flowing back into the processing medium and also allows the air bubble to rise through the food, thereby removing it from the processing medium. Because the food flows back into the processing medium, it is possible to continue the processing.

[0010] Furthermore, it is possible to turn off the appliance, remove the lid from the container, and either mix the food to be processed manually or press it into the processing medium with a tamper. This will eliminate the air bubble, allowing the food to cover the processing medium again without an air bubble. Then, replace the lid on the container and restart the appliance.

[0011] It is possible to repeat each of these steps multiple times, and this may be necessary depending on the food being processed. However, a disadvantage is that such a process is inconvenient for the user, and therefore an automated process would be advantageous.

[0012] Furthermore, it would also be advantageous for a user to be able to automatically detect an air bubble. According to the state of the art, whether the user recognizes that an air bubble is present depends on their experience and powers of observation. If the user does not recognize the air bubble as such and does not take countermeasures, this leads to an unsatisfactory processing result. It would therefore be advantageous if it did not depend on the user whether an air bubble is detected.

[0013] Description of the invention

[0014] The present invention has been made in view of the aforementioned disadvantages and aims to at least partially remedy or alleviate them.

[0015] The invention is defined by the independent claims. Preferred embodiments are defined in the respective dependent claims. According to the invention, a device for determining whether a bubble is present in a food product processed by a rotatingly driven working medium. In this case, it can be determined whether a bubble is present that interacts with the working medium and, in particular, surrounds it.

[0016] Depending on the embodiment, the device has a device for determining operating parameters of the drive. Such operating parameters include the power and / or the rotational speed of the drive. The inventors have found that a bubble can be detected using these parameters. This device determines at least the current power consumption and / or rotational speed of the drive by which the work medium is driven. Such a power determination device determines the current power of the drive, which drives the work medium, by simultaneously measuring the applied voltage, the currently flowing current and taking into account the power factor (cos (phi)) of the electric motor.

[0017] Furthermore, an evaluation device is provided. This determines whether a bubble is present. The evaluation device determines this presence based at least on the output of the determination device. Thus, based on the operating parameter(s) of the drive, it is determined whether a bubble is present. The inventors noticed that one can determine whether a bubble is present based on the time curve of the drive's power. A bubble is typically accompanied by a significantly reduced rotational resistance of the working medium, which is noticeable by the abrupt drop in the required power. Accordingly, based on the course of the power curve, it can be determined whether a bubble is present. The bubble can also manifest itself through an abrupt increase in the rotational speed.

[0018] Preferably, the evaluation device only determines that a bubble is present if the power drops by more than a certain proportion of the initial power value within a predetermined period of time. The predetermined amount can be an amount defined as a percentage of the maximum instantaneous power of the drive in the processing operation during which the presence of a bubble is to be determined. In particular, the predetermined amount can be 30%, more preferably 50%, possibly even 90% of this maximum value. These features enable an easy decision as to whether a bubble is present, resulting in a robust method with few falsely detected bubbles.

[0019] In this context, it is further preferred that the device has a rotational speed determining device for determining the rotational speed or speed of the working medium. Furthermore, an evaluation device is also provided here. The rotational speed will generally increase in the presence of a bubble, since such a bubble exerts less resistance on the working medium. Preferably, it is only determined that a bubble is present if the rotational speed increases by a predetermined amount, which is particularly preferably at least 30%, more preferably at least 50% of the rotational speed before the increase in the rotational speed.

[0020] More preferably, the power determining device and the speed determining device are present and provided with a common evaluation device. In this case, the selected device only determines that a bubble is present if the rotational speed increases together with the drop in power. Therefore, a drop in power combined with an increase in the rotational speed is a more reliable indication of the presence of a bubble than a drop in power by a predetermined amount alone. In this respect, a corresponding device is more reliable. However, the function can also be demonstrated if only one of the two determining devices is present.

[0021] It is further preferred that a speed control device is provided, which can be provided with a speed target value via a user interface, which corresponds to the setpoint of the control device during normal operation. During use of the device, the control device continuously measures the actual speed of the drive and accordingly adjusts the voltage output to the drive so that the actual speed is kept as constant as possible at the setpoint speed.

[0022] The above-mentioned power determination device, rotational speed determination device and speed control device are preferably present together in the device, but the individual elements can also be present in other combinations, resulting in slightly different behaviors and processes in bubble detection:

[0023] Variant 1 : Cruise control device,

[0024] Power determination device and rotational speed determination device are available.

[0025] The user sets a speed level or program using an operating device which internally corresponds to a target rotational speed. Under normal circumstances (i.e. when no bubble is to be removed) this is identical to the set rotational speed of the speed control device. Since in this case the speed control device keeps the rotational speed of the drive constant at the set rotational speed regardless of the load, no increase in speed can be detected in this configuration if a bubble occurs. Therefore, in a controlled system the speed cannot be used to detect bubbles. Instead, only the power determination device can be used, as described above. As a special case, it should be mentioned that in exceptional circumstances the set rotational speed cannot be reached despite the speed control device because the motor does not have the required power.In this case, the speed increases to the preset target speed when a bubble appears. However, since this represents a special case that only occurs under certain conditions, this speed increase can optionally be monitored in addition to the monitoring described above. This case will not be considered further in the following descriptions.

[0026] Variant 2 : Power determination device and rotational speed determination device are present, but no speed control device.

[0027] Here, the speed level or the set program corresponds internally to a target voltage to be output to the motor. Normally, i.e. when no bubble is to be removed, this target voltage corresponds to the actual output voltage, i.e. the electrical voltage output to the drive. Depending on the characteristic curve of the drive and the existing load, a certain drive speed results for a certain output voltage. Here, a bubble (or the associated reduction in load) leads to a simultaneous increase in speed and a reduction in the power consumed. The evaluation device can therefore use both parameters to detect bubbles, so that the highest level of reliability can be achieved with this method. Variant 3: Only a power determination device is available.

[0028] Here, too, the speed level or program set by the user corresponds internally to a target voltage to be output to the motor. Normally, i.e., when no bubble is to be removed, this target voltage corresponds to the actual output voltage, i.e., the electrical voltage delivered to the drive. Depending on the drive characteristic and the existing load, a specific drive speed results for a specific output voltage. Since the actual speed is not recorded, a bubble (or the associated reduction in load) leads to a reduction in the power consumption, which is detected by the evaluation device.

[0029] Variant 4 : Only the rotation speed determination device is available.

[0030] Here, too, the speed level or program set by the user corresponds internally to a target voltage to be output to the motor. Normally, i.e., when no bubble is to be removed, this target voltage corresponds to the actual output voltage, i.e., the electrical voltage delivered to the drive. Depending on the drive's characteristic curve and the existing load, a specific drive speed results for a specific output voltage. A bubble (or the associated reduction in load) leads to an increase in speed, which is detected by the evaluation device.

[0031] Instead of the previously mentioned adjustment of the voltage output to the motor to achieve a speed change or control, other mechanisms for changing the speed can also be used. For example, with certain motor types (such as brushless DC motors), the speed can be adjusted by varying the frequency output to the motor. This is technically equivalent to changing the voltage. For the sake of simplicity, we will therefore refer exclusively to adjusting the voltage in the following, which should not be understood as limiting, but also includes varying the frequency.

[0032] There are various means that can be used as a rotational speed determining device. For example, one option is to couple a Hall-effect sensor with a magnet or magnetic ring. With such a device, the rotational speed can be measured by the Hall-effect sensor together with the magnet. Each time the magnet is near the sensor, the signal output by the sensor changes from on to off or from off to on. The time between these changes of state can be measured, and based on this, the rotational speed can be determined.

[0033] It is also possible to use a combination of a coil and a magnet / magnetic ring. As the magnet moves past the coil, it induces a voltage in the coil. Due to periodic rotation of the magnet, a periodic sine wave can be induced, with the frequency of the signal being the inverse of the rotation speed. The induced voltage can be output as a digital signal via an ADC (analog-to-digital converter) or can be converted to a digital signal using a Schmitt trigger.

[0034] Furthermore, rotational speed can be measured without sensors if the drive is a brushless DC motor. The current can be measured at one of the three windings of such a drive, which is not supplied with power during rotation. This allows the position of the drive to be determined, and the rotational speed can be measured by changing the frequency of the supplied voltage.

[0035] It is also possible to determine the rotational speed using an optical method. Such optical rotational speed detection uses an optical detection system in which the emitting device and a receiving device arranged opposite one another operate with a light beam. An interruption in the light beam serves as a change in state on the basis of which the rotational speed can be calculated. There are various ways of implementing this. For example, the emitting device and the receiving device can be on opposite sides of a disk provided with light-blocking devices, the disk being coupled to the drive. The signal interruptions in the light are detected, and the rotational speed is calculated on the basis of them.

[0036] Alternatively, there are retroreflective sensors in which the emitting device and receiving device are arranged next to each other in the same housing. The light is reflected by a mirror or other type of reflection device which is coupled to the drive. The individual light pulses of the reflected light are recorded and the rotational speed is calculated on the basis of them. It is also possible to have a marking on a rotating part coupled to the drive which diffuses the light back to a receiving device so that the pulses are counted and the rotational speed is calculated. It is also possible to measure the rotational speed based on induction, which uses the principle that the magnetic flux changes as a result of a sensor.A simple magnetic rotor with teeth, coupled to the drive, rotates and changes the size of the gap between the rotor and the sensor, generating a high or low voltage signal. Based on this signal, the rotational speed can be determined.

[0037] Power can be determined in various ways. For example, current can be measured. The output of such a sensor is then an analog signal which is proportional to the current flowing in a wire. However, the signal can of course also be digital. There are also direct and indirect ways of measuring this current. For a direct method, the current flows through an integrated sensor circuit. An indirect method is used when the sensor measures the current flowing through a nearby wire without being located in the wire itself. A resistor can also be inserted into the wire carrying the current, and the voltage drop across this resistor can be measured.If the resistance value of this resistor is known exactly and ideally is as small as possible, the current flowing through this resistor can be determined using Ohm's law.

[0038] It is particularly preferred that the predetermined time period lies in the range from 0.05 to 3 seconds, preferably 0.1 to 2 seconds. This means that the increase in rotational speed or the decrease in power must occur comparatively quickly so that, for example, a long-term reduction in power due to the lower resistance exerted by chopped food does not lead to a bubble being falsely detected. At the same time, the upper limits of the ranges are sufficiently large to cover the time scales in which such a bubble can typically form.

[0039] The above-mentioned ranges for power loss, speed increase, and duration can only be understood as realistic examples, as they depend heavily on the performance and shape of the kitchen appliance, the available processing tools, and the expected food (e.g., regional variations). Therefore, these values ​​must be determined individually for the precise design and target market of an appliance and cannot be specified as general values.

[0040] It is further preferred that an output device is provided which indicates that a bubble is present. This could, for example, be in the form of a light source, such as an LED, which is provided to inform a user of the presence of a bubble. It would also be possible to output a corresponding indication on an indicator device, such as a display. An acoustic signal could also be emitted. Other types of signals are conceivable, in particular signals which wirelessly inform another device (for example a mobile phone or tablet) that a bubble is present. By means of such an output device, a user can be informed that a bubble is present so that they can take steps to eliminate it.It's also conceivable to have only one output device for indicating a bubble on the device, without the device attempting to eliminate the bubble independently. This way, only the detection is indicated, while the elimination of the bubble is left entirely to the user.

[0041] The invention further relates to a kitchen appliance for processing food by means of a rotatingly driven working means, which has a device as previously described. Such a kitchen appliance is advantageous in that it allows for easier removal of bubbles. Such a kitchen appliance can be a stand mixer. However, many other types of kitchen appliances are conceivable, for example food processors, hand blenders, whisks, kneading machines, hand mixers, etc.

[0042] In this context, it is preferred that the kitchen appliance is designed to

[0043] • to temporarily reduce the target rotational speed of the working equipment from the set target value if it is determined that a bubble is present, and then to return the target rotational speed to the target value (applies to variant 1 - with speed control) or.

[0044] • to temporarily reduce the output voltage supplied to the drive from the set target voltage when it is determined that a bubble is present and then to return the output voltage to the target voltage (applies to variants 2-4 - without speed control).

[0045] The reduction in the target rotational speed is preferably by at least 20%, more preferably at least 50% of the target rotational speed, even more preferably the target rotational speed is reduced to the minimum possible rotational speed of the system. The target rotational speed is the rotational speed which is output to the drive by the device control and which the drive is therefore intended to achieve. In normal operation, i.e. when no bubbles are to be removed, this target rotational speed is identical to the target rotational speed set by the user. However, in the method for removing bubbles the target rotational speed can temporarily be lower than this target rotational speed. In principle it is also possible to stop the working medium, i.e.The device should be designed to temporarily switch off the drive, but should then restart the drive within a sufficiently short time (for example, 1 second as specified in UL982 Ed. 8 §27.13) to prevent a user from reaching into the cooking equipment under the mistaken assumption that the cooking appliance is switched off. A longer time may be possible, provided the appliance detects whether the lid is closed. In this case, there is no danger for a user of reaching into a running appliance.

[0046] After the target rotation speed has been reduced, it is increased back to the target value. Accordingly, the target rotation speed is only reduced temporarily. By reducing the target rotation speed, the centrifugal force acting on the food being processed is temporarily reduced. If the food is sufficiently low-viscosity, this causes the bubble to collapse, allowing the bubble to be eliminated. Performing such a process automatically when a bubble is detected increases the processing efficiency of the kitchen appliance and user-friendliness, as bubbles that disrupt processing can be automatically eliminated.

[0047] In this context, it is preferred that the kitchen appliance is designed to reduce the target rotational speed several times and then increase it if the evaluation device determines that a bubble is present. By reducing and increasing the target rotational speed several times in this way, such a bubble can be removed more easily. In this context, it is further preferred that the kitchen appliance outputs a signal that a bubble is still present if, after a predetermined number of reductions and increases in the target rotational speed, it is determined that a bubble is still present. Such a determination that the bubble is still present can be expressed, for example, in the fact that the power of the drive is still a certain percentage (for example at least 10%) lower than the power before it was determined that a bubble is present.This can alert the user that the bubble is still present despite the automated removal procedure. The user can then remove the bubble, for example, using a tamping device or other suitable means.

[0048] The procedure described above can be applied analogously to devices without speed control (variants 2-4). In this case, when a bubble occurs, the target rotation speed is not adjusted, but rather the output voltage is adjusted analogously.

[0049] In embodiments without a power detection device, the continued presence of a bubble can also be determined by evaluating the speed of the working medium. For example, if, after increasing the output voltage back to the target voltage, the rotational speed remains a certain percentage (e.g., at least 20%) below the rotational speed before a bubble was detected.

[0050] Furthermore, a method for determining whether a bubble is present in a food product being processed by a rotating working means is claimed, as defined in claim 10. Regarding the features and advantages of this method and the corresponding preferred method claims, we refer to the relevant device features discussed above. The same applies to the method according to the invention for removing a bubble from a food product to be processed using a rotating working means.

[0051] Short description of the drawings

[0052] Figure 1 shows schematically a kitchen appliance according to the invention.

[0053] Figure 2 is a diagram for explaining the detection of a bubble according to a first embodiment.

[0054] Figure 3 shows a method for detecting a bubble according to a second embodiment.

[0055] Figure 4 illustrates a procedure for removing a bubble which was successful .

[0056] Figure 5 shows an unsuccessful procedure for removing a blister.

[0057] Figure 6 shows a flow chart of a method according to the invention for determining a bubble and for removing a bubble according to variant 1.

[0058] Figure 7 shows a flow chart of a method according to the invention for determining a bubble and for removing a bubble according to variant 2.

[0059] Figure 8 shows a flow chart of a method according to the invention for determining a bubble and for removing a bubble according to variant 3.

[0060] Figure 9 shows a flowchart of a method according to the invention for determining a bubble and for removing a bubble according to variant 4. Detailed description of the drawings

[0061] Figure 1 shows schematically a stand mixer 100 as a

[0062] Example of a kitchen appliance according to the invention.

[0063] In the stand mixer 100, a container 1 is arranged on a housing 5. In the container 1 there is foodstuff 2 which is to be processed by a working medium 4 in the form of a rotating blade. The working medium 4 is driven by a drive 6 which is arranged in the housing 5. However, due to the rotation of the working medium 4, an air bubble 3 has formed surrounding the working medium 4, which prevents the working medium 4 from processing the foodstuff 2. The stand mixer 100 is supplied with power and thus driven via a power supply 9. At the same time, the rotational speed (referred to as "speed" in the drawings) of the drive 6 and / or the current flowing to the drive 6 is measured by corresponding devices 7. This makes it possible to determine the current power of the drive 6.Via a control unit 8, which contains an evaluation device for the measured rotational speed and / or power, the incoming mains voltage of the power supply 9 can be reduced by means of appropriate adjustment means 10 in order to supply the drive 5 with a desired output voltage or with a voltage required to achieve a specific target speed. The control means 8 is further configured to detect the presence of the bubble 3 and to take steps to eliminate it, as will be discussed further.

[0064] The basic idea behind determining whether a bubble 3 is present will become clear with reference to Figures 2 and 3. Figure 2 shows the time profile of the rotational speed of the drive and the power of the drive 6. Figure 2 is an example of an embodiment according to variant 2, which records both rotational speed and power, but has no speed control device. As shown there, the power drops from a maximum value, which corresponds to the power when processing food, to approximately the idle power within approximately 1 second, while at the same time the rotational speed when processing food increases from a lower value to a second, higher value, which corresponds approximately to the idle speed. This increase also occurs essentially at the same time as the drop in power, i.e. in this case over approximately 1 second.This drop in power may be caused by the formation of a bubble which facilitates the rotation of the working means 4. Therefore, when the control device 8 detects a corresponding behavior of the rotational speed and the power of the drive 6, it will determine that a bubble 3 is present which has formed within the time range marked as the bubble detection range. The inventors have found that such a drop in power or increase in rotational speed typically occurs on a time scale of 0.1-2 seconds. The precise values ​​of this time scale depend on the volume of the products to be processed and also the structure of the food to be processed, as well as the design (i.e. the exact configuration of the container 1 and the working means 4, as well as the drive 6) of the device.In this respect, the temporal size of the bubble detection area depends, among other things, on the ingredients to be processed. It should also be noted that here the rotational speed was averaged over time in order to compensate for short-term fluctuations due to the inhomogeneity of the food to be processed. Figure 3 shows a method which can be used with a constantly controlled rotational speed of the working medium 4 (corresponds to variant 1; rotational speed and power are recorded and a speed control device is present). In this case too, a bubble appears in the area referred to as the bubble detection area. In this case, however, the rotational speed of the drive 6 is controlled or essentially constant for other reasons.However, here too, the power drops from a maximum value, which corresponds to the power when processing food, to a power that approximately corresponds to the idle power, since the resistance from the food is greatly reduced due to the formation of a bubble surrounding the working medium 4. In this case, too, the control device 8 will detect the presence of a bubble.

[0065] This procedure applies analogously to variants 3 & 4, which are not described, except that either only the power curve or only the speed curve is monitored.

[0066] The control device 8 is further configured to drive the drive 6 in such a way that a bubble 4 detected in this way can be eliminated. Corresponding procedures are illustrated in Figures 4 and 5.

[0067] Figure 4 shows an example of a successful bubble removal cycle using a device of variant 2 (rotational speed and power are recorded, but no speed control is present). Before time tO, no bubble is present. The rotational speed is at the initial value nO and the power is at the initial value P0. At time tO, a bubble forms. The rotational speed increases to a value nl, approximately the idle speed, and the power falls to a value PI, approximately the idle power. In detection cycle 1, in the range from tO to tl (which is, for example, 1 s), it is determined that the power decreases rapidly, while over the same period the rotational speed of the drive means 4 increases, which is why the control device 8 assumes that a bubble 4 is present.Accordingly, starting from time t1, the control device 8 reduces the output voltage, which leads to a reduction in the rotational speed, and maintains this at the low output voltage for a certain reduction cycle 1 (t1-t3) of, for example, approximately 2.4 to 4.1 seconds. A typical length of the reduction cycle is in the range of 0.5-15 seconds, which makes it possible to carry out short reduction pulses that are repeated frequently, or longer reduction pulses that are repeated less quickly. By this reduction in the rotational speed, the centrifugal force exerted on the food 2 is reduced, so that the bubble 4 can collapse.

[0068] In the present example, the bubble collapses at t2, which increases the load and thus leads to a further drop in the rotational speed. At the same time, the power consumption increases. After the reduction cycle 1 has ended at time t3, the control device 8 increases the output voltage back to the initial value. Subsequently, at time t4, a check is carried out to determine whether, at the end of this bubble removal process, both the power and the rotational speed have returned to the values ​​nO and PO that existed before the appearance of bubble 4, which is the case in the present example. Since bubble 4 has been successfully removed, no further steps are necessary and processing therefore continues as normal. However, the control device 8 will continue to check the rotational speed and power consumption in order to detect the appearance of further air bubbles. The typical duration of such a cycle is approximately 4-20 s.Figure 5 shows an unsuccessful bubble removal cycle, also as an example of an embodiment according to variant 2. Here too, at time tO there is a sharp drop in power from PO to PI combined with an increase in rotational speed from nO to nl. As a result, the control device carries out a reduction cycle between t1 and t3, as described for Figure 4, and then increases the output voltage back to the target voltage. However, since the bubble has not collapsed in this example, the rotational speed and power do not return to the initial values ​​nO and PO, but rather to nl and PI, which approximately correspond to the idle speed and power. Accordingly, two further reduction cycles are carried out in which the output voltage and thus the rotational speed are reduced and then increased again, which in the present example does not cause the bubble to collapse.The control device 8 will determine after a predetermined number of cycles (in this case three cycles) at time t7 that these automated steps have not resulted in the bubble 4 being removed and will alert the user that an air bubble 4 is present which he should remove manually.

[0069] The method according to the invention of variant 1 is shown in detail in Figure 6. After a step S100 of starting the method, the rotational speed of the drive means 4 is set and monitored by a control device 8 (step S102). The speed is only set and monitored here in order to reduce it to the reduced speed or to increase it to the target speed. Since the speed is constantly regulated, it is not used for bubble detection. At the same time (step S104) the power of the drive 6 is monitored. The subsequent step is to check (step S106) whether the processing of the food has ended. This is the case, for example, if the user stops the processing manually or the program has run down. If this is the case (Yes in step S106), the method ends (step S120).

[0070] However, if the processing of the food is not yet finished (No in step S106), as already described previously with reference to Figures 2 and 3, it is determined whether a bubble is present (step S108). If no such bubble is present (No in step S108), the rotational speed continues to be monitored and adjusted if necessary (step S102). However, if a bubble is present (Yes in step S108), the setpoint speed of the drive 4 is reduced (step S110) in order to lead to a collapse of the air bubble 3, as described, for example, with reference to Figure 4. After a certain previously set period of time, the setpoint speed is then increased to the target speed (step S112) in order to return to the desired processing method. It is then checked (step S114) whether the performance is within a normal range.Normal ranges are understood to mean that the performance corresponds to those values ​​within measurement tolerances and normal variations occurring during processing that existed before the change in performance that led to the detection of an air bubble 3. At the same time, the number of cycles already completed is increased by 1, i.e., the cycle number is increased by 1.

[0071] If the performance is within normal ranges (Yes in step S114), the cycle number is set to 0 (step S116), and then the system proceeds to step S102 for monitoring and adjusting the rotational speed, since it can be assumed that air bubble 3 has been eliminated. However, if the rotational speed and / or performance are not within normal ranges and the cycle number is less than a threshold value ("No and cycle number less than threshold value" in step S114), the system proceeds to step S110 for reducing the target speed to attempt to remove air bubble 3 again.

[0072] However, if the rotation speed and / or power are not within normal ranges and the cycle count is greater than or equal to the threshold value (No and cycle count greater than or equal to the threshold value in step S114), a signal is output to a user (step S118). This signal informs the user that an air bubble is present and allows them to remove it.

[0073] After this signal is output, the speed (step S130) and power (step S132) continue to be monitored. If processing is then complete (Yes in step S134), the method ends (step S120). Otherwise (No in step S134), a check is made to see whether the bubble is still present (step S136). If this is the case (Yes in step S136), the process jumps to step S118. Otherwise, i.e., if the bubble could be eliminated through manual intervention by the user (No in step S136), the process jumps to step S114.

[0074] Figure 7 shows a process according to variant 2. In this case, the speed of the drive is not regulated. Therefore, a motor voltage is output to it that corresponds to the speed level set by the user.

[0075] After a step S100 of starting the method, the rotational speed of the drive means 4 is adjusted by a control device 8 (step S102). As described further below, the rotational speed is used together with the power for bubble detection. At the same time, the power of the drive 6 is monitored (step S104).

[0076] The next step is to check (step S106) whether the processing of the food has finished. This is the case, for example, if the user manually stops the processing or the program has expired. If this is the case (Yes in step S106), the process ends (step S120).

[0077] However, if the processing of the food is not yet finished (No in step S106), as already described previously with reference to Figures 2 and 3, it is determined whether a bubble is present (step S108). If no such bubble is present (No in step S108), the rotational speed continues to be monitored (step S102). However, if a bubble is present (Yes in step S108), the motor voltage of the drive 4 is reduced (step S110) in order to lead to a collapse of the air bubble 3, as described, for example, with reference to Figure 4. After a certain preset period of time, the motor voltage is then increased to the default value (step S112) in order to return to the desired processing method. It is then checked (step S114) whether the rotational speed and the power are within normal ranges.Normal ranges are understood to mean that the rotational speed and power correspond to the values, within measurement tolerances, that existed before the change in power and rotational speed that led to the detection of an air bubble 3. At the same time, the number of cycles already completed is increased by 1, i.e., the cycle number is increased by 1.

[0078] If the rotational speed and power are within normal ranges (Yes in step S114), the cycle number is set to 0 (step S116), and then the process proceeds to step S102 for monitoring and adjusting the rotational speed, since it can be assumed that air bubble 3 has been eliminated. However, if the rotational speed and / or power are not within a normal range and the cycle number is less than a threshold value ("No and cycle number less than threshold value" in step S114), the process proceeds to step S110 for reducing the motor voltage to attempt to eliminate air bubble 3 again.

[0079] However, if the rotation speed and / or power are not within normal ranges and the cycle count is greater than or equal to the threshold value (No and cycle count greater than or equal to the threshold value in step S114), a signal is output to a user (step S118). This signal informs the user that an air bubble is present and allows them to remove it.

[0080] After this signal is output, the speed (step S130) and power (step S132) continue to be monitored. If processing is then complete (Yes in step S134), the method ends (step S120). Otherwise (No in step S134), a check is made to see if the bubble is still present (step S136). If so (Yes in step S136), the process skips to step S118. Otherwise (No in step S136), the process skips to step S114.

[0081] Figure 8 shows a method according to variant 3. Here, the speed of the drive is not measured, but only the power is monitored. Here, too, the speed level set by the user corresponds internally to a target voltage to be output to the motor. In the normal case, ie, when no bubble is to be removed, this target voltage corresponds to the actual output voltage, ie, the electrical voltage delivered to the drive. Depending on the characteristic curve of the drive and the existing load, a certain output voltage results in a certain

[0082] Speed ​​of the drive.

[0083] After a step S100 of starting the method,

[0084] (Step S104) monitors the performance of the drive 6.

[0085] The next step is to check (step S106) whether the processing of the food has finished. This is the case, for example, if the user manually stops the processing or the program has expired. If this is the case (Yes in step S106), the process ends (step S120).

[0086] However, if the processing of the food is not yet finished (No in step S106), as already described previously with reference to Figures 2 and 3, it is determined whether a bubble is present (step S108). If no such bubble is present (No in step S108), the power continues to be monitored (step S102). However, if a bubble is present (Yes in step S108), the motor voltage of the drive 4 is reduced (step S110) in order to lead to a collapse of the air bubble 3, as described, for example, with reference to Figure 4. After a certain preset period of time, the motor voltage is then increased to the default value (step S112) in order to return to the desired processing method. It is then checked (step S114) whether the power is within normal ranges.Normal ranges are understood to mean that the performance corresponds to the values, within measurement tolerances, that existed before the change in performance that led to the detection of an air bubble 3. At the same time, the number of cycles already completed is increased by 1, i.e., the cycle number is increased by 1.

[0087] If the performance is within normal limits (Yes in step S114), the cycle count is set to 0 (step S116), and then the system proceeds to step S104 for monitoring the performance, since it can be assumed that air bubble 3 has been eliminated. However, if the performance is not within normal limits and the cycle count is less than a threshold value ("No and cycle count less than threshold value" in step S114), the system proceeds to step S110 for reducing the motor voltage to attempt to eliminate air bubble 3 again.

[0088] However, if the performance is not within normal ranges and the cycle count is greater than or equal to the threshold value (No and cycle count greater than or equal to the threshold value in step S114), a signal is output to a user (step S118). This signal informs the user that an air bubble is present and allows them to remove it.

[0089] After this signal is output, the power continues to be monitored (step S132). If processing is then complete (Yes in step S134), the method ends (step S120). Otherwise (No in step S134), a check is made to determine whether the bubble is still present (step S136). If so (Yes in step S136), the process skips to step S118. Otherwise (No in step S136), the process skips to step S114.

[0090] Figure 9 shows a method according to variant 4. Here, the speed of the drive is monitored but not controlled, and the power is not monitored. Thus, a motor voltage is output to the drive that corresponds to the speed level set by the user.

[0091] After a step S100 of starting the method, the rotational speed of the drive means 4 is monitored (step S102). As described further below, the rotational speed is used together with the power for bubble detection. A motor voltage corresponding to the speed level set by the user is output to the drive.

[0092] The next step is to check (step S106) whether the processing of the food is complete. This is the case, for example, if the user manually stops the processing or the program has expired. If this is the case (Yes in step S106), the process ends (step S120).

[0093] However, if the processing of the food is not yet finished (No in step S106), as previously described with reference to Figures 2 and 3, it is determined whether a bubble is present (step S108). If no such bubble is present (No in step S108), the rotational speed continues to be monitored (step S102). However, if a bubble is present (Yes in step S108), the motor voltage of the drive 4 is reduced (step S110) in order to cause the air bubble 3 to collapse, as described, for example, with reference to Figure 4. After a certain preset period of time, the motor voltage is then increased to the default value (step S112) in order to return to the desired processing method. It is then checked (step S114) whether the rotational speed is within normal ranges.Normal ranges are understood to mean that the rotational speed corresponds to the values, within measurement tolerances, that existed before the change in rotational speed that led to the detection of an air bubble 3. At the same time, the number of cycles already completed is increased by 1, i.e., the cycle number is increased by 1.

[0094] If the rotation speed is within normal ranges (Yes in step S114), the cycle number is set to 0 (step S116), and then the system proceeds to step S102 for monitoring the rotation speed, since it can be assumed that air bubble 3 has been eliminated. However, if the rotation speed is not within a normal range and the cycle number is less than a threshold value ("No and cycle number less than threshold value" in step S114), the system proceeds to step S110 for reducing the motor voltage to attempt to eliminate air bubble 3 again.

[0095] However, if the rotation speed is not within the normal range and the cycle count is greater than or equal to the threshold value (No and cycle count is greater than or equal to the threshold value in step S114), a signal is output to the user (step S118). This signal informs the user that an air bubble is present and allows them to remove it.

[0096] After this signal is output, the speed continues to be monitored (step S130). If processing is then complete (Yes in step S134), the method ends (step S120). Otherwise (No in step S134), a check is made to see whether the bubble is still present (step S136). If so (Yes in step S136), the process skips to step S118. Otherwise (No in step S136), the process skips to step S114.

Claims

Claims 1. A device for determining whether a bubble is present in a food product processed by a rotatingly driven working means, comprising: a determining device for determining at least one operating parameter of the drive (6) with which the working means (4) is driven, an evaluating device for determining whether a bubble (3) is present, wherein the evaluating device detects a bubble based on the output of the determining device, wherein the operating parameters comprise a power of the drive and / or a rotational speed of the drive.

2. Device according to claim 1, wherein the evaluation device only determines that a bubble (3) is present if the power drops by a predetermined amount within a predetermined period of time.

3. Device according to claim 2, further comprising a rotational speed determining device for determining the rotational speed of the working medium (4), wherein the evaluation device determines that a bubble (3) is present based on the determined rotational speed, wherein it is preferably only determined that a bubble is present if the rotational speed increases by a predetermined amount together with the drop in power.

4. Device according to claim 2 or 3, wherein the predetermined time period is in the range of 0.05-3 s, preferably 0.1-2 s.

5. Apparatus according to any one of the preceding claims, further comprising an output device for outputting that a bubble (3) is present.

6. Kitchen appliance (100) designed to process foodstuffs (2) by means of a rotatingly driven working means (4), with a device according to one of the preceding claims, which is designed to determine whether a bubble (3) is present in the foodstuff.

7. Kitchen appliance according to claim 6, wherein the kitchen appliance (100) is designed to temporarily reduce the voltage supplied to the drive of the motor from a target value when it is determined that a bubble (3) is present, and then the voltage is returned to the target value or to temporarily reduce the target rotational speed of the working means (4) from a target value when it is determined that a bubble (3) is present, and then the target rotational speed is returned to the target value.

8. Kitchen appliance according to claim 7, wherein the kitchen appliance (100) is designed to reduce the target rotational speed / voltage several times and then increase it when the evaluation device determines that a bubble (3) is present.

9. A cooking appliance according to claim 7 or 8, wherein the cooking appliance outputs a signal that a bubble (3) is present if, after a predetermined number of reductions and returns of the target rotational speed / voltage, it is determined that the bubble (3) is still present.

10. Kitchen appliance according to one of the preceding claims, in which the rotation speed is regulated.

11. A method for determining whether a bubble is present in a food product processed by a rotating working device, comprising the steps of: Determining at least one operating parameter of the drive (6) with which the working means (4) is driven, determining whether a bubble (3) is present based on the determined operating parameter(s), wherein the operating parameters comprise the power and / or the rotational speed of the drive.

12. The method according to claim 11, wherein it is determined that a bubble (3) is present only if the power drops by a predetermined amount within a predetermined period of time.

13. The method according to claim 12, wherein the rotational speed of the working medium (4) is determined, wherein it is determined that a bubble (3) is present only when the rotational speed increases along with the drop in power.

14. Method according to one of claims 12 or 13, wherein the predetermined time period is in the range of 0.05-3 s, preferably 0.1-2 s.

15. The method according to any one of claims 11 to 14, further comprising the step of outputting that a bubble (3) is present.

16. A method for removing a bubble from a food product processed by a rotating tool, comprising the following steps: Carrying out a method according to one of claims 11 to 15, if it is determined that a bubble (3) is present, temporarily reducing the target rotational speed of the working medium (4) starting from a target value, and then returning the target rotational speed to the target value or temporarily reducing the voltage supplied to the drive from a target value and then returning the voltage to the target value.

17. The method according to claim 16, wherein, if it is determined that a bubble (3) is present, the target rotational speed / voltage is reduced several times and then returned to the target value.

18. The method according to claim 16 or 17, further comprising the step of outputting a signal that a bubble (3) is still present if, after a predetermined number of reductions and returns of the target rotational speed / voltage, it is determined that a bubble (3) is still present.