IP Library Granted Patent US 10,088,173
Granted Patent B2
US 10,088,173 · App. 15/426,620 · Granted Oct 2, 2018

Low-profile multi-zone oven

Inventors: Philip R. McKee (Frisco, TX); Lee Thomas VanLanen (McKinney, TX); Todd Coleman (Farmers Branch, TX)
Assignee: Alto-Shaam, Inc.
F24C15/322A21B1/26F24C15/007F24C15/16F24C15/166F24C15/00F24C15/32
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Quick Facts
Patent No.
US 10,088,173
App. No.
15/426,620
Granted
Oct 2, 2018
Kind
B2
Abstract

A multi-zone, proximate-air oven using air delivered from the shelves provides a compact height through the use of low profile shelves. Intercavity heat leakage is managed by active insulation techniques making use of the oven feedback temperature control and controlled cavity loading.

Claims (47)

1. A multi-cavity oven comprising:

a housing defining an interior cooking volume surrounded by insulated outer walls and at least one door that may open and close to provide access to the interior cooking volume; and

a set of shelves subdividing the cooking volume into cooking cavities, the shelves providing separate upper and lower air channels divided by at least one interior barrier wall, each leading from respective air inlets to respective upwardly directed airstream openings and downwardly directed airstream openings through a jet plate;

wherein each cavity provides a separate blower circulating air from the cavity into a lower air channel of a shelf above the cavity and an upper air channel of the shelf below the cavity;

wherein each cavity provides a separate heater and a thermal sensor; and

further including a controller receiving a control set point and a signal from the thermal sensor to control the heater

wherein the barrier wall and jet plate intercommunicate mechanically to resist warpage of each shelf with variations in thermal expansion of the barrier wall and jet plate; and

wherein the upper and lower air channels of each shelf are separated by a thermal resistance having an R-value of less than one.

2. The multi-cavity oven of claim 1 wherein the shelves have a vertical thickness of less than three inches measured between an uppermost extent of airstream openings of the upper air channels and a lowermost extent of airstream openings of the lower air channels.

3. The multi-cavity oven of claim 2 wherein the thickness is no greater than three inches.

4. The multi-cavity oven of claim 1 wherein the upper and lower air channels of each shelf have an average separation of less than one inch.

5. The multi-cavity oven of claim 4 wherein the upper and lower air channels of each shelf have portions within a separation of less than one-half inch.

6. A multi-cavity oven comprising:

a housing defining an interior cooking volume surrounded by insulated outer walls and at least one door that may open and close to provide access to the interior cooking volume; and

a set of shelves subdividing the cooking volume into cooking cavities, the shelves providing separate upper and lower air channels divided by at least one interior barrier wall, each leading from respective air inlets to respective upwardly directed airstream openings and downwardly directed airstream openings through a jet plate;

wherein each cavity provides a separate blower circulating air from the cavity into a lower air channel of a shelf above the cavity and an upper air channel of the shelf below the cavity;

wherein each cavity provides a separate heater and a thermal sensor; and

further including a controller receiving a control set point and a signal from the thermal sensor to control the heater;

wherein the barrier wall and jet plate intercommunicate mechanically to resist warpage of each shelf with variations in thermal expansion of the barrier wall and jet plate; and

wherein the upper and lower channels of each shelf are separated by a thermal resistance having an R-value less than half of the R-value in the outer walls of the oven.

7. The multi-cavity oven of claim 6 wherein the outer walls of the oven have an R-value of no less than three.

8. The multi-cavity oven of claim 1 wherein the controller operates to control an airspeed through the channel to prevent an air temperature gain or loss from air passing through the channel from the inlet to the airstream opening causing thermal transfer with an adjacent air channel of greater than five degrees Fahrenheit.

9. The multi-cavity oven of claim 1 wherein the shelves are replaceably removable from the interior cooking volume.

10. The multi-cavity oven of claim 9 wherein the shelves consist of a separately removable lower plenum providing lower air channels and a separately removable upper plenum providing upper air channels, at least one plenum providing a barrier wall separating the upper and lower air channels.

11. The multi-cavity oven of claim 10 wherein the interior cooking volume provides inwardly extending shelf supports supporting the lower plenum and the upper plenum resting directly on the lower plenum to be supported thereby.

12. The multi-cavity oven of claim 10 wherein each plenum provides an air distribution plate defining the airstream openings and an opposed barrier wall, the barrier wall together with the air distribution plate defining the channel and wherein the air distribution plate and barrier wall are user-separable components.

13. The multi-cavity oven of claim 10 wherein the upper and lower plenums provide different air distribution plates providing a different configuration of openings.

14. The multi-cavity oven of claim 10 further including a single plenum at the top and bottom of the interior cooking volume providing an upper surface of an uppermost cavity and a lower surface of a lowermost cavity.

15. The multi-cavity oven of claim 1 further including a manifold communicating between each blower and two channels to provide greater airflow through an upper channel of the lower plenum than to a corresponding lower channel of the upper plenum flanking a cavity.

16. The multi-cavity oven of claim 1 further including at least one rack positionable on an upper surface of at least one shelf, the at least one rack supported by the shelf to be stationary with respect to the shelf in spaced relationship from the upwardly directed airstream openings.

17. The multi-cavity oven of claim 1 wherein the thermal sensor is positioned in a wall of the oven communicating with the cavity through intake apertures to be upstream from the heater of the cavity and downstream from the airstream openings.

18. The multi-cavity oven of claim 1 further including a compliant seal positioned between an inner surface of the at least one door and a front edge of the shelf to block airflow past the shelf between adjacent cavities.

19. The multi-cavity oven of claim 1 wherein an upper wall of the lower air channel of each shelf slopes downwardly from the air inlet, and a lower wall of the upper air channel of each shelf slopes upwardly from the air inlet to provide an increasing air gap between the upper and lower channels possible with reduced airflow through the channels as one moves away from the air inlets.

20. The multi-cavity oven of claim 1 wherein the controller communicates with a display guiding a user in loading of food into cavities currently not used for cooking food based on temperatures of cavities currently used for cooking food.

21. The multi-cavity oven of claim 1 including at least three cavities and wherein a separation between the upper wall of the interior cooking volume and a lower wall of the interior cooking volume is less than twenty-five inches.

22. The multi-cavity oven of claim 21 wherein each cooking cavity is at least five inches in height between a lower surface of the airstream openings of the upper shelf and an upper surface of the airstream openings of the lower shelf.

23. A multi-cavity oven comprising:

a housing defining an interior cooking volume surrounded by insulated outer walls and at least one door that may open and close to provide access to the interior cooking volume; and

a set of shelves subdividing the cooking volume into cooking cavities, the shelves providing separate upper and lower air channels divided by at least one interior barrier wall, each air channel leading from respective air inlets to respective upwardly directed airstream openings and downwardly directed airstream openings through a jet plate;

wherein each cavity provides a separate blower circulating air from the cavity into a lower air channel of a shelf above the cavity and an upper air channel of the shelf below the cavity;

wherein each cavity provides a separate heater and a thermal sensor placed in the circulated air after the airstream openings

further including a controller receiving a control set point and a signal from the thermal sensor to control the heater;

wherein the barrier wall and jet plate intercommunicate mechanically through a floating mounting adapted to resist warpage of each shelf with variations in thermal expansion of the barrier wall and jet plate.

24. The multi-cavity oven of claim 23 wherein the shelves are replaceably removable from the interior cooking volume.

25. The multi-cavity oven of claim 24 wherein the shelves consist of a separately removable lower plenum providing lower air channels and an upper plenum providing upper air channels, at least one plenum providing the barrier wall separating the upper and lower air channels.

26. The multi-cavity oven of claim 25 wherein an upper wall of the lower air channel of each shelf slopes downwardly from the air inlet, and a lower wall of the upper air channel of each shelf slopes upwardly from the air inlet to provide an increasing air gap between the upper and lower channels as one moves away from the air inlets.

27. The multi-cavity oven of claim 25 wherein the interior cooking volume provides shelf supports supporting surfaces, the lower plenum and the upper plenum resting directly on the lower plenum to be supported thereby.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 11, 2017
From: MCKEE, PHILIP R.; VANLANEN, LEE THOMAS; COLEMAN, TODD
To: ALTO-SHAAM, INC.
Reel/Frame 041967/0919 →
Continuity (10)
Continuation 14733533 · Jun 8, 2015
Continuation 15016093 · Feb 4, 2016
Continuation In Part 14733533 · Jun 8, 2015
Continuation In Part 15426620
Continuation In Part 15094645 · Apr 8, 2016
Continuation In Part 15016093 · Feb 4, 2016
Continuation In Part 14733533 · Jun 8, 2015
Continuation In Part 15426620
Continuation In Part 15224319 · Jul 29, 2016
Related Publication 20170211819A1 · Jul 27, 2017
Cited By (1)
US 12,702,253