This disclosure relates to new and improved air impingement nozzles, methods and ovens that use the nozzles for heating or cooling a product within the air streams coming out of the air impingement nozzles. For example, the improved impingement nozzles can be used in an oven for cooking food products.
Jet nozzles are used to provide impingement air to heat or cool a product in a variety of ovens, including countertop ovens, conveyor ovens, and the like. Several known jet nozzles are shown in U.S. Pat. No. 6,817,283, which discloses an oven for cooking food products. In some applications, the jet nozzles are shaped and spaced to provide non-overlapping columns of hot impingement air that impinge directly on the surface of the food product. A disadvantage of these nozzles is that the columns of hot impingement air develop hot spots that result in a pattern of overcooked and undercooked areas of the food product. In other applications, the jet nozzles are shaped and spaced to provide a plume or blanket of hot air at the surface of the food product.
There is a need for an improved jet nozzle.
There is also a need for a method and an oven with the improved jet nozzles.
The present disclosure describes a jet nozzle that provides hot air acceleration and a nozzle insert or member in the flow path beneath the jet nozzle that transforms the air flow to create a relatively thin thermal boundary layer of hot air at the surface of the food, utensil or any other material placed within the air stream that is characterized by an overall flow pattern at the surface of the food product that enhances the heat transfer to the product. In a preferred embodiment, the member has a cone like or goblet like shape that causes the airflow to form a relatively thin bell-shaped flow ring after separating from the nozzle insert, which leads to a more homogeneous and high heat distribution cooking of food products.
One embodiment of an oven of the present disclosure comprises an oven chamber and a blower that is disposed to circulate air through the oven chamber. An air impingement plate is disposed in the circulating air and is located to provide impingement air toward a product in the oven chamber. At least one jet nozzle is disposed in the impingement plate. A nozzle insert is disposed in relation to the jet nozzle to form about the nozzle insert a slot-shaped orifice through which the impingement air flows.
In another embodiment of the oven of the present disclosure, a shape of the slot-shaped orifice is selected from the group consisting of: curvilinear, ring, annular, polygonal, square, rectangular, elliptical, multi-point, jack and cruciform.
In another embodiment of the oven of the present disclosure, a shape of the nozzle insert is selected from the group consisting of: bell, goblet, cone, margarita glass, upside down filled wine glass, pedestal, maraca, mirrored pedestal, and filled wide bell.
In another embodiment of the oven of the present disclosure, the slot-shaped orifice has a thickness that produces an overall flow pattern at the surface of the product that enhances heat transfer to the product and a homogeneous heat transfer at a surface of the product.
In another embodiment of the oven of the present disclosure, the nozzle insert is selected from the group consisting of: solid and hollow.
In another embodiment of the oven of the present disclosure, a shape of the jet nozzle is selected from the group consisting of: a match with a shape of the nozzle insert and a non-match of a shape of the nozzle insert.
In another embodiment of the oven of the present disclosure, the jet nozzle is one of a plurality of jet nozzles that each have an associated nozzle insert in relation to the jet nozzle to form about the nozzle insert a slot-shaped orifice through which the impingement air flows. The plurality of jet nozzles collectively provide a homogeneous and high heat transfer distribution at the product.
In another embodiment of the oven of the present disclosure, a temperature of the air is controlled by a unit selected from the group consisting of: heating and cooling.
In another embodiment of the oven of the present disclosure, a fastener fastens the nozzle insert to the impingement plate to vary an axial position of the nozzle insert relative to the impingement plate.
In another embodiment of the oven of the present disclosure, a heater is disposed to heat the circulating air, and wherein the product is a food product.
In one embodiment of the method of the present disclosure, the oven is operated by steps comprising:
circulating air in an oven chamber;
providing an impingement plate in the circulating air to provide impingement air toward a product in the oven chamber; and
shaping the impingement air with a slot-shaped orifice through which the impingement air flows.
In another embodiment of the method of the present disclosure, a shape of the slot-shaped orifice is selected from the group consisting of: curvilinear, ring, annular, polygonal, square, rectangular, elliptical, multi-point, jack and cruciform.
In another embodiment of the method of the present disclosure, a temperature of the air is controlled by a unit selected from the group consisting of: heating and cooling.
In another embodiment of the method of the present disclosure, a heater is disposed to heat the circulating air, and the product is a food product.
In another embodiment of the method of the present disclosure, at least one jet nozzle is disposed in the impingement plate. A nozzle insert is disposed in relation to the jet nozzle to form about the nozzle insert the slot-shaped orifice through which the impingement air flows.
In another embodiment of the method of the present disclosure, a shape of the nozzle insert is selected from the group consisting of: bell, goblet, cone, margarita glass, upside down filled wine glass, pedestal, maraca, mirrored pedestal, and filled wide bell.
In another embodiment of the method of the present disclosure, the slot-shaped orifice has a thickness that produces an overall flow pattern at the surface of the product that enhances heat transfer to the product and a homogeneous heat transfer at a surface of the product.
In another embodiment of the method of the present disclosure, the insert is selected from the group consisting of: solid and hollow.
In another embodiment of the method of the present disclosure, a shape of the jet nozzle is selected from the group consisting of: a match with a shape of the nozzle insert and a non-match of a shape of the nozzle insert.
In another embodiment of the method of the present disclosure, the jet nozzle is one of a plurality of jet nozzles that each have an associated nozzle insert in relation to the jet nozzle to form about the nozzle insert a slot-shaped orifice through which the impingement air flows. The plurality of jet nozzles collectively provides a homogeneous and high heat transfer distribution at the product.
In another embodiment of the method of the present disclosure, a fastener fastens the nozzle insert to the impingement plate to vary an axial position of the nozzle insert relative to the impingement plate.
In one embodiment of the jet nozzle of the present disclosure, a jet nozzle is disposed in an air impingement plate and at least one nozzle insert is disposed in relation to the jet nozzle to form about the nozzle insert a slot-shaped orifice through which impingement air flows.
In another embodiment of the jet nozzle of the present disclosure, a shape of the slot-shaped orifice is selected from the group consisting of:
curvilinear, ring, annular, polygonal, square, rectangular, elliptical, multi-point, jack and cruciform.
In another embodiment of the jet nozzle of the present disclosure, a shape of the nozzle insert is selected from the group consisting of: bell, goblet, cone, margarita glass, upside down filled wine glass, pedestal, maraca, mirrored pedestal, and filled wide bell.
In another embodiment of the jet nozzle of the present disclosure, a shape of the jet nozzle is selected from the group consisting of: a match with a shape of the nozzle insert and a non-match of a shape of the nozzle insert.
In another embodiment of the jet nozzle of the present disclosure, the nozzle insert is selected from the group consisting of: solid and hollow.
In another embodiment of the jet nozzle of the present disclosure, a fastener fastens the nozzle insert to the impingement plate to vary an axial position of the nozzle insert relative to the impingement plate.
Other and further objects, advantages and features of the present invention will be understood by reference to the following specification in conjunction with the accompanying drawings, in which like reference characters denote like elements of structure and:
It is contemplated that the jet nozzles of the present disclosure can be used in any type of oven that uses impingement air. By way of example and completeness of description, the nozzles are described herein for use with a countertop oven.
Referring to
Oven 30 comprises an oven chamber 70 defined by side walls 32 and 34, back wall 36, bottom wall 40 and a jet plate 72. Jet plate 72 is disposed below top wall 38. Oven 30 further comprises a fan box 74 defined by side walls 32 and 34, back wall 36, top wall 38 and a wall 76. A fan 80 is disposed in fan box 74 and a heater 52 (shown in
An oven rack 84 is supported within oven chamber 70 by any suitable means that allows for proper location in oven chamber 70 (e.g., mounted to side walls 32 and 34, bottom wall 40, back wall 36, front wall 42, door 44 and the like). Oven rack 84 may be a standard food rack, i.e., available off-shelf. In an alternate embodiment a plurality of oven racks 84 may be disposed in oven chamber 70.
Referring to
A catalyst structure (not shown) may be disposed in fan box 74 between fan 80 and back wall 36. For example, the catalyst may be disposed adjacent back wall 36 in at least partial registration with opening 88 of back wall 36 and fan 80. Opening 86 may be configured to block microwave energy penetration in microwave embodiments. In an alternate embodiment, the catalyst structure may be located in front of opening 86.
Referring to
Referring to
Compared to traditional jet nozzles, the bell shaped flow pattern is a function of the “contact” surface between the fluid or air in motion and the air not in motion and is much greater. Therefore, shear stresses show stronger effects, which means that vortices occur and the point of transition from laminar air to turbulent air moves further up-stream. towards the nozzle which results in a stronger turbulence level down-stream of the jet nozzle toward the food product. The nozzle insert of the present disclosure advantageously leads to wider nozzle spacing and reduced distance between impingement plate 72 and the surface of the food product to achieve a more homogeneous air flow pattern. In some embodiments, the jet nozzles and jet inserts can be larger so that fewer are needed, which may allow the space between jet plate 72 and the food product to be greater. The present disclosure contemplates that many embodiments are possible based on the size and shape of jet nozzle 100 and nozzle insert 102 and spacing may be increased as well.
Referring to
The present disclosure contemplates that the nozzle insert may have different shapes to provide different airflow patterns such as those shown in
A shape of the slot-shaped orifice is selected from the group consisting of: curvilinear, ring, annular, polygonal, square, rectangular, elliptical, multi-point, jack and cruciform.
A shape of the nozzle insert is selected from the group consisting of: bell, goblet, cone, margarita glass, upside down filled wine glass, pedestal, maraca, mirrored pedestal, and filled wide bell.
It is contemplated that the convective airflow of the present disclosure may also be used in cooling applications as well as in heating applications. The present disclosure having been thus described with particular reference to the preferred forms thereof, it will be obvious that various changes and modifications may be made therein without departing from the spirit and scope of the present disclosure and appended claims.
This application claims the benefit of U.S. Provisional Application Ser. No. 61/180,575, filed on May 22, 2009, the entire contents of which are incorporated herein.
Number | Date | Country | |
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61180575 | May 2009 | US |