PORTABLE LUNCHBOX
20210345743 · 2021-11-11
Assignee
Inventors
Cpc classification
A45C13/02
HUMAN NECESSITIES
International classification
A45C13/02
HUMAN NECESSITIES
A47J36/32
HUMAN NECESSITIES
Abstract
A portable lunchbox (1) for storing, transporting and preparing food, comprising a food cavity (10) for receiving food; a heating cavity (20) for receiving water; a heating element (80) for heating water in the heating cavity (20); a switch device (50) which can be switched from a first state to a second state; wherein the lunchbox (1) is designed in the first state of the switch device (50) to heat food arranged in the food cavity (10), and in the second state of the switch device (50) to steam food arranged in the food cavity (10). This lunchbox enables various kinds of meals preparation in a simple manner.
Claims
1. A portable lunchbox for storing, transporting and preparing food, comprising a food cavity for receiving food; a heating cavity for receiving water; a heating element for heating water in the heating cavity; and a switch device which can be switched from a first state to a second state; wherein the lunchbox is designed: in the first state of the switch device to heat food arranged in the food cavity, and in the second state of the switch device to steam food arranged in the food cavity.
2. The portable lunchbox according to claim 1, wherein the switch device in the first state closes a gas connection between the heating cavity and the food cavity and in a second state, opens the gas connection between the heating cavity and the food cavity.
3. The portable lunchbox according to claim 1, comprising a first seal, wherein in the first state of the switch device, the first seal seals the food cavity in a gas-tight manner with respect to the heating cavity, and in the second state of the switch device, the switch device at least partially releases the first seal so that the food cavity and the heating cavity are gas-connected to each other.
4. The portable lunchbox according to claim 3, comprising: a second seal which, in a closed state of the lunchbox, seals the food cavity with respect to the outside in a gas-tight manner; and wherein the first seal and the second seal are formed as a single component.
5. The portable lunchbox according to claim 1, comprising a first seal, wherein in the first state of the switch device, the first seal seals the food cavity in a gas-tight manner with respect to the heating cavity, wherein in the second state of the switch device, the switch device at least partially releases the first seal so that the food cavity and the heating cavity are gas-connected to each other, and wherein the first seal comprises a first self-contained sealing ring and the second seal comprises a second self-contained sealing ring, wherein the first sealing ring extends within an area enclosed by the second sealing ring.
6. The portable lunchbox according to claim 5, wherein the first sealing ring has, in at least one region, a distance from an adjacent region of the second sealing ring which is many times greater than regions of the two sealing rings adjacent to this region.
7. The portable lunchbox according to claim 6, wherein in the region with increased spacing a sealing wing connects the two sealing rings to one another, wherein the sealing wing is firmly connected to the switch device by means of a connecting element, and wherein in the second state of the switch device the sealing wing and an associated region of the first sealing ring are raised.
8. The portable lunchbox according to claim 7, wherein in the first state of the switch device the first sealing ring rests over its entire length on a circumferential upper edge.
9. The portable lunchbox according to claim 1, wherein a lid is provided which sealingly closes a base surrounding the food cavity and the heating cavity, wherein the lid can be placed on the base in two different positions, and wherein the lid forms the switch device, and wherein a first position of the lid on the base creates the first state and a second position of the lid on the base creates the second state.
10. The portable lunchbox according to claim 1, wherein a lid is provided, which sealingly closes a base surrounding the food cavity and the heating cavity, and wherein the switch device changes the position of the lid relative to the base to create the two states.
11. The portable lunchbox according to claim 10, wherein the switch device is manually operable.
12. The portable lunchbox according to claim 10, wherein the switch device is operable by means of a positive pressure created during heating of the water in the lunchbox.
13. The portable lunchbox according to claim 12, wherein at least one fixing means is provided to fix the lid in a position relative to the base.
14. The portable lunchbox according to claim 1 further comprising a wall which moves outwardly during heating of the water and which allows an increase in volume in an interior of the lunchbox when the lunchbox is outwardly sealed.
15. The portable lunchbox according to claim 1, wherein, in a closed state of the lunchbox, the food cavity; the heating cavity; and in the second state of the switch device, the combination of food cavity and heating cavity is gas- and liquid-tight to the outside.
16. The portable lunchbox according to claim 1, comprising a lid; a base; and a container designed to receive food, wherein in a closed state of the lunchbox the container is arranged between the lid and the base.
17. The portable lunchbox according to claim 16, comprising a fastening element which is designed to fasten the lid to the base, and wherein the fastening element is designed as a switch device.
18. The portable lunchbox according to claim 1, comprising a pressure sensor designed to detect a pressure surrounding the lunchbox; a first temperature sensor designed to sense a temperature within the heating cavity; and a control device designed to control a heating power of the heating element in dependence on the data detected by the pressure sensor and the first temperature sensor.
19. The portable lunchbox according to claim 1, comprising the heating cavity with a water cavity for receiving water; the heating element for heating water in the water cavity; a first temperature sensor designed to detect a temperature inside the heating cavity but outside the water cavity; a second temperature sensor designed to detect a temperature within the water cavity; and a control device designed to control a heating power of the heating element in dependence on the data detected by the first and second temperature sensors.
20. A device for preparing food, comprising a food cavity for receiving food; a heating cavity for receiving water; a heating element for heating water in the heating cavity; at least one pressure sensor which is designed to detect a pressure surrounding the lunchbox; a first temperature sensor designed to sense a temperature within the heating cavity; and a control device designed to control a heating power of the heating element in dependence on the data detected by the pressure sensor and the first temperature sensor.
21. The device according to claim 20, wherein the at least one pressure sensor is arranged fluidically separately from the food cavity and the heating cavity.
22. A device for preparing food, comprising a food cavity for receiving food; a heating cavity with a water cavity for receiving water; a heating element for heating water in the water cavity; a first temperature sensor designed to detect a temperature inside the heating cavity but outside the water cavity; a second temperature sensor designed to detect a temperature inside the water cavity; and a control device designed to control a heating power of the heating element in dependence on the data detected by the first and second temperature sensors.
23. The device according to claim 22, wherein at least the heating cavity is sealed with respect to the outside by a seal, and wherein the seal opens or leaks at a defined pressure difference between the interior of the heating cavity and the outside.
24. A food unit comprising the container of a portable lunch box according to claim 16 and food arranged therein.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0078] Preferred embodiments of the invention are described below with reference to the drawings, which are provided for explanatory purposes only and are not to be construed as limiting. In the drawings:
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DESCRIPTION OF PREFERRED EMBODIMENTS
[0110]
[0111] Two of the tabs are also designed as switch device 50, which can be used to switch between a heating mode and a steaming mode. Preferably, a tab 5 is arranged on each side of the lid 2, with the mutually opposed larger tabs 50 on the longitudinal sides of the lid preferably being designed as switch device. The tabs 50, which are designed as switch device, are preferably embodied as approximately right-angled angle elements. They preferably extend partially over the upper side of the lid 2, and they are preferably flush with the surface of the lid 2 in the closed state of the lunchbox 1.
[0112] The lunchbox 1 is preferably approximately cuboid-shaped. However, it can also have other shapes. Preferably, the base 1 is flat on its underside for resting on a table or it has corresponding feet. Preferably, the lunchbox 1 has no protruding elements when closed.
[0113] On a front side of the lunchbox 1, a user interface 86 in the form of a push button, with which for example a heating process can be initiated, and two signal output units 84 in the form of LED lights, which can serve for example as status indicators or warning signals, are arranged in the base 3.
[0114]
[0115] The container 4 defines a food cavity 10 for receiving the meals to be heated or, if necessary, food to be cooked. The base 3 defines a heating cavity 20 to receive water for heating or steaming the food. Between the lid 2, on the one hand, and the base 3 and the container 4, on the other hand, there is arranged a seal comprising a first seal 40 and a second seal 30. The first and second seals 40, 30 may consist of two separate elements or they may be formed together in one piece. In this example, they are formed together in one piece.
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[0118] The second seal 30 is pressed by the lower edge of the lid 2 against an upper edge 33 of the base 3 and seals the heating cavity 20 and thus also the food cavity 10 in a gas-tight manner with respect to the outside so that no contents, such as water vapour or water or food, can leave the system. The upper edge 33 of the base 3 is clearly visible in
[0119] The heating element 80 and other electronic components are arranged in an electronics cavity 70 of the base 3, for example a circuit board 89 to which the user interface 86 and the signal output unit 84 are connected. The base 3 preferably has a lower lid which allows access to the electronics cavity 70 at least during assembly.
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[0123] Also in this second state of the switch device 50, the second seal 30 is pressed by the lower edge of the lid 2 against the upper edge 33 of the base 3 and seals the entirety of the heating cavity 20 and food cavity 10 in a gas-tight manner with respect to the outside so that no water vapour can leave the system.
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[0127] The second structures 31 are designed to interact with the second sealing ring 32 of the second seal 30, for example to guide it, to promote its correct seating and/or to improve its sealing properties. The structures have, for example, a shoulder running circumferentially around the lid 2, against which shoulder the second sealing ring 32 of the second seal 30 can bear and which presses the second sealing ring 32 against the base 3 when the lunchbox is closed. In another embodiment, the second structures 31 have the ledge running circumferentially around the lid 2, against which ledge the second sealing ring 32 of the second seal 30 bears and is pressed in. In this example, the two structures 41 and 31 are two circumferential grooves.
[0128] Structures 53 are arranged on the two fastening elements 5 of the switch device 50, in which the connecting elements 51, 52 of the first seal engage. Receptacles 53 are provided for this purpose. When the fastening elements 5 are lifted, the connecting elements 51 and thus the adjacent part of the seal 40 are also lifted. This opens the gas connection between the heating cavity and the food cavity. When the fastening elements 5 are pressed down, the connecting elements 51 are also pressed down, closing the gas connection between the heating cavity and the food cavity.
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[0133] In some embodiments, a second temperature sensor 96 is present, which is preferably arranged in the water cavity 21 and is thus located in the water. If both temperature sensors 95, 96 are present, no pressure sensor is present, depending on the embodiment. The second temperature sensor can be seen in
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[0135] The circuit board 89 is preferably arranged in such a way that it is in contact with the environment of the lunchbox in terms of pressure, so that the pressure sensor 90 can detect the ambient pressure. For this purpose, it is sufficient, for example, that the lower area of the lunchbox is not airtight. This allows the control unit 85, which may comprise a database, for example in an EEPROM (not shown), to determine a minimum required temperature and/or maximum allowable temperature in the heating cavity, which can be monitored by the first temperature sensor 95 arranged in the heating cavity, and to control the heating power of the heating element 80 accordingly.
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[0137] If no further commands are entered via the user interface for a predefined time t, the device automatically switches back to standby mode in step 103 in order to be able to save power again. If, however, as shown in step 104, the user initiates a heating process, the heating process is initialised in step 105, and an actual external air pressure, i.e. an ambient pressure, is measured and a maximum target internal pressure is calculated from the measurement result. In the next step 106, the heating process is then started, wherein the heating element is switched on so that—if there is water in the heating cavity—water vapour is generated, either for heating or for steaming food in the food cavity. In addition, a heating timer is started. The activation of the heating element can be indicated to the user, for example, by a red light signal of the signal output unit 84.
[0138] During the heating process, the internal parameters, i.e. the temperature of the water or water vapour inside the lunchbox, are queried and monitored, for example permanently, periodically or at fixed intervals (step 107). Based on the measured temperature, the actual air pressure can be concluded, for example via a water vapour table, and this can be compared with the target internal air pressure defined in step 105.
[0139] If the actual internal air pressure is greater than the maximum target internal pressure, the heating element is switched off in step 108 and a message is issued to the user in step 109, for example via a red flashing warning signal. If the user does not react within a certain period of time, the device can be put back into standby mode in step 110. However, if the user opens and closes the heating chamber in a step 111 and thus equalises the pressure, the device can be put back into an operational mode from which the user can restart the device.
[0140] As long as the actual internal air pressure is less than or equal to the maximum target internal pressure and the heating timer has not yet expired, the device is reinitialised, for example periodically or at set intervals, and in step 114 the actual external air pressure is measured again and the maximum target internal air pressure in the heating chamber, i.e. in the heating cavity, is calculated. If the heating timer expires, the heating element is switched off in step 113 and a corresponding message is issued to the user, for example via a green flashing signal. The device may be configured to then automatically switch back to standby mode.
[0141] In the embodiment which has the first temperature sensor 95 outside the water and the temperature sensor 96 in the water, the control unit can be used to check and, depending on the variant, to control the tightness. This embodiment is preferably combined with the variant in which the outer seal becomes leaky or opens from a certain pressure difference between internal and external pressure.
[0142] In a first variant, heating is carried out at maximum power. The absolute internal pressure no longer increases from a defined relative pressure because the outer seal leaks and the heating cavity is therefore no longer tight. The levelled absolute internal pressure is determined by means of the temperature measured by the second temperature sensor 96, i.e. by means of the measured water temperature. The first temperature sensor 95 measures the temperature outside the water, i.e. the temperature of the air/steam mixture. Heating continues at maximum power until the temperature measured by the first temperature sensor 95, i.e. the internal temperature, corresponds approximately to the water temperature. From this point on, it can be assumed that the air has partially or completely escaped from the lunchbox. The heating power is now reduced so that the outer seal can close again and the heating cavity is sealed again.
[0143] In another variant, the heating power is already reduced shortly after reaching the absolute internal pressure, which would subsequently lead to leakage of the heating cavity.
[0144] The switch device which opens or closes a gas connection between the heating cavity and the food cavity can be designed in different ways. Accordingly, the seals, the shape of the lid and, if necessary, also the shape of the upper part of the base are also designed differently. Some examples of how the switch device can be designed are given below. The parts of the lunchbox according to the invention that are not described or shown preferably correspond to the components according to the first embodiment shown and described in detail further above.
[0145] These embodiments described below have the advantage of minimising the production costs of the lunchbox. The embodiments described below have a lid 2 that closes a base 3. The lid 2 can be completely removed from the base 3 or hinged to it. In each case, the lid 2 is preferably fixable in its closed position so that the lunchbox can be transported. These closures are not presented below. Flaps and tabs can be used, for example, as in the first example, without these having a switching function for switching between steaming and heating.
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[0147] The base 3 has a circumferential upper edge 33, which is also not symmetrical. As can be seen in
[0148] The lid 2 can be placed in a first switching position on the upper edge 33 of the base 3. The outer sealing ring 32 seals here against a protruding flange of the base 3. The inner sealing ring 42 has no sealing function. The upper edge 43 of the container 4 is not sealed. The gas connection between the food cavity 10 and the heating cavity is open. It runs between the side walls of the base 3 and the container 4. The lunchbox is ready for steaming.
[0149] In
[0150] However, the inner sealing ring 43 is now also in circumferential sealing contact with the upper edge 43 of the container 4. The gas connection between the food cavity 10 and the heating cavity is closed. The lunchbox is ready for heating.
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[0152] The lid 2 is penetrated by at least one, here by two, switch levers 6. The switch levers 6 run between the inner sealing ring 42 and the outer sealing ring 32, as can be seen clearly in
[0153] By changing the position of the switch lever 6, the container 4 can be lifted until its upper edge 43 rests against the inner sealing ring 42 and is thus circumferentially sealed. This lifting closes the gas connection. The open steam position is shown in
[0154] The at least one switch lever 6 can be designed differently. Preferably, it can be brought from the steam position to the heating position and vice versa by vertical displacement and/or by a rotary movement, and it lowers and raises the container 4 again as a result of this movement. An example of the control lever 6 can be seen in
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[0156] They are again completely circumferential and preferably have the same distance from each other over their entire circumference.
[0157] In this example, the lid 2 has two layers, with an outer lid plate 26 and an inner lid plate 27. The outer sealing ring 32 is arranged on the outer lid plate 26, the inner sealing ring 42 on the inner lid plate 27. The two plates 26, 27 are arranged so that they can be moved vertically in relation to each other, so that the distance between the inner lid plate 27 and the outer lid plate 26 can be changed.
[0158] In a raised switch position, only the outer sealing ring 32 is in circumferential sealing contact with the upper edge 33 of the base. The inner lid plate 27 is raised and the inner sealing ring 42 thus ends at a distance from the upper edge 43 of the container 4. The gas connection is open and the lunchbox is ready for steaming. This can be seen in
[0159] In
[0160] The switch device for shifting the two cover plates 26, 27 can be designed differently. In this example, there is a shifting knob 29 that raises and lowers the inner cover plate 27. Preferably, the position of the shifting knob can be changed in a straight line or via a rotary movement.
[0161] In the embodiment according to
[0162] The lid 2 again has the downwardly directed outer sealing ring 32, which seals the lunchbox tightly with respect to the outside by resting on the upper edge 33 of the base 3 so as to provide a circumferential seal.
[0163] In
[0164] In
[0165] Depending on the embodiment, the container lid 7 is designed to be reusable or is used as a disposable part. The container lid 7 forms the switch device, especially if it is designed to be reusable.
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[0167] When the lid 2 is lifted, the inner sealing ring 32 releases the upper edge 43 of the container 4 and the gas connection is open. The lunchbox can be used for steaming. This can be seen in
[0168] The displacement of the lid 2 can be achieved in different ways. For example, it can be done by hand. However, the upward displacement can also be achieved by means of the steam generated in the device. In both cases, a lock is preferably provided to prevent the lid 2 from being lifted when only the heating function is to be used. The usual clamping means or other known elements can be used as a locking device. Here as well, the switch device is the lid 2 itself.
[0169] The lunchbox according to the invention can be formed simply, robustly and inexpensively and it enables various kinds of meals preparation in a simple manner.