Flameless impingement oven
11585601 · 2023-02-21
Assignee
Inventors
Cpc classification
F27D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B17/0016
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A flameless combustion oven arranges gas and air jets to directly impinge on the product being heated to substantially promote transfer of heat to the product by impingement transfer rather than by conventional radiation and thermally induced convection. In one embodiment, a set of spaced air and gas nozzles are uniformly distributed on a wall of the oven opposite the product to provide substantially uniform impingement over a surface of the product.
Claims
1. A flameless impingement oven comprising: an oven cavity providing oven walls and a contained surface for supporting a product to be heated within the oven cavity; a regenerator receiving heated air passing out of the oven cavity through first channels and receiving fuel passing into the oven cavity through second channels, the first channels and second channels adapted to provide heat conduction directly between the first and second channels, without an intervening flow of fresh air, to heat the fuel for flameless heating of the oven cavity; a plurality of fuel gas jets receiving fuel from the second channels and facing into the oven cavity to direct fuel toward the surface; wherein the fuel jets are arranged to distribute the fuel within the oven cavity to support flameless heating of the oven cavity; and wherein the fuel jets are positioned to direct fuel into direct impingement against a product on the surface for impingement heating; wherein the regenerator further includes third channels receiving the fresh air passing into the oven cavity through the third channels, the first and third channels adapted to provide heat conduction directly between the first and third channels, without an intervening flow of fuel, to heat the air for flameless heating of the oven cavity; and further including a plurality of air jets receiving fresh air from the third channels to direct the fresh air toward the surface; wherein the air jets are spaced from the fuel jets to distribute the fresh air within the oven cavity to support flameless heating of the oven cavity so that a separation between any given air jet and a given gas jet will be no less than one quarter of the separation between adjacent gas jets or adjacent air jets; and wherein the air jets are positioned to direct fresh air into direct impingement against a product on the surface for impingement heating.
2. The flameless impingement oven of claim 1 wherein the fuel jets and air jets are interleaved in two directions over an area spaced from the surface.
3. The flameless impingement oven of claim 2 wherein the air jets are positioned at outermost locations in the interleaved fuel jets and air jets.
4. The flameless impingement oven of claim 2 wherein the outlets of the air jets and fuel jets are uniformly distributed within a plane.
5. The flameless impingement oven of claim 1 wherein at least 25% of the air exiting the air jets and at least 25% of the fuel exiting the fuel jets strikes a product on the surface before striking a wall of the oven.
6. The flameless impingement oven of claim 1 wherein during flameless heating the air and fuel directly impinging on a product are at least partially reacted with each other.
7. The flameless impingement oven of claim 1 wherein the surface is a lower wall of the oven and the fuel is directed downwardly.
8. The flameless impingement oven of claim 1 wherein the first, second, and third channels are contained within a common housing defining the three channels.
9. The flameless impingement oven of claim 1 further including a control system controlling air and gas flow to produce flameless heating.
10. The flameless impingement oven of claim 1 wherein the fuel is selected from the group consisting of gaseous fuels and liquid fuels that gasify on introduction into the oven.
11. The flameless impingement oven of claim 1 wherein the air jets and gas jets have varying opening diameters to promote uniform heating of the product by impingement.
12. The flameless impingement oven of claim 1 wherein the variation between spacing of the air jets and gas jets is uniform to within a range of 50 percent.
13. A method of heating a product in an oven cavity, the method providing: positioning the product in an oven cavity; receiving fuel through a regenerator at multiple fuel jets positioned in the oven cavity to direct fuel into direct impingement on the product; receiving outside air through the regenerator at multiple air jets positioned in the oven cavity to direct air into direct impingement on the product wherein the air jets are spaced from the fuel jets so that a separation between any given air jet and a given gas jet will be no less than one quarter of the separation between adjacent gas jets or adjacent air jets; and receiving heated air from the oven cavity through the regenerator to conduct heat from the heated air to the outside air before it passes to the air jets and from the heated air to the fuel before it passes to the fuel jets wherein the conduction of heat from the heated air to the outside air occurs directly without intervening flow of fuel and wherein the conduction of heat from the heated air to the fuel occurs directly without intervening flow of outside air; controlling the fuel and air to promote flameless combustion in the oven cavity while preserving the direct impingement of the air and fuel.
14. The method of claim 13 wherein the product is primarily heated by impingement transfer rather than convection or radiation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(6) Referring now to
(7) Burner assemblies 16a and 16b may pass through opposite side walls 15, for example, each directed toward a center of the oven cavity 12. Each burner assembly 16 may provide multiple jets 18, including air jets 18a and gas jets 18b, for introducing air and fuel, respectively, into the oven cavity 12 from pressurize sources of air and fuel (not shown). The burner assemblies 16 may also provide an exhaust port 20 for receiving heated exhaust gases from the oven cavity 12 for regenerative heating of the air and gas.
(8) The air and gas may be controlled by a flow sensor 22 and may be pressure regulated by pressure sensors/regulators 24 positioned on air line 21a and gas line 21b, respectively, to provide proper stochiometric combustion and to promote flameless combustion. An igniter (not shown) may be used to initiate combustion. Thermocouples and other sensors, including reactive species sensors, may be coupled to the oven cavity 12 and may communicate measurement signals with a computer (not shown), the latter controlling valves to automatically initiate and stabilize flameless combustion according to techniques generally understood to those of ordinary skill in the art by control of the air and gas.
(9) The exhaust port 20 associated with each burner assembly 16 may conduct heated gases from the oven cavity 12 to a regenerator 26 which serves to heat the air and fuel prior to combustion in the oven cavity 12. After passing through the regenerator 26, the heated combustion gases exit through a low-temperature exhaust outlet 23. Generally, the direction of introduction of air and fuel is arbitrary with uniform heating provided by distributed combustion 30 (indicated by the dotted lines) within the oven cavity 12 from reacting gases 32 (air and fuel gas such as natural gas) dispersed in a highly turbulent manner for improved mixing.
(10) Referring to
(11) Referring now to
(12) In the flameless impingement oven 50, substantial changes are implemented in the jets 18a and 18b. First, they are attached to an upper wall 15 of the oven cavity 12 to face down producing downwardly directed jet streams 56 of air and gas impinging directly on the product 14. This impingement may be insured both by the geometry of the oven cavity 12, the placement of the jets 18, and the setting of the velocity flow rate of the gas and air flowing through the jets 18.
(13) Referring now also to
(14) Referring now to
(15) Referring again to
(16) The air line 21a and gas line 21b may have pressure control and flow regulation using flow sensors 22 and pressure sensors 25 and control valve/regulators 38 as discussed above with respect to
(17) In addition to controlling the diameters of the jets 18, flow may be controlled using the control valve/regulators 38. In some embodiments, the nozzles of the air jets 18a and gas jets 18b are coplanar and that plane may be spaced from the product 14 by a range of 5 inches to 8 inches. Generally, the orientation of the jets 18 will be parallel and arranged to provide a return path for gases around the jet streams 56 to promote direct impingement.
(18) While heating of a single side of the product 14 is shown, the invention contemplates that sets of jets may be directed toward different surfaces of the product 14, for example, from two sides of the product 14, for improved heating of some types of product 14.
(19) Impingement occurs when at least 25 percent of the air or gas exiting an air jet 18a or gas jet 18b can be expected to strike the product 14 before striking a wall 15. The axis of the jets 18a and 18b is defined by the principal velocity of exiting gas or air. “Direct” with respect to direct impingement on a product means that gas exiting the jets strikes the product before contacting the oven wall. “Flameless combustion” means combustion without a visible flame front, typically in an air-gas mixture above the auto ignition temperature. With flameless combustion, homogenous combustion occurs within a majority of the oven cavity and there is an abrupt drop in carbon monoxide and nitrous oxide formation.
(20) The invention is not limited to natural gas or even gaseous fuels and may also be used with liquid fuels, biogas, and other fuel types. It will further be appreciated that existing ovens can be retrofit to provide an impingement, flameless oven of the present invention through the addition of correctly positioned and configured nozzles, preheating of fuel and air, and control of the resulting combustion as taught herein.
(21) Certain terminology is used herein for purposes of reference only, and thus is not intended to be limiting. For example, terms such as “upper”, “lower”, “above”, and “below” refer to directions in the drawings to which reference is made. Terms such as “front”, “back”, “rear”, “bottom” and “side”, describe the orientation of portions of the component within a consistent but arbitrary frame of reference which is made clear by reference to the text and the associated drawings describing the component under discussion. Such terminology may include the words specifically mentioned above, derivatives thereof, and words of similar import. Similarly, the terms “first”, “second” and other such numerical terms referring to structures do not imply a sequence or order unless clearly indicated by the context.
(22) When introducing elements or features of the present disclosure and the exemplary embodiments, the articles “a”, “an”, “the” and “said” are intended to mean that there are one or more of such elements or features. The terms “comprising”, “including” and “having” are intended to be inclusive and mean that there may be additional elements or features other than those specifically noted. It is further to be understood that the method steps, processes, and operations described herein are not to be construed as necessarily requiring their performance in the particular order discussed or illustrated, unless specifically identified as an order of performance. It is also to be understood that additional or alternative steps may be employed.
(23) References to “a microprocessor” and “a processor” or “the microprocessor” and “the processor,” can be understood to include one or more microprocessors that can communicate in a stand-alone and/or a distributed environment(s), and can thus be configured to communicate via wired or wireless communications with other processors, where such one or more processor can be configured to operate on one or more processor-controlled devices that can be similar or different devices. Furthermore, references to memory, unless otherwise specified, can include one or more processor-readable and accessible memory elements and/or components that can be internal to the processor-controlled device, external to the processor-controlled device, and can be accessed via a wired or wireless network.
(24) It is specifically intended that the present invention not be limited to the embodiments and illustrations contained herein and the claims should be understood to include modified forms of those embodiments including portions of the embodiments and combinations of elements of different embodiments as come within the scope of the following claims. All of the publications described herein, including patents and non-patent publications, are hereby incorporated herein by reference in their entireties
(25) To aid the Patent Office and any readers of any patent issued on this application in interpreting the claims appended hereto, applicants wish to note that they do not intend any of the appended claims or claim elements to invoke 35 U.S.C. 112(f) unless the words “means for” or “step for” are explicitly used in the particular claim.