METHOD OF OPERATING A STEAM GENERATOR, STEAM GENERATOR AND COOKING DEVICE
20210177187 · 2021-06-17
Inventors
- Sebastian Eigl (Bretten, DE)
- Sebastian Erbe (Knittlingen, DE)
- Ralf Pawlowitsch (Karlsruhe, DE)
- Konrad Schoenemann (Sulzfeld, DE)
- Elisabeth Stoetzner (Bretten, DE)
Cpc classification
F22D5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A47J27/04
HUMAN NECESSITIES
A21B3/04
HUMAN NECESSITIES
F24C15/327
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/285
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
A47J27/04
HUMAN NECESSITIES
A47J36/32
HUMAN NECESSITIES
F22B1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A steam generator has a water container and an upper heating device and a lower heating device, a first temperature detection device covering a temperature detection area including the area covered by the two heating devices, a control device for monitoring and evaluating the first temperature detection device and for controlling the activation state of the two heating devices. For operation of the steam generator, water is filled into the container, at least one of the two heating devices is activated for generating steam for an operation of a steam household device, wherein finally this operation is over. Then at least the lower heating device is activated, until the first temperature detection device detects that a pre-defined first temperature threshold has been reached, upon which the lower heating device is deactivated. Remaining water is pumped off from the water container for a pre-defined first pumping duration.
Claims
1. A method of operating a steam generator, said steam generator comprising: a water container with a circumferential wall, two separate heating devices on said wall of said water container, two separate heating devices being provided in different height regions separated from each other in vertical direction, one said heating device being an upper heating device and said other heating device being a lower heating device, a first temperature detection device covering a temperature detection area, said temperature detection area including at least an area covered by said two heating devices, a control device for monitoring and evaluating said first temperature detection device and for controlling an activation state of said two heating devices, with the steps of: filling said water container with water, operating said steam generator by heating with at least one of said two heating devices being activated, generating steam for operation of a steam household device and finishing steam generating after operation of said steam household device, activating at least said lower heating device until said first temperature detection device detects that a pre-defined first temperature threshold has been reached, deactivating one heating device of said heating devices, pumping off remaining water in said water container for a pre-defined first pumping duration or activating said lower heating device until said first temperature detection device detects that a pre-defined first temperature threshold has been reached again.
2. The method according to claim 1, wherein said lower heating device is activated again after pumping off or after said pre-defined first pumping duration has elapsed.
3. The method according to claim 1, wherein only said lower heating device is activated and not said upper heating device, said lower heating device being activated until said first temperature detection device detects that said first temperature threshold has been reached and then said lower heating device is deactivated.
4. The method according to claim 2, wherein said sequence of pumping and activating said lower heating device again is being carried out at least twice in order to evaporate remaining water in said water container by heating and thus remove said remaining water from said water container.
5. The method according to claim 1, wherein a pumping duration of said pumping off said remaining water from said water container for future pumping off is determined in said control device from said pre-defined first pumping duration used at a beginning of said pumping off, said pre-defined first pumping duration being decreased by said control device when, in said step of heating again with said lower heating device after pumping off said remaining water, said first temperature threshold is reached after less than 3 sec.
6. The method according to claim 1, wherein a pumping duration of said pumping off said remaining water from said water container for future pumping off is determined in said control device from said pre-defined first pumping duration used at a beginning of pumping off, said pre-defined first pumping duration being increased by said control device when, in said step of heating again with said lower heating device after pumping off said remaining water, said first temperature threshold is reached only after more than 3 sec.
7. The method according to claim 5, wherein when said pumping off is performed for a next time, said pre-defined first pumping duration is adapted again.
8. The method according to claim 1, wherein, after an initial evaporation of said water from said water container until said first temperature threshold is reached, it is waited for a first pause period before said water is pumped off out of said water container with an outlet pump, for said water in said water container to cool down in order to protect said outlet pump from excess temperature.
9. The method according to claim 8, wherein said first pause period is 20 seconds to 5 minutes.
10. The method according to claim 1, wherein directly after an initial evaporation of said water from said water container until said pre-defined first temperature threshold is reached said water is pumped off out of said water container.
11. Steam generator designed to perform said method according to claim 1, having: said water container with said circumferential wall, two said separate heating devices on said wall of said water container, said two separate heating devices being located in different height regions separate from each other in vertical direction, one said heating device being an upper heating device and said other heating device being a lower heating device, a first temperature detection device covering a temperature detection area, said temperature detection area including at least an area covered by said two heating devices, a control device for monitoring and evaluating said first temperature detection device and for controlling an activation state of said two heating devices.
12. The steam generator according to claim 11, wherein said two separate heating devices on said wall of said water container are located on a lateral outside thereof.
13. The steam generator according to claim 11, wherein said temperature detection area includes at least said area covered by said two heating devices and also an area of said water container between said two heating devices.
14. The steam generator according to claim 11, wherein a temperature sensor is arranged on a lateral outside of said water container.
15. The steam generator according to claim 14, wherein said temperature sensor is designed for point-like detection of a temperature.
16. The steam generator according to claim 14, wherein said temperature sensor is arranged in a region between said upper heating device and said lower heating device.
17. The steam generator according to claim 14, wherein no heating device is provided in a region of said temperature sensor or at a distance of less than 5 mm from said temperature sensor.
18. The steam generator according to claim 11, wherein said lower heating device is placed less than 20 mm from a baseplate of said water container in vertical direction over said baseplate.
19. A cooking device having a cooking chamber and a steam generator according to claim 11, wherein said steam generator is connected to said cooking chamber, wherein said cooking device is provided with an outlet pump for pumping off said water out of said water container.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In the following, embodiments of the invention will be described in detail with reference to the drawings. Throughout the drawings, the same elements will be denoted by the same reference numerals.
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0030] In
[0031] The outside of lateral wall 13 is preferably mostly covered by a dielectric isolation 16 in the form of a thin layer. Dielectric isolation 16 preferably contains glass or glass ceramic and can be fabricated preferably according to DE 10 2013 200 277 A1 or WO 2007/136268 A1. It is only important that the material of this dielectric isolation 16 is adapted so as to change its resistance behavior strongly at the temperature threshold mentioned before, which is preferably a temperature between 150° C. and 300° C.
[0032] An upper heating element 18 is applied onto the dielectric isolation 16 as shown here, which is also denominated by heat 1. The upper heating element 18 may be applied in meandering form or in the form of several parallel stripes or in the form of a closed area layout being circumferential around the water container 12, which is but known from the prior art as mentioned before, for example according to US 2017/0086257 A1. It is preferably a thick film heating element.
[0033] A lower heating element 20 is applied on the outside of lateral wall 13 directly onto the dielectric isolation 16. The lower heating element 20 is also denominated by heat 2, and is basically in a shape or form similar to the upper heating element 18, preferably also according to US 2017/0086257 A1. It is important that the upper heating element 18 is located above the lower heating element 20 in vertical direction, which direction in this case is extended from base plate 14 at right angle upwards, which is also the direction that the steam S is taking which rises from water W in the water container 12. There is a distancing ring region 21 between the two heating elements 18 and 20 which is ring-like or runs circumferentially around water container 12. The width of the ring region 21 may be between 5 mm and 20 mm. The heating elements 18 and 20 correspond to the heating devices described before.
[0034] The upper heating element 18 is activated by a switch 27 with which it is connected, wherein switch 27 preferably is connected to an energy source, for example a mains connection of the steam generator 11. This is not shown here, but can easily be conceived by a person skilled in the art. In similar manner, the lower heating element 20 is connected to a switch 28 which is also connected to the same energy source. The switches 27 and 28 are controlled by a control 25 which is the control for the whole steam generator 11, preferably also for a corresponding steam cooking device according to
[0035] An upper temperature sensor 22a is provided on the outside of lateral wall 13, in this case also on the dielectric isolation 16 and slightly above the upper heating element 18 in the vertical direction. A lower temperature sensor 22b is placed between the upper heating element 18 and the lower heating element 20 in the ring region 21, preferably also placed onto the dielectric isolation 16. This is mainly for the reason so that there is sufficient electrical isolation to the metallic lateral wall 13 of the water container 12. The temperature sensors 22a and 22b can be made for point-like temperature detection, for example as NTC temperature sensors in SMD construction manner. They should be attached with a good thermal contact to the lateral wall 13 so as to detect its temperature or the temperature of water W inside the water container 12 and potentially being right on the other side of the lateral wall 13. Temperature sensors 22a and 22b are also connected to the control 25 for evaluation.
[0036] For filling water W into the water container 12, a fresh water tank 30 is provided which can also be a connection to a fresh water pipe. By operating a valve 31, alternatively a pump, water W from the fresh water tank 30 can be filled into the water container 12, for example until a water level l is reached as is shown here, which is about as high as a middle region of the upper heating element 18. Two water levels are shown in dashed lines, wherein an upper water level l1 is the water level at which, when it is reached and fallen below, the upper heating element 18 in its activation state generates so much heat that the temperature detection device, which is mainly made up of the dielectric isolation 16 together with the control 25 and the measuring apparatus 26, detects a sudden rise in a leakage current from the upper heating element 18 to the lateral wall 13. This is a clear sign of a temperature being too high somewhere in this region, or reaching a first temperature threshold, respectively, so that at least the upper heating element 18 is deactivated as explained before. If the water level l has been above water level l1 before and the water has been steamed off, the water level l1 is usually constantly as is shown here, which means that it is a known value which allows for a rather exact calculation of the quantity of water being inside the water container 12.
[0037] In similar manner the lower water level l2 is the water level which, when it is fallen below from a higher water level, effects a temperature rise in the region of the lower heating element 20. This temperature rise corresponding to passing the first temperature threshold can again be detected by the temperature detection device or at the dielectric isolation 16, respectively, so that the lower heating element 20 is deactivated before a critical temperature is reached. In the same manner as water level l1, water level l2 is usually rather constantly reached at this point and also allows for a rather exact calculation of the quantity of water W being inside the water container 12 when the temperature at the dielectric isolation 16 reaches this first temperature threshold.
[0038] From base plate 14 a water outlet 34 leads via an outlet pipe 36 to an outlet pump 37 which may correspond to the outlet pump described before. Alternatively, a valve could be provided in the outlet pipe 36 instead of the outlet pump 37, or in addition to it. The outlet pump 37 leads to an outlet 38 which may be a waste water outlet into a sewage. The outlet pump 37 is also connected to control 25 and is preferably controlled by control 25.
[0039] In
[0040] A ventilator 48 is provided for transporting steam from the steam generator 11 with water W in the water container, wherein the steam S is blown into the cooking chamber 43 in known manner through a steam channel 49. Furthermore, control 25 is provided for the whole steam cooking device 40. A fresh water tank 30 is provided inside the steam cooking device 40 and is connected via a fresh water pipe 32 to the steam generator 11.
[0041] Also in
[0042] In
[0043] In this case, because there is much water W left in the water container 12 according to the water level l1, and the noise of the outlet pump 37 shall be reduced as far as possible, some more water should be removed by evaporating. As such, according to the third box from above in
[0044] If now with only the lower heating element 20 activated a temperature reaches the first temperature threshold Tthr again, this means that the water level l2 according to
[0045] After the pumping sequence has ended, it is not known whether there is some water W left in the water container 12 which should also be removed. It should be avoided to start the pump again or have it still active for the risk of loud pumping noise. For this reason a drying sequence is started where only the lower heating element 20 is activated and starts heating action. If some water should be still inside the water container 12, it is evaporated again. As the water level now is definitely lower than the water level l2, which has already effected that the temperature has quickly reached the first temperature threshold Tthr, and now definitely less water is inside the water container 12, it can be expected that the lower heating element 20 is only activated for a rather short time which may be some seconds, for example 3 sec to 6 sec. Then of course after reaching the first temperature threshold Tthr, the lower heating element 20 is deactivated again such that the temperature again falls below the first temperature threshold Tthr.
[0046] According to the flow diagram, the lower heating element 20 is then activated again for evaporating potentially remaining water in the water container 12. Then again the temperature may reach the first temperature threshold Tthr rather quickly, for example after 3 sec to 6 sec, which leads again to a deactivation of the lower heating element 20. If now the second duration of activation of the lower heating element 20 is the same as the first duration, the conclusion is that there is no more water left inside the water container 12 and the drying cycle needs not be repeated for a third time. In consequence, the control 25 regards the water container 12 as being completely empty or dry and the operation is finished.
[0047] It can be provided that the control 25 is able to learn, which means that if the last cycle of drying by repeatedly activating and deactivating the lower heating element 20 occurs for a number of five to ten times, this means that the outlet pump 37 has not removed the largest part of the water remaining in the water container 12. This leads to the control 25 increasing the first pumping duration somewhat, for example by 10% or 20%. The next time that the water container 12 has to be emptied from water after operating the steam cooking device 40, the control 25 can check whether at the end of the sequence of the flow diagram according to
[0048] If, on the other hand, in the last sequence of drying the water container 12 by activating the lower heating element 20 for a rather short duration, the first temperature threshold Tthr is reached after less than 3 sec for example, this means that already now no more water seems to be left in the water container 12. Although this may basically seem to be welcome, it bears the risk that the outlet pump 37 has been pumping for too long. This means that the generation of noise of the outlet pump has been too long and could potentially be shortened. In this case the control 25 decreases or lowers the predefined first pumping duration somewhat, preferably by 10% or 20%. This new reduced first pumping duration is, similar to what has been described before, now being used for the next time the water has to be completely removed from the water container 12. If again in the last sequence of drying the water container 12 according to
[0049] Similar to what has been described before, this adaptation or decrease of the first pumping duration tO is made until it takes the lower heating element 20 in the drying sequence according to
[0050] While the
[0051] In the next step, the lower heating element 20 is activated in a drying cycle which has been described before. Only this time the lower heating element 20 may need more than three cycles to remove or evaporate all the water left in the water container 12. If now the control 25 recognizes that each time after activating the lower heating element 20 the temperature reaches the predefined first temperature threshold Tthr after less than 3 sec, the water container 12 is defined to be completely dry and drying of the water container 12 is finished.
[0052] In the flow diagram according to
[0053] In an embodiment of the invention it may be provided that the absolute power of the lower heating element 20 could be higher or lower than the absolute power of the upper heating element 18. Preferably, both heating elements 18 and 20 have the same power, for example 750 W as a maximum continuous power.
[0054] A typical pumping rate could be in the range of 50 to 200 ml/min. A typical quantity of water in the water container 12 could be 50 ml at water level l2 and 120 ml at water level l1. Preferably, the first temperature detection device with the dielectric isolation 16 has a predefined first temperature threshold of about 300° C.