System and Method for Controlling Smoke During Air Frying in a Range or Oven
20220205644 · 2022-06-30
Inventors
Cpc classification
B01D53/88
PERFORMING OPERATIONS; TRANSPORTING
F24C15/2014
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D2259/80
PERFORMING OPERATIONS; TRANSPORTING
B01D53/885
PERFORMING OPERATIONS; TRANSPORTING
B01D2257/708
PERFORMING OPERATIONS; TRANSPORTING
B01D2258/0275
PERFORMING OPERATIONS; TRANSPORTING
International classification
F24C15/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D53/88
PERFORMING OPERATIONS; TRANSPORTING
B01J35/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An oven of this disclosure includes a heated catalyst assembly that reduces emissions during cooking cycles and, in particular, during air frying. The heated catalyst assembly resides between the cooking chamber and its exhaust vent and includes a thermal radiation source including at least one looped element, a first catalyst located toward the inlet in proximity to one side of the thermal radiation source and a second catalyst located in proximity to an opposite side of the thermal radiation heat source. The first and second catalysts are arranged in planes parallel to that of the thermal radiation heat source. The heated catalyst assembly reduces emissions of volatile organics to no greater than 6 ppm.
Claims
1. An oven comprising: a cooking chamber including an air fryer mode; a vent in communication with the cooking chamber; and a heated catalyst assembly located between the cooking chamber and the vent; the heated catalyst assembly including: a housing having an inlet connected to the cooking chamber and an outlet connected to the vent; the housing containing: a thermal radiation heat source located within the housing between the inlet and the outlet, the thermal radiation source including at least one looped element; a first catalyst located toward the inlet in proximity to one side of the thermal radiation source; a second catalyst located toward the outlet in proximity to an opposite side of the thermal radiation heat source; the first and second catalysts arranged in planes parallel to that of the thermal radiation heat source.
2. The oven of claim 1, wherein, the first and second catalysts are screen catalysts including a wire mesh cloth.
3. The oven of claim 2, wherein, the wire mesh cloth of the first and second catalysts comprises two layers of wire mesh.
4. The oven of claim 2, wherein, the wire mesh cloth includes an aluminum oxide coating impregnated with at least one catalytically active element.
5. The oven of claim 4, wherein, the aluminum oxide coating comprises a mixture of two aluminum oxide phases.
6. The oven of claim 5, wherein one of the two aluminum oxide phases is a gamma phase and another of the two aluminum oxide is a boehmite phase. The oven of claim 4, wherein, the at least one catalytically active element comprises platinum.
8. The oven of claim 2, wherein, the wire mesh cloth is in a range of size 10 to size 50.
9. The oven of claim 8, wherein, the wire mesh cloth is a size 30.
10. The oven of claim 1, wherein, during air frying of a food, a first concentration of volatile organic compounds enters the inlet of the heated catalyst assembly and a second concentration of volatile organic compounds exits the outlet of the heated catalyst assembly, the second concentration being lower than the first concentration and no greater than 6 ppm.
11. The oven of claim 1, wherein, first and second catalysts include an expanded metal or metal foil substrate.
12. A method for treating emissions of an oven when air frying, the method comprising: treating air frying emissions within a heated catalyst assembly; wherein, the heated catalyst assembly is located between a cooking chamber of the oven and a vent in communication with the cooking chamber; and wherein, the heated catalyst assembly includes: a housing having an inlet connected to the cooking chamber and an outlet connected to the vent; the housing containing: a thermal radiation heat source located within the housing between the inlet and the outlet, the thermal radiation source including at least one looped element; a first catalyst located toward the inlet in proximity to one side of the thermal radiation source; a second catalyst located toward the outlet in proximity to an opposite side of the thermal radiation heat source; the first and second catalysts arranged in planes parallel to that of the thermal radiation heat source.
13. A heated catalyst assembly arranged for use in an oven having an air frying mode, wherein the oven includes a cooking chamber and a vent in communication with the cooking chamber, the heated catalyst assembly including: a housing having an inlet connected to the cooking chamber and an outlet connected to the vent; the housing containing a thermal radiation heat source located within the housing between the inlet and the outlet, the thermal radiation source including at least one looped element; a first catalyst located toward the inlet in proximity to one side of the thermal radiation source; a second catalyst located toward the outlet in proximity to an opposite side of the thermal radiation heat source; the first and second catalysts arranged in planes parallel to that of the thermal radiation heat source.
14. The heated catalyst assembly of claim 13, wherein, the first and second catalysts are screen catalysts including a wire mesh cloth.
15. The heated catalyst assembly of claim 14, wherein, the wire mesh cloth of the first and second catalyst comprises two layers of wire mesh.
16. The heated catalyst assembly of claim 14, wherein, the wire mesh cloth includes an aluminum oxide coating impregnated with at least one catalytically active element.
17. The heated catalyst assembly of claim 16, wherein, the aluminum oxide coating comprises a mixture of two aluminum oxide phases.
18. The heated catalyst assembly of claim 17, wherein one of the two aluminum oxide phases is a gamma phase and another of the two aluminum oxide is a boehmite phase.
19. The heated catalyst assembly of claim 16, wherein, the at least one catalytically active element comprises platinum.
20. The heated catalyst assembly of claim 14, wherein, the wire mesh cloth is in a range of size 10 to size 50.
21. The heated catalyst assembly of claim 20, wherein, the wire mesh cloth is a size 30.
22. The heated catalyst assembly of claim 13, wherein, during air frying of a food, a first concentration of volatile organic compounds enters the inlet of the heated catalyst assembly and a second concentration of volatile organic compounds exits the outlet of the heated catalyst assembly, the second concentration being lower than the first concentration and no greater than 6 ppm.
23. The heated catalyst assembly of claim 13, wherein, first and second catalysts include an expanded metal or metal foil substrate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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ELEMENTS USED IN THE DRAWINGS
[0031] 10 Heated screen catalyst assembly [0032] 11 Cooking chamber [0033] 12 Residential range or oven with air frying mode [0034] 13 Range or oven door [0035] 14 Housing [0036] 15 Inlet to heated screen catalyst assembly [0037] 16 Thermal radiation source [0038] 17 Circuitry for connection to power source [0039] 18 Screen catalyst [0040] 19 Outlet from heated screen catalyst assembly [0041] 20 Untreated emissions [0042] 21 Emission path [0043] 22 Treated emissions [0044] 23 Outlet [0045] 25 Looped members of thermal radiation source [0046] 30 Vent tube
DETAILED DESCRIPTION
[0047] Referring first to
[0048] In embodiments, the catalyst screen 18 is in the form of a wire mesh cloth located on opposite sides of the radiation source 16. The one catalyst screen 18 is located closer to the inlet 15. The radiation source 16 heats the air entering the inlet 15 as well as the screen 18. This first screen 18 may be slightly hotter, at least initially, than the second screen 18, but the radiation source 16 tends to equilibrate the two screens 18. The screens 18 may also be hotter than the oven cavity depending on what is programmed for the cook cycle, which may be an air-frying cook cycle. By way of a non-limiting example, the catalyst screen 18 may be in a range of 600° F. to 650° F., the oven cavity being in a range of 400° F. to 425° F.
[0049] The first screen 18 may be more surface heat reactive than the second screen 18, which receives air that has passed through the first screen 18 as well as the radiation source 16. The air may be at its maximum temperature at the second screen 18. See e.g.
[0050] Emissions during cooking or air frying follow an emissions path 21 in which the emissions enter the inlet 15 of assembly 10 as untreated emissions 20, pass through the catalyst screen 10, and exit the outlet 19 of the assembly 10 as treated emissions 22 which are then exhausted or vented through an outlet 23 of the oven 11.
[0051] In embodiments, catalyst element 18 is a screen catalyst. The screen catalyst may include a wire mesh cloth having a high surface area aluminum oxide coating that has been impregnated with catalytically active elements. Other substrate formats such as expanded metal or metal foil or ceramics could be used. The catalytically active elements may be a platinum only element. In other embodiments, it may be a platinum and palladium blend (although platinum only performed better during air frying). The coating may be a mixture of two aluminum oxide phases, such as the gamma and boehmite phases. Other elemental oxides may be present in lesser amounts to act as thermal stabilizers or to enhance the effectiveness of the catalytically active elements. The oxides are prepared and applied in a manner well known to those skilled in the art.
[0052] The mesh size of the screen catalyst should be selected to provide sufficient heat reactive surface area without causing excessive pressure drop. In embodiments, the screen catalyst may in a range of a size 10 mesh wire cloth to a size 50 mesh wire cloth, there being discrete values and subranges within this broader range. In some embodiments, a size 30 mesh wire cloth was used. The mesh size should also be selected so that the oven can pass fire and explosion tests like those performed by Underwriters Laboratories (restriction to flow in the vent 23 can blow door 13 open during a fire or other extreme temperature event). In tests, the 30 mesh wire cloth provided good balance between reactive surface pressure and pressure drop.
[0053] To maintain a consistent operating or catalytic temperature, a catalytic conversion unit of this disclosure includes a thermal radiation source 16. The heated screen catalyst assembly 10 depends upon the source 16 for a consistent operative temperature of its catalytic elements 18, making the heated screen catalyst assembly 10 unaffected by temperature variations caused by a user opening the door 13 of the cooking chamber 11 during air frying or cooking. In embodiments, thermal radiation source 16 may include one or more looped members 25 being arranged in a same plane as one another. In some embodiments, there are two looped members 25 along one run 16A of source 16 and no looped members along an opposite run 16A of source 16. Adjacent to, spaced apart from, and overlapping the looped members 25 is at least two catalyst mesh or screen catalysts 18 arranged parallel to the looped members 25, each located on opposite sides of the looped members 25. In some embodiments, at least two layers of screen catalysts 18A, 18B are located on one side of the looped members 25 and another at least two layers of screen catalysts 18C, 18D are located on the other side of the looped members 25.
[0054] Referring now to
[0055] In other tests of embodiments of this disclosure, bacon was air fried in the Electrolux oven using the following parameters for each test:
[0056] Amount of Bacon: 1 lb per pan
[0057] Number of Cycles: 3
[0058] Oven Temperature: 350° F.
[0059] Cook Time: 20 minutes
[0060] Dwell Time: 5 minutes
[0061] Oven Setting: Air Fry Mode
[0062] CCC Catalyst Temp.: 650° F.
The OEM catalyst peaked at just under 6 PPMv for emissions at the largest peak. See
[0063] In other tests of embodiments of this disclosure, a whole turkey test was conducted with the CCC Catalyst installed in the oven 12. A 231b whole turkey was used. The cooking parameters were:
[0064] Oven Temperature: 350° F.
[0065] Cook Time: 4 hours
[0066] Oven Setting: Air Fry Mode
[0067] Catalyst Temperature: 650° F.
There were practically no emissions and very little steam. See
[0068] In other tests of embodiments of this disclosure, chicken wings were cooked on air fry mode. The cooking parameters used in the tests were as follows:
[0069] Amount of Chicken: 3 lbs per pan
[0070] Number of Cycles: 3
[0071] Oven Temperature: 450° F.
[0072] Cook Time: 35 minutes
[0073] Oven Setting: Air Fry Mode
[0074] CCC Catalyst Temperature: 650° F.
[0075] Dwell Time: 10 minutes (Sequential runs only) The CCC Catalyst reduced emissions by about 84% compared to the OEM catalyst. See
[0076] Referring now to
[0077] In embodiments, the shape or geometry of the catalyst element 18 is configured or arranged for use with a predetermined oven. The catalyst element 18 may be square-shaped, rectangular-shaped, elliptical- or oval-shaped, or circular- or disc-shaped.
[0078] Although the embodiments of this disclosure have been described, it is not intended that a heated catalyst assembly for use in an oven be limited thereby, but that modifications may be made by persons of ordinary skill without departing from the scope of the following claims. The recited elements and limitations of the claims include the full range of equivalents to which they are entitled.